Transient Electronic Technology and Its Military Applications

被引:0
作者
Wei W. [1 ]
Ren X.-H. [2 ]
Du S.-Y. [2 ]
Zhou F. [2 ]
机构
[1] No. 68303 Troops of PLA, Golmud
[2] Rocket Force University of Engineering, 306 Teaching and Research Section, Xi'an
来源
Tien Tzu Hsueh Pao/Acta Electronica Sinica | 2021年 / 49卷 / 02期
关键词
Biodegradable; Military applications; Transient electronics; Trigger;
D O I
10.12236/DZXB.20200819
中图分类号
学科分类号
摘要
Fabricated by degradable materials, transient electronics can dissolve in natural environments after completing the default tasks.Transient electronics can compare favorably with the traditional devices through advanced fabrication technology in terms of performance, exhibiting promising applications in fields of environmental protection, medical equipment and information security.This paper comprehensively analyzed its concepts, composition, fabrication technology, degradable process as well as transient devices, and the military application of transient electronic technology was expounded from four aspects: safe storage of combat information, reconnaissance and surveillance of battlefield conditions, monitoring, auxiliary diagnosis and treatment of soldiers' injuries, accurate delivery of urgently needed supplies.Finally, the existing problem in the development of transient electronic technology was pointed out, and its future development trend was prospected. © 2021, Chinese Institute of Electronics. All right reserved.
引用
收藏
页码:362 / 371
页数:9
相关论文
共 46 条
[1]  
Tan M J, Owh C, Chee P L, Et al., Biodegradable electronics: Cornerstone for sustainable electronics and transient applications, Journal of Materials Chemistry C, 3, 4, pp. 5531-5558, (2016)
[2]  
Hwang S W, Tao H, Kim D H, Et al., A physically transient form of silicon electronics, Science, 337, 6102, pp. 1640-1644, (2012)
[3]  
Kang S, Yin L, Bettinger C., The emergence of transient electronic devices, MRS Bulletin, 45, 2, pp. 87-95, (2020)
[4]  
Tran H, Feig V R, Liu K, Et al., Stretchable and fully degradable semiconductors for transient electronics, ACS central science, 5, 11, pp. 1884-1891, (2019)
[5]  
Ji X, Song L, Zhong S, Et al., Biodegradable and flexible resistive memory for transient electronics, The Journal of Physical Chemistry C, 122, 29, pp. 16909-16915, (2018)
[6]  
Hu W, Jiang J, Xie D D, Et al., Transient security transistors self-supported on biodegradable natural-polymer membrane for brain-inspired neuromorphic applications, Nanoscale, 10, 31, pp. 14893-14901, (2018)
[7]  
Koo J, Macewan M R, Kang S, Et al., Wireless bioresorbable electronic system enables sustained nonpharmacological neuroregenerative therapy, Nature Medicine, 24, 12, pp. 1830-1836, (2018)
[8]  
Cheng H, Vepachedu V, Recent development of transient electronics, Theoretical and Applied Mechanics Letters, pp. 21-31, (2016)
[9]  
Fu Kun Kelvin, Wang Zhengyang, Et al., Transient electronics: materials and devices, Chemistry of Materials, 28, 11, pp. 3527-3539, (2016)
[10]  
Acar H, Genc R, Urel M, Et al., Self-assembled peptide nanofiber templated one-dimensional gold nanostructures exhibiting resistive switching, Langmuir, 28, 47, pp. 16347-16354, (2012)