姓名 : 张博威
性别 : 1
详细地址 : 北京市海淀区学院路30号北京科技大学新材料技术研究院腐蚀楼513
邮编 : 100083
电话 : 010-62333931转513
电子邮件 : bwzhang@ustb.edu.cn
个人简介 : 张博威,男,1987年生,副研究员,硕士生导师。毕业于新加坡南洋理工大学材料科学与工程学院,获博士学位;长期从事纳米尺度的材料腐蚀机理以及功能纳米材料的制备与应用等方面的研究;担任“天津材料环境腐蚀教育部野外科学观测研究站”副站长,京津冀海洋材料研究中心副主任,CSTM-FC92金属材料腐蚀与防护领域委员会常务副秘书长,国际期刊《International Journal of Minerals, Metallurgy and Materials》青年编委等。先后主持国家自然科学基金、国家科技基础资源调查专项课题任务、中央高校基本科研业务费、中国博士后科学基金等多个项目。以第一/通讯作者在Applied Catalysis B: Environmental, Small等高水平期刊上发表论文15篇,合作SCI论文30余篇;担任Applied Catalysis B: Environmental, Corrosion Science, Chemical Engineering Journal, Applied Surface Science, International Journal of Hydrogen Energy等十余种国际知名刊物的审稿人。 研究方向:1. 材料腐蚀行为的原位表征;2. 新型耐蚀合金的设计及耐蚀机理;3. 新能源材料的制备及应用。 部分代表性论文:[1] Huang, K.‡, Zhang, B.‡, Wu, J.*, Peng, D., Cao, X., Zhang, Z., Li Z., Huang Y.*. Exploring the Impact of Atomic Lattice Deformation on Oxygen Evolution Reaction based on a Sub 5 nm Pure Face-centred Cubic High-entropy Alloy Electrocatalyst. Journal of Materials Chemistry A,2020,4: DOI: 10.1039/D0TA02125C.[2] Li, C., Zhang, B.*, Li, Y., Hao, S., Cao, X., Yang, G., ... & Huang, Y. (2019). Self-assembled Cu-Ni bimetal oxide 3D in-plane epitaxial structures for highly efficient oxygen evolution reaction. Applied Catalysis B: Environmental, 244, 56-62.[3] Li, C., Rao, Y., Zhang, B.*, Huang, K., Cao, X., Peng, D., ... & Huang, Y. (2019). Extraordinary catalysis induced by titanium foil cathode plasma for degradation of water pollutant. Chemosphere, 214, 341-348.[4] Li, C., Cao, X., Li, W., Zhang, B.* & Xiao, L. (2019) Co-synthesis of CuO-ZnO nanoflowers by low voltage liquid plasma discharge with brass electrode. Journal of alloys and compounds, 773, 762-769.[5] Zhang, Bo., Yang, G., Li, C., Huang, K., Wu, J., Hao, S., ... & Huang, Y. (2018) Electrochemical behaviors of hierarchical copper nano-dendrites in alkaline media. Nano research, 11(8): 4225-4231.[6] Zhang, B., Li, C., Yang, G., Huang, K., Wu, J., Li, Z., ... & Huang, Y. (2018). Nanostructured CuO/C hollow shell@ 3D copper dendrites as a highly efficient electrocatalyst for oxygen evolution reaction. ACS applied materials & interfaces, 10(28), 23807-23812.[7] Zhang, B., Yang, G., Li, C., Huang, K., Wu, J., Hao, S., ... & Huang, Y. (2018). Phase controllable fabrication of zinc cobalt sulfide hollow polyhedrons as high-performance electrocatalysts for the hydrogen evolution reaction. Nanoscale, 10.1774-1778.[8] Zhang, B., Chen, B., Wu, J., Hao, S., Yang, G., Cao, X., ... & Huang, Y. (2017). The Electrochemical Response of Single Crystalline Copper Nanowires to Atmospheric Air and Aqueous Solution. Small, 13(10): 1603411.[9] Zhang, B., Hao, S., Wu, J., Li, X., Li, C., Di, X., & Huang, Y. (2017). Direct evidence of passive film growth on 316 stainless steel in alkaline solution. Materials Characterization, 131,168-174.[10] Zhang, B., Hao, S., Xiao, D., Wu, J., & Huang, Y. (2016). Templated formation of porous Mn2O3 octahedra from Mn-MIL-100 for lithium-ion battery anode materials. Materials & Design, 98, 319-323.[11] Zhang, B., Hao, S., Wu, J., Li, X., & Huang, Y. (2016). Evidence of a nanosized copper anodic reaction in an anaerobic sulfide aqueous solution. RSC Advances, 6(24), 19937-19943.[12] Zhang, B., Wu, J., Peng, D., Li, X., & Huang, Y. (2016). In-situ Scanning Micro-Electrochemical Characterization of Corrosion Inhibitors on Copper. Int. J. Electrochem. Sci, 11, 4110-4119.[13] Zhang, B., Wu, J., Li, X., Liu, H., Yadian, B., Ramanujan, R. V., ... & Huang, Y. (2014). Passivation of Nickel Nanoneedles in Aqueous Solutions. The Journal of Physical Chemistry C, 118(17), 9073-9077.[14] Yang, G., Zhang, B.‡, Feng, J., Lu, Y., Wang, Z., Aravindan, V., ... & Huang, Y. (2018). Morphology controlled lithium storage in Li3VO4 anodes. Journal of Materials Chemistry A, 6.456-463.[15] Hao, S., Zhang, B.‡, Feng, J., Liu, Y., Ball, S., Pan, J., ... & Huang, Y. (2017). Nanoscale ion intermixing nduced activation of Fe2O3/MnO2 composites for application in lithium ion batteries. Journal of Materials Chemistry A, 5(18), 8510-8518.[16] Hao, S., Zhang, B.‡, Ball, S., Hu, B., Wu, J., & Huang, Y. (2016). Porous and hollow NiO microspheres for high capacity and long-life anode materials of Li-ion batteries. Materials & Design, 92, 160-165.