Rational Design of Molecular Ferroelectrics with Negatively Charged Domain Walls

合理设计 纳米技术 领域(数学分析) 化学 化学物理 材料科学 计算化学 数学 数学分析
作者
Yu‐An Xiong,Zhuxiao Gu,Xian‐Jiang Song,Jie Yao,Qiang Pan,Zi‐Jie Feng,Guo‐Wei Du,Hao‐Ran Ji,Tai‐Ting Sha,Ren‐Gen Xiong,Yu‐Meng You
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:144 (30): 13806-13814 被引量:20
标识
DOI:10.1021/jacs.2c04872
摘要

Ferroelectric domains and domain walls are unique characteristics of ferroelectric materials. Among them, charged domain walls (CDWs) are a special kind of peculiar microstructure that highly improve conductivity, piezoelectricity, and photovoltaic efficiency. Thus, CDWs are believed to be the key to ferroelectrics' future application in fields of energy, sensing, information storage, and so forth. Studies on CDWs are one of the most attractive directions in conventional inorganic ferroelectric ceramics. However, in newly emerged molecular ferroelectrics, which have advantages such as lightweight, easy preparation, simple film fabrication, mechanical flexibility, and biocompatibility, CDWs are rarely observed due to the lack of free charges. In inorganic ferroelectrics, doping is a traditional method to induce free charges, but for molecular ferroelectrics fabricated by solution processes, doping usually causes phase separation or phase transition, which destabilizes or removes ferroelectricity. To realize stable CDWs in molecular systems, we designed and synthesized an n-type molecular ferroelectric, 1-adamantanammonium hydroiodate. In this compound, negative charges are induced by defects in the I- vacancy, and CDWs can be achieved. Nanometer-scale CDWs that are stable at temperatures as high as 373 K can be "written" precisely by an electrically biased metal tip. More importantly, this is the first time that the charge diffusion of CDWs at variable temperatures has been investigated in molecular ferroelectrics. This work provides a new design strategy for n-type molecular ferroelectrics and may shed light on their future applications in flexible electronics, microsensors, and so forth.
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