教学科研成果
获奖情况:
(1)《基于新型三维纳米结构电极的锂二次电池基础研究》,中国电子学会科学技术奖,自然科学二等奖,第二完成人
(2)《纳米复合含硫正极材料构筑与锂硫二次电池性能调控》,北京市科学技术奖,自然科学奖二等奖,第三完成人
(3)《走进材料——从原子到器件》,国家级一流本科课程,负责人
(4)《持续改进机制建设和方法创新促进材料科学与工程一流专业建设》,校级教学成果奖一等奖,第四完成人
(5)《对标“两性一度”的材料通识课线上-线下混合式教学改革》,校级教学成果奖二等奖,第一完成人
发明专利:
(1)一种超高倍率钠基双离子电池复合正极材料及其制备方法,CN202410558390.8
(2)一种还原氧化石墨烯/类石墨相氮化碳复合无纺布及其制备方法和应用,CN202211640413.7
(3)一种基于亲锂三维碳基集流体的锂金属负极制备方法, CN202110000694.9
(4)基于交流阻抗法的锂离子电池失效分析方法,CN201811441438.8
(5)一种钛酸锂负极材料及其制备方法,CN201811217853.5
代表性论文:
[1] Liu S., Yan Y. Y., Zhang S. C., Yan D. Z., Jin C., Yin S., Lu Q., Ren W. W., Zhang Q. F., Xing Y. L. A MOF-Reinforced Hybrid Crosslinked Quasi-Solid Electrolytes via In Situ Polymerization for Stable Lithium Metal Batteries [J]. Energy Storage Materials, 2026, 86: 9.
[2] Yin S., Zhang S. C., Yan D. Z., Yan Y. Y., Ren W. W., Zhang N. B., Zhang Q. F., Xing Y. L. p-Band Center Modulation in High-Performance Cathode and Stable Composite Lithium Anode Enabling Ah-Scale Flexible Li-O2 Batteries [J]. ACS Nano, 2025, 19(48): 41086-99.
[3] Xia J., Lv M. Y., Zhang S. C., Xing Y. L., Zhou G. M. Rational design of two-dimensional MXene-based materials for lithium-sulfur batteries [J]. Materials Science & Engineering R-Reports, 2025, 164: 36.
[4] Liu S., Yan Y. Y., Zhang S. C., Yan D. Z., Cai Y. C., Yin S., Lu Q., Ren W. W., Zhang Q. F., Xing Y. L. A 3D interconnected functionalized metal organic framework-reinforced solid electrolyte by in-situ polymerization for stable lithium metal battery [J]. Energy Storage Materials, 2025, 80: 9
[5] Yan D. Z., Zhang S. C., Han F. C., Guan X. G., Yin S., Yang P. H., Liu X. J., Zhang Q. F., Xing Y. L. Vacancy occupation-phase transformation synergistic regulation toward high-performance lithium-sulfur batteries [J]. Chemical Engineering Journal, 2025, 524: 9.
[6] Han F. C., Yan D. Z., Guan X. G., Lu Q., Yin S., Yan Y. Y., Zhou H. L., Yang P. H., Zhang Q. F., Zhang S. C., Xia J., Xing Y. L. Self-assembled 3D CoSe-based sulfur host enables high-efficient and durable electrocatalytic conversion of polysulfides for flexible lithium-sulfur batteries [J]. Energy Storage Materials, 2024, 71: 10.
[7] Xia J., Gao R. H., Yang Y., Tao Z., Han Z. Y., Zhang S. C., Xing Y. L., Yang P. H., Lu X., Zhou G. M. TinO2n-1/MXene Hierarchical Bifunctional Catalyst Anchored on Graphene Aerogel toward Flexible and High-Energy Li-S Batteries [J]. ACS Nano, 2022, 16(11): 19133-44.
[8] Xia J., Chen W. X., Yang Y., Guan X. G., Yang T., Xiao M. J., Zhang S. C., Xing Y. L., Lu X., Zhou G. M. In-situ growth of ultrathin sulfur microcrystal on MXene-based 3D matrice for flexible lithium-sulfur batteries [J]. Ecomat, 2022, 4(3): 13.
[9] Yang Y., Xia J., Guan X. G., Wei Z. W., Yu J. Y., Zhang S. C., Xing Y. L., Yang P. H. In Situ Growth of CoP Nanosheet Arrays on Carbon Cloth as Binder-Free Electrode for High-Performance Flexible Lithium-Ion Batteries [J]. Small, 2022, 18(51): 10.
[10] Yang T., Xia J., Piao Z. H., Yang L., Zhang S. C., Xing Y. L., Zhou G. M. Graphene-Based Materials for Flexible Lithium-Sulfur Batteries [J]. ACS Nano, 2021, 15(9): 13901-23.