一、代表性研究项目 1. 磁取向技术制备高容量LiFePO4动力电池及其稳定性计算研究,国家自然科学基金委,2013.1至2015.12 2. 磁场取向技术制备掺杂型 LiFePO4动力电池及其性能研究,上海市科委,2011.4至2014.3 3. LiFexM1-xPO4的可控制备及脱/嵌锂特性研究,上海市教委,2011.1至2012.12 4. 高安全性锂电池储能关键材料的开发,上海科技成果转化促进会,2017.7至2018.6 5. 搪瓷用钢无毒试剂的改进研究,企业项目,2018.1至2018.12 6. 含镁储氢材料数值模拟计算及性能检测,企业项目,2017.10至2018.10 7. 高安全性锂电池储能关键材料的开发,企业项目,2017.7至2018.6 8. 钴氧化物/碳分级异质结构的生长机理及储锂性能研究,企业项目,2016.10至2018.12 9. 纳米储氢材料数值模拟计算及物性测试,企业项目,2015.1至2017.12 10. 不锈钢腐蚀分析,企业项目,2016.7至2016.9 11. 新型电池材料的制备技术开发,企业项目,2014.11至2015.6 12. 热处理产业深度分析,企业项目,2014.6至2014.12 二、代表性论文及成果 [1] D.K. Zhang, Y. Liu*, L. Wu, L.W.Feng, S.L. Jing, R. Zhang, M.L. Jin. Effect of Ti ion doping on electrochemical performance of Ni-rich LiNi0.8Co0.1Mn0.1O2 cathode material,Electrochimica Acta., 2019, 328: 135086-135097. [2] 张登科,刘艳,席玉坤,金双玲,张睿,金鸣林.钠离子电池电解质的研究进展[J].应用技术学报,2018,18(04):324-331. [3] Y.K. Xi, Y. Liu*, D.K. Zhang, S.L. Jin, R. Zhang, M.L. Jin. Comparative study of the electrochemical performance of LiNi0.5Co0.2Mn0.3O2 and LiNi0.8Co0.1Mn0.1O2 cathode materials for lithium ion batteries,Solid State Ionics, 2018, 327: 27-31. [4] Y.K. Xi, Y. Liu*, Z.J. Qin, S.L. Jin, D.K. Zhang, R. Zhang, M.L. Jin. Ultralong Cycling Stability of Cotton Fabric/LiFePO4 Composites as Electrode Materials for Lithium-ion Batteries,J. Alloys Compd., 2018, 737: 693-698. [5] H.Y. Guo, Y. Liu*, Y.K. Xi, C. Xu, Q. Lv. Investigation on High Performance LiFePO4 Nanoplates with the {010} Face Prominent for Lithium Battery Cathode Materials. Solid State Ionics, 2016, 298: 44-50. [1] Y. Liu, X.G. Zhang, C. Chang, D. Zhang, Y. Wu. Promotive effect of multi-walled carbon nanotubes on Co3O4 nanosheets and their application in lithium-ion battery. Prog. Nat. Sci., 2014, 24:184-190. [2] Y. Liu, X.G. Zhang. Surfactant-assisted microemulsion approach of chrysanthemum-like Co3O4 microspheres and their application in lithium-ion battery. Solid State Ionics, 2013, 231: 63-68. [3] Y. Liu, C. Chang, D. Zhang, Y. Wu. Improved electrochemical properties by lithium insertion into Co3O4 in aqueous LiOH solution. Prog. Nat. Sci., 2013, 23(6):593-597. [4] Y. Liu, X.G. Zhang, Y. Wu. Hydrothermal synthesis of Co3O4 with different morphologies and the improvement of lithium storage properties. Mater. Chem. Phys., 2011, 128: 475-482. [5] Y. Liu, X.G. Zhang, Y. Wu. Electrochemical behavior of Co3O4 microspheres in aqueous LiOH solution. Rare Meterls, 2011, 30: 90-93. [6] Y. Liu, C.H. Mi, C.Z. Yuan, X.G. Zhang. Improvement of electrochemical and thermal stability of LiFePO4 cathode modified by CeO2. J. Electroanal. Chem., 2009, 628: 73-80. [7] Y. Liu, X.G. Zhang. Effect of calcination temperature on the morphology and electrochemical properties of Co3O4 for lithium-ion battery. Electrochim. Acta, 2009, 54: 4180-4185. [8] Y. Liu, C.H. Mi, L.H. Su, X.G. Zhang. Hydrothermal Synthesis of Co3O4 Microspheres as anode material for lithium-ion batteries. Electrochim. Acta, 2008, 53: 2507-2513. [9] Y. Liu, X.G. Zhang. Hydrothermal synthesis of Co3O4 with different morphologies and their electrochemical behaviors. 60th annual meeting of the international society of electrochmistry, 2009, Beijing. [10] L.H. Su, X.G. Zhang, C.H. Mi, Y. Liu. Insights into the electrochemistry of layered double hydroxide containing cobalt and aluminum elements in lithium hydroxide aqueous solution. J. Power Sources, 2008, 179: 388-394. [11] 刘俊,刘艳,徐春梅,李小武,武英.一种Ti3Al基高温合金的氧化行为研究.硅酸盐通报, 2011, 30(04):982-987. |