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山东大学
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个人信息
党锋
性别:男
在职信息:在职
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在职信息:在职
所在单位:材料科学与工程学院
入职时间:2014-05-12
所属院系: 材料科学与工程学院
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[1] 杨若楠. Electrocatalysis synergism motivated by low energy d-orbitals at high spin state for long-lifespan Li-O2 batteries. Applied Catalysis B-Environment and Energy, 2026.
[2] Huancheng Huang. Surface Phosphatization for a Sawdust-Derived Carbon Catalyst as Kinetics Promoter and Corrosion Preventer in Lithium–Oxygen Batteries. Advanced Functional Materials, 2021.
[3] 何彪. MoSe2@CNT Core–Shell Nanostructures as Grain Promoters Featuring a Direct Li2O2 Formation/Decomposition Catalytic Capability in Lithium-Oxygen Batteries. Advanced Energy Materials, 2021.
[4] Sun, Chaoyang. Modulating the d-Band Center of RuO2 via Ni Incorporation for Efficient and Durable Li–O2 batteries. small, 2024.
[5] 张修齐. Electronic State Synergy of Dinuclear Catalytic Center in Wolframite-type (CoMo)octMotetO Activates Efficient d-p/π* Interaction During Multiphasic Electrocatalysis in Full Range Ambient Air for Li-Air Battery. Advanced Functional Materials, 2025.
[6] Sun, Chaoyang. Partial-Oxidation Enabling Homologous Ru/RuO2 Heterostructures With Proper d-Dand Center as Efficient and Durable Cathode Catalysts for Ultralong Cycle Life in Li-O2 Batteries. advanced energy materials, 2024.
[7] 于涵. Homogeneous In-Plane Lattice Strain Enabling d-Band Center Modulation and Efficient d–π Interaction for an Ag2Mo2O7 Cathode Catalyst With Ultralong Cycle Life in Li-O2 Batteries. Advanced Energy Materials, 2024.
[8] 李霞. A high-entropy cathode catalyst with multiphase catalytic capability of Li2O2 and Li2CO3 enabling ultralong cycle life in Li-air batteries. 能源环境科学, 2024.
[9] 张冬梅. Mutually Activated 2D Ti0.87O2/MXene Monolayers Through Electronic Compensation Effect as Highly Efficient Cathode Catalysts of Li-O2 Batteries. Advanced Functional Materials, 2024.
[10] 李娜. Development and application of phase diagrams for Li-ion batteries using CALPHAD approach. Progress in Natural Science-Materials International, 2019.
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