Advances in Lithium-Sulfur Batteries: From Academic Research to Commercial Viability

被引:700
作者
Chen, Yi [1 ]
Wang, Tianyi [1 ]
Tian, Huajun [1 ]
Su, Dawei [1 ]
Zhang, Qiang [2 ]
Wang, Guoxiu [1 ]
机构
[1] Univ Technol Sydney, Fac Sci, Sch Math & Phys Sci, Ctr Clean Energy Technol, Sydney, NSW 2007, Australia
[2] Tsinghua Univ, Dept Chem Engn, Beijing Key Lab Green Chem React Engn & Technol, Beijing 100084, Peoples R China
基金
澳大利亚研究理事会;
关键词
anodes; binders; cathodes; electrolytes; separators; GEL POLYMER ELECTROLYTE; LI-S BATTERY; METAL-ORGANIC FRAMEWORK; ATOMIC LAYER DEPOSITION; HIGH-ENERGY-DENSITY; EFFICIENT POLYSULFIDE MEDIATOR; CARBONATE-BASED ELECTROLYTE; COMPOSITE CATHODE MATERIALS; ENHANCED CYCLE PERFORMANCE; SELF-TEMPLATED FORMATION;
D O I
10.1002/adma.202003666
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Lithium-ion batteries, which have revolutionized portable electronics over the past three decades, were eventually recognized with the 2019 Nobel Prize in chemistry. As the energy density of current lithium-ion batteries is approaching its limit, developing new battery technologies beyond lithium-ion chemistry is significant for next-generation high energy storage. Lithium-sulfur (Li-S) batteries, which rely on the reversible redox reactions between lithium and sulfur, appears to be a promising energy storage system to take over from the conventional lithium-ion batteries for next-generation energy storage owing to their overwhelming energy density compared to the existing lithium-ion batteries today. Over the past 60 years, especially the past decade, significant academic and commercial progress has been made on Li-S batteries. From the concept of the sulfur cathode first proposed in the 1960s to the current commercial Li-S batteries used in unmanned aircraft, the story of Li-S batteries is full of breakthroughs and back tracing steps. Herein, the development and advancement of Li-S batteries in terms of sulfur-based composite cathode design, separator modification, binder improvement, electrolyte optimization, and lithium metal protection is summarized. An outlook on the future directions and prospects for Li-S batteries is also offered.
引用
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页数:67
相关论文
共 546 条
[31]   Rational design of a mesoporous silica-based cathode for efficient trapping of polysulfides in Li-S batteries [J].
Chen, Chao ;
Xu, Huifang ;
Zhang, Bingkai ;
Jiang, Qingbin ;
Zhang, Yaping ;
Li, Lei ;
Lin, Zhan .
CHEMICAL COMMUNICATIONS, 2020, 56 (05) :786-789
[32]   Exploring Chemical, Mechanical, and Electrical Functionalities of Binders for Advanced Energy-Storage Devices [J].
Chen, Hao ;
Ling, Min ;
Hencz, Luke ;
Ling, Han Yeu ;
Li, Gaoran ;
Lin, Zhan ;
Liu, Gao ;
Zhang, Shanqing .
CHEMICAL REVIEWS, 2018, 118 (18) :8936-8982
[33]   Hydrothermal preparation of nitrogen, boron co-doped curved graphene nanoribbons with high dopant amounts for high-performance lithium sulfur battery cathodes [J].
Chen, Liang ;
Feng, Jianrui ;
Zhou, Haihui ;
Fu, Chaopeng ;
Wang, Guichang ;
Yang, Liming ;
Xu, Chenxi ;
Chen, Zhongxue ;
Yang, Wenji ;
Kuang, Yafei .
JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (16) :7403-7415
[34]   From a historic review to horizons beyond: lithium-sulphur batteries run on the wheels [J].
Chen, Renjie ;
Zhao, Teng ;
Wu, Feng .
CHEMICAL COMMUNICATIONS, 2015, 51 (01) :18-33
[35]   Self-Templated Formation of Interlaced Carbon Nanotubes Threaded Hollow Co3S4 Nanoboxes for High-Rate and Heat-Resistant Lithium-Sulfur Batteries [J].
Chen, Tao ;
Zhang, Zewen ;
Cheng, Baorui ;
Chen, Renpeng ;
Hu, Yi ;
Ma, Lianbo ;
Zhu, Guoyin ;
Liu, Jie ;
Jin, Zhong .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2017, 139 (36) :12710-12715
[36]   Metallic and polar Co9S8 inlaid carbon hollow nanopolyhedra as efficient polysulfide mediator for lithium-sulfur batteries [J].
Chen, Tao ;
Ma, Lianbo ;
Cheng, Baorui ;
Chen, Renpeng ;
Hu, Yi ;
Zhu, Guoyin ;
Wang, Yanrong ;
Liang, Jia ;
Tie, Zuoxiu ;
Liu, Jie ;
Jin, Zhong .
NANO ENERGY, 2017, 38 :239-248
[37]   A New Hydrophilic Binder Enabling Strongly Anchoring Polysulfides for High-Performance Sulfur Electrodes in Lithium-Sulfur Battery [J].
Chen, Wei ;
Lei, Tianyu ;
Qian, Tao ;
Lv, Weiqiang ;
He, Weidong ;
Wu, Chunyang ;
Liu, Xuejun ;
Liu, Jie ;
Chen, Bo ;
Yan, Chenglin ;
Xiong, Jie .
ADVANCED ENERGY MATERIALS, 2018, 8 (12)
[38]   Designing Safe Electrolyte Systems for a High-Stability Lithium-Sulfur Battery [J].
Chen, Wei ;
Lei, Tianyu ;
Wu, Chunyang ;
Deng, Min ;
Gong, Chuanhui ;
Hu, Kai ;
Ma, Yinchang ;
Dai, Liping ;
Lv, Weiqiang ;
He, Weidong ;
Liu, Xuejun ;
Xiong, Jie ;
Yan, Chenglin .
ADVANCED ENERGY MATERIALS, 2018, 8 (10)
[39]   A New Type of Multifunctional Polar Binder: Toward Practical Application of High Energy Lithium Sulfur Batteries [J].
Chen, Wei ;
Qian, Tao ;
Xiong, Jie ;
Xu, Na ;
Liu, Xuejun ;
Liu, Jie ;
Zhou, Jinqiu ;
Shen, Xiaowei ;
Yang, Tingzhou ;
Chen, Yu ;
Yan, Chenglin .
ADVANCED MATERIALS, 2017, 29 (12)
[40]   Double-Shelled Ni-Fe-P/N-Doped Carbon Nanobox Derived from a Prussian Blue Analogue as an Electrode Material for K-Ion Batteries and Li-S Batteries [J].
Chen, Xiaoxia ;
Zeng, Suyuan ;
Muheiyati, Haliya ;
Zhai, YanJun ;
Li, Chuanchuan ;
Ding, Xuyang ;
Wang, Lu ;
Wang, Debao ;
Xu, Liqiang ;
He, Yanyan ;
Qian, Yitai .
ACS ENERGY LETTERS, 2019, 4 (07) :1496-1504