Controlled crystallinity of LiTaO3 surface layer for single-crystalline Ni-rich cathodes for lithium-ion batteries and all-solid-state batteries

被引:13
作者
You, Min Jae [1 ]
Jung, Jaewoo [1 ]
Byeon, Yun Seong [1 ]
Jung, Jae Yup [1 ]
Hong, Yoojin [1 ]
Park, Min-Sik [1 ]
机构
[1] Kyung Hee Univ, Integrated Educ Inst Frontier Sci & Technol BK21 F, Dept Adv Mat Engn Informat & Elect, 1732 Deogyeong Daero, Yongin 17104, South Korea
基金
新加坡国家研究基金会;
关键词
Crystallinity; Surface coating; Cathode; Lithium tantalate; Lithium-ion batteries; STABILITY; CONDUCTIVITY; DEGRADATION; LINBO3;
D O I
10.1016/j.cej.2024.149199
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Various functional materials have been explored as surface-coating layers for Ni-rich cathode materials used in lithium-ion batteries (LIBs) aiming to enhance their long-term cycling performance and electrochemical stability under high-voltage operation. In particular, lithium tantalate (LiTaO3) has received considerable attention as a promising candidate due to its distinct physicochemical properties, including high ionic conductivity, wide voltage window, low band-gap energy, and excellent mechanical strength. These characteristics are beneficial for effective surface stabilization of Ni-rich cathode materials, which currently suffer from poor cycling performance, mainly due to issues related to structural instability with elevated Ni concentrations. In this respect, we report the benefits of surface coating with LiTaO3 on the electrochemical properties of single-crystalline Ni-rich cathode materials (SNCM) for successful implementation in high-energy LIBs. The controlled crystallinity of the LiTaO3 surface layer directly affects the reversibility as well as interfacial stability of the SNCM cathode under various operating conditions. The tailored crystallinity of LiTaO3 surface layer is mainly responsible for enhancing the cycle performance of SNCM cathodes under high-temperature (60 degrees C) and high-voltage (4.5 V vs. Li/Li+) operations. Our findings will significantly contribute to the development of robust and reliable cathode materials for high-energy LIBs.
引用
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页数:11
相关论文
共 47 条
[1]   Simultaneous Enhancement of Interfacial Stability and Kinetics of Single-Crystal LiNi0.6Mn0.2Co0.2O2 through Optimized Surface Coating and Doping [J].
Bao, Wenda ;
Qian, Guannan ;
Zhao, Lianqi ;
Yu, Yi ;
Su, Longxing ;
Cai, Xincan ;
Zhao, Haojie ;
Zuo, Yuqing ;
Zhang, Yue ;
Li, Haoyuan ;
Peng, Zijian ;
Li, Linsen ;
Xie, Jin .
NANO LETTERS, 2020, 20 (12) :8832-8840
[2]   Automotive Li-Ion Batteries: Current Status and Future Perspectives [J].
Ding, Yuanli ;
Cano, Zachary P. ;
Yu, Aiping ;
Lu, Jun ;
Chen, Zhongwei .
ELECTROCHEMICAL ENERGY REVIEWS, 2019, 2 (01) :1-28
[3]   High Energy Density Single-Crystal NMC/Li6PS5Cl Cathodes for All-Solid-State Lithium-Metal Batteries [J].
Doerrer, Christopher ;
Capone, Isaac ;
Narayanan, Sudarshan ;
Liu, Junliang ;
Grovenor, Chris R. M. ;
Pasta, Mauro ;
Grant, Patrick S. .
ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (31) :37809-37815
[4]   Influence of annealing ambience on structural and piezoelectric properties of single crystal LiTaO3 thin film [J].
Fan, Wei ;
Shuai, Yao ;
Pan, Xinqiang ;
Luo, Wenbo ;
Wu, Chuangui ;
Huang, Shitian ;
Wan, Limin ;
Wang, Yuedong ;
Zhang, Wanli .
MATERIALS EXPRESS, 2023, 13 (02) :345-351
[5]   Surface Modification Engineering Enabling 4.6 V Single-Crystalline Ni-Rich Cathode with Superior Long-Term Cyclability [J].
Fan, Xin-Ming ;
Huang, Ying-De ;
Wei, Han-Xin ;
Tang, Lin-Bo ;
He, Zhen-Jiang ;
Yan, Cheng ;
Mao, Jing ;
Dai, Ke-Hua ;
Zheng, Jun-Chao .
ADVANCED FUNCTIONAL MATERIALS, 2022, 32 (06)
[6]   Crack-free single-crystalline Ni-rich layered NCM cathode enable superior cycling performance of lithium-ion batteries [J].
Fan, Xinming ;
Hu, Guorong ;
Zhang, Bao ;
Ou, Xing ;
Zhang, Jiafeng ;
Zhao, Wengao ;
Jia, Haiping ;
Zou, Lianfeng ;
Li, Peng ;
Yang, Yong .
NANO ENERGY, 2020, 70
[7]   Unravelling the influence of quasi single-crystalline architecture on high-voltage and thermal stability of LiNi0.5Co0.2Mn0.3O2 cathode for lithium-ion batteries [J].
Fan, Xinming ;
Liu, Yun ;
Ou, Xing ;
Zhang, Jiafeng ;
Zhang, Bao ;
Wang, Dong ;
Hu, Guorong .
CHEMICAL ENGINEERING JOURNAL, 2020, 393
[8]   Polyvinylpyrrolidone-Induced Uniform Surface-Conductive Polymer Coating Endows Ni-Rich LiNi0.8Co0.1Mn0.1O2 with Enhanced Cyclability for Lithium-Ion Batteries [J].
Gan, Qingmeng ;
Qin, Ning ;
Zhu, Youhuan ;
Huang, Zixuan ;
Zhang, Fangchang ;
Gu, Shuai ;
Xie, Jiwei ;
Zhang, Kaili ;
Lu, Li ;
Lu, Zhouguang .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (13) :12594-12604
[9]   Identifying surface degradation, mechanical failure, and thermal instability phenomena of high energy density Ni-rich NCM cathode materials for lithium-ion batteries: a review [J].
Geldasa, Fikadu Takele ;
Kebede, Mesfin Abayneh ;
Shura, Megersa Wodajo ;
Hone, Fekadu Gashaw .
RSC ADVANCES, 2022, 12 (10) :5891-5909
[10]   Composition and Impedance Heterogeneity in Oxide Electrode Cross-Sections Detected by Raman Spectroscopy [J].
Gilbert, James A. ;
Maroni, Victor A. ;
Cui, Yanjie ;
Gosztola, David J. ;
Miller, Dean J. ;
Abraham, Daniel P. .
ADVANCED MATERIALS INTERFACES, 2018, 5 (09)