REFERENCES
1. Jian, W.; Chen, Y.; Feng, X. 3D conformal curvy electronics: design, fabrication, and application. ACS. Nano. 2025, 19, 15177-88.
2. Liu, G.; Li, X.; Chen, X.; et al. Printing high-resolution conformal electronics on meter-scale surfaces using template-confined microfluidics. Mater. Today. 2025, 83, 166-80.
3. Pan, J.; Zhao, W.; Zhou, Y.; et al. Conformal electronics: materials, fabrication, and emerging applications. FlexMat 2025, 2, 341-64.
4. Rurup, J. D.; Secor, E. B. In-situ qualification and physics-based process design for aerosol jet printing via spatially correlated light scattering measurements. Addit. Manuf. 2024, 82, 104037.
5. Zhang, S.; Zhao, Y.; Wang, Y.; Chen, R.; Liu, Y.; Wei, D. Photolithographic organic electronics: from material design to applications. Chem. Soc. Rev. 2025, 54, 6610-33.
6. Bathaei, M. J.; Singh, R.; Mirzajani, H.; et al. Photolithography-based microfabrication of biodegradable flexible and stretchable sensors. Adv. Mater. 2023, 35, e2207081.
7. Lei, H.; Patel, T.; Lopez, J.; Devin Mackenzie, J. Screen-printed flexible antennas for 24-GHz ISM band and mmWave applications. IEEE. Flex. Electron. 2025, 4, 138-45.
8. Chen, Z.; Zhang, C.; Zheng, Z. Advancements in transfer printing techniques for flexible electronics: adjusting interfaces and promoting versatility. Int. J. Extrem. Manuf. 2024, 6, 052005.
9. Zhao, Q.; Li, K.; Sun, F.; et al. A versatile transfer printing technique through soap bubble. npj. Flex. Electron. 2025, 9, 460.
10. Li, J.; Feng, Y.; Cao, Z.; et al. Inkjet‐printed high‐throughput screening of ultrafast polymer‐stabilized blue‐phase liquid crystals for electrically adaptive microlens. Adv. Funct. Mater. 2026, e75246.
11. Cong, C.; Li, X.; Xiao, W.; et al. Electrohydrodynamic printing for demanding devices: a review of processing and applications. Nanotechnol. Rev. 2022, 11, 3305-34.
12. Yin, Z.; Wang, D.; Guo, Y.; et al. Electrohydrodynamic printing for high resolution patterning of flexible electronics toward industrial applications. InfoMat 2024, 6, e12505.
13. Iranshahi, K.; Defraeye, T.; Rossi, R. M.; Müller, U. C. Electrohydrodynamics and its applications: recent advances and future perspectives. Int. J. Heat. Mass. Transf. 2024, 232, 125895.
14. Bi, S.; Wang, R.; Han, X.; et al. Recent progress in electrohydrodynamic jet printing for printed electronics: from 0D to 3D materials. Coatings 2023, 13, 1150.
15. Cho, Y.; Beak, J. W.; Sagong, M.; Ahn, S.; Nam, J. S.; Kim, I. D. Electrospinning and nanofiber technology: fundamentals, innovations, and applications. Adv. Mater. 2025, 37, e2500162.
16. Keirouz, A.; Wang, Z.; Reddy, V. S.; et al. The history of electrospinning: past, present, and future developments. Adv. Mater. Technol. 2023, 8, 2201723.
17. Nadaf, A.; Gupta, A.; Hasan, N.; et al. Recent update on electrospinning and electrospun nanofibers: current trends and their applications. RSC. Adv. 2022, 12, 23808-28.
18. Li, X.; Shan, W.; Yang, Y.; et al. Limpet tooth‐inspired painless microneedles fabricated by magnetic field‐assisted 3D printing. Adv. Funct. Mater. 2021, 31, 2003725.
19. Ma, Z.; Wu, Y.; Lu, S.; et al. Magnetically assisted 3D printing of ultra‐antiwear flexible sensor. Adv. Funct. Mater. 2024, 34, 2406108.
20. Tian, Y.; Zhou, J.; Zhu, H.; et al. Electrohydrodynamic printing technology: mechanisms, control, and applications. Microsyst. Nanoeng. 2026, 12, 83.
21. Panáček, D.; Urban, M.; Silvestri, A.; et al. Nanomaterial-based inkjet printing for electrochemical sensing. Small 2026, 22, e13028.
22. Islam, M. S.; Zorman, C. A.; Cao, C. Parametric optimization of PEDOT:PSS aerosol jet printing for enhanced line morphology in flexible electronics. Adv. Electron. Mater. 2026, 12, e00535.
23. Fapanni, T.; Sardini, E.; Serpelloni, M. A preliminary study on flexible temperature sensors for eskin medical devices. In Proceedings of the 25th IMEKO TC4 International Symposium, Brescia, Italy, Sep 12-14, 2022. 2022; pp. 277-81. https://iris.unibs.it/retrieve/handle/11379/575266/189944/IMEKO-TC4-2022-51.pdf. (accessed 2026-06-05).
24. Yi, H.; Liu, Y.; Cao, H.; et al. Material and process integrated innovations in aerosol jet printing: a review. Mater. Today. 2025, 91, 431-58.
25. Zhang, J.; Zhu, H.; Liu, D.; Li, Y.; Huang, C. Piezoelectric inkjet printing: the principles, fluid dynamics challenges, and applications. Mater. Today. Commun. 2024, 41, 110866.
26. Li, Y.; Zhang, G.; Zhang, J.; et al. Advanced multi-nozzle electrohydrodynamic printing: mechanism, processing, and diverse applications at micro/nano-scale. Int. J. Extrem. Manuf. 2025, 7, 012008.
27. Taccola, S.; da Veiga, T.; Chandler, J. H.; Cespedes, O.; Valdastri, P.; Harris, R. A. Micro-scale aerosol jet printing of superparamagnetic Fe3O4 nanoparticle patterns. Sci. Rep. 2022, 12, 17931.
28. Tafoya, R. R.; Gallegos, M. A.; Downing, J. R.; et al. Morphology and electrical properties of high-speed flexography-printed graphene. Mikrochim. Acta. 2022, 189, 123.
29. Tonello, S.; Fapanni, T.; Bonaldo, S.; et al. Amperometric measurements by a novel aerosol jet printed flexible sensor for wearable applications. IEEE. Trans. Instrum. Meas. 2023, 72, 1-12.
30. Perilli, S.; Di Pietro, M.; Mantini, E.; et al. Development of a wearable electromyographic sensor with aerosol jet printing technology. Bioengineering 2024, 11, 1283.
31. Degryse, O.; Bloemen, V.; Ferraris, E. Collagen composite inks for Aerosol Jet® printing in bone tissue engineering applications. Procedia. CIRP. 2022, 110, 180-5.
32. Derman, I. D.; Kim, M. H.; Sarikaya, M. D.; et al. Unconventional bioprinting modalities for advanced tissue biofabrication. Biomaterials 2026, 326, 123704.
33. Gupta, E.; Bonner, C.; Lazarus, N.; Mirotznik, M. S.; Nicholson, K. J. Multiaxis manufacture of conformal metasurface antennas. Antennas. Wirel. Propag. Lett. 2023, 22, 2629-33.
34. Gohel, A.; Gratuze, M.; Ketabi, M.; Izquierdo, R. Direct-write printing for flexible and 3D electronics: aerosol jet vs. micro dispensing. Micromachines 2025, 16, 931.
35. Jeong, H.; Lee, J. H.; Kim, S.; et al. Optimization of process parameters in micro-scale pneumatic aerosol jet printing for high-yield precise electrodes. Sci. Rep. 2023, 13, 21297.
36. Zhang, H.; Choi, J. P.; Liu, X.; et al. LLM-inspired vision transformer framework for intelligent quality recognition in aerosol jet printing. Engineering 2026, In Press.
37. Wang, B.; Zhang, H.; Choi, J. P.; Moon, S. K.; Lee, B.; Koo, J. A post-treatment method to enhance the property of aerosol jet printed electric circuit on 3D printed substrate. Materials 2020, 13, 5602.
38. Rurup, J. D.; Secor, E. B. Understanding oblique deposition in aerosol jet printing for conformal electronics fabrication. J. Manuf. Process. 2024, 120, 1231-40.
39. Ma, T.; Li, Y.; Cheng, H.; et al. Enhanced aerosol-jet printing using annular acoustic field for high resolution and minimal overspray. Nat. Commun. 2024, 15, 6317.
40. Ma, T.; Li, Y.; Li, A.; et al. Nozzle heating with internal channel enhanced aerosol-jet printing with ultrahigh aspect ratio and ultrafine resolution for conformal electronics. Addit. Manuf. 2025, 111, 104965.
41. Wei, W.; Zhang, L.; Liao, Z.; Cai, Y. Aerosol jet printing of advanced capacitive strain gauge for vibration monitoring of the human body. Int. J. Adv. Manuf. Technol. 2025, 138, 31-43.
42. Li, L.; Zhang, K.; Cheng, H.; et al. Experimental and simulation investigations on the morphology of aerosol jet printed polymer traces under in-situ UV and thermal curing conditions. Addit. Manuf. 2023, 69, 103515.
43. Jignasu, A.; Rurup, J. D.; Secor, E. B.; Krishnamurthy, A. NURBS-based path planning for aerosol jet printing of conformal electronics. J. Manuf. Process. 2024, 118, 187-94.
44. Hobbie, H. A.; Doherty, J. L.; Smith, B. N.; Maccarini, P.; Franklin, A. D. Conformal printed electronics on flexible substrates and inflatable catheters using lathe-based aerosol jet printing. Npj. Flex. Electron. 2024, 8, 54.
45. Ghosh, S. K.; Kepros, E.; Chahal, P. Aerosol-jet printed high-Q quasi-optical FSSs on flex substrates using a novel parylene lift-off process. IEEE. Trans. Compon. Packag. Manuf. Technol. 2025, 15, 244-52.
46. Alexandre, E. B.; Corzo, D.; Lengger, S.; Carrara, S.; Kosel, J. Imperceptible and disposable humidity and temperature sensors with low environmental footprint enabled by aerosol jet printing and cellulose-based substrates. Small. Methods. 2026, 10, e2500506.
47. Vlnieska, V.; Siegrist, S.; Ceres, P. O. Q.; Heier, J.; Fu, F.; Romanyuk, Y. E. Monolithic interconnection of thin‐film perovskite photovoltaic modules using aerosol jet printing. Energy. Technol. 2025, 13, 2401793.
48. Zhong, X.; Du, J.; Gu, Y.; Lu, Z.; Hyun, W. J. 3D aerosol-jet-printable graphene microsupercapacitor arrays with hollow pillar electrodes for high voltage and integration density. ACS. Appl. Energy. Mater. 2025, 8, 18336-45.
49. Saleh, M. S.; Ritchie, S. M.; Nicholas, M. A.; et al. CMU array: a 3D nanoprinted, fully customizable high-density microelectrode array platform. Sci. Adv. 2022, 8, eabj4853.
50. Cheah, E.; Gao, X.; Jaw, W. Q.; et al. Customizable fabrication of 2D and conformal multielectrode arrays for 3D printed organotypic bioelectronic interfaces. Adv. Healthc. Mater. 2026, 15, e02757.
51. Rich, J.; Cole, B.; Li, T.; et al. Aerosol jet printing of surface acoustic wave microfluidic devices. Microsyst. Nanoeng. 2024, 10, 2.
52. Zhang, H.; Xu, H.; Cui, L.; et al. An extensive study of the influence of key flow variables on printed line quality outcomes during aerosol jet printing using coupled three-dimensional numerical models. Materials 2024, 17, 3179.
53. Xin, M.; Wu, Y.; Yang, Y. Combinatorial aerosol printing of mechanochromic materials. Matter 2026, 9, 102696.
54. Schwartz, A. J.; Rurup, J. D.; Secor, E. B. Closing the loop on pneumatic atomization for shift-length aerosol jet printing with real-time light scattering measurements. J. Manuf. Process. 2025, 152, 631-7.
55. Feng, J.; Klett, J. D.; Renn, M. J. Mist generation behavior in ultrasonic atomizer for Aerosol Jet® printing. Aerosol. Sci. Eng. 2024, 8, 77-86.
56. Ballesteros Martínez, M. Á.; Becerra, D.; Gaukel, V. Modelling the flow conditions and primary atomization of an air-core-liquid-ring (ACLR) atomizer using a coupled eulerian–lagrangian approach. Flow. Turbulence. Combust. 2024, 113, 437-58.
57. Schäfer, W.; Rosenkranz, S.; Brinckmann, F.; Tropea, C. Analysis of pneumatic atomizer spray profiles. Particuology 2016, 29, 80-5.
58. Khmelev, V. N.; Shalunov, A. V.; Golykh, R. N.; Nesterov, V. A.; Dorovskikh, R. S.; Shalunova, A. V. Providing the efficiency and dispersion characteristics of aerosols in ultrasonic atomization. J. Eng. Phys. Thermophy. 2017, 90, 831-44.
59. Ebrahimiazar, M.; Ashgriz, N. Aerosol generation by ultrasonic atomization of nanoliter liquid volumes. Phys. Fluids. 2025, 37, 047153.
60. Qin, R.; Duan, C. The principle and applications of Bernoulli equation. J. Phys. Conf. Ser. 2017, 916, 012038.
61. Gamba, L.; Johnson, Z. T.; Atterberg, J.; et al. Systematic design of a graphene ink formulation for aerosol jet printing. ACS. Appl. Mater. Interfaces. 2023, 15, 3325-35.
62. Jiang, X.; Yan, Z.; Niu, Y.; et al. Enhanced morphology and conductivity in aerosol jet printing via optimization of print speed range under various deposition rate. Mater. Design. 2025, 259, 114745.
63. Li, G.; Wang, S.; Zhang, Z.; et al. Precision control of aerosol jet printing for conformal electronics fabrication with ultra‐fine and wide‐range resolution. Adv. Mater. Technol. 2025, 10, 2402114.
64. Efimov, A.; Arsenov, P.; Kornyushin, D.; Lizunova, A.; Volkov, I.; Ivanov, V. Aerosol jet printing of silver lines with a high aspect ratio on a heated silicon substrate. Materials 2020, 13, 730.
65. Vyas, A.; Ng, S.; Anum, I. A highly sensitive, biodegradable capacitive humidity sensor with aerosol jet printed electrodes on a self-standing CMC film. J. Mater. Chem. C. 2025, 13, 21154-69.
66. Huang, B.; Wu, S.; Liu, J.; Liu, J.; Peng, B.; Zhou, Z. Aerosol jet printing of polyelectrolyte-modified MXene ink for a multifunctional humidity and temperature flexible sensor. Chem. Eng. J. 2025, 519, 165403.
67. Bappy, M. O.; Tanvir, A. N. M.; Song, K.; Jiang, Q.; Du, Y.; Zhang, Y. Aerosol jet printing and photonic flash sintering of a flexible multimodal sensor for concurrent temperature and strain sensing. ACS. Appl. Electron. Mater. 2025, 7, 6265-72.
68. Zhou, X.; Zhang, L.; Zhang, S.; et al. Self-assembly of 3D-printed multiscale micropillar-based organic electrochemical transistors for ultrasensitive dopamine sensing. ACS. Nano. 2025, 19, 39615-27.
69. Gamba, L.; Diaz-Arauzo, S.; Hersam, M. C.; Secor, E. B. Aerosol jet printing of phase-inversion graphene inks for high-aspect-ratio printed electronics and sensors. ACS. Appl. Nano. Mater. 2023, 6, 21133-40.
70. Wang, Z.; Xu, J.; Niu, Y.; Tan, Y.; Yang, B.; Yi, C. Fabrication of highly sensitive conformal temperature sensors on stainless steel via aerosol jet printing. J. Manuf. Mater. Process. 2026, 10, 41.
71. Chen, G.; Gu, Y.; Tsang, H.; Hines, D. R.; Das, S. The effect of droplet sizes on overspray in aerosol‐jet printing. Adv. Eng. Mater. 2018, 20, 1701084.
72. Tafoya, R. R.; Secor, E. B. Understanding and mitigating process drift in aerosol jet printing. Flex. Print. Electron. 2020, 5, 015009.
73. Mosa, M. A.; Jo, J. Y.; Kwon, K. Enhanced aerosol jet printing: leveraging jet visualization for increased stand-off distances. J. Manuf. Process. 2024, 131, 694-706.
74. Wang, J.; Yu, G.; Ai, J.; et al. Fabrication and optimization of aerosol-jet-printed temperature sensors on carbon fiber-reinforced composites. ACS. Appl. Electron. Mater. 2026, 8, 2493-503.
75. Chung, S.; Kim, Y.; Lee, C. Computational study of the particle distribution in aerosol flow in the aerosol jet printing process. Int. J. Precis. Eng. Manuf. 2025, 26, 989-98.
76. Feng, J. Q.; Ramm, A.; Renn, M. J. A quantitative analysis of overspray in Aerosol Jet® printing. Flex. Print. Electron. 2021, 6, 045006.
77. Mahajan, B. K.; Ludwig, B.; Shou, W.; et al. Aerosol printing and photonic sintering of bioresorbable zinc nanoparticle ink for transient electronics manufacturing. Sci. China. Inf. Sci. 2018, 61, 9366.
78. Gamba, L.; Razzaq, M. E. A.; Diaz-Arauzo, S.; Hersam, M. C.; Bai, X.; Secor, E. B. Tailoring electrical properties in carbon nanomaterial patterns with multimaterial aerosol jet printing. ACS. Appl. Mater. Interfaces. 2023, 15, 57525-32.
79. Ramesh, S.; Mahajan, C.; Gerdes, S.; et al. Numerical and experimental investigation of aerosol jet printing. Addit. Manuf. 2022, 59, 103090.
80. Jin, Y.; Yi, H.; Cao, H.; Dong, X. Full-process aerosol jet printing modelling: achieving high-fidelity simulation via coupling jetting and deposition. Virtual. Phys. Prototyp. 2025, 20, e2516665.
81. Guyll, B. I.; Sanford, B. L.; Pint, C. L.; Secor, E. B. Controlling droplet evaporation in aerosol jet printing to understand and mitigate overspray. Small. Sci. 2025, 5, 2500069.
82. Park, J.; Jeong, J.; Kim, C.; Hwang, J. Deposition of charged aerosol particles on a substrate by collimating through an electric field assisted coaxial flow nozzle. Aerosol. Sci. Technol. 2013, 47, 512-9.
83. Seifert, T.; Sowade, E.; Roscher, F.; Wiemer, M.; Gessner, T.; Baumann, R. R. Additive manufacturing technologies compared: morphology of deposits of silver ink using inkjet and aerosol jet printing. Ind. Eng. Chem. Res. 2015, 54, 769-79.
84. Winnicki, M.; Łapa, W.; Świadkowski, B. A novel approach to improve reliability of aerosol jet printing process. Maint. Reliab. 2024, 26, 180012.
85. Kouchi, F. R.; Varghese, T. V.; Burgoyne, H.; et al. StableTi3C2Tx MXene ink formulation and high-resolution aerosol jet printing for high-performance MXene supercapacitors. Small. Methods. 2025, 9, e2500499.
86. Sui, Y.; Tsui, L.; Thibodeaux, A. J.; Lavin, J. M. An aerosol jet printed resistance temperature detector‐micro hotplate with temperature coefficient of resistance stabilized by electrical sintering. Adv. Mater. Technol. 2023, 8, 2202053.
87. Beedasy, V.; Smith, P. J. Printed electronics as prepared by inkjet printing. Materials 2020, 13, 704.
88. Sung, K.; Park, J.; Kang, H. Multi-layer inkjet printing of Ag nanoparticle inks and its sintering with a near-infrared system. Int. J. Precis. Eng. Manuf. 2018, 19, 303-7.
89. Keller, D. J.; Jochem, K. S.; Suszynski, W. J.; Francis, L. F. Near-IR sintering of conductive silver nanoparticle ink with in situ resistance measurement. J. Coat. Technol. Res. 2019, 16, 1699-705.
90. Chen, I.; Liu, Y.; Yu, X.; et al. Aerosol printing and flash sintering of conformal conductors on 3D nonplanar surfaces. Manuf. Lett. 2022, 31, 119-23.
91. Du, Y.; Yang, J.; Song, K.; et al. Autonomous aerosol and plasma co-jet printing of metallic devices at ambient temperature. Small 2025, 21, e2409751.
92. Gibertini, E.; Gervasini, L. F.; Albertazzi, J.; et al. Reactive aerosol jet printing of Ag nanoparticles: a new tool for SERS substrate preparation. Coatings 2025, 15, 900.
93. Rosker, E. S.; Barako, M. T.; Nguyen, E.; et al. Approaching the practical conductivity limits of aerosol jet printed silver. ACS. Appl. Mater. Interfaces. 2020, 12, 29684-91.
94. Luo, Y.; Zhu, Q.; Cao, L.; Fan, L.; Gu, F.; Xiong, S. Aerosol jet printing of hybrid Ti3C2Tx MXene/PEDOT:PSS nanospheres for flexible planar/fiber architectured micro‐supercapacitors. Adv. Eng. Mater. 2025, 27, 2500044.
95. Xu, B.; Yang, M.; Cheng, W.; et al. Precision aerosol-jet micropatterning of liquid metal for high-performance flexible strain sensors. Nat. Commun. 2025, 16, 7920.
96. Arabpoor, R.; Haghighi, A. Experimental insights into aerosol jet printing on 3D curved surfaces: line morphology and resistivity. Manuf. Lett. 2025, 46, 133-7.
97. Fisher, C.; Skolrood, L. N.; Li, K.; Joshi, P. C.; Aytug, T. Aerosol‐jet printed sensors for environmental, safety, and health monitoring: a review. Adv. Mater. Technol. 2023, 8, 2300030.
98. Wilkinson, N. J.; Smith, M. A. A.; Kay, R. W.; Harris, R. A. A review of aerosol jet printing - a non-traditional hybrid process for micro-manufacturing. Int. J. Adv. Manuf. Technol. 2019, 105, 4599-619.
99. Huang, Q.; Zhu, Y. Printing conductive nanomaterials for flexible and stretchable electronics: a review of materials, processes, and applications. Adv. Mater. Technol. 2019, 4, 1800546.
100. Niam, A. G.; Sucahyo, L. Ultrasonic atomizer application for low cost aeroponic chambers (LCAC): a review. IOP. Conf. Ser. Earth. Environ. Sci. 2020, 542, 012034.
101. Binder, S.; Glatthaar, M.; Rädlein, E. Analytical investigation of aerosol jet printing. Aerosol. Sci. Technol. 2014, 48, 924-9.
102. Secor, E. B.; Yeboah, D.; Gamba, L. Additive electronics manufacturing via droplet jetting technologies: materials, methods, applications, and opportunities. Nanoscale 2025, 17, 18997-9020.
103. He, B.; Yang, S.; Qin, Z.; Wen, B.; Zhang, C. The roles of wettability and surface tension in droplet formation during inkjet printing. Sci. Rep. 2017, 7, 11841.
104. Sukeshini A, M.; Meisenkothen, F.; Gardner, P.; Reitz, T. L. Aerosol Jet® Printing of functionally graded SOFC anode interlayer and microstructural investigation by low voltage scanning electron microscopy. J. Power. Sources. 2013, 224, 295-303.
105. Yang, C.; Zhou, E.; Miyanishi, S.; Hashimoto, K.; Tajima, K. Preparation of active layers in polymer solar cells by aerosol jet printing. ACS. Appl. Mater. Interfaces. 2011, 3, 4053-8.
106. May, K. The collison nebulizer: description, performance and application. J. Aerosol. Sci. 1973, 4, 235-43.
107. Yu, J.; Khuje, S.; Sheng, A.; Kilczewski, S.; Parker, T.; Ren, S. High‐temperature copper–graphene conductors via aerosol jetting. Adv. Eng. Mater. 2022, 24, 2200284.
108. Kwon, Y.; Kim, J.; Kim, H.; et al. Printed nanomaterials for all-in-one integrated flexible wearables and bioelectronics. ACS. Appl. Mater. Interfaces. 2024, 16, 68016-26.
109. Doddapaneni, V. V. K.; Lee, K.; Aysal, H. E.; et al. A review on progress, challenges, and prospects of material jetting of copper and tungsten. Nanomaterials 2023, 13, 2303.
110. Jahan, S.; Hu, C.; Yuan, B.; Ritchie, S. M.; Panat, R. Aerosol jet 3D printing of gold micropillars and their behavior under compressive loads. Addit. Manuf. 2024, 92, 104385.
111. Valayil Varghese, T.; Eixenberger, J.; Rajabi-Kouchi, F.; et al. Multijet gold nanoparticle inks for additive manufacturing of printed and wearable electronics. ACS. Mater. Au. 2024, 4, 65-73.
112. Rahman, M. T.; Panat, R. Aerosol jet 3D printing and high temperature characterization of nickel nanoparticle films. Manuf. Lett. 2021, 29, 5-10.
113. McKibben, N.; Curtis, M.; Maryon, O.; et al. Formulation and aerosol jet printing of nickel nanoparticle ink for high-temperature microelectronic applications and patterned graphene growth. ACS. Appl. Electron. Mater. 2024, 6, 748-60.
114. Niu, Y.; Wang, Z.; Li, Y.; et al. Ultrathin MXene/Ag-Ag nanocomposite films for 3D-conformal electromagnetic shielding via aerosol jet printing. Chem. Eng. J. 2025, 506, 160122.
115. Mishra, B.; Chen, Y. M. All-aerosol-jet-printed carbon nanotube transistor with cross-linked polymer dielectrics. Nanomaterials 2022, 12, 4487.
116. Filippi, F.; Fiori, G.; Genovesi, A.; et al. Preliminary characterization of a novel aerosol jet-printed strain sensor for feasibility assessment in a variable stiffness arterial simulator application. Sensors 2024, 24, 7725.
117. Parate, K.; Pola, C. C.; Rangnekar, S. V.; et al. Aerosol-jet-printed graphene electrochemical histamine sensors for food safety monitoring. 2D. Mater. 2020, 7, 034002.
118. Al Shboul, A.; Ketabi, M.; Skaf, D.; et al. Graphene inks printed by aerosol jet for sensing applications: the role of dispersant on the inks’ formulation and performance. Sensors 2023, 23, 7151.
119. Ali, M. A.; Hu, C.; Jahan, S.; et al. Sensing of COVID-19 antibodies in seconds via aerosol jet nanoprinted reduced-graphene-oxide-coated 3D electrodes. Adv. Mater. 2021, 33, e2006647.
120. Tarabella, G.; Vurro, D.; Lai, S.; D’Angelo, P.; Ascari, L.; Iannotta, S. Aerosol jet printing of PEDOT:PSS for large area flexible electronics. Flex. Print. Electron. 2020, 5, 014005.
121. Seiti, M.; Ginestra, P. S.; Ferraro, R. M.; et al. Aerosol Jet® Printing of poly(3,4-ethylenedioxythiophene): poly(styrenesulfonate) onto micropatterned substrates for neural cells in vitro stimulation. Int. J. Bioprint. 2022, 8, 504.
122. Fisher, C.; Warmack, B. J.; Yu, Y.; et al. All-aerosol-jet-printed highly sensitive and selective polyaniline-based ammonia sensors: a route toward low-cost, low-power gas detection. J. Mater. Sci. 2021, 56, 12596-606.
123. Douglas, S. P.; Mrig, S.; Knapp, C. E. MODs vs. NPs: vying for the future of printed electronics. Chemistry 2021, 27, 8062-81.
124. Sheng, A.; Islam, A.; Khuje, S.; et al. Molecular copper decomposition ink for printable electronics. Chem. Commun. 2022, 58, 9484-7.
125. Kell, A. J.; Paquet, C.; Mozenson, O.; et al. Versatile molecular silver ink platform for printed flexible electronics. ACS. Appl. Mater. Interfaces. 2017, 9, 17226-37.
126. Farr, N. T. H.; Davies, M.; Nohl, J.; et al. Revealing the morphology of ink and aerosol jet printed palladium-silver alloys fabricated from metal organic decomposition inks. Adv. Sci. 2024, 11, e2306561.
127. Gupta, A. A.; Arunachalam, S.; Cloutier, S. G.; Izquierdo, R. Fully aerosol-jet printed, high-performance nanoporous ZnO ultraviolet photodetectors. ACS. Photonics. 2018, 5, 3923-9.
128. Hong, K.; Kim, S. H.; Mahajan, A.; Frisbie, C. D. Aerosol jet printed p- and n-type electrolyte-gated transistors with a variety of electrode materials: exploring practical routes to printed electronics. ACS. Appl. Mater. Interfaces. 2014, 6, 18704-11.
129. Petti, L.; Münzenrieder, N.; Vogt, C.; et al. Metal oxide semiconductor thin-film transistors for flexible electronics. Appl. Phys. Rev. 2016, 3, 021303.
130. Glushkova, A.; Andričević, P.; Smajda, R.; et al. Ultrasensitive 3D aerosol-jet-printed perovskite X-ray photodetector. ACS. Nano. 2021, 15, 4077-84.
131. Lan, X.; Lu, X.; Chen, M. Y.; et al. Direct on-chip 3-D aerosol jet printing with high reliability. IEEE. Trans. Compon. Packag. Manuf. Technol. 2017, 7, 1369-76.
132. Ye, S.; Williams, N. X.; Franklin, A. Aerosol jet printing of SU-8 as a passivation layer against ionic solutions. J. Electron. Mater. 2022, 51, 1583-90.
133. Iervolino, F.; Baldini, A.; Gelmi, I.; Castoldi, L.; Suriano, R.; Levi, M. Aerosol jet printing of a benzocyclobutene‐based ink as adhesive material for wafer bonding application. Adv. Mater. Interfaces. 2023, 10, 2202183.
134. Viviani, P.; Gibertini, E.; Ratti, A.; Gelmi, I.; Castoldi, L.; Magagnin, L. Enabling water-based EVA adhesives for solvent-free aerosol jet printing in microfabrication. J. Micromech. Microeng. 2025, 35, 085016.
135. Vlnieska, V.; Gilshtein, E.; Kunka, D.; Heier, J.; Romanyuk, Y. E. Aerosol jet printing of 3D pillar arrays from photopolymer ink. Polymers 2022, 14, 3411.
136. Williams, N. X.; Watson, N.; Joh, D. Y.; Chilkoti, A.; Franklin, A. D. Aerosol jet printing of biological inks by ultrasonic delivery. Biofabrication 2020, 12, 025004.
137. Choi, T.; Seok, H.; Youn, H.; et al. Directly patterned ITO nanoparticle-based transparent electrode using co-solvent-based aerosol jet printing for transparent thin film heaters. Chem. Eng. J. 2024, 498, 154692.
138. Ju, Z.; Lv, R.; Zhang, J.; Shi, D.; Chen, Y.; Ansari, A. A. A flexible composite electrode for effective real-time glucose monitoring via high-precision layer-by-layer inkjet printing. J. Colloid. Interface. Sci. 2026, 709, 139977.
139. Lall, P.; Narangaparambil, J.; Schulze, K.; Miller; S. Interconnection of passive components using printed aerosol-jet traces. In 2021 20th IEEE Intersociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems (iTherm), San Diego, USA, Jun 1-4 2021. IEEE; 2021. pp. 1052-60.
140. Jabari, E.; Toyserkani, E. Micro-scale aerosol-jet printing of graphene interconnects. Carbon 2015, 91, 321-9.
141. Werum, K.; Mueller, E.; Keck, J.; et al. Aerosol jet printing and interconnection technologies on additive manufactured substrates. J. Manuf. Mater. Process. 2022, 6, 119.
142. Makhinia, A.; Hübscher, K.; Beni, V.; Andersson Ersman, P. High performance organic electrochemical transistors and logic circuits manufactured via a combination of screen and aerosol jet printing techniques. Adv. Mater. Technol. 2022, 7, 2200153.
143. Niu, Z.; Yi, H.; Jin, Y.; et al. Wide-flow aerosol jet printing enables high-throughput, ultra-low aspect ratio patterning. Adv. Sci. 2026, 13, e12557.
144. Enakerakpo, E.; Alhendi, M.; Khinda, G. S.; et al. Fully additive manufacturing of passive circuit elements using aerosol jet printing. In 2021 IEEE 71st Electronic Components and Technology Conference (ECTC), San Diego, USA, Jun 01 - Jul 04, 2021. IEEE; 2021. pp. 1138-43.
145. Piro, Y.; Areias, C.; Luce, A.; et al. Low-loss dielectric ink for printed radio frequency and microwave devices. ACS. Appl. Mater. Interfaces. 2023, 15, 35449-58.
146. David Joseph, S.; Davies, B.; Davies, M.; Ball, E. A.; Willmott, J. R. Additive manufacturing on Kapton substrate for rapid prototyping of low-cost mmWave antennas. IEEE. Open. J. Antennas. Propag. 2025, 6, 1717-27.
147. Joseph, S. D.; Davies, B. E.; Davies, M. M.; Ball, E. A.; Willmott, J. R. Aerosol jet printing on Kapton for affordable millimeter wave antenna prototyping. In 2024 IEEE Microwaves, Antennas, and Propagation Conference (MAPCON), Hyderabad, India, Dec 09-13, 2024. IEEE; 2024. p. 1-4.
148. Verma, A.; Seiti, M.; Machiels, J.; et al. Aerosol Jet® printing of HF RFID antennas on fiber-based paper substrates for smart packaging. APL. Electronic. Devices. 2025, 1, 026104.
149. Cheng, T.; Nicholson, K. J. Characterization of aerosol jet printed features at microwave frequencies. Adv. Manuf. Polym. Compos. Sci. 2025, 11, 2448406.
150. Rosker, E. S.; Barako, M. T.; Nguyen, E.; Radisic, V.; Goorsky, M. S.; Tice, J. Fully 3D printed high performance band-stop filters enabled by three-dimensional design. Flex. Print. Electron. 2022, 7, 035006.
151. Gholamalizadeh, N.; Zarei, Z.; Sharif, F.; Mazinani, S.; Bazargan, A. M. Screen printable graphite–graphene hybrid ink for flexible electronics: correlating particle size and binary solvent system on conductivity and print quality. Flex. Print. Electron. 2026, 11, 015015.
152. Yun, J.; Kim, S.; Lee, J.; Kim, S. High-throughput large-area roll-to-stamp-to-plate transfer printing. ACS. Appl. Mater. Interfaces. 2026, 18, 15776-88.
153. Li, P.; Fleischer, J.; Quinn, E.; Park, D. Fabrication of an optically transparent planar inverted-F antenna using PEDOT-based silver nanowire clear ink with aerosol-jet printing method towards effective antennas. J. Manuf. Mater. Process. 2024, 8, 39.
154. Ongaro, C.; Roose, B.; Fleury, J.; et al. Integration of metal meshes as transparent conducting electrodes into perovskite solar cells. Adv. Mater. Interfaces. 2024, 11, 2300923.
155. Hamjah, M. K.; Steinberger, M.; Tam, K. C.; Egelhaaf, H. J.; Brabec, C. J.; Franke, J. Aerosol jet printed AgNW electrode and PEDOT:PSS layers for organic light-emitting diode devices fabrication. In 2021 14th International Congress Molded Interconnect Devices (MID), Amberg, Germany, Feb 08-11, 2021. IEEE; 2021. p. 1-4.
156. Mattei, F.; Vurro, D.; Spoltore, D.; et al. Planar hybrid UV-C photodetectors based on aerosol-jet printed PEDOT:PSS on different Ga2O3 thin films. Mater. Today. Phys. 2025, 51, 101663.
157. Serbest, B.; Kara, S. G.; Alpay, R.; et al. Aerosol jet printing of flexible transparent conductive silver nanowire electrodes: effects of printing cycles. J. Electron. Mater. 2025, 54, 1245-53.
158. Arango‐Marín, V.; Rocha‐Ortiz, J. S.; Osterrieder, T.; et al. Aerosol‐jet‐printed silver nanowires as top electrodes in organic photovoltaic devices. Solar. RRL. 2025, 9, 2400874.
159. Kelly, A. G.; Sheil, S.; Douglas-Henry, D. A.; et al. Transparent conductors printed from grids of highly conductive silver nanosheets. ACS. Appl. Mater. Interfaces. 2023, 15, 39864-71.
160. Davies, M.; Hobbs, M. J.; Nohl, J.; Davies, B.; Rodenburg, C.; Willmott, J. R. Aerosol jet printing polymer dispersed liquid crystals on highly curved optical surfaces and edges. Sci. Rep. 2022, 12, 18496.
161. Sherman, D. A.; Landberg, E.; Peringath, A. R.; Kar-Narayan, S.; Tan, J. C. Fine-scale aerosol-jet printing of luminescent metal-organic framework nanosheets. ACS. Appl. Mater. Interfaces. 2024, 16, 56304-15.
162. Tursunniyaz, M.; Meredith, A.; Andrews, J. Aerosol jet printed resistive temperature sensors with high sensitivity. Sens. Actuators. A. Phys. 2023, 364, 114777.
163. Fapanni, T.; Elbidweihy, H.; Zappa, D.; Comini, E.; Sardini, E.; Serpelloni, M. Evaluation of the curing process effects on the TCR of temperature sensors printed by aerosol jet printing. IEEE. Sensors. J. 2023, 23, 16625-32.
164. Niu, Y.; Wang, Z.; Yang, B.; et al. Aerosol jet printing of synthesized Ag/Ag nanowires hybrid inks for highly sensitive, wide‐range conformal temperature sensing. Adv. Mater. Technol. 2026, 11, e01654.
165. Bessac, E.; Demir, B.; Reverdy-Bruas, N.; Blayo, A. Printed temperature sensors on paper with aerosol jet printing technology. In 2024 IEEE International Conference on Flexible and Printable Sensors and Systems (FLEPS), Tampere, Finland, Jun 30 - Jul 03, 2024. IEEE; 2024. p. 1-4.
166. Ketabi, M.; Shboul, A. A.; Mahinnezhad, S.; Izquierdo, R. Aerosol-jet printing of flexible green graphene humidity sensors for IoT applications. In 2021 IEEE Sensors, Sydney, Australia, Oct 31 - Nov 03, 2021. IEEE; 2021. p. 1-4.
167. Clifford, B.; Beynon, D.; Phillips, C.; Deganello, D. Printed-sensor-on-chip devices - aerosol jet deposition of thin film relative humidity sensors onto packaged integrated circuits. Sens. Actuators. B. Chem. 2018, 255, 1031-8.
168. McKibben, N.; Ryel, B.; Manzi, J.; et al. Aerosol jet printing of piezoelectric surface acoustic wave thermometer. Microsyst. Nanoeng. 2023, 9, 51.
169. Basnayaka, M.; Jäntti, R.; Ruttik, K.; Kerminen, J.; Gallegos-Rosas, K.; Soldano, C. Investigating carboxymethyl cellulose in aerosol jet printed microwave humidity sensors. In 2025 16th German Microwave Conference (GeMiC), Dresden, Germany, Mar 17-19, 2025. IEEE; 2025. pp. 577-80.
170. Huber, R.; Belles, D.; Bücher, T.; Franke, L.; Amrouch, H.; Lemmer, U. Integrated CPU monitoring using 2D temperature sensor arrays directly printed on heat sinks. Adv. Mater. Technol. 2024, 9, 2301631.
171. Tousignant, M. N.; Tischler, V.; Wagner, K.; et al. Aerosol jet printed temperature sensors using an environmentally friendly bilayer dielectric. Flex. Print. Electron. 2024, 9, 015012.
172. Chang, Y.; Hung, K.; Young, H.; Li, K.; Chen, R. K. Aerosol jet printing of nickel oxide nanoparticle ink with ultraviolet radiation curing for thin-film temperature sensors. Int. J. Adv. Manuf. Technol. 2022, 118, 1957-65.
173. Kravchenko, D. E.; Matavž, A.; Rubio-Giménez, V.; Vanduffel, H.; Verstreken, M.; Ameloot, R. Aerosol jet printing of the ultramicroporous calcium squarate metal–organic framework. Chem. Mater. 2022, 34, 6809-14.
174. Saeidi-Javash, M.; Du, Y.; Zeng, M.; et al. All-printed MXene–graphene nanosheet-based bimodal sensors for simultaneous strain and temperature sensing. ACS. Appl. Electron. Mater. 2021, 3, 2341-8.
175. Smith, B. N.; Ballentine, P.; Doherty, J. L.; et al. Aerosol jet printing conductive 3D microstructures from graphene without post-processing. Small 2024, 20, e2305170.
176. Niu, Y.; Han, Y.; Cheng, H.; et al. Synthesized silver nanoparticles decorated reduced graphene oxide/silver ink for aerosol jet printed conformal temperature sensor with a wide sensing range and excellent stability. J. Mater. Res. Technol. 2023, 25, 873-86.
177. Bappy, M. O.; Jiang, Q.; Atampugre, S.; Zhang, Y. Aerosol jet printing of high-temperature bimodal sensors for simultaneous strain and temperature sensing using gold and indium tin oxide nanoparticle inks. ACS. Appl. Nano. Mater. 2024, 7, 9453-9.
178. Aga, R. S.; Duncan, L.; Davidson, L.; et al. Design and fabrication of a metal resistance strain sensor with enhanced sensitivity. IEEE. Sens. Lett. 2024, 8, 1-4.
179. Olowo, O. O.; Zhang, R.; Wei, D.; Ratnayake, D.; Jackson, D.; Popa, D. O. Aerosol jet printed tactile sensor on flexible substrate. In 2022 IEEE International Conference on Flexible and Printable Sensors and Systems (FLEPS), Vienna, Austria, Jul 10-13, 2022. IEEE; 2022. p. 1-4.
180. Zhang, J.; Baumberg, J. J.; Kar-Narayan, S. The thickness-dependent response of aerosol-jet-printed ultrathin high-aspect-ratio electrochemical microactuators. Soft. Matter. 2024, 20, 9424-33.
181. Du, Y.; Wang, R.; Zeng, M.; et al. Hybrid printing of wearable piezoelectric sensors. Nano. Energy. 2021, 90, 106522.
182. Li, K.; Liu, S.; Hao, Y.; Zhang, H. Aerosol jet printing process study of micro flexible strain sensors. Flex. Print. Electron. 2025, 10, 045001.
183. Karipoth, P.; Chandler, J. H.; Lee, J.; et al. Aerosol jet printing of strain sensors for soft robotics. Adv. Eng. Mater. 2024, 26, 2301275.
184. Herbert, R.; Elsisy, M.; Rigo, B.; et al. Fully implantable batteryless soft platforms with printed nanomaterial-based arterial stiffness sensors for wireless continuous monitoring of restenosis in real time. Nano. Today. 2022, 46, 101557.
185. Wang, Q.; Li, P.; Yuan, Q.; et al. An aerosol jet-printed wearable graphene/cellulose nanocrystal acoustic sensor for speech recognition. ACS. Sens. 2025, 10, 8521-30.
186. Phero, T. L.; Novich, K. A.; Johnson, B. C.; Mcmurtrey, M. D.; Estrada, D.; Jaques, B. J. Additively manufactured strain sensors for in-pile applications. Sens. Actuators. A. Phys. 2022, 344, 113691.
187. Thomas, D. J.; Singh, D. Rocket engine structure microsensors printed with colloidal platinum nanoink using 3D aerosol-jet technology. Int. J. Adv. Manuf. Technol. 2023.
188. O’Driscoll, D. P.; McMahon, S.; Garcia, J.; et al. Printable G-putty for frequency- and rate-independent, high-performance strain sensors. Small 2021, 17, e2006542.
189. Cole, B.; Zhao, Y.; Bethke, A.; et al. Multi-stimulus soft actuators from aerosol jet printed MXene-cellulose composite. Nano. Lett. 2025, 25, 15501-8.
190. Zhang, J.; Jing, Q.; Wade, T.; et al. Controllable multimodal actuation in fully printed ultrathin micro-patterned electrochemical actuators. ACS. Appl. Mater. Interfaces. 2024, 16, 6485-94.
191. Zhou, X.; Zhang, L.; Wang, Y.; et al. Aerosol jet printing of multi‐dimensional OECT force sensor with high sensitivity and large measuring range. Adv. Mater. Technol. 2023, 8, 2201272.
192. Fedorov, F. S.; Simonenko, N. P.; Arsenov, P. V.; et al. Study of programmed co-precipitation of aluminum doped zinc oxide for high precision design of gas analytical units. Appl. Surf. Sci. 2022, 606, 154717.
193. Liu, L.; Xu, Z.; Molina Vargas, A. M.; et al. Aerosol jet printing-enabled dual-function electrochemical and colorimetric biosensor for SARS-CoV-2 detection. Anal. Chem. 2023, 95, 11997-2005.
194. Wang, P.; Tang, C. Enhanced gas sensing property of polyaniline-based ammonia sensor via aerosol-jet printing. Mater. Lett. 2024, 360, 136040.
195. Polidori, G.; Mahraoui, S.; Sardini, E.; Serpelloni, M. Preliminary study on electrochemical sensors for ion detection in agriculture and environment by aerosol jet printing. In 2025 IEEE International Workshop on Metrology for Industry 4.0 & IoT (MetroInd4.0 & IoT), Castelldefels, Spain, Jul 01-03, 2025. IEEE; 2025. pp. 232-7.
196. Dominiczak, J.; Krzemiński, J.; Wojcieszek, J.; et al. Aerosol-jet-printed potentiometric pH sensor for sweat measurements in smart patches. Sens. Bio. Sens. Res. 2024, 43, 100636.
197. Wang, P.; Tang, C. Tunable p/n property of WS2 nanosheets-based ammonia gas sensor: assembled by drop-coating and aerosol-jet printing. Appl. Surf. Sci. 2024, 655, 159612.
198. Taheri, M.; Ketabi, M.; Al Shboul, A. M.; Mahinnezhad, S.; Izquierdo, R.; Deen, M. J. Integrated pH sensors based on RuO2/GO nanocomposites fabricated using the aerosol jet printing method. ACS. Omega. 2023, 8, 46794-803.
199. Liu, S.; Shuai, L.; Zhu, Q.; et al. All-aerosol-jet-printed Fe3+ modified bilayers polyaniline flexible room temperature sensor with enhanced ammonia sensing properties. Talanta 2025, 287, 127684.
200. Wang, H.; Liu, X.; Fang, Y.; Zeng, X.; Cao, C. C. Printed, flexible, ionic liquid-based hydrogen sensor via aerosol jet printing of nanomaterials. IEEE. Sens. Lett. 2023, 7, 1-4.
201. Borghetti, M.; Cantu, E.; Ponzoni, A.; Sardini, E.; Serpelloni, M. Aerosol jet printed and photonic cured paper-based ammonia sensor for food smart packaging. IEEE. Trans. Instrum. Meas. 2022, 71, 1-10.
202. Zhu, Y.; Yu, L.; Wu, D.; Lv, W.; Wang, L. A high-sensitivity graphene ammonia sensor via aerosol jet printing. Sens. Actuators. A. Phys. 2021, 318, 112434.
203. Fan, J.; Parr, S.; Kang, S.; Gupta, M. Point-of-care (POC) SARS-CoV-2 antigen detection using functionalized aerosol jet-printed organic electrochemical transistors (OECTs). Nanoscale 2023, 15, 5476-85.
204. Pola, C. C.; Rangnekar, S. V.; Sheets, R.; et al. Aerosol-jet-printed graphene electrochemical immunosensors for rapid and label-free detection of SARS-CoV-2 in saliva. 2d. Mater. 2022, 9, 035016.
205. Ali, M. A.; Hu, C.; Yuan, B.; et al. Breaking the barrier to biomolecule limit-of-detection via 3D printed multi-length-scale graphene-coated electrodes. Nat. Commun. 2021, 12, 7077.
206. Ali, A.; Zhang, G. F.; Hu, C.; Yuan, B.; Gao, S. J.; Panat, R. An advanced healthcare sensing platform for direct detection of viral proteins in seconds at femtomolar concentrations via aerosol jet 3D-printed nano and biomaterials. Adv. Mater. Interfaces. 2024, 11, 2400005.
207. Majak, D.; Fan, J.; Kang, S.; Gupta, M. Delta-9-tetrahydrocannabinol (Δ9-THC) sensing using an aerosol jet printed organic electrochemical transistor (OECT). J. Mater. Chem. B. 2021, 9, 2107-17.
208. Fapanni, T.; Sardini, E.; Serpelloni, M.; Tonello, S. 3D electrochemical sensor and microstructuration using aerosol jet printing. Sensors 2021, 21, 7820.
209. Fan, J.; Forero Pico, A. A.; Gupta, M. A functionalization study of aerosol jet printed organic electrochemical transistors (OECTs) for glucose detection. Mater. Adv. 2021, 2, 7445-55.
210. Rivnay, J.; Inal, S.; Salleo, A.; Owens, R. M.; Berggren, M.; Malliaras, G. G. Organic electrochemical transistors. Nat. Rev. Mater. 2018, 3, 17086.
211. Perera, Y. S.; Li, J.; Zhang, L.; Kelly, A. L.; Abeykoon, C. Multi-output deep learning-based soft sensor for real-time radial melt temperature profile prediction in polymer extrusion processes. Measurement 2025, 256, 118264.
212. Xu, F.; Zhang, J.; Li, W.; Pan, C.; Xia, H. Lithography alignment technologies: a comprehensive review of advances and challenges. Laser. Photonics. Rev. 2026, e01998.
213. Bag, S.; Deneault, J. R.; Durstock, M. F. Aerosol‐jet‐assisted thin‐film growth of CH3NH3PbI3 perovskites - a means to achieve high quality, defect‐free films for efficient solar cells. Adv. Energy. Mater. 2017, 7, 1701151.
214. Arango-Marín, V.; Wortmann, J.; Osterrieder, T.; et al. Fine-tuning donor material deposition with ultrasonic aerosol jet printing to balance efficiency and stability in inverted organic photovoltaic devices. ACS. Appl. Mater. Interfaces. 2025, 17, 46149-60.
215. Williams, B. A.; Mahajan, A.; Smeaton, M. A.; Holgate, C. S.; Aydil, E. S.; Francis, L. F. Formation of copper zinc tin sulfide thin films from colloidal nanocrystal dispersions via aerosol-jet printing and compaction. ACS. Appl. Mater. Interfaces. 2015, 7, 11526-35.
216. Yang, P.; Zhai, T.; Yu, B.; et al. Toward all aerosol printing of high-efficiency organic solar cells using environmentally friendly solvents in ambient air. J. Mater. Chem. A. 2021, 9, 17198-210.
217. Basu, R.; Siah, K. S.; Distler, A.; et al. Aerosol‐jet‐printed encapsulation of organic photovoltaics. Adv. Eng. Mater. 2023, 25, 2300322.
218. Kopola, P.; Zimmermann, B.; Filipovic, A.; et al. Aerosol jet printed grid for ITO-free inverted organic solar cells. Sol. Energy. Mater. Sol. Cells. 2012, 107, 252-8.
219. Eckstein, R.; Hernandez-Sosa, G.; Lemmer, U.; Mechau, N. Aerosol jet printed top grids for organic optoelectronic devices. Org. Electron. 2014, 15, 2135-40.
220. Kaduwal, D.; Schleiermacher, H.; Schulz-Gericke, J.; Kroyer, T.; Zimmermann, B.; Würfel, U. ITO-free organic solar cells with roll-to-roll coated organic functional layers from non-halogenated solvents. Sol. Energy. Mater. Sol. Cells. 2014, 124, 92-7.
221. Tait, J. G.; La Notte, L.; Melkonyan, D.; et al. Electrical properties of patterned photoactive layers in organic photovoltaic modules. Sol. Energy. Mater. Sol. Cells. 2016, 144, 493-9.
222. Lee, H. R.; Furukawa, N.; Ricco, A. J.; Pop, E.; Cui, Y.; Nishi, Y. Carbon nanotube thermoelectric devices by direct printing: toward wearable energy converters. Appl. Phys. Lett. 2021, 118, 173901.
223. Werner, R.; Matejka, J. S.; Schönauer-Kamin, D.; Moos, R. From thermoelectric powder directly to thermoelectric generators: flexible Bi2Te3 films on polymer sheets prepared by the powder aerosol deposition method at room temperature. Energy. Technol. 2022, 10, 2101091.
224. Goh, G. L.; Li, H.; Soo, X. Y. D.; et al. Flexible thermoelectric energy harvesting devices via aerosol jet printed bismuth telluride (Bi2Te3) nanowires and intense pulsed light sintering. Mater. Design. 2025, 259, 114828.
225. Zeng, M.; Xie, H.; Saeidi-Javash, M.; et al. Scalable nanomanufacturing of chalcogenide inks: a case study on thermoelectric V-VI nanoplates. J. Mater. Chem. A. 2021, 9, 22555-62.
226. Dun, C.; Kuang, W.; Kempf, N.; Saeidi-Javash, M.; Singh, D. J.; Zhang, Y. 3D printing of solution-processable 2D nanoplates and 1D nanorods for flexible thermoelectrics with ultrahigh power factor at low-medium temperatures. Adv. Sci. 2019, 6, 1901788.
227. Ou, C.; Sangle, A. L.; Chalklen, T.; Jing, Q.; Narayan, V.; Kar-Narayan, S. Enhanced thermoelectric properties of flexible aerosol-jet printed carbon nanotube-based nanocomposites. APL. Mater. 2018, 6, 096101.
228. Saeidi‐Javash, M.; Kuang, W.; Dun, C.; Zhang, Y. 3D conformal printing and photonic sintering of high‐performance flexible thermoelectric films using 2D nanoplates. Adv. Funct. Mater. 2019, 29, 1901930.
229. Ou, C.; Sangle, A. L.; Datta, A.; et al. Fully printed organic-inorganic nanocomposites for flexible thermoelectric applications. ACS. Appl. Mater. Interfaces. 2018, 10, 19580-7.
230. Song, G.; Adamczyk, J. M.; Toberer, E. S.; Hogan, C. J. Combinatorial aerosol deposition of bismuth–antimony thermoelectric coatings with tunable composition. Appl. Surf. Sci. 2023, 609, 155245.
231. Nazarenus, T.; Kita, J.; Moos, R.; Exner, J. Laser‐annealing of thermoelectric CuFe0.98Sn0.02O2 films produced by powder aerosol deposition method. Adv. Mater. Interfaces. 2020, 7, 2001114.
232. Lin, S.; Wu, W. Fabrication of PZT MEMS energy harvester based on silicon and stainless-steel substrates utilizing an aerosol deposition method. J. Micromech. Microeng. 2013, 23, 125028.
233. Pinilla, S.; Ryan, S.; Mckeon, L.; et al. Additive manufacturing of Li‐ion batteries: a comparative study between electrode fabrication processes. Adv. Energy. Mater. 2023, 13, 2203747.
234. Lopez-Hallman, R.; Rodriguez, R.; Lai, Y.; et al. All‐solid‐state battery fabricated by 3D aerosol jet printing. Adv. Eng. Mater. 2024, 26, 2300953.
235. Yu, X.; Liu, Y.; Pham, H.; et al. Customizable nonplanar printing of lithium‐ion batteries. Adv. Mater. Technol. 2019, 4, 1900645.
236. Deiner, L. J.; Jenkins, T.; Powell, A.; Howell, T.; Rottmayer, M. High capacity rate capable aerosol jet printed Li‐ion battery cathode. Adv. Eng. Mater. 2019, 21, 1801281.
237. Jiang, Q.; Atampugre, S.; Du, Y.; Yang, L.; Schaefer, J. L.; Zhang, Y. Combinatorial printing of functionally graded solid-state electrolyte for high-voltage lithium metal batteries. ACS. Mater. Lett. 2024, 6, 2205-12.
238. Zuo, Y.; Yu, Y.; Feng, J.; Zuo, C. Ultrathin Al-air batteries by reducing the thickness of solid electrolyte using aerosol jet printing. Sci. Rep. 2022, 12, 9801.
239. Rodriguez, R.; Deiner, L. J.; Tsao, B. H.; Fellner, J. P. Aerosol jet-printed LFP cathodes with bimodal pore distribution improve the rate capability of LIB cells. ACS. Appl. Energy. Mater. 2021, 4, 9507-12.
240. Rodriguez, R.; Deiner, L. J.; Tsao, B.; Fellner, J. P. Enhanced rate capability and capacity of LIB full cells achieved through aerosol jet printing. J. Phys. Energy. 2024, 6, 035009.
241. Saleh, M. S.; Li, J.; Park, J.; Panat, R. 3D printed hierarchically-porous microlattice electrode materials for exceptionally high specific capacity and areal capacity lithium ion batteries. Addit. Manuf. 2018, 23, 70-8.
242. Morzy, J. K.; Sartor, A.; Dose, W. M.; et al. Aerosol jet printing as a versatile sample preparation method for operando electrochemical TEM microdevices. Adv. Mater. Interfaces. 2022, 9, 2200530.
243. Wu, Y.; Lin, A.; Zhang, J.; et al. Aerosol jet printing of hybrid Ti3C2Tx/C nanospheres for planar micro-supercapacitors. Front. Chem. 2022, 10, 933319.
244. Zhang, H.; Wang, B.; Brown, B. Aerosol-jet-printed CoFe2O4 nanoparticle - vertically aligned carbon nanotube composite for microsupercapacitors. J. Phys. Chem. C. 2021, 125, 7590-7.
245. Shandra, A.; Li, K.; Spurling, D.; Ronan, O.; Carey, T.; Nicolosi, V. Aerosol jet printed MXene microsupercapacitors for flexible and washable textile energy storage. Adv. Funct. Mater. 2025, 35, e10255.
246. Wu, Y.; Zhao, D.; Zhang, J.; et al. Microscale curling and alignment of Ti3C2Tx MXene by confining aerosol droplets for planar micro-supercapacitors. ACS. Omega. 2021, 6, 33067-74.
247. Zhou, Y.; Parker, C. B.; Joshi, P.; Naskar, A. K.; Glass, J. T.; Cao, C. 4D printing of stretchable supercapacitors via hybrid composite materials. Adv. Mater. Technol. 2021, 6, 2001055.
248. De Waele, L.; Di Pietro, M.; Perilli, S.; et al. Aerosol jet printing for neuroprosthetic device development. Bioengineering 2025, 12, 707.
249. Lutsyk, P.; Goswami, D.; Worrall, S.; Greenhill, S. D. Nanoporous microelectrodes for neural electrophysiology recordings in organotypic culture. Adv. Mater. Technol. 2026, 11, e01556.
250. Armando, I.; Borghetti, M.; Sardini, E.; Serpelloni, M. A feasibility study of customized and fully aerosol-jet-printed micro-electrode arrays for in vitro application. IEEE. Sens. J. 2023, 23, 24205-13.
251. Ganesh, S.; Sarreal, R. R. S.; Blake, D.; Tridandapani, S.; Bhatti, P. T. An aerosol jet printed microcoil for cochlear micromagnetic stimulation. In 2024 46th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), Orlando, USA, Jul 15-19, 2024. IEEE; 2024. p. 1-5.
252. Sarreal, R. R.; Bhatti, P. Characterization and miniaturization of silver-nanoparticle microcoil via aerosol jet printing techniques for micromagnetic cochlear stimulation. Sensors 2020, 20, 6087.
253. Jahan, S.; Jain, A.; Fregonese, S.; Hu, C.; Bacca, M.; Panat, R. Bed-of-Nails effect: unraveling the insertion behavior of aerosol jet 3D printed microneedle array in soft tissue. Extreme. Mech. Lett. 2025, 77, 102301.
254. Ferraro, R.; Ginestra, P.; Lanzi, G.; Giliani, S.; Ceretti, E. Production of micro-patterned substrates to direct human iPSCs-derived neural stem cells orientation and interaction. Procedia. CIRP. 2017, 65, 225-30.
255. Seiti, M.; Ferraro, R. M.; Ferraris, E. Biofabrication of high aspect ratio, flexible, and bioconductive micropillar arrays of PEDOT:PSS composite for 3D printed bioelectronics. Biofabrication 2025, 18, 015001.
256. Gibney, R.; Ferraris, E. Bioprinting of collagen type I and II via aerosol jet printing for the replication of dense collagenous tissues. Front. Bioeng. Biotechnol. 2021, 9, 786945.
257. Gibney, R.; Patterson, J.; Ferraris, E. High-resolution bioprinting of recombinant human collagen type III. Polymers 2021, 13, 2973.
258. Kwon, Y. T.; Kim, H.; Mahmood, M.; Kim, Y. S.; Demolder, C.; Yeo, W. H. Printed, wireless, soft bioelectronics and deep learning algorithm for smart human-machine interfaces. ACS. Appl. Mater. Interfaces. 2020, 12, 49398-406.
259. Tansel, D. Z.; Brenneman, J.; Panat, R.; Fedder, G. K. Aerosol-jet-printed stretchable electronic decal technology. In 2022 IEEE 35th International Conference on Micro Electro Mechanical Systems Conference (MEMS), Tokyo, Japan, Jan 09-13, 2022. IEEE; 2022. pp. 353-6.
260. Cantu, E.; Fapanni, T.; Giorgi, G.; et al. Printed multi-EMG electrodes on the 3D surface of an orthosis for rehabilitation: a feasibility study. IEEE. Sens. J. 2021, 21, 14407-17.
261. Kim, Y. S.; Kwon, Y. T.; Mahmood, M.; Yeo, W. H. Nanomanufacturing of smart and connected bioelectronics through nanomaterial printing, hybrid material integration, and soft packaging. In 2021 IEEE 71st Electronic Components and Technology Conference (ECTC), San Diego, USA, Jun 01 - Jul 04, 2021. IEEE; 2021. pp. 1532-7.







