高能电池用简单机械改性三维复合锂金属负极

IF 3.1 4区 工程技术 Q3 ENERGY & FUELS
Min Hong, Zhiyong Wang, Zhangqin Shi, Zheng Liang
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引用次数: 0

摘要

由于具有较高的理论比容量(3860 mAh/g)和最低的氧化还原电位(- 3.04 V),锂(Li)金属被认为是下一代锂基电池负极材料中的“圣杯”。令人失望的是,不受控制的枝晶形成和“无主”沉积阻碍了其进一步发展。三维(3D)复合锂金属阳极的构建可以在一定程度上解决上述问题,降低局部电流密度并保持循环过程中的电极体积。然而,大多数构建3D复合锂金属阳极的策略都需要电沉积或熔体灌注工艺。这些方法虽然有效,但从成本和安全性的角度考虑,其加工步骤复杂、温度高、实验条件苛刻,无法满足实际生产需求。在这种情况下,最近提出了一种通过简单的机械改性来构建三维复合阳极的新方法,该方法不涉及苛刻的条件,繁琐的程序或花哨的设备。在这篇综述中,对这种机械变形技术构建三维复合锂金属阳极进行了系统深入的研究。首先,通过总结近年来的一些研究成果,对不同的力学改性方法按照其具体的程序进行了明确的分类。然后,对各种机械改性方法的效果及其工作机理进行了综述。然后,比较了不同方法的优点和局限性。最后,对新一代3D复合锂阳极的结构策略进行了总结和展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Three-dimensional composite Li metal anode by simple mechanical modification for high-energy batteries

Lithium (Li) metal is believed to be the “Holy Grail” among all anode materials for next-generation Li-based batteries due to its high theoretical specific capacity (3860 mAh/g) and lowest redox potential (−3.04 V). Disappointingly, uncontrolled dendrite formation and “hostless” deposition impede its further development. It is well accepted that the construction of three-dimensional (3D) composite Li metal anode could tackle the above problems to some extent by reducing local current density and maintaining electrode volume during cycling. However, most strategies to build 3D composite Li metal anode require either electrodeposition or melt-infusion process. In spite of their effectiveness, these procedures bring multiple complex processing steps, high temperature, and harsh experimental conditions which cannot meet the actual production demand in consideration of cost and safety. Under this condition, a novel method to construct 3D composite anode via simple mechanical modification has been recently proposed which does not involve harsh conditions, fussy procedures, or fancy equipment. In this mini review, a systematic and in-depth investigation of this mechanical deformation technique to build 3D composite Li metal anode is provided. First, by summarizing a number of recent studies, different mechanical modification approaches are classified clearly according to their specific procedures. Then, the effect of each individual mechanical modification approach and its working mechanisms is reviewed. Afterwards, the merits and limits of different approaches are compared. Finally, a general summary and perspective on construction strategies for next-generation 3D composite Li anode are presented.

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来源期刊
Frontiers in Energy
Frontiers in Energy Energy-Energy Engineering and Power Technology
CiteScore
5.90
自引率
6.90%
发文量
708
期刊介绍: Frontiers in Energy, an interdisciplinary and peer-reviewed international journal launched in January 2007, seeks to provide a rapid and unique platform for reporting the most advanced research on energy technology and strategic thinking in order to promote timely communication between researchers, scientists, engineers, and policy makers in the field of energy. Frontiers in Energy aims to be a leading peer-reviewed platform and an authoritative source of information for analyses, reviews and evaluations in energy engineering and research, with a strong focus on energy analysis, energy modelling and prediction, integrated energy systems, energy conversion and conservation, energy planning and energy on economic and policy issues. Frontiers in Energy publishes state-of-the-art review articles, original research papers and short communications by individual researchers or research groups. It is strictly peer-reviewed and accepts only original submissions in English. The scope of the journal is broad and covers all latest focus in current energy research. High-quality papers are solicited in, but are not limited to the following areas: -Fundamental energy science -Energy technology, including energy generation, conversion, storage, renewables, transport, urban design and building efficiency -Energy and the environment, including pollution control, energy efficiency and climate change -Energy economics, strategy and policy -Emerging energy issue
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