Interconnected Vertically Stacked 2D-MoS2 for Ultrastable Cycling of Rechargeable Li-Ion Battery
Congli Sun
1, 2, 3
,
Kangning Zhao
4
,
Yang Hao Chen He
5
,
Jianming Zheng
5
,
Wangwang Xu
6
,
Chenyu Zhang
4
,
Xiang Wang
5
,
Mohan Guo
2
,
L. Q. Ma
1
,
Chongmin Wang
5
,
Meng Gu
2
2
Department of Materials Science and Engineering, Shenzhen Engineering Research Center for Novel Electronic Information Materials and Devices, Guangdong Provincial Key Laboratory of Energy Materials for Electric Power, No. 1088 Xueyuan Blvd, Shenzhen, Guangdong 518055, China
|
Publication type: Journal Article
Publication date: 2019-06-03
scimago Q1
wos Q1
SJR: 1.921
CiteScore: 14.5
Impact factor: 8.2
ISSN: 19448244, 19448252
PubMed ID:
31157525
General Materials Science
Abstract
A two-dimensional (2D) layer-structured material is often a high-capacity ionic storage material with fast ionic transport within the layers. This appears to be the case for nonconversion layer structure, such as graphite. However, this is not the case for conversion-type layered structure such as transition-metal sulfide, in which localized congestion of ionic species adjacent to the surface will induce localized conversion, leading to the blocking of the fast diffusion channels and fast capacity fading, which therefore constitutes one of the critical barriers for the application of transition-metal sulfide layered structure. In this work, we report the tackling of this critical barrier through nanoscale engineering. We discover that interconnected vertically stacked two-dimensional-molybdenum disulfide can dramatically enhance the cycling stability. Atomic-level in situ transmission electron microscopy observation reveals that the molybdenum disulfide (MoS2) nanocakes assembled with tangling {100}-terminated nanosheets offer abundant open channels for Li+ insertion through the {100} surface, featuring an exceptional cyclability performance for over 200 cycles with a capacity retention of 90%. In contrast, (002)-terminated MoS2 nanoflowers only retain 10% of original capacity after 50 cycles. The present work demonstrates a general principle and opens a new route of crystallographic design to enhance electrochemical performance for assembling 2D materials for energy storage.
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46
Total citations:
46
Citations from 2024:
11
(23.92%)
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GOST
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Sun C. et al. Interconnected Vertically Stacked 2D-MoS2 for Ultrastable Cycling of Rechargeable Li-Ion Battery // ACS applied materials & interfaces. 2019. Vol. 11. No. 23. pp. 20762-20769.
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Sun C., Zhao K., He Y. H. C., Zheng J., Xu W., Zhang C., Wang X., Guo M., Ma L. Q., Wang C., Gu M. Interconnected Vertically Stacked 2D-MoS2 for Ultrastable Cycling of Rechargeable Li-Ion Battery // ACS applied materials & interfaces. 2019. Vol. 11. No. 23. pp. 20762-20769.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1021/acsami.9b02359
UR - https://doi.org/10.1021/acsami.9b02359
TI - Interconnected Vertically Stacked 2D-MoS2 for Ultrastable Cycling of Rechargeable Li-Ion Battery
T2 - ACS applied materials & interfaces
AU - Sun, Congli
AU - Zhao, Kangning
AU - He, Yang Hao Chen
AU - Zheng, Jianming
AU - Xu, Wangwang
AU - Zhang, Chenyu
AU - Wang, Xiang
AU - Guo, Mohan
AU - Ma, L. Q.
AU - Wang, Chongmin
AU - Gu, Meng
PY - 2019
DA - 2019/06/03
PB - American Chemical Society (ACS)
SP - 20762-20769
IS - 23
VL - 11
PMID - 31157525
SN - 1944-8244
SN - 1944-8252
ER -
Cite this
BibTex (up to 50 authors)
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@article{2019_Sun,
author = {Congli Sun and Kangning Zhao and Yang Hao Chen He and Jianming Zheng and Wangwang Xu and Chenyu Zhang and Xiang Wang and Mohan Guo and L. Q. Ma and Chongmin Wang and Meng Gu},
title = {Interconnected Vertically Stacked 2D-MoS2 for Ultrastable Cycling of Rechargeable Li-Ion Battery},
journal = {ACS applied materials & interfaces},
year = {2019},
volume = {11},
publisher = {American Chemical Society (ACS)},
month = {jun},
url = {https://doi.org/10.1021/acsami.9b02359},
number = {23},
pages = {20762--20769},
doi = {10.1021/acsami.9b02359}
}
Cite this
MLA
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Sun, Congli, et al. “Interconnected Vertically Stacked 2D-MoS2 for Ultrastable Cycling of Rechargeable Li-Ion Battery.” ACS applied materials & interfaces, vol. 11, no. 23, Jun. 2019, pp. 20762-20769. https://doi.org/10.1021/acsami.9b02359.
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