Dual-function LiFePO4 modified separator for low-overpotential and stable Li-S battery
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M. Feng | Guiru Sun | Rui Gao | Yuting Zhang | C. Qu | Zhao Wang | Xiangxin Xue | Nan Li | Ming Jin | Hai-bo Li
[1] Chen-Xuan Xu,et al. Designing electrolytes for lithium metal batteries with rational interface stability , 2020, Rare Metals.
[2] F. Ye,et al. Effect of Mn doping on the microstructure and magnetic properties of CuFeO2 ceramics , 2020, Journal of Advanced Ceramics.
[3] Dianlong Wang,et al. Holey graphene modified LiFePO4 hollow microsphere as an efficient binary sulfur host for high-performance lithium-sulfur batteries , 2020 .
[4] H. Yang,et al. Design Multifunctional Catalytic Interface: Toward Regulation of Polysulfide and Li2 S Redox Conversion in Li-S Batteries. , 2019, Small.
[5] Jingwei Xiang,et al. High lithium sulfide loading electrodes for practical Li/S cells with high specific energy , 2019, Nano Energy.
[6] Jingwei Xiang,et al. Facile synthesis of Li2S@C composites as cathode for Li–S batteries , 2019, Journal of Energy Chemistry.
[7] Song Wang,et al. Boosting redox activity on MXene-induced multifunctional collaborative interface in high Li2S loading cathode for high-energy Li-S and metallic Li-free rechargeable batteries , 2019, Journal of Energy Chemistry.
[8] K. Sun,et al. Nb2 O5 /RGO Nanocomposite Modified Separators with Robust Polysulfide Traps and Catalytic Centers for Boosting Performance of Lithium-Sulfur Batteries. , 2019, Small.
[9] Zhiyu Wang,et al. A Molecular‐Cage Strategy Enabling Efficient Chemisorption–Electrocatalytic Interface in Nanostructured Li2S Cathode for Li Metal‐Free Rechargeable Cells with High Energy , 2019, Advanced Functional Materials.
[10] T. Zhao,et al. Critical Role of Anion Donicity in Li2S Deposition and Sulfur Utilization in Li-S Batteries. , 2019, ACS applied materials & interfaces.
[11] Ke-ning Sun,et al. Metallic NiSe2nanoarrays towards ultralong life and fast Li2S oxidation kinetics of Li–S batteries , 2019, Journal of Materials Chemistry A.
[12] Naiqing Zhang,et al. Blocking Polysulfide with Co2B@CNT via "Synergetic Adsorptive Effect" toward Ultrahigh-Rate Capability and Robust Lithium-Sulfur Battery. , 2019, ACS nano.
[13] A. Mauger,et al. Constructing metal-free and cost-effective multifunctional separator for high-performance lithium-sulfur batteries , 2019, Nano Energy.
[14] Shichao Wu,et al. Capture and Catalytic Conversion of Polysulfides by In Situ Built TiO2‐MXene Heterostructures for Lithium–Sulfur Batteries , 2019, Advanced Energy Materials.
[15] Yong Yang,et al. Recent progress in Ti-based nanocomposite anodes for lithium ion batteries , 2019, Journal of Advanced Ceramics.
[16] C. Barbero,et al. A top-down approach to build Li2S@rGO cathode composites for high-loading lithium–sulfur batteries in carbonate-based electrolyte , 2019, Electrochimica Acta.
[17] A. Manthiram,et al. Highly Solvating Electrolytes for Lithium–Sulfur Batteries , 2018, Advanced energy materials.
[18] Yi‐Chun Lu,et al. Solvent‐Mediated Li2S Electrodeposition: A Critical Manipulator in Lithium–Sulfur Batteries , 2018, Advanced Energy Materials.
[19] H. Fan,et al. Promoting lithium polysulfide/sulfide redox kinetics by the catalyzing of zinc sulfide for high performance lithium-sulfur battery , 2018, Nano Energy.
[20] Yu Jiang,et al. Electrochemical property of LiFePO4/C composite cathode with different carbon sources , 2018, Rare Metals.
[21] Q. Fu,et al. Porous Molybdenum Carbide Nanorods as Novel "Bifunctional" Cathode Material for Li-S Batteries. , 2018, Chemistry.
[22] Zhongwei Chen,et al. Li2S‐ or S‐Based Lithium‐Ion Batteries , 2018, Advanced materials.
[23] A. Manthiram,et al. A Lithium–Sulfur Cell Based on Reversible Lithium Deposition from a Li2S Cathode Host onto a Hostless‐Anode Substrate , 2018, Advanced Energy Materials.
[24] X. Tao,et al. A green and facile strategy for the low-temperature and rapid synthesis of Li2S@PC–CNT cathodes with high Li2S content for advanced Li–S batteries , 2018 .
[25] Fei Wang,et al. A LiFePO4/Li2Sn hybrid system with enhanced Li-ion storage performance , 2018 .
[26] Xuanxuan Bi,et al. High-Rate and Long-Term Cycle Stability of Li-S Batteries Enabled by Li2S/TiO2-Impregnated Hollow Carbon Nanofiber Cathodes. , 2018, ACS applied materials & interfaces.
[27] Yuegang Zhang,et al. In Situ Electrochemically Derived Amorphous-Li2 S for High Performance Li2 S/Graphite Full Cell. , 2018, Small.
[28] K. Kang,et al. Carbon nanomaterials for advanced lithium sulfur batteries , 2018 .
[29] Zaoli Zhang,et al. In situ atomic-scale observation of oxidation and decomposition processes in nanocrystalline alloys , 2018, Nature Communications.
[30] Jun Lu,et al. Chemisorption of polysulfides through redox reactions with organic molecules for lithium–sulfur batteries , 2018, Nature Communications.
[31] Xiaodong Li,et al. New Insights into Mossy Li Induced Anode Degradation and Its Formation Mechanism in Li–S Batteries , 2017 .
[32] T. Zhao,et al. An Efficient Li 2 S-based Lithium-ion Sulfur Battery Realized by a Bifunctional Electrolyte Additive , 2017 .
[33] L. Giebeler,et al. Nanosized Li2S-based cathodes derived from MoS2 for high-energy density Li–S cells and Si–Li2S full cells in carbonate-based electrolyte , 2017 .
[34] Dean J. Miller,et al. Burning lithium in CS2 for high-performing compact Li2S–graphene nanocapsules for Li–S batteries , 2017, Nature Energy.
[35] Dong Xie,et al. A 3D conductive network with high loading Li2S@C for high performance lithium–sulfur batteries , 2017 .
[36] M. Antonietti,et al. The mechanism of Li2S activation in lithium-sulfur batteries: Can we avoid the polysulfide formation? , 2017 .
[37] Yayuan Liu,et al. Sulfiphilic Nickel Phosphosulfide Enabled Li2S Impregnation in 3D Graphene Cages for Li–S Batteries , 2017, Advanced materials.
[38] Lain‐Jong Li,et al. Redox Species-Based Electrolytes for Advanced Rechargeable Lithium Ion Batteries , 2016 .
[39] I. Oh,et al. Facile Coating of Graphene Interlayer onto Li2S as a High Electrochemical Performance Cathode for Lithium Sulfur Battery , 2016 .
[40] Sean E. Doris,et al. Three-Dimensional Growth of Li2S in Lithium-Sulfur Batteries Promoted by a Redox Mediator. , 2016, Nano letters.
[41] Feixiang Wu,et al. A Hierarchical Particle–Shell Architecture for Long‐Term Cycle Stability of Li2S Cathodes , 2015, Advanced materials.
[42] Rezan Demir‐Cakan. Targeting the role of lithium sulphide formation for the rapid capacity fading in lithium-sulphur batteries , 2015 .
[43] Dipan Kundu,et al. Surface-enhanced redox chemistry of polysulphides on a metallic and polar host for lithium-sulphur batteries , 2014, Nature Communications.
[44] M. Eremets,et al. Ammonia as a case study for the spontaneous ionization of a simple hydrogen-bonded compound , 2014, Nature Communications.
[45] Yadong Li,et al. Durable carbon-coated Li2(S) core-shell spheres for high performance lithium/sulfur cells. , 2014, Journal of the American Chemical Society.
[46] D. Aurbach,et al. The Use of Redox Mediators for Enhancing Utilization of Li2S Cathodes for Advanced Li-S Battery Systems. , 2014, The journal of physical chemistry letters.
[47] M. Armand,et al. Facile dry synthesis of sulfur-LiFePO4 core–shell composite for the scalable fabrication of lithium/sulfur batteries , 2013 .
[48] Nancy J. Dudney,et al. Phosphorous Pentasulfide as a Novel Additive for High‐Performance Lithium‐Sulfur Batteries , 2013 .
[49] E. Cairns,et al. Nanostructured Li₂S-C composites as cathode material for high-energy lithium/sulfur batteries. , 2012, Nano letters.
[50] Arumugam Manthiram,et al. Lithium–sulphur batteries with a microporous carbon paper as a bifunctional interlayer , 2012, Nature Communications.
[51] N. Kato,et al. MicroRNA122 is a key regulator of α-fetoprotein expression and influences the aggressiveness of hepatocellular carcinoma. , 2011, Nature communications.
[52] Palani Balaya,et al. Ionic and electronic transport in single crystalline LiFePO4 grown by optical floating zone technique , 2008 .
[53] Jun-ichi Yamaki,et al. LiFePO4 storage at room and elevated temperatures , 2003 .
[54] Y. Chiang,et al. Electronically conductive phospho-olivines as lithium storage electrodes , 2002, Nature materials.
[55] N Terada,et al. Development of lithium batteries for energy storage and EV applications , 2001 .
[56] O. Borodin,et al. Lithium Iodide as a Promising Electrolyte Additive for Lithium–Sulfur Batteries: Mechanisms of Performance Enhancement , 2015, Advanced materials.