Water-Solid Interface Engineering Stabilizes K-Birnessite Cathode

被引:4
|
作者
Gao, Ang [1 ]
Xia, Jiannian [1 ]
Li, Min [1 ]
Lu, Xia [2 ]
Wang, Feng [1 ]
Yang, Ru [1 ]
机构
[1] Beijing Univ Chem Technol, Beijing Key Lab Electrochem Proc & Technol Mat, State Key Lab Chem Resource Engn, Beijing 100029, Peoples R China
[2] Sun Yat Sen Univ, Sch Mat, Guangzhou 510275, Peoples R China
基金
中国国家自然科学基金;
关键词
concerted diffusion; potassium-ion batteries; structure stabilization; water-solid interface; HIGH-TEMPERATURE DECOMPOSITION; ELASTIC BAND METHOD; ENERGY-STORAGE; REDOX ACTIVITY; CRYSTAL WATER; CHALLENGES; BATTERY; STRAIN; PHASE;
D O I
10.1002/adfm.202108267
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Crystal water mediated ion hydration and transport is a fundamental physicochemical process in a wide range of applications and natural processes, such as crystal water containing battery materials. In this context, K-Birnessite with interlaminar H2O (K0.21MnO2.0.31H(2)O) is reported for nonaqueous potassium-ion storage with enhanced capacity and rate performance. It is clarified that the water-solid interface plays an important role in building and stabilizing the K-Birnessite layered structure and facilitating the K+ diffusion for the K-ion battery system. In addition to the enlarged ionic channel dimensions and effective shielding of the electrostatic interaction with K+, the concerted diffusion of K+/H2O with the rotation of H2O molecules is further revealed to account for the quite low activation energies by first-principles simulations. Moreover, the interlayer H2O exerts on the electronic structures, and thus on the electrochemical voltage to result in the competition between the split of crystal field (" backward difference (JT)") and the electronic superexchange interaction ("O-w-K-O") in the K-Birnessite structure. The results provide new insights into hydrated ion kinetics and open an exciting direction for battery material design.
引用
收藏
页数:14
相关论文
共 47 条
  • [1] Cobalt doped K-birnessite as ultrastable cathode for aqueous calcium-ion batteries
    Xu, Fan
    Shi, Zhengyi
    Wu, Jianghua
    Liu, Hanghui
    Li, Jin
    Zan, Feng
    Xia, Hui
    JOURNAL OF POWER SOURCES, 2024, 602
  • [2] PHOTOREDUCTION OF METHYL VIOLOGEN ON WATER-SOLID INTERFACE
    LITSOV, NI
    VOITENKO, VA
    NIKOLAEVSKAJA, VI
    KACHAN, AA
    DOPOVIDI AKADEMII NAUK UKRAINSKOI RSR SERIYA B-GEOLOGICHNI KHIMICHNI TA BIOLOGICHNI NAUKI, 1976, (09): : 829 - 832
  • [3] GENERATION AND OBSERVATION OF THE STONELEY WAVE AT A PLANE WATER-SOLID INTERFACE
    LUPPE, F
    DOUCET, J
    ACUSTICA, 1987, 64 (01): : 46 - 49
  • [4] Influence of gas aggregation on water-solid interface: molecular simulation
    Yen, Tsu-Hsu
    MOLECULAR SIMULATION, 2020, 46 (17) : 1373 - 1382
  • [5] Solid phase extraction of lithium ions from water samples using K-birnessite with layer-structure material form (KBRLSM)
    Ciftci, Harun
    Er, Cigdem
    DESALINATION AND WATER TREATMENT, 2015, 56 (01) : 216 - 222
  • [6] Trapping of Gas Bubbles in Water at a Finite Distance below a Water-Solid Interface
    Esteso, V.
    Carretero-Palacios, S.
    Thiyam, P.
    Miguez, H.
    Parsons, D. F.
    Brevik, I.
    Bostrom, M.
    LANGMUIR, 2019, 35 (12) : 4218 - 4223
  • [7] UHV water-solid interface with soft-landed ions.
    Cowin, JP
    Tsekouras, AA
    Iedema, MJ
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1998, 215 : U148 - U148
  • [8] ACOUSTIC DOUBLE-REFLECTION AND TRANSMISSION AT A ROUGH WATER-SOLID INTERFACE
    ROSE, JH
    BILGEN, M
    NAGY, PB
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1994, 95 (06): : 3242 - 3251
  • [9] Electrohydrodynamic and Hydroelectric Effects at the Water-Solid Interface: from Fundamentals to Applications
    Xu, Wanghuai
    Song, Yuxin
    Xu, Ronald X.
    Wang, Zuankai
    ADVANCED MATERIALS INTERFACES, 2021, 8 (02)
  • [10] Contact electrification efficiency dependence on surface energy at the water-solid interface
    Shahzad, Amir
    Wijewardhana, K. Rohana
    Song, Jang-Kun
    APPLIED PHYSICS LETTERS, 2018, 113 (02)