Length and conjugation-controlled memristive functions of metallopolymer monolayers

IF 6.8 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Chang Wei  (, ), Ziming Zhou  (, ), Shumu Li  (, ), Yuan Li  (, ), Wenjing Hong  (, ), Xuan Pang  (, ), Mao Li  (, )
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引用次数: 0

Abstract

Solid-phase synthesis as a bottom-up strategy may be a superior way to integrate sophisticated functions into an ultrathin film for miniaturized devices. However, the sluggish reaction dynamics at the solid-liquid interface have been a great challenge. Herein, we present four electrochemical reactions for rapidly synthesizing length and conjugation-controlled metallopolymer monolayers. This electrosynthesis requires self-assembled monolayers as templates as a prerequisite to predefine the growth and orientation of the metallopolymers. Electrosynthesis involves a pair of redox reactions: the oxidation self-coupling of pyrene or carbazole, and the reduction self-coupling of the alkyne or vinyl, respectively. They can form conjugation-controlled connections of monomers and provide different lengths of metallopolymers. The resulting metallopolymer monolayers show similar values in thickness and theoretical molecular length, indicating that these metallopolymers stand almost vertically and uniaxially on electrodes with minimum polymer disorder. These crystalline monolayers exhibit both high modulus and conductance while presenting the memristive functions with optical and electrical binary responses as a function of the length and conjugation-controlled metallopolymer monolayers. It is highly anticipated that critical factors including reproducibility, speed, and operational simplicity with the robust design of various molecular junctions will enable rapid automated synthesis of two-dimensional semiconductors for integrated and miniaturized optoelectric devices.

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来源期刊
Science China Materials
Science China Materials Materials Science-General Materials Science
CiteScore
11.40
自引率
7.40%
发文量
949
期刊介绍: Science China Materials (SCM) is a globally peer-reviewed journal that covers all facets of materials science. It is supervised by the Chinese Academy of Sciences and co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China. The journal is jointly published monthly in both printed and electronic forms by Science China Press and Springer. The aim of SCM is to encourage communication of high-quality, innovative research results at the cutting-edge interface of materials science with chemistry, physics, biology, and engineering. It focuses on breakthroughs from around the world and aims to become a world-leading academic journal for materials science.
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