Designer Lithium Reservoirs for Ultralong Life Lithium Batteries for Grid Storage

被引:37
作者
Tian, Mengyu [1 ,2 ,3 ]
Yan, Yong [1 ]
Yu, Hailong [1 ,2 ,3 ]
Ben, Liubin [1 ,2 ,3 ]
Song, Ziyu [4 ]
Jin, Zhou [1 ]
Cen, Guanjun [2 ,3 ]
Zhu, Jing [2 ,3 ]
Armand, Michel [5 ]
Zhang, Heng [4 ]
Zhou, Zhibin [4 ]
Huang, Xuejie [1 ,2 ,3 ]
机构
[1] Songshan Lake Mat Lab, Dongguan 523808, Guangdong, Peoples R China
[2] Chinese Acad Sci, Inst Phys, Beijing Natl Lab Condensed Matter Phys, 3rd South St, Beijing 100190, Peoples R China
[3] Univ Chinese Acad Sci, Ctr Mat Sci & Optoelect Engn, Beijing 100049, Peoples R China
[4] Huazhong Univ Sci & Technol, Key Lab Mat Chem Energy Convers & Storage, Minist Educ, Sch Chem & Chem Engn, 1037 Luoyu Rd, Wuhan 430074, Peoples R China
[5] Basque Res & Technol Alliance BRTA, Ctr Cooperat Res Alternat Energies CC EnergiGUNE, Alava Technol Pk,Albert Einstein 48, Vitoria 01510, Spain
基金
中国国家自然科学基金;
关键词
coulombic efficiencies; elemental sulfur; grid storage; lithium batteries; lithium reservoirs; ENERGY-STORAGE; ION BATTERIES; FUTURE; CO2;
D O I
10.1002/adma.202400707
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The minimization of irreversible active lithium loss stands as a pivotal concern in rechargeable lithium batteries, particularly in the context of grid-storage applications, where achieving the utmost energy density over prolonged cycling is imperative to meet stringent demands, notably in terms of life cost. Departing from conventional methodologies advocating electrode prelithiation and/or electrolyte additives, a new paradigm is proposed here: the integration of a designer lithium reservoir (DLR) featuring lithium orthosilicate (Li4SiO4) and elemental sulfur. This approach concurrently addresses active lithium consumption through solid electrolyte interphase (SEI) formation and mitigates minor yet continuous parasitic reactions at the electrode/electrolyte interface during extended cycling. The remarkable synergy between the Li-ion conductive Li4SiO4 and the SEI-favorable elemental sulfur enables customizable compensation kinetics for active lithium loss throughout continuous cycling. The introduction of a minute quantity of DLR (3 wt% Li4SiO4@S) yields outstanding cycling stability in a prototype pouch cell (graphite||LiFePO4) with an ampere-hour-level capacity (approximate to 2.3 Ah), demonstrating remarkable capacity retention (approximate to 95%) even after 3000 cycles. This utilization of a DLR is poised to expedite the development of enduring lithium batteries for grid-storage applications and stimulate the design of practical, implantable rechargeable batteries based on related cell chemistries. Enabled by the unique mediation chemistry of elemental sulfur, the designer lithium reservoirs possess controllable electrochemical activities and high specific capacity without evolution of any reactive gases, which contribute to an outstanding cycling stability in a prototype pouch cell with an ampere-hour-level capacity. image
引用
收藏
页数:12
相关论文
共 44 条
[1]   Energy impact of cathode drying and solvent recovery during lithium-ion battery manufacturing [J].
Ahmed, Shabbir ;
Nelson, Paul A. ;
Gallagher, Kevin G. ;
Dees, Dennis W. .
JOURNAL OF POWER SOURCES, 2016, 322 :169-178
[2]   Cascade-Type Prelithiation Approach for Li-Ion Capacitors [J].
Anothumakkool, Bihag ;
Wiemers-Meyer, Simon ;
Guyomard, Dominique ;
Winter, Martin ;
Brousse, Thierry ;
Gaubicher, Joel .
ADVANCED ENERGY MATERIALS, 2019, 9 (27)
[3]   Electrolyte Design Enabling a High-Safety and High-Performance Si Anode with a Tailored Electrode-Electrolyte Interphase [J].
Cao, Zhang ;
Zheng, Xueying ;
Qu, Qunting ;
Huang, Yunhui ;
Zheng, Honghe .
ADVANCED MATERIALS, 2021, 33 (38)
[4]   Opportunities and challenges for a sustainable energy future [J].
Chu, Steven ;
Majumdar, Arun .
NATURE, 2012, 488 (7411) :294-303
[5]   Electronically conductive phospho-olivines as lithium storage electrodes [J].
Chung, SY ;
Bloking, JT ;
Chiang, YM .
NATURE MATERIALS, 2002, 1 (02) :123-128
[6]   Li2O:Li-Mn-O Disordered Rock-Salt Nanocomposites as Cathode Prelithiation Additives for High-Energy Density Li-Ion Batteries [J].
Diaz-Lopez, Maria ;
Chater, Philip A. ;
Bordet, Pierre ;
Freire, Melanie ;
Jordy, Christian ;
Lebedev, Oleg, I ;
Pralong, Valerie .
ADVANCED ENERGY MATERIALS, 2020, 10 (07)
[7]   Electrical Energy Storage for the Grid: A Battery of Choices [J].
Dunn, Bruce ;
Kamath, Haresh ;
Tarascon, Jean-Marie .
SCIENCE, 2011, 334 (6058) :928-935
[8]   Production of high-energy Li-ion batteries comprising silicon-containing anodes and insertion-type cathodes [J].
Eshetu, Gebrekidan Gebresilassie ;
Zhang, Heng ;
Judez, Xabier ;
Adenusi, Henry ;
Armand, Michel ;
Passerini, Stefano ;
Figgemeier, Egbert .
NATURE COMMUNICATIONS, 2021, 12 (01)
[9]   In-Depth Interfacial Chemistry and Reactivity Focused Investigation of Lithium-Imide- and Lithium-Imidazole-Based Electrolytes [J].
Eshetu, Gebrekidan Gebresilassie ;
Diemant, Thomas ;
Grugeon, Sylvie ;
Behm, R. Juergen ;
Laruelle, Stephane ;
Armand, Michel ;
Passerini, Stefano .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (25) :16087-16100
[10]   Highly Fluorinated Interphases Enable High-Voltage Li-Metal Batteries [J].
Fan, Xiulin ;
Chen, Long ;
Ji, Xiao ;
Deng, Tao ;
Hou, Singyuk ;
Chen, Ji ;
Zheng, Jing ;
Wang, Fei ;
Jiang, Jianjun ;
Xu, Kang ;
Wang, Chunsheng .
CHEM, 2018, 4 (01) :174-185