Search Results - "Ye, Luhan"

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  1. 1

    Advanced sulfide solid electrolyte by core-shell structural design by Wu, Fan, Fitzhugh, William, Ye, Luhan, Ning, Jiaxin, Li, Xin

    Published in Nature communications (02-10-2018)
    “…Solid electrolyte is critical to next-generation solid-state lithium-ion batteries with high energy density and improved safety. Sulfide solid electrolytes…”
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    Journal Article
  2. 2

    Strain‐Stabilized Ceramic‐Sulfide Electrolytes by Fitzhugh, William, Wu, Fan, Ye, Luhan, Su, Haoqing, Li, Xin

    “…Ceramic‐sulfide solid electrolytes are a promising material system for enabling solid‐state batteries. However, one challenge that remains is the discrepancy…”
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    Journal Article
  3. 3

    A High‐Throughput Search for Functionally Stable Interfaces in Sulfide Solid‐State Lithium Ion Conductors by Fitzhugh, William, Wu, Fan, Ye, Luhan, Deng, Wenye, Qi, Pengfei, Li, Xin

    Published in Advanced energy materials (05-06-2019)
    “…Interfacial reactions between ceramic‐sulfide solid‐electrolytes and common electrodes have remained a major impediment to the development of solid‐state…”
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    Journal Article
  4. 4

    Isotropic cell design enables low-pressure lithium metal solid-state batteries by Fitzhugh, William, Ye, Luhan, Li, Xin

    Published in Electrochemistry communications (01-08-2024)
    “…[Display omitted] •10-minute charging lithium metal solid-state battery achieved at low pressure.•New isotropic cell design ensures perfectly isotropic and…”
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    Journal Article
  5. 5

    Li9.54Si1.74(P1-xSbx)1.44S11.7Cl0.3: A functionally stable sulfide solid electrolyte in air for solid-state batteries by Ye, Luhan, Gil-González, Eva, Li, Xin

    Published in Electrochemistry communications (01-07-2021)
    “…•Air-stability of a new family of sulfide solid state electrolytes of Li9.54Si1.74(P1-xSbx)1.44S11.7Cl0.3 (LS(Sb)PS) is reported.•Ionic conductivity of LSPS…”
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    Journal Article
  6. 6

    Interface Coating Design for Dynamic Voltage Stability of Solid‐State Batteries by Wang, Yichao, Ye, Luhan, Fitzhugh, William, Chen, Xi, Li, Xin

    Published in Advanced energy materials (01-11-2023)
    “…Abstract Intrinsic or interface thermodynamic voltage windows of solid electrolytes are often narrower than the operational voltage range needed by a full…”
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    Journal Article
  7. 7

    Toward Higher Voltage Solid‐State Batteries by Metastability and Kinetic Stability Design by Ye, Luhan, Fitzhugh, William, Gil‐González, Eva, Wang, Yichao, Su, Yibo, Su, Haoqing, Qiao, Tianyu, Ma, Lu, Zhou, Hua, Hu, Enyuan, Li, Xin

    Published in Advanced energy materials (01-09-2020)
    “…The energy density of battery systems is limited largely by the electrochemical window of the electrolyte. Herein, the combined thermodynamic and kinetic…”
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    Journal Article
  8. 8

    Advanced materials for flexible electrochemical energy storage devices by He, Linheng, Wen, Kechun, Zhang, Zuoxiang, Ye, Luhan, Lv, Weiqiang, Fei, Jipeng, Zhang, Shangqun, He, Weidong

    Published in Journal of materials research (28-08-2018)
    “…Flexibility is a key parameter of device mechanical robustness. The most profound challenge for the realization of flexible electronics is associated with the…”
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    Journal Article
  9. 9

    A dynamic stability design strategy for lithium metal solid state batteries by Ye, Luhan, Li, Xin

    Published in Nature (London) (13-05-2021)
    “…A solid-state electrolyte is expected to suppress lithium (Li) dendrite penetration with high mechanical strength 1 – 4 . However, in practice it still remains…”
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    Journal Article
  10. 10

    Beyond Expert‐Level Performance Prediction for Rechargeable Batteries by Unsupervised Machine Learning by Chen, Xi, Ye, Luhan, Wang, Yichao, Li, Xin

    Published in Advanced intelligent systems (01-12-2019)
    “…Predicting the performance of rechargeable batteries in real time is of great importance to battery research and industrial production, and hence has been a…”
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    Journal Article
  11. 11

    Justifying the significance of Knudsen diffusion in solid oxide fuel cells by Yang, Fei, Gu, Jianmin, Ye, Luhan, Zhang, Zuoxiang, Rao, Gaofeng, Liang, Yachun, Wen, Kechun, Zhao, Jiyun, Goodenough, John B., He, Weidong

    Published in Energy (Oxford) (01-01-2016)
    “…Developing an appropriate diffusion mechanism to analyze the gas transport in porous electrodes of SOFCs (solid oxide fuel cells), has been a crucial step…”
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    Journal Article
  12. 12

    An electrochemical device for the Knudsen and bulk diffusivity measurement in the anodes of solid oxide fuel cells by Ye, Luhan, Lv, Weiqiang, Mao, Yiwu, Yan, Pengfei, He, Weidong

    Published in International journal of hydrogen energy (12-09-2014)
    “…Both Knudsen and bulk diffusion mechanisms are taken into account in the anode diffusivity measurement in solid oxide fuel cells (SOFCs). The correlation of…”
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    Journal Article
  13. 13

    A Versatile Strategy to Fabricate 3D Conductive Frameworks for Lithium Metal Anodes by Qi, Li‐Ya, Shang, Luoran, Chen, Xi, Ye, Luhan, Zhang, Weixia, Feng, Peijian, Zou, Wei, Cao, Naizhen, Zhou, Heng‐Hui, Weitz, David A., Li, Xin

    Published in Advanced materials interfaces (09-10-2018)
    “…The suppression of lithium dendrite is critical to the realization of lithium metal batteries. 3D conductive framework, among different approaches, has shown…”
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    Journal Article
  14. 14

    Fast cycling of lithium metal in solid-state batteries by constriction-susceptible anode materials by Ye, Luhan, Lu, Yang, Wang, Yichao, Li, Jianyuan, Li, Xin

    Published in Nature materials (01-02-2024)
    “…Interface reaction between lithium (Li) and materials at the anode is not well understood in an all-solid environment. This paper unveils a new phenomenon of…”
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    Journal Article
  15. 15
  16. 16

    Effect of Solvents on a Li10GeP2S12-Based Composite Electrolyte via Solution Method for Solid-State Battery Applications by Wang, Xinzhi, Ye, Luhan, Nan, Ce-Wen, Li, Xin

    Published in ACS applied materials & interfaces (19-10-2022)
    “…Using a solution approach to process composite electrolytes for solid-state battery applications is a viable strategy for lowering the thickness of electrolyte…”
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    Journal Article
  17. 17

    Electrochemical and Mechano-Electrochemical Stabilities in Solid-State Lithium Metal Batteries by Ye, Luhan

    Published 01-01-2022
    “…This thesis presents a systematic investigation of the coupling and decoupling of the electrochemical stability with a new type of mechano-electrochemical…”
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    Dissertation
  18. 18

    Highly Efficient Materials Assembly Via Electrophoretic Deposition for Electrochemical Energy Conversion and Storage Devices by Ye, Luhan, Wen, Kechun, Zhang, Zuoxiang, Yang, Fei, Liang, Yachun, Lv, Weiqiang, Lin, Yukun, Gu, Jianmin, Dickerson, James H., He, Weidong

    Published in Advanced energy materials (01-04-2016)
    “…Featuring pronounced controllability, versatility, and scalability, electrophoretic deposition (EPD) has been proposed as an efficient method for film assembly…”
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    Journal Article
  19. 19

    A Two-Parameter Space to Tune Solid Electrolytes for Lithium Dendrite Constriction by Wang, Yichao, Ye, Luhan, Chen, Xi, Li, Xin

    Published in JACS Au (25-04-2022)
    “…Li dendrite penetration, and associated microcrack propagation, at high current densities is one main challenge to the stable cycling of solid-state batteries…”
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    Journal Article
  20. 20

    Toward Higher Voltage Solid-State Batteries by Metastability and Kinetic Stability Design by Ye, Luhan, Fitzhugh, William, Gil‐González, Eva, Wang, Yichao, Su, Yibo, Su, Haoqing, Qiao, Tianyu, Ma, Lu, Zhou, Hua, Hu, Enyuan, Li, Xin

    Published in Advanced energy materials (29-07-2020)
    “…The energy density of battery systems is limited largely by the electrochemical window of the electrolyte. Here, the combined thermodynamic and kinetic effects…”
    Get full text
    Journal Article