Free-Standing Organic Transistors and Circuits with Sub-Micron Thicknesses

被引:0
作者
Kenjiro Fukuda
Tomohito Sekine
Rei Shiwaku
Takuya Morimoto
Daisuke Kumaki
Shizuo Tokito
机构
[1] Research Center for Organic Electronics (ROEL),Department of Mechanical
[2] Graduate School of Science and Engineering,undefined
[3] Yamagata University,undefined
[4] Japan Science and Technology Agency,undefined
[5] PRESTO,undefined
[6] Thin-Film Device Laboratory,undefined
[7] RIKEN,undefined
[8] Center for Emergent Matter Science,undefined
[9] RIKEN,undefined
[10] Electrical and Electronic Engineering,undefined
[11] Shimane University,undefined
来源
Scientific Reports | / 6卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The realization of wearable electronic devices with extremely thin and flexible form factors has been a major technological challenge. While substrates typically limit the thickness of thin-film electronic devices, they are usually necessary for their fabrication and functionality. Here we report on ultra-thin organic transistors and integrated circuits using device components whose substrates that have been removed. The fabricated organic circuits with total device thicknesses down to 350 nm have electrical performance levels close to those fabricated on conventional flexible substrates. Moreover, they exhibit excellent mechanical robustness, whereby their static and dynamic electrical characteristics do not change even under 50% compressive strain. Tests using systematically applied compressive strains reveal that these free-standing organic transistors possess anisotropic mechanical stability and a strain model for a multilayer stack can be used to describe the strain in this sort of ultra-thin device. These results show the feasibility of ultimate-thin organic electronic devices using free-standing constructions.
引用
收藏
相关论文
共 76 条
  • [1] Sekitani T(2010)Flexible organic transistors and circuits with extreme bending stability Nat. Mater. 9 1015-1022
  • [2] Zschieschang U(2013)An ultra-lightweight design for imperceptible plastic electronics Nature 499 458-463
  • [3] Klauk H(2011)Epidermal Electronics Science 333 838-816
  • [4] Someya T(2014)Fully-printed high-performance organic thin-film transistors and circuitry on one-micron-thick polymer films Nat. Commun. 5 4147-1039
  • [5] Kaltenbrunner M(2016)Fabrication of Ultra-Thin Printed Organic TFT CMOS Logic Circuits Optimized for Low-Voltage Wearable Sensor Applications Sci. Rep. 6 25714-2568
  • [6] Kim DH(2014)Wafer-scale design of lightweight and transparent electronics that wraps around hairs Nat. Commun. 5 2982-3552
  • [7] Fukuda K(2013)Ultrathin, highly flexible and stretchable PLEDs Nat. Photon. 7 811-2779
  • [8] Takeda Y(2012)Ultrathin and lightweight organic solar cells with high flexibility Nat. Commun. 3 770-197
  • [9] Salvatore GA(2015)Flexible high power-per-weight perovskite solar cells with chromium oxide–metal contacts for improved stability in air Nat. Mater. 14 1032-348
  • [10] White MS(2015)Imperceptible magnetoelectronics Nat. Commun. 6 6080-3421