长期从事新能源材料(包括:燃料电池、金属-空气电池、电解水制氢、电化学传感器等)相关的教学、科研工作;主持国家、省部级科研项目4项,以主要完成人参与6项;获授权多项专利,发表SCI论文80余篇(总被引超4500余次),其中以第一作者/通讯作者在Nano Energy, Journal of Materials Chemistry A, Journal of Energy Chemistry, Chemical Engineering Journal,ACS Applied Materials & Interfaces,Journal of Power Sources, Nanoscale, ACS Sustainable Chem. Eng, ACS Applied Nano Materials, Biosens. Bioelectron., Journal of colloid and interface science, Sensors and Actuators B: Chemical, Electrochim. Acta等能源、电化学类期刊上发表SCI论文40余篇(其中JCR1区论文超过20篇,高被引论文3篇)。2020-2022年连续3年入选全球前2%顶尖科学家榜单(榜单以Scopus数据库为依据,基于引用次数、H因子、HM因子等综合指标,根据其“生涯影响力”和“年度影响力”从近700万名科学家中遴选出世界排名前2%的科学家,分为22个领域和176个细分子领域。) |
1)一种从硫酸锌浸出液中除铜镉的方法,201810082532.2,授权时间:2019-04-12; 2)一种锌片置换制备海绵镉的装置,201721786058.9,授权时间:2018-08-21; 3)一种铁镍或铁铜电解水制氢催化剂的制备和使用方法,202211682936.8,申请日期:2022.11.01; 4)一种过渡金属硫化物催化剂的制备方法及应用,202410784280.3申请日期:2024.06.18; 5)氮掺杂碳纳米管包覆钴纳米颗粒复合材料的制备方法与应用,201911398485.3,申请日期:2019.12.30; |
1)Guo F, Liu Z, et al. Cobalt-embedded in ultrahigh boron and nitrogen codoped hierarchically porous carbon nanowires as excellent catalysts toward water splitting [J]. Chemical Engineering Journal, 2022, 446: 137111; 2)Liu T, Cai S, Zhao G, et al. Recycling valuable cobalt from spent lithium ion batteries for controllably designing a novel sea-urchin-like cobalt nitride-graphene hybrid catalyst: Towards efficient overall water splitting [J]. Journal of Energy Chemistry, 2021, 62: 440-450; 3)Li M, Liu Y, Han L, et al. A novel strategy for realizing high nitrogen doping in Fe3C-embedded nitrogen and phosphorus-co-doped porous carbon nanowires: efficient oxygen reduction reaction catalysis in acidic electrolytes [J]. Journal of materials chemistry A, 2019, 7(30): 17923-17936; 4)Li M, Liu T, Bo X, et al. A novel flower-like architecture of FeCo@NC-functionalized ultra-thin carbon nanosheets as a highly efficient 3D bifunctional electrocatalyst for full water splitting [J]. Journal of materials chemistry A, 2017, 5(11): 5413-5425; 5)Li M, Liu T, Bo X, et al. Hybrid carbon nanowire networks with Fe–P bond active site for efficient oxygen/hydrogen-based electrocatalysis [J]. Nano Energy, 2017, 33: 221-228. |