物理学
师资队伍
唐涛(校外)

一、基本情况

唐涛,男,湖北仙桃人,19819月出生,理学博士,教授,硕士研究生导师。主持国家自然科学基金1项,广西自然科学基金项目3项。现主要研究半导体器件、半导体光电特性和电光调控,并尝试在计算机视觉/深度学习与植物保护的融合领域取得突破。欢迎对这些领域有兴趣的同学联系!

联系地址:广西桂林市建干路12号科创中心517/桂林航天工业学院启天楼A503

电子邮箱:tangtao@glut.edu.cn/tangt@guat.edu.cn

二、主要经历

  • 2024.1~:桂林理工大学物理与电子信息工程学院硕导、桂林航天工业学院人工智能学院教授

  • 2002.72024.1:桂林理工大学物理与电子信息工程学院 助教、讲师、副教授、教授 、硕导

  • 2018.42019.4:新加坡南洋理工大学物理与应用物理系 访问博士后

  • 2012.92015.6:南京大学物理学院 博士

  • 2006.92011.6:桂林电子科技大学信息与通信学院 硕士

  • 1998.92002.6:武汉大学物理科学与技术学院 学士

    三、主持科研项目

  1. 小尺寸CsPbBr3量子点的制备及光学特性,广西自然科学基金面上项目,2025/032028/02,主持。

  2. 超高镍无钴锂电池声学特性分析,横向项目,2024/11-2026/11,主持。

  3. 铅卤钙钛矿量子点中电荷量子化注入的光学探测,桂林航天工业学院科研启动基金,2024/062032/05,主持。

  4. 新型有机铅卤化物钙钛矿的制备及其光学性能研究,广西自然科学基金面上项目,2019/032022/02,主持完成。

  5. 利用氟辅助调控石墨烯氮掺杂及其磁性,桂林理工大学科研启动项目,2018/092023/12,主持完成。

  6. 石墨烯基面上sp3畴分布的调控与磁性研究,国家自然科学青年基金,2017/012019/12,主持完成。

  7. 氮掺杂的羟基化石墨烯的制备及其磁耦合研究,广西自然科学基金青年项目,2015/092018/08,主持完成。

    四、主要论文

    [1] Tang T.; Wang H.; Yi X.; Chen W.; Jiang L.; Deng X.; Li M.; Wen J.; Hua F.; Liu F.; Synthesize ultra-small CsPbBr3 quantum dots with deep blue emission by using NH4Br as surface ligand. Advanced Optical Materials, 2026, 14: e03178.

    [2] Wen, J.; Du, X.; Hua, F.; Gu, Y.; Li, M.; Tang, T*. PVP passivated δ-CsPbI3: Vacancy induced visible-light absorption and efficient photocatalysis. Molecules, 2024, 29(7): 1670.

    [3] Tang, L.; Chen, J.; Tang, T.; Wang, L.; Xiong, Z. Actively modulating near-infrared absorption of monolayer graphene in a compound grating-coupled waveguide structure. Physica E: Low-dimensional Systems and Nanostructures, 2023, 158: 115889.

    [4] Hua, F.; Du, X.; Huang, Z.; Gu, Y.; Wen, J.; Liu, F.; Chen, J.; Tang, T. * Self-powered photodetector based on a CsPbBr3/n-Si Schottky junction. Journal of the Optical Society of America B, 2023, 41(1): 55-61.

    [5] Chen, J.; Tang, L.; Wang, L.; Tang, T.; Liang, Q. Diabolical points in coupled ridge resonators. Journal of the Optical Society of America B, 2023, 40(2): 293-300.

    [6] Huang, Z.; Qin, H.; Wen, J.; Jiang, L.; Hu, G.; Li, M.; Chen, J.; Liu, F.; Tang, T. *Observation of abnormal photoluminescence upon structural phase competence and transition-induced disorder of stable α-FAPbI3. Optical Materials Express, 2023, 13(1): 263-271.

    [7] Li, J.; Li, X.; Fan, X.; Tang, T.; Li, M.; Zeng, Y.; Wang, H.; Wen, J.; Xiao, J. Holey graphene anchoring of the monodispersed nano-sulfur with covalently-grafted polyaniline for lithium sulfur batteries. Carbon, 2022, 188: 155-165.

    [8] Guo, Z.; Ni, S.; Wu, H.; Wen, J.; Li, X.; Tang, T. *; Li, M.; Liu, M. Designing nitrogen and phosphorus co-doped graphene quantum dots/g-C3N4 heterojunction composites to enhance visible and ultraviolet photocatalytic activity. Applied Surface Science, 2021, 548: 149211.

    [9] Ni, S.; Qin, H.; Wen, J.; Li, X.; Li, M.; Tang, T. *; Liu, F. Burstein-Moss shift of lead halide perovskite quantum dots induced by electron injection from graphene oxide. Applied Surface Science, 2021, 545: 149003.

    [10] Wu, H.; Guo, Z.; Li, M.; Hu, G.; Tang, T. *; Wen, J.; Li, X.; Huang, H. Enhanced pseudocapacitive performance of MoS2 by introduction of both N-GQDs and HCNT for flexible supercapacitors. Electrochimica Acta, 2021, 370: 137758.

    [11] Luo, Z.; Tao, Z.; Li, X.; Xu, D.; Xuan, C.; Wang, Z.; Tang, T. *; Wen, J.; Li, M.; Xiao, J. Ferroconcrete-Like Helical Carbon Nanotube/Reduced Graphene Oxide Heterostructure 3D Networks as Sulfur Hosts for High-Performance Li-S Batteries. Frontiers in Energy Research, 2020, 7: 157.

    [12] Ke, W.; He, S.; Le, W.; Liu, Y.; Zhang, F.; Tang, T. *; Zheng, Y.; Chen, J.; Chen, M.; Cao, D. Synthesis of nitrogen-superdoped and graphene fiber-supported three-dimensional graphene foam for supercapacitors. Journal of Materials Science, 2020, 55: 6952-6962.

    [13] Tang, T.; Wu, L.; Gao, S.; He, F.; Li, M.; Wen, J.; Li, X.; Liu, F. Universal Effectiveness of Inducing Magnetic Moments in Graphene by Amino-Type sp3-Defects. Materials, 2018, 11(4): 616.

    [14] Li, X.; Xu, Y.; Hu, G.; Luo, Z.; Xu, D.; Tang, T. *; Wen, J.; Li, M.; Zhou, T.; Cheng, Y. Self-assembled formation of conjugated 3D reduced graphene oxide-wrapped helical CNTs nanostructure and nitrogen-doped using photochemical doping for high-performance supercapacitor electrodes. Electrochimica Acta, 2018, 280: 33-40.

    [15] Luo, Y.; Li, M.; Hu, G.; Tang, T.; Wen, J.; Li, X.; Wang, L. Enhanced photocatalytic activity of sulfur-doped graphene quantum dots decorated with TiO2 nanocomposites. Materials Research Bulletin, 2018, 97: 428-435.

    [16] Xu, Y.; Feng, Y.; Li, X.; Hu, G.; Luo, Y.; Sun, L.; Tang, T. ; Wen, J.; Wang, H.; Li, M. Direct Formation of Reduced Graphene Oxide and Graphene Quantum dot Composites by Using Ascorbic Acid as High Performance Binder-Free Supercapacitor Electrodes. International Journal of Electrochemical Science, 2017, 12: 8820-8831.

    [17] Xu, Y.; Li, X.; Hu, G.; Wu, T.; Luo, Y.; Sun, L.; Tang, T. *; Wen, J.; Wang, H.; Li, M. Graphene oxide quantum dot-derived nitrogen-enriched hybrid graphene nanosheets by simple photochemical doping for high-performance supercapacitors. Applied Surface Science, 2017, 422: 847-855.

    [18] Sun, L.; Luo, Y.; Li, M.; Hu, G.; Xu, Y.; Tang, T.; Wen, J.; Li, X.; Wang, L. Role of Pyridinic-N for Nitrogen-doped graphene quantum dots in oxygen reaction reduction. Journal of Colloid and Interface Science, 2017, 508: 154-158.

    [19] Luo, Y.; Li, M.; Sun, L.; Xu, Y.; Hu, G.; Tang, T.*; Wen, J.; Li, X. Tuning the photoluminescence of graphene quantum dots by co-doping of nitrogen and sulfur. Journal of Nanoparticle Research, 2017, 19(1): 9.

    [20] Luo, Y.; Xu, Y.; Li, M.; Sun, L.; Hu, G.; Tang, T.; Wen, J.; Li, X. Tuning the Photoluminescence of Graphene Quantum Dots by Fluorination. Journal of Nanomaterials, 2017, 2017: 9682846.

    [21] Li, X.; Tang, T.*; Li, M.; He, X. Nitrogen-doped graphene films from simple photochemical doping for n-type field-effect transistors. Applied Physics Letters, 2015, 106(5).

    [22] He, X.; Tang, T.; Liu, F.; Tang, N.; Li, X.; Du, Y. Photochemical doping of graphene oxide thin film with nitrogen for photoconductivity enhancement. Carbon, 2015, 94: 1037-1043.

    [23] Tang, T.; Tang, N.; Zheng, Y.; Wan, X.; Liu, Y.; Liu, F.; Xu, Q.; Du, Y. Robust magnetic moments on the basal plane of the graphene sheet effectively induced by OH groups. Scientific Reports, 2015, 5: 8448.

    [24] Tang, T.; Liu, F.; Liu, Y.; Li, X.; Xu, Q.; Feng, Q.; Tang, N.; Du, Y. Identifying the magnetic properties of graphene oxide. Applied Physics Letters, 2014, 104(12): 123104.

    [25] Liu, F.; Tang, T.; Feng, Q.; Li, M.; Liu, Y.; Tang, N.; Zhong, W.; Du, Y. Tuning photoluminescence of reduced graphene oxide quantum dots from blue to purple. Journal of Applied Physics, 2014, 115(16): 164307.

    [26] Liu, F.; Tang, N.; Tang, T.; Liu, Y.; Feng, Q.; Zhong, W.; Du, Y. Photochemical doping of graphene oxide with nitrogen for photoluminescence enhancement. Applied Physics Letters, 2013, 103(12): 123108.

    五、主要专利

    [1] Tang, T.; Du, X.; Hua, F.; Wen, J. A Water-Stable Perovskite CsPbI₃@PVP Photocatalyst and Its Preparation Method and Application. Chinese Invention Patent No. ZL 202310649497.9, granted 2026.

    [2] Cao, X.; Wen, J.; Tang, T.; Li, M.; Li, X.; Yu, J.; Cui, L. Patterned electron source device based on anodic aluminum oxide template and manufacturing method thereof. Chinese Invention Patent No. ZL202110075650.2, granted 2021.

    [3] Huang, Z.; Tang, T.; Wen, J.; Li, M. Perovskite thin film coating equipment. Chinese Utility Model Patent No. ZL202122590826.6, granted 2021.

    [4] Tang, T.; Li, M.; Li, X.; Wen, J. Preparation method of water-soluble graphene. Chinese Invention Patent No. ZL201710844158.0, granted 2020.

地址:桂林市雁山区雁山街319号
邮编:541006
电话:0773-3696668