Page 135 - Read Online
P. 135
Page 28 of 32 Keum et al. Soft Sci 2024;4:34 https://dx.doi.org/10.20517/ss.2024.26
16. Kim DW, Kim SW, Lee G, et al. Fabrication of practical deformable displays: advances and challenges. Light Sci Appl 2023;12:61.
DOI PubMed PMC
17. Zhou H, Kim KN, Sung MJ, Han SJ, Lee TW. Intrinsically stretchable low-dimensional conductors for wearable organic light-
emitting diodes. Device 2023;1:100060. DOI
18. Lee B, Cho H, Jeong S, et al. Stretchable hybrid electronics: combining rigid electronic devices with stretchable interconnects into
high-performance on-skin electronics. J Inf Disp 2022;23:163-84. DOI
19. Hanif A, Yoo D, Kim D, Mustafayev F, Hajiyev S, Kim DS. Recent progress in strain-engineered stretchable constructs. Int J Precis
Eng Manuf Green Tech 2024;11:1403-33. DOI
20. Trung TQ, Lee NE. Recent progress on stretchable electronic devices with intrinsically stretchable components. Adv Mater
2017;29:1603167. DOI PubMed
21. Yen YW, Kuo YL, Chen JY, Lee C, Lee CY. Investigation of thermal stability of Mo thin-films as the buffer layer and various Cu
metallization as interconnection materials for thin film transistor-liquid crystal display applications. Thin Solid Films 2007;515:7209-
16. DOI
22. You B, Kim Y, Ju BK, Kim JW. Highly stretchable and waterproof electroluminescence device based on superstable stretchable
transparent electrode. ACS Appl Mater Interfaces 2017;9:5486-94. DOI
23. Zhao C, Zhou Y, Gu S, et al. Fully screen-printed, multicolor, and stretchable electroluminescent displays for epidermal electronics.
ACS Appl Mater Interfaces 2020;12:47902-10. DOI
24. Cai L, Zhang S, Zhang Y, et al. Direct printing for additive patterning of silver nanowires for stretchable sensor and display
applications. Adv Mater Technol 2018;3:1700232. DOI
25. Jeong W, Lee S, Choi H, et al. Washable, stretchable, and reusable core-shell metal nanowire network-based electronics on a
breathable polymer nanomesh substrate. Mater Today 2022;61:30-9. DOI
26. Lin Y, Li Q, Ding C, et al. High-resolution and large-size stretchable electrodes based on patterned silver nanowires composites.
Nano Res 2022;15:4590-8. DOI
27. Tran P, Tran NH, Lee JH. Highly stretchable electroluminescent device based on copper nanowires electrode. Sci Rep 2022;12:8967.
DOI PubMed PMC
28. Lee W, Kim H, Kang I, et al. Universal assembly of liquid metal particles in polymers enables elastic printed circuit board. Science
2022;378:637-41. DOI
29. Li X, Lin Y, Cui L, et al. Stretchable and lithography-compatible interconnects enabled by self-assembled nanofilms with
interlocking interfaces. ACS Appl Mater Interfaces 2023;15:56233-41. DOI
30. Park J, Myung JS, Cho D, et al. Internally structured conductive composite for reliable stretchable electronics. Adv Elect Mater
2023;9:2201021. DOI
31. Song S, Hong H, Kim KY, et al. Photothermal lithography for realizing a stretchable multilayer electronic circuit using a laser. ACS
Nano 2023;17:21443-54. DOI
32. Veerapandian S, Jang W, Seol JB, et al. Hydrogen-doped viscoplastic liquid metal microparticles for stretchable printed metal lines.
Nat Mater 2021;20:533-40. DOI
33. Wang T, Liu Q, Liu H, Xu B, Xu H. Printable and highly stretchable viscoelastic conductors with kinematically reconstructed
conductive pathways. Adv Mater 2022;34:e2202418. DOI PubMed
34. Kim MS, Kim S, Choi J, et al. Stretchable printed circuit board based on leak-free liquid metal interconnection and local strain
control. ACS Appl Mater Interfaces 2022;14:1826-37. DOI
35. Liu S, Shah DS, Kramer-Bottiglio R. Highly stretchable multilayer electronic circuits using biphasic gallium-indium. Nat Mater
2021;20:851-8. DOI PubMed
36. Lopes PA, Fernandes DF, Silva AF, et al. Bi-phasic Ag-in-Ga-embedded elastomer inks for digitally printed, ultra-stretchable, multi-
layer electronics. ACS Appl Mater Interfaces 2021;13:14552-61. DOI PubMed
37. Park C, Kim J, Lee H, et al. Biaxially stretchable active-matrix micro-LED display with liquid metal interconnects. Adv Mater
Technol 2023;9:2301413. DOI
38. Park CW, Moon YG, Seong H, et al. Photolithography-based patterning of liquid metal interconnects for monolithically integrated
stretchable circuits. ACS Appl Mater Interfaces 2016;8:15459-65. DOI
39. Kraft U, Molina-lopez F, Son D, Bao Z, Murmann B. Ink development and printing of conducting polymers for intrinsically
stretchable interconnects and circuits. Adv Elect Mater 2020;6:1900681. DOI
40. Wang Z, Liu X, Shen X, et al. An ultralight graphene honeycomb sandwich for stretchable light-emitting displays. Adv Funct Mater
2018;28:1707043. DOI
41. Bang J, Ahn J, Zhang J, et al. Stretchable and directly patternable double-layer structure electrodes with complete coverage. ACS
Nano 2022;16:12134-44. DOI
42. Lee G, Kim H, Lee J, et al. Large-area photo-patterning of initially conductive EGaIn particle-assembled film for soft electronics.
Mater Today 2023;67:84-94. DOI
43. Shin H, Sharma BK, Lee SW, et al. Stretchable electroluminescent display enabled by graphene-based hybrid electrode. ACS Appl
Mater Interfaces 2019;11:14222-8. DOI
44. Zhou H, Han SJ, Harit AK, et al. Graphene-based intrinsically stretchable 2d-contact electrodes for highly efficient organic light-
emitting diodes. Adv Mater 2022;34:e2203040. DOI PubMed

