| Literature DB >> 34877734 |
Jiaxun Zhang1, Peng-Fei Wang1, Panxing Bai1, Hongli Wan1, Sufu Liu1, Singyuk Hou1, Xiangjun Pu1, Jiale Xia1, Weiran Zhang2, Zeyi Wang1, Bo Nan3, Xiyue Zhang1, Jijian Xu1, Chunsheng Wang1.
Abstract
Single-crystalline cathode materials have attracted intensive interest in offering greater capacity retention than their polycrystalline counterparts by reducing material surfaces and phase boundaries. However, the single-crystalline LiCoO2 suffers severe structural instability and capacity fading when charged to high voltages (4.6 V) due to Co element dissolution and O loss, crack formation, and subsequent electrolyte penetration. Herein, by forming a robust cathode electrolyte interphase (CEI) in an all-fluorinated electrolyte, reversible planar gliding along the (003) plane in a single-crystalline LiCoO2 cathode is protected due to the prevention of element dissolution and electrolyte penetration. The robust CEI effectively controls the performance fading issue of the single-crystalline cathode at a high operating voltage of 4.6 V, providing new insights for improved electrolyte design of high-energy-density battery cathode materials.Entities:
Keywords: high-voltage LiCoOzzm3219902 cathodes; inorganic-rich cathode electrolyte interphase; nonflammable electrolytes; single-crystalline cathodes
Year: 2022 PMID: 34877734 DOI: 10.1002/adma.202108353
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849