Search Results - "Schroeder, Marshall A"

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  1. 1

    Quantifying inactive lithium in lithium metal batteries by Fang, Chengcheng, Li, Jinxing, Zhang, Minghao, Zhang, Yihui, Yang, Fan, Lee, Jungwoo Z., Lee, Min-Han, Alvarado, Judith, Schroeder, Marshall A., Yang, Yangyuchen, Lu, Bingyu, Williams, Nicholas, Ceja, Miguel, Yang, Li, Cai, Mei, Gu, Jing, Xu, Kang, Wang, Xuefeng, Meng, Ying Shirley

    Published in Nature (London) (01-08-2019)
    “…Lithium metal anodes offer high theoretical capacities (3,860 milliampere-hours per gram) 1 , but rechargeable batteries built with such anodes suffer from…”
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  2. 2

    Next-Generation Lithium Metal Anode Engineering via Atomic Layer Deposition by Kozen, Alexander C, Lin, Chuan-Fu, Pearse, Alexander J, Schroeder, Marshall A, Han, Xiaogang, Hu, Liangbing, Lee, Sang-Bok, Rubloff, Gary W, Noked, Malachi

    Published in ACS nano (23-06-2015)
    “…Lithium metal is considered to be the most promising anode for next-generation batteries due to its high energy density of 3840 mAh g–1. However, the extreme…”
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  3. 3

    Realizing high zinc reversibility in rechargeable batteries by Ma, Lin, Schroeder, Marshall A., Borodin, Oleg, Pollard, Travis P., Ding, Michael S., Wang, Chunsheng, Xu, Kang

    Published in Nature energy (01-10-2020)
    “…Rechargeable zinc metal batteries (RZMBs) offer a compelling complement to existing lithium ion and emerging lithium metal batteries for meeting the increasing…”
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  4. 4

    A carbonate-free, sulfone-based electrolyte for high-voltage Li-ion batteries by Alvarado, Judith, Schroeder, Marshall A., Zhang, Minghao, Borodin, Oleg, Gobrogge, Eric, Olguin, Marco, Ding, Michael S., Gobet, Mallory, Greenbaum, Steve, Meng, Ying Shirley, Xu, Kang

    Published in Materials today (Kidlington, England) (01-05-2018)
    “…[Display omitted] Practical implementation of next-generation Li-ion battery chemistries is to a large extent obstructed by the absence of an electrolyte that…”
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  5. 5

    “Water‐in‐Salt” Electrolyte Makes Aqueous Sodium‐Ion Battery Safe, Green, and Long‐Lasting by Suo, Liumin, Borodin, Oleg, Wang, Yuesheng, Rong, Xiaohui, Sun, Wei, Fan, Xiiulin, Xu, Shuyin, Schroeder, Marshall A., Cresce, Arthur V., Wang, Fei, Yang, Chongyin, Hu, Yong‐Sheng, Xu, Kang, Wang, Chunsheng

    Published in Advanced energy materials (08-11-2017)
    “…Narrow electrochemical stability window (1.23 V) of aqueous electrolytes is always considered the key obstacle preventing aqueous sodium‐ion chemistry of…”
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  6. 6

    Lithium Metal Batteries Enabled by Synergetic Additives in Commercial Carbonate Electrolytes by Piao, Nan, Liu, Sufu, Zhang, Bao, Ji, Xiao, Fan, Xiulin, Wang, Li, Wang, Peng-Fei, Jin, Ting, Liou, Sz-Chian, Yang, Huicong, Jiang, Jianjun, Xu, Kang, Schroeder, Marshall A, He, Xiangming, Wang, Chunsheng

    Published in ACS energy letters (14-05-2021)
    “…The lithium metal anode is considered as the ultimate choice for high-energy-density batteries. However, the organic-dominated solid electrolyte interphase…”
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  7. 7

    Functionalized Phosphonium Cations Enable Zinc Metal Reversibility in Aqueous Electrolytes by Ma, Lin, Pollard, Travis P., Zhang, Yong, Schroeder, Marshall A., Ding, Michael S., Cresce, Arthur V., Sun, Ruimin, Baker, David R., Helms, Brett A., Maginn, Edward J., Wang, Chunsheng, Borodin, Oleg, Xu, Kang

    Published in Angewandte Chemie International Edition (25-05-2021)
    “…Aqueous rechargeable zinc metal batteries promise attractive advantages including safety, high volumetric energy density, and low cost; however, such benefits…”
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  8. 8

    Cryogenic Focused Ion Beam Characterization of Lithium Metal Anodes by Lee, Jungwoo Z, Wynn, Thomas A, Schroeder, Marshall A, Alvarado, Judith, Wang, Xuefeng, Xu, Kang, Meng, Y. Shirley

    Published in ACS energy letters (08-02-2019)
    “…Lithium metal is viewed as the ultimate battery anode because of its high theoretical capacity and low electrode potential, but its implementation has been…”
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  9. 9

    DMSO–Li2O2 Interface in the Rechargeable Li–O2 Battery Cathode: Theoretical and Experimental Perspectives on Stability by Schroeder, Marshall A, Kumar, Nitin, Pearse, Alexander J, Liu, Chanyuan, Lee, Sang Bok, Rubloff, Gary W, Leung, Kevin, Noked, Malachi

    Published in ACS applied materials & interfaces (03-06-2015)
    “…One of the greatest obstacles for the realization of the nonaqueous Li–O2 battery is finding a solvent that is chemically and electrochemically stable under…”
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  10. 10

    Enhancing the Reversibility of Mg/S Battery Chemistry through Li+ Mediation by Gao, Tao, Noked, Malachi, Pearse, Alex J, Gillette, Eleanor, Fan, Xiulin, Zhu, Yujie, Luo, Chao, Suo, Liumin, Schroeder, Marshall A, Xu, Kang, Lee, Sang Bok, Rubloff, Gary W, Wang, Chunsheng

    Published in Journal of the American Chemical Society (30-09-2015)
    “…Mg metal is a promising anode material for next generation rechargeable battery due to its dendrite-free deposition and high capacity. However, the best…”
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  11. 11

    Highly reversible Zn metal anode enabled by sustainable hydroxyl chemistry by Ma, Lin, Vatamanu, Jenel, Hahn, Nathan T, Pollard, Travis P, Borodin, Oleg, Petkov, Valeri, Schroeder, Marshall A, Ren, Yang, Ding, Michael S, Luo, Chao, Allen, Jan L, Wang, Chunsheng, Xu, Kang

    “…Rechargeable Zn metal batteries (RZMBs) may provide a more sustainable and lower-cost alternative to established battery technologies in meeting energy storage…”
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  12. 12

    An all-in-one nanopore battery array by Liu, Chanyuan, Gillette, Eleanor I., Chen, Xinyi, Pearse, Alexander J., Kozen, Alexander C., Schroeder, Marshall A., Gregorczyk, Keith E., Lee, Sang Bok, Rubloff, Gary W.

    Published in Nature nanotechnology (01-12-2014)
    “…A single nanopore structure that embeds all components of an electrochemical storage device could bring about the ultimate miniaturization in energy storage…”
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  13. 13

    Phase Diagram and Conductivity of Zn(TFSI)2–H2O Electrolytes by Ding, Michael S, Ma, Lin, Schroeder, Marshall A, Xu, Kang

    Published in Journal of physical chemistry. C (19-11-2020)
    “…A binary phase diagram of zinc bis­(trifluoromethylsulfonyl)­imide and water, Zn­(TFSI)2–H2O, was mapped out from 0 to 0.375 mole fraction of salt, revealing…”
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  14. 14

    Toward Unraveling the Origin of Lithium Fluoride in the Solid Electrolyte Interphase by Cao, Chuntian, Pollard, Travis P, Borodin, Oleg, Mars, Julian E, Tsao, Yuchi, Lukatskaya, Maria R, Kasse, Robert M, Schroeder, Marshall A, Xu, Kang, Toney, Michael F, Steinrück, Hans-Georg

    Published in Chemistry of materials (28-09-2021)
    “…The solid electrolyte interphase (SEI) is an integral part of Li-ion batteries and their performance, representing the key enabler for reversibility and also…”
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  15. 15

    Synthesis and Electrochemical Properties of Aluminum Hexafluorophosphate by Wen, Xiaoyu, Zhang, Jian, Luo, Hewei, Shi, Jiayan, Tsay, Charlene, Jiang, Huanhuan, Lin, Ying-Hsuan, Schroeder, Marshall A, Xu, Kang, Guo, Juchen

    Published in The journal of physical chemistry letters (01-07-2021)
    “…We report the first synthesis of aluminum hexafluorophosphate (Al­(PF6)3) and its electrochemical properties in dimethyl sulfoxide (DMSO). The single crystal…”
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  16. 16

    Atomic Layer Deposition and in Situ Characterization of Ultraclean Lithium Oxide and Lithium Hydroxide by Kozen, Alexander C, Pearse, Alexander J, Lin, Chuan-Fu, Schroeder, Marshall A, Noked, Malachi, Lee, Sang Bok, Rubloff, Gary W

    Published in Journal of physical chemistry. C (04-12-2014)
    “…We demonstrate the ultraclean atomic layer deposition (ALD) of Li2O and LiOH using lithium tert-butoxide (LiO t Bu) precursor with H2O and plasma O2 as…”
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  17. 17

    Fabrication of 3D Core–Shell Multiwalled Carbon Nanotube@RuO2 Lithium-Ion Battery Electrodes through a RuO2 Atomic Layer Deposition Process by Gregorczyk, Keith E, Kozen, Alexander C, Chen, Xinyi, Schroeder, Marshall A, Noked, Malachi, Cao, Anyuan, Hu, Liangbing, Rubloff, Gary W

    Published in ACS nano (27-01-2015)
    “…Pushing lithium-ion battery (LIB) technology forward to its fundamental scaling limits requires the ability to create designer heterostructured materials and…”
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  18. 18

    Investigation of the Cathode–Catalyst–Electrolyte Interface in Aprotic Li–O2 Batteries by Schroeder, Marshall A, Pearse, Alexander J, Kozen, Alexander C, Chen, Xinyi, Gregorczyk, Keith, Han, Xiaogang, Cao, Anyuan, Hu, Liangbing, Lee, Sang Bok, Rubloff, Gary W, Noked, Malachi

    Published in Chemistry of materials (13-07-2015)
    “…Enabled by a unique integrated fabrication and characterization platform, X-ray photoelectron spectroscopy (XPS) studies reveal the formation of a thin solid…”
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