Ultrasensitive Ionic Conductors with Tunable Resistance Switching Temperature Enabled by Phase Transformation of Polymer Cocrystals

Author:

Zhou Yichen1,Yu Chengtao12,Zhang Xing1,Zheng Ying2,Wang Bao2,Bao Yongzhong12,Shan Guorong12,Wang Hangxiang3,Pan Pengju12ORCID

Affiliation:

1. State Key Laboratory of Chemical Engineering College of Chemical and Biological Engineering Zhejiang University 866 Yuhangtang Road Hangzhou 310058 China

2. Institute of Zhejiang University‐Quzhou 99 Zheda Road Quzhou 324000 China

3. The First Affiliated Hospital NHC Key Laboratory of Combined Multi‐Organ Transplantation Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases State Key Laboratory for Diagnosis and Treatment of Infectious Diseases School of Medicine Zhejiang University 79 Qingchun Road Hangzhou 310003 China

Abstract

AbstractPhase‐transformable ionic conductors (PTICs) show significant prospects for functional applications due to their reversible resistance switching property. However, the representative design principle of PTICs is utilizing the melt‐crystallization transition of ionic liquids, and the resistance switching temperatures of such PTICs cannot be tuned as desired. Herein, a new strategy is proposed to design PTICs with on‐demand resistance switching temperatures by using the melt‐crystallization transition of polymer cocrystal phase, whose melting temperature shows a linear relationship with the polymer compositions. Owing to the melt of polymer cocrystal domains and the tunable migration of ions in the resistance switching region, the obtained PTICs display ultrahigh temperature sensitivity with a superior temperature coefficient of resistance of −8.50% °C−1 around human body temperature, as compared to various ionic conductors previously reported. Therefore, the PTICs can detect tiny temperature variation, allowing for the intelligent applications for overheating warning and heat dissipation. It is believed that this work may inspire future researches on the development of advanced soft electrical devices.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Zhejiang Province

Publisher

Wiley

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