Zhiqi Huang

Affiliations: 
2019- Department of Chemistry City University of Hong Kong, Kowloon, Hong Kong 
Google:
"Zhiqi Huang"
Mean distance: (not calculated yet)
 
BETA: Related publications

Publications

You can help our author matching system! If you notice any publications incorrectly attributed to this author, please sign in and mark matches as correct or incorrect.

Zhai W, Li Z, Wang Y, et al. (2024) Phase Engineering of Nanomaterials: Transition Metal Dichalcogenides. Chemical Reviews
Shi Z, Zhang X, Lin X, et al. (2023) Phase-dependent growth of Pt on MoS for highly efficient H evolution. Nature. 621: 300-305
Zhou X, Zhang A, Chen B, et al. (2023) Synthesis of 2H/fcc-Heterophase AuCu Nanostructures for Highly Efficient Electrochemical CO Reduction at Industrial Current Densities. Advanced Materials (Deerfield Beach, Fla.). e2304414
Zhai W, Qi J, Xu C, et al. (2023) Reversible Semimetal-Semiconductor Transition of Unconventional-Phase WS Nanosheets. Journal of the American Chemical Society
Huang B, Ge Y, Zhang A, et al. (2023) Seeded Synthesis of Hollow PdSn Intermetallic Nanomaterials for Highly Efficient Electrocatalytic Glycerol Oxidation. Advanced Materials (Deerfield Beach, Fla.). e2302233
Zhai L, Gebre ST, Chen B, et al. (2023) Epitaxial growth of highly symmetrical branched noble metal-semiconductor heterostructures with efficient plasmon-induced hot-electron transfer. Nature Communications. 14: 2538
Yin PF, Fu J, Yun Q, et al. (2022) Preparation of Amorphous SnO -Encapsulated Multi-Phased Crystalline Cu Heterostructures for Highly Efficient CO Reduction. Advanced Materials (Deerfield Beach, Fla.). e2201114
Li Z, Zhai L, Ge Y, et al. (2021) Wet-chemical synthesis of two-dimensional metal nanomaterials for electrocatalysis. National Science Review. 9: nwab142
Ge Y, Wang X, Chen B, et al. (2021) Preparation of fcc-2H-fcc Heterophase Pd@Ir Nanostructures for High-performance Electrochemical Hydrogen Evolution. Advanced Materials (Deerfield Beach, Fla.). e2107399
Ge Y, Wang X, Huang B, et al. (2021) Seeded Synthesis of Unconventional 2H-Phase Pd Alloy Nanomaterials for Highly Efficient Oxygen Reduction. Journal of the American Chemical Society
See more...