• Journal of Inorganic Materials
  • Vol. 38, Issue 12, 1466 (2023)
Shuyu TAN, Xiaoning LIU, Zhijie BI, Yong WAN*, and Xiangxin GUO*
Author Affiliations
  • College of Physics, Qingdao University, Qingdao 266071, China
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    DOI: 10.15541/jim20230215 Cite this Article
    Shuyu TAN, Xiaoning LIU, Zhijie BI, Yong WAN, Xiangxin GUO. Jointing of Cathode Coating and Interface Modification for Stabilizing Poly(ethylene oxide) Electrolytes Against High-voltage Cathodes[J]. Journal of Inorganic Materials, 2023, 38(12): 1466 Copy Citation Text show less
    References

    [1] X B CHENG, R ZHANG, C Z ZHAO et al. Toward safe lithium metal anode in rechargeable batteries: a review. Chemical Reviews, 10403(2017).

    [2] J LIU, Z BAO, Y CUI et al. Pathways for practical high-energy long-cycling lithium metal batteries. Nature Energy, 180(2019).

    [3] G MA, L GUO, X DING et al. Effect of dual-functional electrolyte additive on high temperature and high voltage performance of Li-ion battery. Journal of Inorganic Materials, 710(2022).

    [4] H XU, J SHI, G HU et al. Hybrid electrolytes incorporated with dandelion-like silane-Al2O3 nanoparticles for high-safety high- voltage lithium ion batteries. Journal of Power Sources(2018).

    [5] B COMMARIEU, A PAOLELLA, J C DAIGLE et al. Toward high lithium conduction in solid polymer and polymer-ceramic batteries. Current Opinion in Electrochemistry(2018).

    [6] Y LI, J MAO, C WEI. In-situ modification of carbon nanotubes with metallic bismuth nanoparticles for uniform lithium deposition. Journal of Inorganic Materials, 1337(2022).

    [7] J WANG, B GE, H LI et al. Challenges and progresses of lithium-metal batteries. Chemical Engineering Journal(2021).

    [8] H ZHANG, R DAI, S ZHU et al. Bimetallic nitride modified separator constructs internal electric field for high-performance lithium-sulfur battery. Chemical Engineering Journal(2022).

    [9] Z WEN, F LIANG. MOF/poly(ethylene oxide) composite polymer electrolyte for solid-state lithium battery. Journal of Inorganic Materials, 332(2021).

    [10] L FAN, S WEI, S LI et al. Recent progress of the solid-state electrolytes for high-energy metal-based batteries. Advanced Energy Materials, 1702657(2018).

    [11] D LIN, P Y YUEN, Y LIU et al. A silica-aerogel-reinforced composite polymer electrolyte with high ionic conductivity and high modulus. Advanced Materials, 1802661(2018).

    [12] Y ZHAO, K ZHENG, X SUN. Addressing interfacial issues in liquid-based and solid-state batteries by atomic and molecular layer deposition. Joule, 2583(2018).

    [13] J WU, Z RAO, Z CHENG et al. Ultrathin, flexible polymer electrolyte for cost-effective fabrication of all-solid-state lithium metal batteries. Advanced Energy Materials, 1902767(2019).

    [14] R CHEN, Q LI, X YU et al. Approaching practically accessible solid-state batteries: stability issues related to solid electrolytes and interfaces. Chemical Reviews, 6820(2020).

    [15] Z WAN, D LEI, W YANG et al. Low resistance-integrated all- solid-state battery achieved by Li7La3Zr2O12 nanowire upgrading polyethylene oxide (PEO) composite electrolyte and PEO cathode binder. Advanced Functional Materials, 1805301(2019).

    [16] M BALAISH, J C GONZALEZ-ROSILLO, K J KIM et al. Processing thin but robust electrolytes for solid-state batteries. Nature Energy, 227(2021).

    [17] X Y LIU, B D LIU, Y N JIANG. In-situ synthesis of perovskite SrTiO3 nanostructures with modified morphology and tunable optical absorption property. Journal of Inorganic Materials, 65(2019).

    [18] K NIE, X WANG, J QIU et al. Increasing poly(ethylene oxide) stability to 4.5 V by surface coating of the cathode. ACS Energy Letters, 826(2020).

    [19] H HUO, Y CHEN, J LUO et al. Rational design of hierarchical “ceramic-in-polymer” and “polymer-in-ceramic” electrolytes for dendrite-free solid-state batteries. Advanced Energy Materials, 1804004(2019).

    [20] X YANG, M JIANG, X GAO et al. Determining the limiting factor of the electrochemical stability window for PEO-based solid polymer electrolytes: main chain or terminal -OH group. Energy & Environmental Science, 1318(2020).

    [21] Q YANG, J HUANG, Y LI et al. Surface-protected LiCoO2 with ultrathin solid oxide electrolyte film for high-voltage lithium ion batteries and lithium polymer batteries. Journal of Power Sources(2018).

    [22] J LIANG, Y SUN, Y ZHAO et al. Engineering the conductive carbon/PEO interface to stabilize solid polymer electrolytes for all-solid-state high voltage LiCoO2 batteries. Journal of Materials Chemistry A, 2769(2020).

    [23] H XU, P H CHIEN, J SHI et al. High-performance all-solid-state batteries enabled by salt bonding to perovskite in poly(ethylene oxide). Proceedings of the National Academy of Sciences of the United States of America, 18815(2019).

    [24] Y WANG, B N LIU, G ZHOU et al. Improved electrochemical performance of Li(Ni0.6Co0.2Mn0.2)O2 at high charging cut-off voltage with Li1.4Al0.4Ti1.6(PO4)3 surface coating. Chinese Physics B, 068202(2019).

    [25] J QIU, L YANG, G SUN et al. A stabilized PEO-based solid electrolyte via a facile interfacial engineering method for a high voltage solid-state lithium metal battery. Chemical Communications, 5633(2020).

    [26] W FENG, J LI, H LIU. In-situ modification of ultrathin and uniform layer on LiCoO2 particles for 4.2 V polyethylene oxide based solid-state lithium batteries with excellent cycle performance. Electrochimica Acta(2022).

    [27] Z LI, A LI, H ZHANG et al. Interfacial engineering for stabilizing polymer electrolytes with 4 V cathodes in lithium metal batteries at elevated temperature. Nano Energy(2020).

    [28] F FU, Y ZHENG, N JIANG et al. A dual-salt PEO-based polymer electrolyte with cross-linked polymer network for high-voltage lithium metal batteries. Chemical Engineering Journal(2022).

    [29] W ZHOU, Z WANG, Y PU et al. Double-layer polymer electrolyte for high-voltage all-solid-state rechargeable batteries. Advanced Materials, 1805574(2019).

    [30] Y SUN, H DONG, Y XU et al. Incorporating cyclized- polyacrylonitrile with Li4Ti5O12 nanosheet for high performance lithium ion battery anode material. Electrochimica Acta(2017).

    [31] X L SUN, Z LIU, Z L CHENG. Design and fabrication of in-situ N-doped paper-like carbon nanofiber film for thiophene removal from a liquid model fuel. Journal of Hazardous Materials(2020).

    [32] Y HONG, Q HU, H DONG et al. N-doped carbon coated porous hierarchical MnO microspheres as superior additive-free anode materials for lithium-ion batteries. Scripta Materialia(2022).

    [33] A A HAMEDANI, C W OW-YANG, S HAYAT SOYTAS. Silicon nanocrystals-embedded carbon nanofibers from hybrid polyacrylonitrile-TEOS precursor as high-performance lithium-ion battery anodes. Journal of Alloys and Compounds(2022).

    [34] W FENG, H LIU, M ZHAO et al. Improving interfacial stability by in situ protective layer formation in 4.2 V poly(ethylene oxide) based solid state lithium batteries. Journal of Power Sources(2022).

    [35] Z XIE, Z WU, X AN et al. 2-Fluoropyridine: a novel electrolyte additive for lithium metal batteries with high areal capacity as well as high cycling stability. Chemical Engineering Journal(2020).

    [36] K CHEN, Y SUN, C ZHAO et al. A semi-interpenetrating network polymer electrolyte membrane prepared from non-self- polymerized precursors for ambient temperature all-solid-state lithium-ion batteries. Journal of Solid State Chemistry(2021).

    [37] C YAN, Y X YAO, X CHEN et al. Lithium nitrate solvation chemistry in carbonate electrolyte sustains high-voltage lithium metal batteries. Angewandte Chemie International Edition, 14055(2018).

    [38] T LI, X Q ZHANG, P SHI et al. Fluorinated solid-electrolyte interphase in high-voltage lithium metal batteries. Joule, 2647(2019).

    [39] A R POLU, H W RHEE. Ionic liquid doped PEO-based solid polymer electrolytes for lithium-ion polymer batteries. International Journal of Hydrogen Energy, 7212(2017).

    [40] G SONG, H ZHONG, Z WANG et al. Interfacial film Li1.3Al0.3Ti1.7PO4-coated LiNi0.6Co0.2Mn0.2O2 for the long cycle stability of lithium-ion batteries. ACS Applied Energy Materials, 7923(2019).

    Shuyu TAN, Xiaoning LIU, Zhijie BI, Yong WAN, Xiangxin GUO. Jointing of Cathode Coating and Interface Modification for Stabilizing Poly(ethylene oxide) Electrolytes Against High-voltage Cathodes[J]. Journal of Inorganic Materials, 2023, 38(12): 1466
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