TY - JOUR
T1 - A Highly Stretchable Liquid Metal Polymer as Reversible Transitional Insulator and Conductor
AU - Wang, Hongzhang
AU - Yao, Youyou
AU - He, Zhizhu
AU - Rao, Wei
AU - Hu, Liang
AU - Chen, Sen
AU - Lin, Ju
AU - Gao, Jianye
AU - Zhang, Pengju
AU - Sun, Xuyang
AU - Wang, Xiangjiang
AU - Cui, Yuntao
AU - Wang, Qian
AU - Dong, Shijin
AU - Chen, Guozhen
AU - Liu, Jing
N1 - Publisher Copyright:
© 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2019/6/6
Y1 - 2019/6/6
N2 - Materials with a temperature-controlled reversible electrical transition between insulator and conductor are attracting huge attention due to their promising applications in many fields. However, most of them are intrinsically rigid and require complicated fabrication processes. Here, a highly stretchable (680% strain) liquid metal polymer composite as a reversible transitional insulator and conductor (TIC), which is accompanied with huge resistivity changes (more than 4 × 109 times) reversibly through a tuning temperature in a few seconds is introduced. When frozen, the insulated TIC becomes conductive and recovers after warming. Both the phase change of the liquid metal droplets and the rigidity change of the polymer contribute directly to transition between insulator and conductor. A simplified model is established to predict the expansion and connection of liquid metal droplets. Along with high stretchability, straightforward fabrication methods, rapid triggering time, large switching ratio, good repeatability, the TIC offers tremendous possibilities for numerous applications, like stretchable switches, semiconductors, temperature sensors, and resistive random-access memory. Accordingly, a system that can display numbers and letters via converting alternative TIC temperature to a binary signal on a computer is conceived and demonstrated. The present discovery suggests a general strategy for fabricating and stimulating a stretchable transitional insulator and conductor based on liquid metal and allied polymers.
AB - Materials with a temperature-controlled reversible electrical transition between insulator and conductor are attracting huge attention due to their promising applications in many fields. However, most of them are intrinsically rigid and require complicated fabrication processes. Here, a highly stretchable (680% strain) liquid metal polymer composite as a reversible transitional insulator and conductor (TIC), which is accompanied with huge resistivity changes (more than 4 × 109 times) reversibly through a tuning temperature in a few seconds is introduced. When frozen, the insulated TIC becomes conductive and recovers after warming. Both the phase change of the liquid metal droplets and the rigidity change of the polymer contribute directly to transition between insulator and conductor. A simplified model is established to predict the expansion and connection of liquid metal droplets. Along with high stretchability, straightforward fabrication methods, rapid triggering time, large switching ratio, good repeatability, the TIC offers tremendous possibilities for numerous applications, like stretchable switches, semiconductors, temperature sensors, and resistive random-access memory. Accordingly, a system that can display numbers and letters via converting alternative TIC temperature to a binary signal on a computer is conceived and demonstrated. The present discovery suggests a general strategy for fabricating and stimulating a stretchable transitional insulator and conductor based on liquid metal and allied polymers.
KW - liquid metals
KW - phase change
KW - reversible transitional insulator and conductor
KW - soft and stretchable electronics
UR - https://www.scopus.com/pages/publications/85064482421
U2 - 10.1002/adma.201901337
DO - 10.1002/adma.201901337
M3 - 文章
C2 - 30972851
AN - SCOPUS:85064482421
SN - 0935-9648
VL - 31
JO - Advanced Materials
JF - Advanced Materials
IS - 23
M1 - 1901337
ER -