Impact of ultrathin coating layer on lithium-ion intercalation into particles for lithium-ion batteries

被引:0
|
作者
He, Yufang [1 ]
Pham, Hiep [1 ]
Liang, Xinhua [2 ]
Park, Jonghyun [1 ]
机构
[1] Department of Mechanical Engineering and Aerospace Engineering, Missouri University of Science and Technology, Rolla,65401, United States
[2] Linda and Bipin Doshi Department of Chemical and Biochemical Engineering, Missouri University of Science and Technology, Rolla,65401, United States
基金
美国国家科学基金会;
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Ultrathin film coatings on battery materials via atomic layer deposition (ALD) have been demonstrated as an efficient technology for battery performance enhancement. However, the fundamental understanding on lithium intercalation into active materials through the interface between the coating and active materials is unclear, which makes it difficult to optimize ALD coating strategies. Further, like most active materials, a coating layer can undergo volume change during the intercalation process, which can produce detrimental structural changes and mechanical failure of the layer. In this work, first-principles calculations are conducted to reveal the behavior of a coating layer on an active material particle by focusing on the intercalation energy variation, lithium-ion transport, electron chemical potential change, and structural changes of the coating layer. The analysis comprehensively explains an experimental observation that a CeO2 coating on LiMn2O4 particles exhibits better performance in capacity and cycling than an Al2O3 coating on the same particles. The fundamental knowledge imparted from this work provides an important understanding about the beneficial role of ALD coatings in lithium-ion battery performance and capacity retention. © 2022 Elsevier B.V.
引用
收藏
相关论文
共 50 条
  • [21] CHALLENGING LITHIUM-ION BATTERIES
    Scott, Alex
    CHEMICAL & ENGINEERING NEWS, 2015, 93 (29) : 18 - 19
  • [22] Origami lithium-ion batteries
    Zeming Song
    Teng Ma
    Rui Tang
    Qian Cheng
    Xu Wang
    Deepakshyam Krishnaraju
    Rahul Panat
    Candace K. Chan
    Hongyu Yu
    Hanqing Jiang
    Nature Communications, 5
  • [23] Aqueous lithium-ion batteries
    Arthur von Wald Cresce
    Kang Xu
    Carbon Energy, 2021, 3 (05) : 721 - 751
  • [24] Aqueous lithium-ion batteries
    von Wald Cresce, Arthur
    Xu, Kang
    CARBON ENERGY, 2021, 3 (05) : 721 - 751
  • [25] Lithium-ion batteries for space
    Spurrett, R
    Thwaite, C
    Slimm, M
    Lizius, D
    PROCEEDINGS OF THE SIXTH EUROPEAN SPACE POWER CONFERENCE (ESPC), 2002, 502 : 477 - 482
  • [26] Cobalt in lithium-ion batteries
    Li, Matthew
    Lu, Jun
    SCIENCE, 2020, 367 (6481) : 979 - 980
  • [27] Modeling of lithium-ion batteries
    Newman, J
    Thomas, KE
    Hafezi, H
    Wheeler, DR
    JOURNAL OF POWER SOURCES, 2003, 119 : 838 - 843
  • [28] Lithium-ion batteries for aerospace
    Smart, MC
    Ratnakumar, BV
    Whitcanack, LD
    Chin, KB
    Surampudi, S
    Gitzendanner, R
    Puglia, F
    Byers, J
    IEEE AEROSPACE AND ELECTRONIC SYSTEMS MAGAZINE, 2004, 19 (01) : 18 - 25
  • [29] Beyond Lithium-Ion Batteries
    Zhang, Chaofeng
    Chou, Shulei
    Guo, Zaiping
    Dou, Shi-Xue
    ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (05)
  • [30] Recycling of lithium-ion batteries
    不详
    PRZEMYSL CHEMICZNY, 2021, 100 (10): : 916 - 916