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首页> 外文期刊>Nanoscale >Recent developments in the layer-by-layer assembly of polyaniline and carbon nanomaterials for energy storage and sensing applications. From synthetic aspects to structural and functional characterization
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Recent developments in the layer-by-layer assembly of polyaniline and carbon nanomaterials for energy storage and sensing applications. From synthetic aspects to structural and functional characterization

机译:最近的事态发展在逐层组装聚苯胺与碳纳米材料能量储存和传感应用。合成方面的结构和功能描述

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摘要

The construction of hybrid polymer-inorganic nanoarchitectures for electrochemical purposes based on the layer-by-layer assembly of conducting polymers and carbon nanomaterials has become increasingly popular over the last decade. This explosion of interest is primarily related to the increasing mastery in the design of supramolecular constructs using simple wet chemical approaches. Concomitantly, this continuous research activity paved the way to the rapid development of nanocomposites or "nanoblends" readily integrable into energy storage and sensing devices. In this sense, the layer-by-layer (LbL) assembly technique has allowed us to access three-dimensional (3D) multicomponent carbon-based network nanoarchitectures displaying addressable electrical, electrochemical and transport properties in which conducting polymers, such as polyaniline, and carbon nanomaterials, such as carbon nanotubes or nanographene, play unique roles without disrupting their inherent functions - complementary entities coexisting in harmony. Over the last few years the level of functional sophistication reached by LbL-assembled carbon-based 3D network nanoarchitectures, and the level of knowledge related to how to design, fabricate and optimize the properties of these 3D nanoconstructs have advanced enormously. This feature article presents and discusses not only the recent advances but also the emerging challenges in complex hybrid nanoarchitectures that result from the layer-by-layer assembly of polyaniline, a quintessential conducting polymer, and diverse carbon nanomaterials. This is a rapidly developing research area, and this work attempts to provide an overview of the diverse 3D network nanoarchitectures prepared up to now. The importance of materials processing and LbL integration is explored within each section and while the overall emphasis is on energy storage and sensing applications, the most widely-used synthetic strategies and characterization methods for "nanoblend" formation and performance evaluation are also presented.
机译:混合polymer-inorganic建设nanoarchitectures用于电化学基于分层技术的组装导电聚合物和碳纳米材料在过去的十年里变得越来越受欢迎。这次爆炸的兴趣主要是相关的掌握设计的增加超分子结构使用简单的湿化学方法。持续的研究活动铺平了道路纳米复合材料的快速发展“nanoblends”随时可积成能量存储和传感装置。分层技术(LbL)组装技术允许我们访问三维(3 d)多组分碳基网络nanoarchitectures显示可寻址电气、电化学和运输属性的导电聚合物,如和碳纳米材料,如聚苯胺碳纳米管或nanographene,独特在不影响其固有功能角色——在和谐共存互补的实体。在过去的几年里的功能水平成熟了LbL-assembled碳基3 d网络nanoarchitectures和如何设计相关的知识,制作和优化这些3 d的属性nanoconstructs先进巨大。专题文章提出并讨论不仅最近的进步也是新兴在复杂的混合nanoarchitectures挑战逐层组装的结果一种典型的导电聚合物聚苯胺,和多样化的碳纳米材料。快速发展的研究领域,这工作尝试不同的3 d的概述网络nanoarchitectures准备。材料处理和LbL的重要性在每个部分和集成是探索虽然整体强调能量储存和遥感应用中,最广泛使用的合成和表征方法策略“nanoblend”形成和性能评价也提出了。

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