Commercialization-Driven Electrodes Design for Lithium Batteries: Basic Guidance, Opportunities, and Perspectives

被引:56
作者
Cao, Chunyan [1 ,2 ]
Liang, Fanghua [1 ]
Zhang, Wei [1 ]
Liu, Hongchao [1 ]
Liu, Hui [3 ]
Zhang, Haifeng [1 ]
Mao, Jiajun [4 ]
Zhang, Yanyan [4 ]
Feng, Yu [5 ]
Yao, Xi [2 ]
Ge, Mingzheng [1 ,3 ]
Tang, Yuxin [4 ]
机构
[1] Nantong Univ, Sch Text & Clothing, Nantong 226019, Peoples R China
[2] City Univ Hong Kong, Dept Biomed Sci, Hong Kong 999077, Peoples R China
[3] Univ Macau, Inst Appl Phys & Mat Engn, Macau 999078, Peoples R China
[4] Fuzhou Univ, Coll Chem Engn, Fuzhou 350116, Peoples R China
[5] Taiyuan Univ Technol, Minist Educ, Key Lab Coal Sci & Technol, State Key Lab Clean & Efficient Coal Utilizat, Taiyuan 030024, Peoples R China
基金
中国国家自然科学基金;
关键词
high energy density; high mass loading; lithium batteries; rational structure design; sluggish charge diffusion; HIGH-AREAL-CAPACITY; HIGH TAP-DENSITY; HIGH-PERFORMANCE ANODE; LI-METAL BATTERY; HIGH-ENERGY; ION BATTERIES; RECHARGEABLE LITHIUM; SOLID-ELECTROLYTE; LONG-LIFE; CATHODE MATERIAL;
D O I
10.1002/smll.202102233
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Current lithium-ion battery technology is approaching the theoretical energy density limitation, which is challenged by the increasing requirements of ever-growing energy storage market of electric vehicles, hybrid electric vehicles, and portable electronic devices. Although great progresses are made on tailoring the electrode materials from methodology to mechanism to meet the practical demands, sluggish mass transport, and charge transfer dynamics are the main bottlenecks when increasing the areal/volumetric loading multiple times to commercial level. Thus, this review presents the state-of-the-art developments on rational design of the commercialization-driven electrodes for lithium batteries. First, the basic guidance and challenges (such as electrode mechanical instability, sluggish charge diffusion, deteriorated performance, and safety concerns) on constructing the industry-required high mass loading electrodes toward commercialization are discussed. Second, the corresponding design strategies on cathode/anode electrode materials with high mass loading are proposed to overcome these challenges without compromising energy density and cycling durability, including electrode architecture, integrated configuration, interface engineering, mechanical compression, and Li metal protection. Finally, the future trends and perspectives on commercialization-driven electrodes are offered. These design principles and potential strategies are also promising to be applied in other energy storage and conversion systems, such as supercapacitors, and other metal-ion batteries.
引用
收藏
页数:34
相关论文
共 323 条
[1]   Engineering and Optimization of Silicon-Iron-Manganese Nanoalloy Electrode for Enhanced Lithium-Ion Battery [J].
Alaboina, Pankaj K. ;
Cho, Jong-Soo ;
Cho, Sung-Jin .
NANO-MICRO LETTERS, 2017, 9 (04)
[2]   Scalable synthesis of ant-nest-like bulk porous silicon for high-performance lithium-ion battery anodes [J].
An, Weili ;
Gao, Biao ;
Mei, Shixiong ;
Xiang, Ben ;
Fu, Jijiang ;
Wang, Lei ;
Zhang, Qiaobao ;
Chu, Paul K. ;
Huo, Kaifu .
NATURE COMMUNICATIONS, 2019, 10 (1)
[3]   Effect of electrode loading on the electrochemical performance of LiAl0.1Mn1.9O4 cathode for lithium-ion batteries [J].
Angelopoulou, Pinelopi ;
Avgouropoulos, George .
MATERIALS RESEARCH BULLETIN, 2019, 119
[4]   Nanostructured materials for advanced energy conversion and storage devices [J].
Aricò, AS ;
Bruce, P ;
Scrosati, B ;
Tarascon, JM ;
Van Schalkwijk, W .
NATURE MATERIALS, 2005, 4 (05) :366-377
[5]   High-Performance Solid-State Lithium-Ion Battery with Mixed 2D and 3D Electrodes [J].
Ashby, David S. ;
Choi, Christopher S. ;
Edwards, Martin A. ;
Talin, A. Alec ;
White, Henry S. ;
Dunn, Bruce S. .
ACS APPLIED ENERGY MATERIALS, 2020, 3 (09) :8402-8409
[6]   A Scalable Approach to Dendrite-Free Lithium Anodes via Spontaneous Reduction of Spray-Coated Graphene Oxide Layers [J].
Bai, Maohui ;
Xie, Keyu ;
Yuan, Kai ;
Zhang, Kun ;
Li, Nan ;
Shen, Chao ;
Lai, Yanqing ;
Vajtai, Robert ;
Ajayan, Pulickel ;
Wei, Bingqing .
ADVANCED MATERIALS, 2018, 30 (29)
[7]   Encasing Prelithiated Silicon Species in the Graphite Scaffold: An Enabling Anode Design for the Highly Reversible, Energy-Dense Cell Model [J].
Bai, Miao ;
Yang, Liyan ;
Jia, Qiurong ;
Tang, Xiaoyu ;
Liu, Yujie ;
Wang, Helin ;
Zhang, Min ;
Guo, Runchen ;
Ma, Yue .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (42) :47490-47502
[8]   Preparation and electrochemical properties of Mg2+ and F- co-doped Li4Ti5O12 anode material for use in the lithium-ion batteries [J].
Bai, Xue ;
Li, Wen ;
Wei, Aijia ;
Li, Xiaohui ;
Zhang, Lihui ;
Liu, Zhenfa .
ELECTROCHIMICA ACTA, 2016, 222 :1045-1055
[9]   Understanding capacity fade in silicon based electrodes for lithium-ion batteries using three electrode cells and upper cut-off voltage studies [J].
Beattie, Shane D. ;
Loveridge, M. J. ;
Lain, Michael J. ;
Ferrari, Stefania ;
Polzin, Bryant J. ;
Bhagat, Rohit ;
Dashwood, Richard .
JOURNAL OF POWER SOURCES, 2016, 302 :426-430
[10]   Interfacial reinforcement structure design towards ultrastable lithium storage in MoS2-based composited electrode [J].
Cao, Chunyan ;
Dong, Huilong ;
Liang, Fanghua ;
Zhang, Yu ;
Zhang, Wei ;
Wang, Hailou ;
Shao, Huaiyu ;
Liu, Hongchao ;
Dong, Kai ;
Tang, Yuxin ;
Lai, Yuekun ;
Ge, Mingzheng .
CHEMICAL ENGINEERING JOURNAL, 2021, 416 (416)