Chen Yifu, Chang Zewei, Zhang Jiaxing, Gong Junbo
State Key Laboratory of Chemical Engineering, School of Chemical Engineering and Technology, Tianjin University, Weijin Road 92, Tianjin, 300072, China.
Collaborative Innovation Center of Chemical Science and Engineering, Weijin Road 92, Tianjin, 300072, China.
Angew Chem Int Ed Engl. 2021 Oct 4;60(41):22424-22431. doi: 10.1002/anie.202108441. Epub 2021 Sep 2.
Electronic microdevices of self-bending coronene crystals are developed to reveal an unexplored link between mechanical deformation and crystal function. First, a facile approach towards length/width/curvature-controllable micro-crystals through bottom-up solution crystallization was proposed for high processability and stability. The bending crystal devices show a significant increase beyond seven orders of magnitude in conductivity than the straight ones, providing the first example of deformation-induced function enhancement in crystal materials. Besides, double effects caused by bending, including the change of π electron level as well as the enhancement of carrier mobility, were determined, respectively by the X-ray photoelectric spectroscopy and X-ray crystallography to coexist, contributing to the conductivity improvement. Our findings will promote future creation of flexible organic crystal systems with deformation-enhanced functional features towards customized smart devices.
开发了自弯曲并五苯晶体的电子微器件,以揭示机械变形与晶体功能之间尚未探索的联系。首先,提出了一种通过自下而上的溶液结晶制备长度/宽度/曲率可控的微晶的简便方法,以实现高加工性和稳定性。弯曲晶体器件的电导率比直的器件显著提高了七个数量级以上,这为晶体材料中变形诱导的功能增强提供了首个实例。此外,通过X射线光电子能谱和X射线晶体学分别确定了弯曲引起的双重效应,包括π电子能级的变化以及载流子迁移率的提高,它们共同作用导致了电导率的提高。我们的发现将推动未来具有变形增强功能特性的柔性有机晶体系统的创建,以实现定制化智能设备。