| 主要论著 | 主要从事材料的纳尺度力学行为和低维材料的界面力化学机制等微纳米力学相关领域的研究,所开展研究关注力学、材料、物理、化学等多学科领域交叉涌现的共性难题。研究成果以第一作者和通讯作者身份(含共同)发表在Nature Catalysis、Journal of the American Chemical Society、ACS Nano、Nano Research、Carbon等高水平学术期刊上。累计发表SCI论文20余篇,累计引用次数>1000。 学术论文如下(仅列出10篇): <#>共同第一作者,<*>通讯作者 代表性论文: [1] H.F. Liu#, J. Xia#, N. Zhang, H. Cheng, W.T. Bi, X.L. Zu, W.S. Chu, H.A. Wu, C.Z. Wu*, and Y. Xie. Solid–liquid phase transition induced electrocatalytic switching from hydrogen evolution to highly selective CO2 reduction. Nature Catalysis, 2021, 4(3): 202–211. (IF = 37.8) [2] H. Cheng#, J. Xia#, M.H. Wang#, C. Wang, R.J. Gui, X.M. Cao, T.P. Zhou, X.S. Zheng, W.S. Chu, H.A. Wu, Y. Xie, and C.Z. Wu*. Surface anion promotes Pt electrocatalysts with high CO tolerance in fuel-cell performance. Journal of the American Chemical Society, 2022, 144(48): 22018–22025. (IF = 15) [3] Y.Z. Hou, J. Xia*, Z.Z. He, Y.B. Zhu, and H.A. Wu*. Molecular levers enable anomalously enhanced strength and toughness of cellulose nanocrystal at cryogenic temperature. Nano Research, 2023, 16(5), 8036–8041. (IF = 9.9, 封面论文) [4] J. Xia, Y.B. Zhu, X. Jin, and H.A. Wu*. Unravelling the interactions between organic molecules and reduced graphene oxide in an aqueous environment. Carbon, 2020, 167: 345–350. (IF = 10.9) [5] J. Xia, Y.B. Zhu*, Z.Z. He, F.C. Wang, and H.A. Wu*. Superstrong noncovalent interface between melamine and graphene oxide. ACS Applied Materials & Interfaces, 2019, 11(18): 17068–17078. (IF = 9.5) 其他论文: [6] Y.Z. Hou#, Q.F. Guan#, J. Xia#, Z.C. Ling, Z.Z. He, Z.M. Han, H.B. Yang, P. Gu, Y.B. Zhu*, S.H. Yu*, and H.A. Wu*. Strengthening and toughening hierarchical nanocellulose via humidity-mediated interface. ACS Nano, 2021, 15(1): 1310–1320. (IF = 17.1) [7] G. Yuan#, Y.Y. Liu#, J. Xia#, Y. Su, W. Wei, Y.B. Zhu, Y. An, H.A. Wu, Q. Xu, and H. Pang*. Two-dimensional CuO nanosheets-induced MOF composites and derivatives for dendrite-free zinc-ion batteries. Nano Research, 2023, 16(5), 6881–6889. (IF = 9.9) [8] J. Xia, X.Y. Liu, W. Zhou, F.C. Wang, and H.A. Wu*. Transformation between divacancy defects induced by an energy pulse in graphene. Nanotechnology, 2016, 27(27): 274004. (IF = 3.5) [9] J. Xia, Y.B. Zhu*, F.C. Wang, and H.A. Wu*. Effect of grain boundaries on mechanical transverse wave propagations in graphene. Journal of Applied Physics, 2017, 121(21): 215105. (IF = 3.2) [10] H.K. Zhong, J. Xia, F.C. Wang, H.S. Chen, H.A. Wu, and S.S. Lin*. Graphene‐piezoelectric material heterostructure for harvesting energy from water flow. Advanced Functional Materials, 2017, 27(5): 1604226. (IF = 19) |
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