Cathodic electrodeposition of polymer networks as ultrathin films on 3-D micro-architected electrodes†

Zhaoyi Zheng, Anton B. Resing, Wenlu Wang and Jörg G. Werner
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Abstract

Advances in precision coatings are critical in enhancing the functionality of porous materials and the performance of three-dimensionally (3-D) micro-architected devices in applications ranging from molecular sorption and separation to energy storage and conversion. To address this need, we report the cathodic electrodeposition of polymer networks (EPoN) that utilizes the coupling between pre-synthesized polymers with electrochemically active end groups and a complementary crosslinker to form a step-growth polymer network. The electrochemically mediated crosslinking reaction confines the network formation to the electrode surface in a passivating and self-limiting film growth, preventing uncontrolled precipitation and deposition away from the surface. The cathodic electrodeposition is compatible with a variety of conductive substrates, which is demonstrated for 3-D carbons and metals with micron-scale pores of high aspect ratio. The entire pore surface of the 3-D electrodes is enveloped by a conformal polymer thin film that is free of detectable defects and highly electronically insulating for its potential use as an ultrathin artificial electrolyte interphase or solid polymer electrolyte. Since our EPoN concept decouples the polymer functionality from its electrodeposition chemistry, we envision it to be a widely applicable method to coat various conductive non-planar and micro-architected 3-D substrates with polymers of broad functionalities.

Abstract Image

在三维微结构电极上阴极电沉积超薄薄膜聚合物网络†。
精密涂层技术的进步对于增强多孔材料的功能以及三维(3-D)微结构设备在分子吸附和分离、能量存储和转换等应用领域的性能至关重要。为了满足这一需求,我们报告了聚合物网络的阴极电沉积(EPoN),它利用具有电化学活性末端基团的预合成聚合物与互补交联剂之间的耦合作用,形成阶跃生长的聚合物网络。电化学介导的交联反应将网络的形成限制在钝化和自限制薄膜生长的电极表面,防止不受控制的沉淀和沉积远离表面。阴极电沉积与各种导电基底兼容,这在具有微米级高纵横比孔隙的三维碳和金属上得到了验证。三维电极的整个孔隙表面都被保形聚合物薄膜包裹,该薄膜没有可检测到的缺陷,具有高度的电子绝缘性,可用作超薄人工电解质中间相或固体聚合物电解质。由于我们的 EPoN 概念将聚合物功能与其电沉积化学性质分离开来,因此我们认为它是一种广泛适用的方法,可在各种导电的非平面和微结构三维基底上涂覆具有广泛功能的聚合物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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