Cationic Co-Doping in Copper Sulfide Nanosheet Cathodes for Efficient Magnesium Storage
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Youqi Zhu | Xilan Ma | Zhitao Wang | Jianhua Hou | Lifen Yang | Changliang Du | Xiuyun Yao | Xin Liu | Chuanbao Cao | Jiachen Tian
[1] Youqi Zhu,et al. Lattice Expanding by Te-Substitution to Boost Electrochemical Mg Storage of Cu7.2s4 Nanotube Cathode , 2023, SSRN Electronic Journal.
[2] Jin-Gyu Kim,et al. Substitution-triggered broken symmetry of cobalt tungstate boosts redox kinetics in pseudocapacitive storage , 2022, Cell Reports Physical Science.
[3] Youqi Zhu,et al. Kinetically optimized copper sulfide cathodes for rechargeable magnesium batteries , 2022, Journal of Power Sources.
[4] Yang Jin,et al. Rechargeable Batteries for Grid Scale Energy Storage. , 2022, Chemical reviews.
[5] R. Laine,et al. Synchrotron Radiation Spectroscopic Studies of Mg2+ Storage Mechanisms in High‐Performance Rechargeable Magnesium Batteries with Co‐Doped FeS2 Cathodes , 2022, Advanced Energy Materials.
[6] Bo Li,et al. Li+ additive accelerated structural transformation of MoS2 cathodes for performance-enhancing rechargeable Mg2+ batteries , 2022, Materials Today Energy.
[7] Liqiang Wang,et al. Atomically Dispersed Co–S–N Active Sites Anchored on Hierarchically Porous Carbon for Efficient Catalytic Hydrogenation of Nitro Compounds , 2022, ACS Catalysis.
[8] Cheng Wang,et al. Efficient Electrooxidation of 5‐Hydroxymethylfurfural Using Co‐Doped Ni3S2 Catalyst: Promising for H2 Production under Industrial‐Level Current Density , 2022, Advanced science.
[9] Aobing Du,et al. Charge-Compensation in Displacement Mg2+ Storage Cathode through Polyselenide Mediated Anion Redox. , 2022, Angewandte Chemie.
[10] Fan Zhang,et al. Rational Design Strategy of Novel Energy Storage Systems: Toward High-Performance Rechargeable Magnesium Batteries. , 2022, Small.
[11] Wei Zhang,et al. Cu-Doped Layered Double Hydroxide Constructs the Performance-Enhanced Supercapacitor Via Band Gap Reduction and Defect Triggering , 2022, ACS Applied Energy Materials.
[12] Jianping Xiao,et al. Enhancing the stability of cobalt spinel oxide towards sustainable oxygen evolution in acid , 2022, Nature Catalysis.
[13] Lei Wang,et al. PVP-Induced Synergistic Engineering of Interlayer, Self-doping, Active Surface and Vacancies in VS4 for Enhancing Magnesium Ions Storage and Durability , 2022, Energy Storage Materials.
[14] C. Cao,et al. Anionic Te-Substitution Boosting the Reversible Redox in CuS Nanosheet Cathodes for Magnesium Storage. , 2022, ACS nano.
[15] Yixiao Zhang,et al. Engineering Pt heterogeneous catalysts for accelerated liquid-solid redox conversion in Li-S batteries , 2022, Journal of Energy Chemistry.
[16] L. Bi,et al. Triggering interfacial activity of traditional La0.5Sr0.5MnO3 cathode with Co-doping for proton-conducting solid oxide fuel cells , 2022, Journal of Materials Chemistry A.
[17] C. Cao,et al. Constructing defect-rich unconventional phase Cu7.2S4 nanotubes via microwave-induced selective etching for ultra-stable rechargeable magnesium batteries , 2022, Chemical Engineering Journal.
[18] Youqi Zhu,et al. Engineering Kinetics-favorable 2D Graphene@CuS with Long-term Cycling Stability for Rechargeable Magnesium Batteries , 2021, Electrochimica Acta.
[19] C. Cao,et al. Microwave-Assisted Synthesis of Metallic V6O13 Nanosheet as High-Capacity Cathode for Magnesium Storage , 2021, Materials Letters.
[20] Chun‐Sing Lee,et al. Development and challenges of electrode materials for rechargeable Mg batteries , 2021 .
[21] Xiaolong Li,et al. A Superlattice-Stabilized Layered CuS Anode for High-Performance Aqueous Zinc-Ion Batteries. , 2021, ACS nano.
[22] O. Borodin,et al. Solvation sheath reorganization enables divalent metal batteries with fast interfacial charge transfer kinetics , 2021, Science.
[23] Qinghua Zhang,et al. A Pyrite Iron Disulfide Cathode with a Copper Current Collector for High‐Energy Reversible Magnesium‐Ion Storage , 2021, Advanced materials.
[24] Jiulin Wang,et al. An Efficient Bulky Mg[B(Otfe)4]2 Electrolyte and Its Derivatively General Design Strategy for Rechargeable Magnesium Batteries , 2021, ACS Energy Letters.
[25] M. Fichtner,et al. Accelerated Kinetics Revealing Metastable Pathways of Magnesiation-Induced Transformations in MnO2 Polymorphs , 2021, Chemistry of Materials.
[26] C. Cao,et al. Pulverization‐Tolerant CuSe Nanoflakes with High (110) Planar Orientation for High‐Performance Magnesium Storage , 2021, Advanced Functional Materials.
[27] Guihua Yu,et al. High-performance magnesium metal batteries via switching the passivation film into a solid electrolyte interphase , 2021, Energy & Environmental Science.
[28] Jiaqi Huang,et al. Hierarchical nanosheet-assembled copper sulfide microspheres as the cathode materials for rechargeable magnesium batteries , 2021 .
[29] G. Maurin,et al. MoS2/graphene heterostructure with facilitated Mg-diffusion kinetics for high-performance rechargeable magnesium batteries , 2021 .
[30] Rana Mohtadi,et al. The metamorphosis of rechargeable magnesium batteries , 2021 .
[31] A. Meng,et al. Mo-doped VS4 with interlayer-expanded and engineering sulfur vacancies as cathode for advanced magnesium storage , 2021 .
[32] Qinyou An,et al. Organic-Inorganic Superlattices of Vanadium Oxide@Polyaniline for High-Performance Mg-Ion Battery. , 2021, ChemSusChem.
[33] F. Bella,et al. An Overview on Anodes for Magnesium Batteries: Challenges towards a Promising Storage Solution for Renewables , 2021, Nanomaterials.
[34] Jiaqi Huang,et al. Constructing sheet-assembled hollow CuSe nanocubes to boost the rate capability of rechargeable magnesium batteries , 2021 .
[35] C. Cao,et al. Microwave-induced phase engineering of copper sulfide nanosheets for rechargeable magnesium batteries , 2021 .
[36] L. Mai,et al. Crystal defect modulation in cathode materials for non-lithium ion batteries: Progress and challenges , 2021 .
[37] M. Nakayama,et al. Structure Design of Long‐Life Spinel‐Oxide Cathode Materials for Magnesium Rechargeable Batteries , 2021, Advanced materials.
[38] R. Dominko,et al. Magnesium batteries: Current picture and missing pieces of the puzzle , 2020, Journal of Power Sources.
[39] Bifa Ji,et al. Recent Advances and Perspectives on Calcium‐Ion Storage: Key Materials and Devices , 2020, Advanced materials.
[40] L. Wan,et al. Rechargeable Aluminum-Sulfur Battery with Improved Electrochemical Performance by Cobalt-Containing Electrocatalyst. , 2020, Angewandte Chemie.
[41] C. Cao,et al. Cuprous Self-Doping Regulated Mesoporous CuS Nanotube Cathode Materials for Rechargeable Magnesium Batteries. , 2020, ACS applied materials & interfaces.
[42] Sarah Taragin,et al. Rationally Designed Vanadium Pentoxide as High Capacity Insertion Material for Mg‐Ion , 2020, Advanced Functional Materials.
[43] Li-zhen Fan,et al. Challenges and Recent Progress on Key Materials for Rechargeable Magnesium Batteries , 2020, Advanced Energy Materials.
[44] Shaojun Guo,et al. Recent Advances in Rechargeable Magnesium‐Based Batteries for High‐Efficiency Energy Storage , 2020, Advanced Energy Materials.
[45] G. Cui,et al. A highly reversible cuprous mediated cathode chemistry for magnesium batteries. , 2020, Angewandte Chemie.
[46] Zhongxue Chen,et al. Nanosheets assembling hierarchical starfish-like Cu2−xSe as advanced cathode for rechargeable Mg batteries , 2020 .
[47] G. Rothenberg,et al. Beyond Lithium-Based Batteries , 2020, Materials.
[48] Chenglong Zhao,et al. Iodine Vapor Transport-Triggered Preferential Growth of Chevrel Mo6S8 Nanosheets for Advanced Multivalent Batteries. , 2019, ACS nano.
[49] Xiao-dong Shen,et al. High‐Energy Interlayer‐Expanded Copper Sulfide Cathode Material in Non‐Corrosive Electrolyte for Rechargeable Magnesium Batteries , 2019, Advanced materials.
[50] C. Cao,et al. Microwave-assisted synthesis of CuSe nano-particles as a high -performance cathode for rechargeable magnesium batteries , 2019, Electrochimica Acta.
[51] C. Cao,et al. Anionic Se-Substitution toward High-Performance CuS1- x Sex Nanosheet Cathode for Rechargeable Magnesium Batteries. , 2019, Small.
[52] W. Ding,et al. Using CoS cathode materials with 3D hierarchical porosity and an ionic liquid (IL) as an electrolyte additive for high capacity rechargeable magnesium batteries , 2019, Journal of Materials Chemistry A.
[53] L. Mai,et al. Manganese ion pre-intercalated hydrated vanadium oxide as a high-performance cathode for magnesium ion batteries , 2019, Journal of Materials Chemistry A.
[54] Xiulin Fan,et al. Tuning Anionic Chemistry To Improve Kinetics of Mg Intercalation , 2019, Chemistry of Materials.
[55] Jingwei Xiang,et al. Ether-compatible sulfurized polyacrylonitrile cathode with excellent performance enabled by fast kinetics via selenium doping , 2019, Nature Communications.
[56] Jinping Liu,et al. Definitions of Pseudocapacitive Materials: A Brief Review , 2019, ENERGY & ENVIRONMENTAL MATERIALS.
[57] C. Cao,et al. Microwave-Assisted Synthesis of CuS Hierarchical Nanosheets as the Cathode Material for High-Capacity Rechargeable Magnesium Batteries. , 2019, ACS applied materials & interfaces.
[58] M. Fichtner,et al. Fast kinetics of multivalent intercalation chemistry enabled by solvated magnesium-ions into self-established metallic layered materials , 2018, Nature Communications.
[59] T. Chen,et al. Highly Branched VS4 Nanodendrites with 1D Atomic‐Chain Structure as a Promising Cathode Material for Long‐Cycling Magnesium Batteries , 2018, Advanced materials.
[60] L. Mai,et al. Magnesium storage performance and mechanism of CuS cathode , 2018 .
[61] Hongtao Qu,et al. An efficient organic magnesium borate-based electrolyte with non-nucleophilic characteristics for magnesium–sulfur battery , 2017 .
[62] Shasha Zheng,et al. Syntheses and Energy Storage Applications of MxSy (M = Cu, Ag, Au) and Their Composites: Rechargeable Batteries and Supercapacitors , 2017 .
[63] Jun Lu,et al. Fast kinetics of magnesium monochloride cations in interlayer-expanded titanium disulfide for magnesium rechargeable batteries , 2017, Nature Communications.
[64] M. Salanne,et al. Reversible magnesium and aluminium ions insertion in cation-deficient anatase TiO2. , 2017, Nature materials.
[65] D. Fang,et al. High-Performance Aluminum-Ion Battery with CuS@C Microsphere Composite Cathode. , 2017, ACS nano.
[66] C. Ling,et al. How General is the Conversion Reaction in Mg Battery Cathode: A Case Study of the Magnesiation of α-MnO2 , 2015 .
[67] S. Manzhos,et al. Insertion energetics of lithium, sodium, and magnesium in crystalline and amorphous titanium dioxide: A comparative first-principles study , 2015 .
[68] C. Sangregorio,et al. Copper sulfide nanocrystals with tunable composition by reduction of covellite nanocrystals with Cu+ ions. , 2013, Journal of the American Chemical Society.
[69] John Wang,et al. Pseudocapacitive Contributions to Electrochemical Energy Storage in TiO2 (Anatase) Nanoparticles , 2007 .
[70] R. Katiyar,et al. Kinetic analysis of the Li+ ion intercalation behavior of solution derived nano-crystalline lithium manganate thin films , 2005 .
[71] E. Levi,et al. Prototype systems for rechargeable magnesium batteries , 2000, Nature.
[72] J. A. Taylor,et al. Empirical atomic sensitivity factors for quantitative analysis by electron spectroscopy for chemical analysis , 1981 .
[73] R. Laine,et al. Rational design of high concentration electrolytes and MXene-based sulfur host materials toward high-performance magnesium sulfur batteries , 2022 .