用于电化学应用的蛋黄壳结构定制的纳米架构。

IF 7.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Science and Technology of Advanced Materials Pub Date : 2024-10-29 eCollection Date: 2024-01-01 DOI:10.1080/14686996.2024.2420664
Huan Wu, Jiahao Li, Qingmin Ji, Katsuhiko Ariga
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引用次数: 0

摘要

开发电容器、电池和燃料电池等电化学储能和转换系统,对于解决全球快速增长的能源需求和可持续发展社会的环境问题至关重要。为了提高经济适用性和电化学性能,人们在各种电极材料的结构设计和工程学方面付出了巨大努力。蛋黄壳结构是一种特殊的核壳形态,在能量存储、控制传输、吸附、纳米反应器、传感和催化等方面具有巨大的应用潜力。其可控的空隙可促进氧化还原反应中更多活性位点的暴露,并增强选择性吸附。基于不同的纳米架构设计和制造技术,具有可控结构纳米特性的蛋黄壳结构以及同构或异构成分可提供多种协同效应,促进电极/电解质界面上的反应。本综述重点介绍蛋黄壳结构的关键结构特征,并着重介绍在制造可调节空间、单金属或多金属复合材料的蛋黄壳结构方面的最新进展。此外,还总结了卵黄壳纳米结构的可定制结构和功能对各种电化学过程的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanoarchitectonics for structural tailoring of yolk-shell architectures for electrochemical applications.

Developing electrochemical energy storage and conversion systems, such as capacitors, batteries, and fuel cells is crucial to address rapidly growing global energy demands and environmental concerns for a sustainable society. Significant efforts have been devoted to the structural design and engineering of various electrode materials to improve economic applicability and electrochemical performance. The yolk-shell structures represent a special kind of core-shell morphologies, which show great application potential in energy storage, controlled delivery, adsorption, nanoreactors, sensing, and catalysis. Their controllable void spaces may facilitate the exposure of more active sites for redox reactions and enhance selective adsorption. Based on different nanoarchitectonic designs and fabrication techniques, the yolk-shell structures with controllable structural nanofeatures and the homo- or hetero-compositions provide multiple synergistic effects to promote reactions on the electrode/electrolyte interfaces. This review is focused on the key structural features of yolk-shell architectures, highlighting the recent advancements in their fabrication with adjustable space and mono- or multi-metallic composites. The effects of tailorable structure and functionality of yolk-shell nanostructures on various electrochemical processes are also summarized.

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来源期刊
Science and Technology of Advanced Materials
Science and Technology of Advanced Materials 工程技术-材料科学:综合
CiteScore
10.60
自引率
3.60%
发文量
52
审稿时长
4.8 months
期刊介绍: Science and Technology of Advanced Materials (STAM) is a leading open access, international journal for outstanding research articles across all aspects of materials science. Our audience is the international community across the disciplines of materials science, physics, chemistry, biology as well as engineering. The journal covers a broad spectrum of topics including functional and structural materials, synthesis and processing, theoretical analyses, characterization and properties of materials. Emphasis is placed on the interdisciplinary nature of materials science and issues at the forefront of the field, such as energy and environmental issues, as well as medical and bioengineering applications. Of particular interest are research papers on the following topics: Materials informatics and materials genomics Materials for 3D printing and additive manufacturing Nanostructured/nanoscale materials and nanodevices Bio-inspired, biomedical, and biological materials; nanomedicine, and novel technologies for clinical and medical applications Materials for energy and environment, next-generation photovoltaics, and green technologies Advanced structural materials, materials for extreme conditions.
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