Search Results - "He, Xiangming"

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  1. 1

    Probing the heat sources during thermal runaway process by thermal analysis of different battery chemistries by Zheng, Siqi, Wang, Li, Feng, Xuning, He, Xiangming

    Published in Journal of power sources (28-02-2018)
    “…Safety issue is very important for the lithium ion battery used in electric vehicle or other applications. This paper probes the heat sources in the thermal…”
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    Journal Article
  2. 2

    A 3D thermal runaway propagation model for a large format lithium ion battery module by Feng, Xuning, Lu, Languang, Ouyang, Minggao, Li, Jiangqiu, He, Xiangming

    Published in Energy (Oxford) (15-11-2016)
    “…In this paper, a 3D thermal runaway (TR) propagation model is built for a large format lithium ion battery module. The 3D TR propagation model is built based…”
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  3. 3

    Suppressing electrolyte-lithium metal reactivity via Li+-desolvation in uniform nano-porous separator by Sheng, Li, Wang, Qianqian, Liu, Xiang, Cui, Hao, Wang, Xiaolin, Xu, Yulong, Li, Zonglong, Wang, Li, Chen, Zonghai, Xu, Gui-Liang, Wang, Jianlong, Tang, Yaping, Amine, Khalil, Xu, Hong, He, Xiangming

    Published in Nature communications (10-01-2022)
    “…Lithium reactivity with electrolytes leads to their continuous consumption and dendrite growth, which constitute major obstacles to harnessing the tremendous…”
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  4. 4

    In situ observation of thermal-driven degradation and safety concerns of lithiated graphite anode by Liu, Xiang, Yin, Liang, Ren, Dongsheng, Wang, Li, Ren, Yang, Xu, Wenqian, Lapidus, Saul, Wang, Hewu, He, Xiangming, Chen, Zonghai, Xu, Gui-Liang, Ouyang, Minggao, Amine, Khalil

    Published in Nature communications (09-07-2021)
    “…Graphite, a robust host for reversible lithium storage, enabled the first commercially viable lithium-ion batteries. However, the thermal degradation pathway…”
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  5. 5

    PEO based polymer-ceramic hybrid solid electrolytes: a review by Feng, Jingnan, Wang, Li, Chen, Yijun, Wang, Peiyu, Zhang, Hanrui, He, Xiangming

    Published in Nano convergence (10-01-2021)
    “…Compared with traditional lead-acid batteries, nickel–cadmium batteries and nickel-hydrogen batteries, lithium-ion batteries (LIBs) are much more…”
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  6. 6

    Characterization of penetration induced thermal runaway propagation process within a large format lithium ion battery module by Feng, Xuning, Sun, Jing, Ouyang, Minggao, Wang, Fang, He, Xiangming, Lu, Languang, Peng, Huei

    Published in Journal of power sources (01-02-2015)
    “…This paper investigates the mechanisms of penetration induced thermal runaway (TR) propagation process within a large format lithium ion battery pack. A…”
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  7. 7
  8. 8

    A review of lithium-ion battery safety concerns: The issues, strategies, and testing standards by Chen, Yuqing, Kang, Yuqiong, Zhao, Yun, Wang, Li, Liu, Jilei, Li, Yanxi, Liang, Zheng, He, Xiangming, Li, Xing, Tavajohi, Naser, Li, Baohua

    Published in Journal of energy chemistry (01-08-2021)
    “…[Display omitted] Efficient and reliable energy storage systems are crucial for our modern society. Lithium-ion batteries (LIBs) with excellent performance are…”
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  9. 9

    From separator to membrane: Separators can function more in lithium ion batteries by Song, Youzhi, Sheng, Li, Wang, Li, Xu, Hong, He, Xiangming

    Published in Electrochemistry communications (01-03-2021)
    “…•Clear conception that the separator is not just a separator in batteries.•Additional function of the separator is important to develop high performance.•It is…”
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  10. 10

    Thermal runaway features of large format prismatic lithium ion battery using extended volume accelerating rate calorimetry by Feng, Xuning, Fang, Mou, He, Xiangming, Ouyang, Minggao, Lu, Languang, Wang, Hao, Zhang, Mingxuan

    Published in Journal of power sources (01-06-2014)
    “…In this paper, the thermal runaway features of a 25 Ah large format prismatic lithium ion battery with Li(NixCoyMnz)O2 (NCM) cathode are evaluated using the…”
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  11. 11

    Comparative study on substitute triggering approaches for internal short circuit in lithium-ion batteries by Liu, Lishuo, Feng, Xuning, Zhang, Mingxuan, Lu, Languang, Han, Xuebing, He, Xiangming, Ouyang, Minggao

    Published in Applied energy (01-02-2020)
    “…•5 substitute triggering approaches for internal short circuit are introduced.•Thermal-electrical coupling features of internal short circuit are…”
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  12. 12

    Tailoring Practically Accessible Polymer/Inorganic Composite Electrolytes for All-Solid-State Lithium Metal Batteries: A Review by Liang, Hongmei, Wang, Li, Wang, Aiping, Song, Youzhi, Wu, Yanzhou, Yang, Yang, He, Xiangming

    Published in Nano-micro letters (01-12-2023)
    “…Highlights The current issues and recent advances in polymer/inorganic composite electrolytes are reviewed. The molecular interaction between different…”
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  13. 13

    Detecting the internal short circuit in large-format lithium-ion battery using model-based fault-diagnosis algorithm by Feng, Xuning, Pan, Yue, He, Xiangming, Wang, Li, Ouyang, Minggao

    Published in Journal of energy storage (01-08-2018)
    “…•Model-based fault diagnosis algorithm detects internal short circuit of battery.•The algorithm only relies on commonly used signal of voltage and…”
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  14. 14

    Electro-thermal modeling and experimental validation for lithium ion battery by Ye, Yonghuang, Shi, Yixiang, Cai, Ningsheng, Lee, Jianjun, He, Xiangming

    Published in Journal of power sources (01-02-2012)
    “…► A quasi two-dimensional lithium ion battery model coupling electronic conduction, mass transfer, energy balance and electrochemical reactions. ►…”
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  15. 15

    An Exploration of New Energy Storage System: High Energy Density, High Safety, and Fast Charging Lithium Ion Battery by Wu, Yingqiang, Wang, Wenxi, Ming, Jun, Li, Mengliu, Xie, Leqiong, He, Xiangming, Wang, Jing, Liang, Shuquan, Wu, Yuping

    Published in Advanced functional materials (04-01-2019)
    “…Rechargeable lithium ion battery (LIB) has dominated the energy market from portable electronics to electric vehicles, but the fast‐charging remains…”
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  16. 16

    Countersolvent Electrolytes for Lithium‐Metal Batteries by Piao, Nan, Ji, Xiao, Xu, Hong, Fan, Xiulin, Chen, Long, Liu, Sufu, Garaga, Mounesha N., Greenbaum, Steven G., Wang, Li, Wang, Chunsheng, He, Xiangming

    Published in Advanced energy materials (01-03-2020)
    “…Development of electrolytes that simultaneously have high ionic conductivity, wide electrochemical window, and lithium dendrite suppression ability is urgently…”
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  17. 17

    Nano-Structured Phosphorus Composite as High-Capacity Anode Materials for Lithium Batteries by Wang, Li, He, Xiangming, Li, Jianjun, Sun, Wenting, Gao, Jian, Guo, Jianwei, Jiang, Changyin

    Published in Angewandte Chemie International Edition (03-09-2012)
    “…More than LiP service: The adsorption of red phosphorus into porous carbon provides a composite anode material for lithium‐ion batteries. The amorphous nano…”
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  18. 18

    Polyimides as Promising Materials for Lithium-Ion Batteries: A Review by Zhang, Mengyun, Wang, Li, Xu, Hong, Song, Youzhi, He, Xiangming

    Published in Nano-micro letters (01-12-2023)
    “…Highlights Polyimides (PIs) as coatings, separators, binders, solid-state electrolytes, and active storage materials help toward safe, high-performance, and…”
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  19. 19

    Thermal runaway of Lithium-ion batteries employing LiN(SO2F)2-based concentrated electrolytes by Hou, Junxian, Lu, Languang, Wang, Li, Ohma, Atsushi, Ren, Dongsheng, Feng, Xuning, Li, Yan, Li, Yalun, Ootani, Issei, Han, Xuebing, Ren, Weining, He, Xiangming, Nitta, Yoshiaki, Ouyang, Minggao

    Published in Nature communications (09-10-2020)
    “…Concentrated electrolytes usually demonstrate good electrochemical performance and thermal stability, and are also supposed to be promising when it comes to…”
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  20. 20

    Li4Ti5O12 spinel anode: Fundamentals and advances in rechargeable batteries by Zhang, Hao, Yang, Yang, Xu, Hong, Wang, Li, Lu, Xia, He, Xiangming

    Published in InfoMat (01-04-2022)
    “…The Li4Ti5O12 (LTO) spinel material, ranking at the second large market share after graphite, is a promising anode material for lithium‐ion batteries due to…”
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