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钱逸泰
博士生导师 硕士生导师
任职 : 中国科学院院士
性别:男
毕业院校:山东大学
在职信息:不在职
所在单位:化学与化工学院
所属院系: 化学与化工学院
学科:无机化学
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[21] 张乾亮. Synthesis of carbon nanotubes-supported porous silicon microparticles in low-temperature molten salt for high-performance Li-ion battery anodes. NANO RESEARCH, 2022.
[22] 貟元兴. Cu3P nanoparticles confined in nitrogen/phosphorus dual-doped porous carbon nanosheets for efficient potassium storage. Journal of Energy Chemistry, 66, 339, 2022.
[23] 貟元兴. Zero-Strain Structure for Efficient Potassium Storage Nitrogen-Enriched Carbon Dual-Confinement CoP Composite. Advanced Energy Materials, 12, 2022.
[24] 王斌. Niobium Diboride Nanoparticles Accelerating Polysulfide Conversion and Directing Li2S Nucleation Enabled High Areal Capacity Lithium-Sulfur Batteries. ACS nano, 16, 4947, 2022.
[25] 孔珍. Iron Selenide-Based Heterojunction Construction and Defect Engineering for Fast Potassium/Sodium-Ion Storage. Small, 18, 2022.
[26] 张波. Petroleum coke derived porous carbon/NiCoP with efficient reviving catalytic and adsorptive activity as sulfur host for high performance lithium-sulfur batteries. NANO RESEARCH, 2022.
[27] 孙秀萍. Space-confined growth of Bi2Se3 nanosheets encapsulated in N-doped carbon shell lollipop-like composite for full/half potassium-ion and lithium-ion batteries. NANO TODAY, 43, 2022.
[28] 李川川. Manipulating Electrocatalytic Polysulfide Redox Kinetics by 1D Core-Shell Like Composite for Lithium-Sulfur Batteries. advanced energy materials, 12, 2103915, 2022.
[29] 王璐. A porous polycrystalline NiCo2Px as a highly efficient host for sulfur cathodes in Li-S batteries. Journal of Materials Chemistry A, 9, 23149, 2021.
[30] 陈晓霞. Rational Design of Tungsten Selenide @ N-Doped Carbon Nanotube for High-Stable Potassium-Ion Batteries. Small, 18, 2022.
[31] 王斌. Ultrafine zirconium boride nanoparticles constructed bidirectional catalyst for ultrafast and long-lived lithium-sulfur batteries. Energy Storage Materials, 45, 130, 2022.
[32] 安永灵. Heteroatom-doped 3D porous carbon architectures for highly stable aqueous zinc metal batteries and non-aqueous lithium metal batteries. Chemical Engineering Journal, 400, 2020.
[33] 魏传亮. Design of safe, long-cycling and high-energy lithium metal anodes in all working conditions: Progress, challenges and perspectives. Energy Storage Materials, 38, 157, 2021.
[34] 魏传亮. Covalent Organic Frameworks and Their Derivatives for Better Metal Anodes in Rechargeable Batteries. ACS nano, 15, 12741, 2021.
[35] 安永灵. Scalable and Controllable Synthesis of Interface-Engineered Nanoporous Host for Dendrite-Free and High Rate Zinc Metal Batteries. ACS nano, 15, 11828, 2021.
[36] 田园. Micron-Sized Nanoporous Vanadium Pentoxide Arrays for High-Performance Gel Zinc-Ion Batteries and Potassium Batteries. Chemistry of Materials, 32, 4054, 2020.
[37] 钱壹. Constructing ultrafine lithiophilic layer on MXene paper by sputtering for stable and flexible 3D lithium metal anode. Chemical Engineering Journal, 421, 2021.
[38] 田园. Reversible zinc-based anodes enabled by zincophilic antimony engineered MXene for stable and dendrite-free aqueous zinc batteries. Energy Storage Materials, 41, 343, 2021.
[39] 安永灵. Dealloying: An effective method for scalable fabrication of 0D, 1D, 2D, 3D materials and its application in energy storage. NANO TODAY, 37, 2021.
[40] 安永灵. Two-Dimensional Silicon/Carbon from Commercial Alloy and CO2 for Lithium Storage and Flexible Ti3C2Tx MXene-Based Lithium-Metal Batteries. ACS nano, 14, 17574, 2020.
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