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冯金奎
教授 博士生导师 硕士生导师
性别:男
毕业院校:武汉大学
学历:博士研究生毕业
学位:理学博士学位
在职信息:在职
所在单位:材料科学与工程学院
入职时间: 2012-02-29
所属院系: 材料科学与工程学院
办公地点:山东大学千佛山校区综合科研楼
联系方式:
6817cbdefa9ce48227218d702e2e20673f1cd9ab957e16b682fa6b905fbcf2b95420ed8ecfce7930ba89baaf5d63cd1651a4a6c7ed19f34e61d4f5827611fae813bb5e72634a0d758491be7813477d25391c8fef873c863b9bd93b09f00753c1a1af7ed6959ba87edb7e88313c7a40c29023907b150d126b1d064dbf4bb578ea
电子邮箱:
6817cbdefa9ce48227218d702e2e20673f1cd9ab957e16b682fa6b905fbcf2b95420ed8ecfce7930ba89baaf5d63cd1651a4a6c7ed19f34e61d4f5827611fae813bb5e72634a0d758491be7813477d25391c8fef873c863b9bd93b09f00753c1a1af7ed6959ba87edb7e88313c7a40c29023907b150d126b1d064dbf4bb578ea
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[1] 宗金贵. Engineering twin structures and substitutional dopants in ZnSe0.7Te0.3 anode material for enhanced sodium storage performance. 自然通讯, 16, 2025.
[2] 袁佳. Alloying Strategy Regulating Size and Electronic Structure of Mo0.25Nb0.75Se2 to Achieve High-Performance Lithium-Sulfur Batteries. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2024.
[3] 宋宁. Phase and Orbital Engineering Effectuating Efficient Adsorption and Catalysis toward High-Energy Lithium-Sulfur Batteries. ADVANCED MATERIALS, 2025.
[4] 魏传亮. Rapid Growth of Bi2Se3 Nanodots on MXene Nanosheets at Room Temperature for Promoting Sulfur Redox Kinetics. Inorganic chemistry, 2024.
[5] 魏传亮. One-step growth of ultrathin CoSe2 nanobelts on N-doped MXene nanosheets for dendrite-inhibited and kinetic-accelerated lithium-sulfur chemistry. science bulletin, 2024.
[6] 张华. Atomically Dispersed Co–Ru Dimer Catalyst Boosts Conversion of Polysulfides toward High-Performance Lithium–Sulfur Batteries. 先进材料, 2500950, 2025.
[7] 王鹏. Niobium Phosphide-Induced Sulfur Cathode Interface with Fast Lithium-Ion Flux Enables Highly Stable Lithium-Sulfur Catalytic Conversion. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2025.
[8] Li, Bin. Origin of Phase Engineering CoTe2 Alloy Toward Kinetics-Reinforced and Dendrite-Free Lithium?Sulfur Batteries. ADVANCED MATERIALS, 2023.
[9] Zhang, Zhengchunyu. Ligand Engineering Regulation toward Zn Ions and Zn Substrate for All-Climate Zn Metal Batteries. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2025.
[10] 王鹏. WP Nanocrystals on N,P Dual-Doped Carbon Nanosheets with Deeply Analyzed Catalytic Mechanisms for Lithium-Sulfur Batteries. CCS CHEMISTRY, 5, 397-411, 2023.
[11] . Carbon-Sphere Supported Cu9S5/NiS2 Involving Inter-Doping to Promote Fast and Stable Potassium Ion Storage. Advanced functional materials, 2025.
[12] 王正冉. Ultrasmall CoFe Bimetallic Alloy Anchored on Fluoride-Free MXene by One-Pot Etching Strategy for the Barrier-Adsorption-Catalyst Functions of Polysulfides in Lithium-Sulfur Batteries. Advanced Functional Materials, 2024.
[13] 李媛. Boosting polysulfides conversion kinetics through heterostructure optimization and electrons redistribution for robust lithium-sulfur batteries. Chemical Engineering Journal, 497, 2024.
[14] 刘俊杰. Advanced electrolytes for sodium metal batteries under extreme conditions. 能源存储材料, 72, 2024.
[15] 倪志玮. Tri-anions regulated solvation structure in intrinsically nonflammable phosphate-based electrolytes for stable lithium metal batteries. 能源存储材料, 71, 2024.
[16] 满泉言. Molecular-Level Design of High Flash Point Solvents Enables High-Safety and Dual-Function Chemical Presodiation of Hard Carbon and Alloy Anodes for High-Performance Sodium-Ion Batteries. advanced energy materials, 2024.
[17] 满泉言. Rational design of F, N-rich artificial interphase via chemical prelithiation initiation strategy enabling high coulombic efficiency and stable micro-sized SiO anodes. JOURNAL OF ENERGY CHEMISTRY, 92, 224-232, 2024.
[18] 田康东. Heterogenization-Activated Zinc Telluride via Rectifying Interfacial Contact to Afford Synergistic Confinement-Adsorption-Catalysis for High-Performance Lithium-Sulfur Batteries. small, 2024.
[19] 王正冉. MXene-Based Current Collectors for Advanced Rechargeable Batteries. ADVANCED MATERIALS, 2023.
[20] 戴晓雯. MXene-based sodium-sulfur batteries: synthesis, applications and perspectives. Rare Metals, 2024.
共 345 条 1/18
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