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Guangtao Yu

Showing results (11-20 of 78) with videos related to

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Physical Chemistry Chemical Physics : PCCP|September 25, 2013
The donor/acceptor edge-modification: an effective strategy to modulate the electronic and magnetic behaviors of zigzag silicon carbon nanoribbonsXiuling Ding, Guangtao Yu, Xuri Huang, et al.
Inorganic Chemistry|January 19, 2022
Realizing Efficient Catalytic Performance and High Selectivity for Oxygen Reduction Reaction on a 2D Ni<sub>2</sub>SbTe<sub>2</sub> MonolayerLusi Zhao, Guangtao Yu, Xuri Huang, et al.
Accident; Analysis and Prevention|June 12, 2010
Perceived colleagues' safety knowledge/behavior and safety performance: safety climate as a moderator in a multilevel studyLi Jiang, Guangtao Yu, Yongjuan Li, et al.
Physical Chemistry Chemical Physics : PCCP|June 30, 2017
Introducing the triangular BN nanodot or its cooperation with the edge-modification via the electron-donating/withdrawing group to achieve the large first hyperpolarizability in a carbon nanotube systemXueying Zhang, Guangtao Yu, Xuri Huang, et al.
Journal of Colloid and Interface Science|March 3, 2023
Through the Self-Optimization process to achieve high OER activity of SAC catalysts within the framework of TMO<sub>3</sub>@G and TMO<sub>4</sub>@G: A High-Throughput theoretical studyQingxian Wang, Guangtao Yu, E Yang, et al.
Molecules (Basel, Switzerland)|June 13, 2025
Constructing Novel 2D Composite Nanomaterials by Coupling Graphene or Silicene with TM<sub>3</sub>N<sub>2</sub> MXene (TM = Nb, Ta, Mo, and W) to Achieve Highly Efficient HER CatalystsXiuyi Zhang, Guangtao Yu, Wei Zhang, et al.
Journal of Chemical Theory and Computation|November 27, 2015
Electronic Structure and Reactivity of Boron Nitride Nanoribbons with Stone-Wales DefectsWei Chen, Yafei Li, Guangtao Yu, et al.
Physical Chemistry Chemical Physics : PCCP|January 30, 2020
Embedding tetrahedral 3d transition metal TM<sub>4</sub> clusters into the cavity of two-dimensional graphdiyne to construct highly efficient and nonprecious electrocatalysts for hydrogen evolution reactionRuiqi Ku, Guangtao Yu, Jing Gao, et al.
Molecules (Basel, Switzerland)|August 26, 2022
Theoretical Study on the High HER/OER Electrocatalytic Activities of 2D GeSi, SnSi, and SnGe Monolayers and Further Improvement by Imposing Biaxial Strain or Doping HeteroatomsCuimei Li, Guangtao Yu, Xiaopeng Shen, et al.
Physical Chemistry Chemical Physics : PCCP|January 10, 2019
Theoretical design of a series of 2D TM-C<sub>3</sub>N<sub>4</sub> and TM-C<sub>3</sub>N<sub>4</sub>@graphene (TM = V, Nb and Ta) nanostructures with highly efficient catalytic activity for the hydrogen evolution reactionTing Wang, Guangtao Yu, Jingwei Liu, et al.
Pageof 8

Showing results (11-20 of 78) with videos related to

Sort By:
Pageof 8
Physical Chemistry Chemical Physics : PCCP|September 25, 2013
The donor/acceptor edge-modification: an effective strategy to modulate the electronic and magnetic behaviors of zigzag silicon carbon nanoribbonsXiuling Ding, Guangtao Yu, Xuri Huang, et al.
Inorganic Chemistry|January 19, 2022
Realizing Efficient Catalytic Performance and High Selectivity for Oxygen Reduction Reaction on a 2D Ni<sub>2</sub>SbTe<sub>2</sub> MonolayerLusi Zhao, Guangtao Yu, Xuri Huang, et al.
Accident; Analysis and Prevention|June 12, 2010
Perceived colleagues' safety knowledge/behavior and safety performance: safety climate as a moderator in a multilevel studyLi Jiang, Guangtao Yu, Yongjuan Li, et al.
Physical Chemistry Chemical Physics : PCCP|June 30, 2017
Introducing the triangular BN nanodot or its cooperation with the edge-modification via the electron-donating/withdrawing group to achieve the large first hyperpolarizability in a carbon nanotube systemXueying Zhang, Guangtao Yu, Xuri Huang, et al.
Journal of Colloid and Interface Science|March 3, 2023
Through the Self-Optimization process to achieve high OER activity of SAC catalysts within the framework of TMO<sub>3</sub>@G and TMO<sub>4</sub>@G: A High-Throughput theoretical studyQingxian Wang, Guangtao Yu, E Yang, et al.
Molecules (Basel, Switzerland)|June 13, 2025
Constructing Novel 2D Composite Nanomaterials by Coupling Graphene or Silicene with TM<sub>3</sub>N<sub>2</sub> MXene (TM = Nb, Ta, Mo, and W) to Achieve Highly Efficient HER CatalystsXiuyi Zhang, Guangtao Yu, Wei Zhang, et al.
Journal of Chemical Theory and Computation|November 27, 2015
Electronic Structure and Reactivity of Boron Nitride Nanoribbons with Stone-Wales DefectsWei Chen, Yafei Li, Guangtao Yu, et al.
Physical Chemistry Chemical Physics : PCCP|January 30, 2020
Embedding tetrahedral 3d transition metal TM<sub>4</sub> clusters into the cavity of two-dimensional graphdiyne to construct highly efficient and nonprecious electrocatalysts for hydrogen evolution reactionRuiqi Ku, Guangtao Yu, Jing Gao, et al.
Molecules (Basel, Switzerland)|August 26, 2022
Theoretical Study on the High HER/OER Electrocatalytic Activities of 2D GeSi, SnSi, and SnGe Monolayers and Further Improvement by Imposing Biaxial Strain or Doping HeteroatomsCuimei Li, Guangtao Yu, Xiaopeng Shen, et al.
Physical Chemistry Chemical Physics : PCCP|January 10, 2019
Theoretical design of a series of 2D TM-C<sub>3</sub>N<sub>4</sub> and TM-C<sub>3</sub>N<sub>4</sub>@graphene (TM = V, Nb and Ta) nanostructures with highly efficient catalytic activity for the hydrogen evolution reactionTing Wang, Guangtao Yu, Jingwei Liu, et al.
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