Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries

Summary: Because of their unique layer structure, 2D materials have demonstrated to be promising electrode materials for rechargeable batteries. However, individual 2D materials cannot meet all the performance requirements of energy density, power density, and cycle life. Constructing 2D materials-b...

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Published in:iScience
Main Authors: Yinghui Xue, Tianjie Xu, Chenyang Wang, Lei Fu
Format: Article
Language:English
Published: Elsevier 2024-08-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2589004224016171
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author Yinghui Xue
Tianjie Xu
Chenyang Wang
Lei Fu
author_facet Yinghui Xue
Tianjie Xu
Chenyang Wang
Lei Fu
author_sort Yinghui Xue
collection DOAJ
container_title iScience
description Summary: Because of their unique layer structure, 2D materials have demonstrated to be promising electrode materials for rechargeable batteries. However, individual 2D materials cannot meet all the performance requirements of energy density, power density, and cycle life. Constructing 2D materials-based heterostructures offers an opportunity to synergistically handle the deficiencies of individual 2D materials and modulate the physical and electrochemical properties. The enlarged interlayer distance and increased binding energy with ions of heterostructures can facilitate charge transfer, boost electrochemical reactivities, resulting in an enhanced performance in rechargeable batteries. Here we summarize the latest development of heterostructures consisted of 2D materials and their applications in rechargeable batteries. Firstly, different preparation strategies and optimized structure engineering strategies of 2D materials-based heterostructures are systematically introduced. Secondly, the unique functions of 2D materials-based heterostructures in rechargeable batteries are discussed respectively. Finally, challenges and perspectives are presented to inspire the future study of 2D materials-based heterostructures.
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spelling doaj-art-8a459b3d15464c2abbff04f98dbbbc5f2025-08-19T23:49:26ZengElsevieriScience2589-00422024-08-0127811039210.1016/j.isci.2024.110392Recent advances of two-dimensional materials-based heterostructures for rechargeable batteriesYinghui Xue0Tianjie Xu1Chenyang Wang2Lei Fu3Henan Joint International Research Laboratory of Nanocomposite Sensing Materials, Anyang Institute of Technology, Anyang 455000, China; Corresponding authorHenan Joint International Research Laboratory of Nanocomposite Sensing Materials, Anyang Institute of Technology, Anyang 455000, China; Hubei Province Key Laboratory of Science in Metallurgical Process, Wuhan University of Science and Technology, Wuhan 430081, ChinaCollege of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, ChinaCollege of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, China; Corresponding authorSummary: Because of their unique layer structure, 2D materials have demonstrated to be promising electrode materials for rechargeable batteries. However, individual 2D materials cannot meet all the performance requirements of energy density, power density, and cycle life. Constructing 2D materials-based heterostructures offers an opportunity to synergistically handle the deficiencies of individual 2D materials and modulate the physical and electrochemical properties. The enlarged interlayer distance and increased binding energy with ions of heterostructures can facilitate charge transfer, boost electrochemical reactivities, resulting in an enhanced performance in rechargeable batteries. Here we summarize the latest development of heterostructures consisted of 2D materials and their applications in rechargeable batteries. Firstly, different preparation strategies and optimized structure engineering strategies of 2D materials-based heterostructures are systematically introduced. Secondly, the unique functions of 2D materials-based heterostructures in rechargeable batteries are discussed respectively. Finally, challenges and perspectives are presented to inspire the future study of 2D materials-based heterostructures.http://www.sciencedirect.com/science/article/pii/S2589004224016171electrochemistrymaterials sciencenanomaterials
spellingShingle Yinghui Xue
Tianjie Xu
Chenyang Wang
Lei Fu
Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries
electrochemistry
materials science
nanomaterials
title Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries
title_full Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries
title_fullStr Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries
title_full_unstemmed Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries
title_short Recent advances of two-dimensional materials-based heterostructures for rechargeable batteries
title_sort recent advances of two dimensional materials based heterostructures for rechargeable batteries
topic electrochemistry
materials science
nanomaterials
url http://www.sciencedirect.com/science/article/pii/S2589004224016171
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