相关文献:
1)Zhan, C; Chen, XJ; Huang, YF; Wu, DY; Tian, ZQ. Plasmon-Mediated Chemical Reactions on Nanostructures Unveiled by Surface-Enhanced Raman Spectroscopy. Accounts of Chemical Research, 52: 2784-2792, 2019
2)Li, CY; Le, JB; Wang, YH; Chen, S; Yang, ZL; Li, JF; Cheng, J; Tian, ZQ. In situ probing electrified interfacial water structures at atomically flat surfaces. Nature Materials, 18: 697-701, 2019
3)Zhan, C; Chen, XJ; Yi, J; Li, JF; Wu, DY; Tian, ZQ. From plasmon-enhanced molecular spectroscopy to plasmon-mediated chemical reactions. Nature Reviews Chemistry, 2:216–230, 2018
4)Core-Shell Nanoparticle-Enhanced Raman Spectroscopy. Li, JF; Zhang, YJ; Ding, SY; Panneerselvam, R; Tian, ZQ, Chemical Reviews, 117: 5002-5069, 2017
5)Ding, SY; Yi, J; Li, JF; Ren, B; Wu, DY; Panneerselvam, R; Tian, ZQ. Nanostructure-based plasmon-enhanced Raman spectroscopy for surface analysis of materials. Nature Reviews Materials, 1: 1-16, 2016
6)Deng, DH; Novoselov, KS; Fu, Q; Zheng, NF; Tian, ZQ; Bao, XH, Catalysis with two-dimensional materials and their heterostructures. Nature Nanotechnology, 11: 218-230, 2016
7)Wang, Y; Lin, HX; Chen, L; Ding, SY; Lei, ZC; Liu, DY; Cao, XY; Liang, HJ; Jiang, YB; Tian, ZQ. What molecular assembly can learn from catalytic chemistry, Chemical Society Reviews, 43(1): 399-411, 2014
8)Li, JF; Huang, YF; Ding, Y; Yang, ZL; Li, SB; Zhou, XS; Fan, FR; Zhang, W; Zhou, ZY; Wu, DY; Ren, B; Wang, ZL; Tian, ZQ. Shell-Isolated Nanoparticle-Enhanced Raman Spectroscopy. Nature, 464 (7287): 392-395, 2010
9)Tian, ZQ: Ren, B, Adsorption and reaction at electrochemical interfaces as probed by surface-enhanced Raman spectroscopy, Annual Rev. Phys. Chem., 55: 197-229, 2004
10)Tian, ZQ; Ren, B; Wu, DY. Surface-Enhanced Raman Scattering: From Noble to Transition Metals and from Rough Surfaces to Ordered Nanostructures. Journal of Physical Chemistry B, 106: 9463-9483, 2002
论文著作:
1. Surface-enhanced Raman spectroscopy: a half-century historical perspective, Chemical Society Reviews, 54, 1453-1551,2025.
2. AI-nano-driven surface-enhanced Raman spectroscopy for marketable technologies, Nature Nanotechnology, 19(12):1758-1762, 2024.
3. 探讨面向能源电化学的新一代表征方法——从工况表征到人工智能,中国科学-化学,54, doi: 10.1360/SSC-2023-0222,2024
4. What can molecular assembly learn from catalysed assembly in living organisms? Chemical Society Reviews, 53(4): 1892-1914, 2024.
5. Resolving the nanostructure and chemistry of solid-electrolyte interphases in lithium metal batteries by depth-sensitive plasmon-enhanced Raman spectroscopy, Nature Commun. 14:3536 doi.org/10.1038/s41467-023-39192-z, 2023.
6. Graphene-confined ultrafast radiant heating for high-loading subnanometer metal cluster catalysts. National Science Review, 10, DOI:10.1093/nsr/nwad081, 2023
7. 分子组装理论基础的探究——现状与机遇, 中国科学-化学, 52, doi: 10.1360/SSC-2022-0186,2022
8. From plasmon-enhanced molecular spectroscopy to plasmon-mediated chemical reactions, Nature Reviews Chemistry, 2:216–230, 2018.
9. Nanostructure-based plasmon-enhanced Raman spectroscopy for surface analysis of materials Nature Reviews Materials, 1(6): 16021(1-16), 2016.
10. Shell-Isolated Nanoparticle-Enhanced Raman Spectroscopy. Nature, 464 (7287): 392-395, 2010