Low-Temperature and High-Energy-Density Li-Based Liquid Metal Batteries Based on LiCl-KCl Molten Salt Electrolyte

被引:18
|
作者
Cui, Kaixuan [1 ]
Zhao, Wang [2 ]
Li, Shengwei [1 ]
Zhou, Dongmei [1 ]
Liu, Chunrong [1 ]
Qu, Xuanhui [1 ]
Li, Ping [1 ,3 ]
机构
[1] Univ Sci & Technol Beijing, Inst Adv Mat & Technol, Beijing Adv Innovat Ctr Mat Genome Engn, Beijing 100083, Peoples R China
[2] China Three Gorges Corp, Inst Sci & Technol, Beijing 100038, Peoples R China
[3] Shanxi Beike Qiantong Energy Storage Technol Res, Jincheng 048499, Peoples R China
基金
国家重点研发计划;
关键词
liquid metal batteries; sustainable energy storage; LiCl-KCl; Sb-Bi-Sn (Pb); low operating temperature; high energy density; low material cost; LITHIUM-ION; THERMODYNAMIC PROPERTIES; POSITIVE ELECTRODE; ANTIMONY; CAPABILITY; STORAGE; ALLOYS; EMF;
D O I
10.1021/acssuschemeng.1c07560
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Li-based liquid metal batteries (LMBs) have attracted widespread attention due to their potential applications in sustainable energy storage; however, the high operating temperature limits their practical applications. Herein, a new chemistry-LiCl-KCl electrolyte and Sb-Bi-Sn (Pb) positive electrode.is reported to lower the operating temperature of Li-based LMBs and achieve a high energy density. We have investigated the compatibility between low-melting-point LiCl-KCl molten salt and Li and found that the displacement reaction between LiCl-KCl and Li would decrease the KCl content. Addition of a small amount of K to Li can inhibit this displacement reaction and maintain the stability of the molten salt composition, thereby significantly improving the cycling stability of the batteries at a low operating temperature (400 degrees C). Specifically, the LiK vertical bar LiCl-KCl vertical bar Sb30Bi40Sn30 LMB exhibits a high energy density of about 241 W h kg(-1) and a low material cost of about 68.8 $ kW h(-1). Besides, the energy density of the LiK vertical bar LiCl-KCl vertical bar Sb30Bi40Pb30 LMB is about 194 W h kg(-1), which has a lower material cost of about 62.8 $ kW h(-1). We propose that this work can open new directions toward designing and developing innovative LMBs for sustainable energy storage.
引用
收藏
页码:1871 / 1879
页数:9
相关论文
共 50 条
  • [11] Wood-based materials for high-energy-density lithium metal batteries
    Fu, Feiyan
    Jiao, Xuan
    Yang, Yuanyuan
    Yin, Xianze
    Zheng, Zi-Jian
    NANO ENERGY, 2025, 133
  • [12] Understanding the Effects of the Low-Concentration Electrolyte on the Performance of High-Energy-Density Li-S Batteries
    Jiang, Jicheng
    Fan, Qining
    Liu, Huakun
    Chou, Shulei
    Konstantinov, Konstantin
    Wang, Jiazhao
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (24) : 28405 - 28414
  • [13] New molten salt systems for high-temperature molten salt batteries: LiF-LiCl-LiBr-based quaternary systems
    Fujiwara, Syozo
    Inaba, Minoru
    Tasaka, Akimasa
    JOURNAL OF POWER SOURCES, 2010, 195 (22) : 7691 - 7700
  • [14] Nonflammable in situ PDOL-based gel polymer electrolyte for high-energy-density and high safety lithium metal batteries
    Tang, Wenhao
    Zhou, Taotao
    Duan, Yang
    Zhou, Miaomiao
    Li, Zhenchao
    Liu, Ruiping
    CARBON NEUTRALIZATION, 2024, 3 (03): : 386 - 395
  • [15] Water as an Effective Additive for High-Energy-Density Na Metal Batteries? Studies in a Superconcentrated Ionic Liquid Electrolyte
    Ferdousi, Shammi A.
    Hilder, Matthias
    Basile, Andrew
    Zhu, Haijin
    O'Dell, Luke A.
    Saurel, Damien
    Rojo, Teofilo
    Armand, Michel
    Forsyth, Maria
    Howlett, Patrick C.
    CHEMSUSCHEM, 2019, 12 (08) : 1700 - 1711
  • [16] New molten salt systems for high temperature molten salt batteries: Ternary and quaternary molten salt systems based on LiF-LiCl, LiF-LiBr, and LiCl-LiBr
    Fujiwara, Syozo
    Inaba, Minoru
    Tasaka, Akimasa
    JOURNAL OF POWER SOURCES, 2011, 196 (08) : 4012 - 4018
  • [17] Fully carbonate-electrolyte-based high-energy-density Li-S batteries with solid-phase conversion
    Hakari, Takashi
    Kameoka, Yuto
    Kishida, Kaihei
    Ozaki, Shinji
    Murata, Chihiro
    Deguchi, Minako
    Harada, Ryo
    Fujisawa, Tomoki
    Mizuno, Yusuke
    Nishikawa, Heisuke
    Tamura, Tomoyuki
    Wang, Yiqun
    Takahara, Hikari
    Aoki, Takashi
    Inamasu, Tokuo
    Okuda, Daisuke
    Ishikawa, Masashi
    CARBON ENERGY, 2024, 6 (11)
  • [18] New high-energy-density GeTe-based anodes for Li-ion batteries
    Nam, Ki-Hun
    Sung, Geon-Kyu
    Choi, Jeong-Hee
    Youn, Jong-Sang
    Jeon, Ki-Joon
    Park, Cheol-Min
    JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (07) : 3278 - 3288
  • [19] Application of Poly (vinylidene fluoride)-based Solid Polymer Electrolyte Membranes in High-Energy-Density Solid-Liquid Hybrid Batteries with Lithium Metal Anode
    Chen K.
    Cheng L.
    Wang X.
    Liu J.
    Wu N.
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2019, 47 (10): : 1343 - 1350
  • [20] Advanced Multiphase Silicon-Based Anodes for High-Energy-Density Li-Ion Batteries
    Goldshtein, K.
    Freedman, K.
    Schneier, D.
    Burstein, L.
    Ezersky, V.
    Peled, E.
    Golodnitsky, D.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2015, 162 (06) : A1072 - A1079