通过组装让二维材料在储能领域大放异彩。

IF 17.7 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Accounts of Chemical Research Pub Date : 2024-09-17 Epub Date: 2024-08-27 DOI:10.1021/acs.accounts.4c00403
Yu Long, Ying Tao, Wei Lv, Quan-Hong Yang
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引用次数: 0

摘要

Conspectus石墨烯和 MXenes 等二维(2D)材料具有大表面积、可调表面化学性质和独特的电子特性,为电化学储能提供了极具吸引力的机会。将这些材料用于实用电极,尤其是具有工业级厚度的电极时,面临的主要挑战之一是开发高度互联的多孔导电网络。这种网络对于支持连续电子传输、快速离子扩散以及所有活性材料有效参与电化学反应至关重要。此外,先进电子设备和电动汽车对高效储能的需求不仅要求电极更厚,还要求电极更致密,以实现紧凑型储能。传统的致密化方法通常会在体积电容和离子可接触表面积之间做出妥协,从而降低速率性能。二维材料作为多功能构件,可以通过组装成复杂的上层结构(如一维纤维、二维薄膜和三维多孔网络)来克服这些限制,而其他纳米材料较难实现这种能力。我们以石墨烯和 MXenes 为重点,深入探讨了表面结构、组装行为和电化学性能之间错综复杂的关系。我们强调表面化学和界面相互作用在形成稳定的胶体分散体和随后的宏观结构中的关键作用。此外,我们还强调了溶剂作为间隔物在微观结构形成过程中的作用,以及毛细管力驱动的致密化对于形成紧凑的组装是多么重要。通过精确控制收缩,定制的致密组装体可以在高堆积密度和足够的孔隙率之间取得平衡,从而确保各种电化学储能技术的高效离子传输、机械稳定性和高容积性能。此外,我们还强调了在原子水平上理解和操纵二维材料表面化学以优化其组装和增强电化学行为的重要性。要深入了解复杂的组装过程,就必须进行具有高时空分辨率的先进原位表征。此外,机器学习和计算化学的整合是预测和设计新材料和装配策略的一种有前途的方法,有可能加速下一代储能系统的开发。我们对二维材料组装和致密化的深入研究,为紧凑型高性能储能设备的未来研究和实际应用奠定了全面的基础。这一探索为克服当前储能技术挑战的变革性方法奠定了基础,有望在二维材料领域取得重大进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Making 2D Materials Sparkle in Energy Storage via Assembly.

Making 2D Materials Sparkle in Energy Storage via Assembly.

ConspectusTwo-dimensional (2D) materials such as graphene and MXenes offer appealing opportunities in electrochemical energy storage due to their large surface area, tunable surface chemistry, and unique electronic properties. One of the primary challenges in utilizing these materials for practical electrodes, especially those with industrial-level thickness, is developing a highly interconnected and porous conductive network. This network is crucial for supporting continuous electron transport, rapid ion diffusion, and effective participation of all active materials in electrochemical reactions. Moreover, the demand for efficient energy storage in advanced electronic devices and electric vehicles has led to the need for not only thicker but also denser electrodes to achieve compact energy storage. Traditional densification methods often compromise between volumetric capacitance and ion-accessible surface area, which can diminish rate performance. As versatile building blocks, 2D materials can overcome these limitations through the assembly into complex superstructures such as 1D fibers, 2D thin films, and 3D porous networks, a capability less attainable by other nanomaterials.This Account explores the pathways from exfoliated 2D nanosheets to densely packed, yet porous assemblies tailored for compact energy storage. Focusing on graphene and MXenes, we delve into the intricate relationships between surface structure, assembly behaviors, and electrochemical performance. We emphasize the crucial role of surface chemistry and interfacial interactions in forming stable colloidal dispersions and subsequent macroscopic structures. Furthermore, we highlight how solvents, acting as spacers, are instrumental in microstructure formation and how capillary force-driven densification is essential for creating compact assemblies. With precise control over shrinkage, the customized dense assemblies can strike a balance between high packing density and sufficient porosity, ensuring efficient ion transport, mechanical stability, and high volumetric performance across various electrochemical energy storage technologies.Furthermore, we highlight the importance of understanding and manipulating the surface chemistry of 2D materials at the atomic level to optimize their assembly and enhance electrochemical behaviors. Advanced in situ characterizations with high temporal and spatial resolution are necessary to gain deeper insights into the complex assembly process. Moreover, the integration of machine learning and computational chemistry emerges as a promising method to predict and design new materials and assembly strategies, potentially accelerating the development of next-generation energy storage systems. Our insights into the assembly and densification of 2D materials provide a comprehensive foundation for future research and practical applications in compact, high-performance energy storage devices. This exploration sets the stage for a transformative approach to overcoming the challenges of current energy storage technologies, promising significant advancements in 2D materials in the field.

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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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