TY - JOUR
T1 - Two-Dimensional Topological Platinum Telluride Superstructures with Periodic Tellurium Vacancies for Efficient and Robust Catalysis
AU - Xu, Xin
AU - Wang, Xuechun
AU - Yu, Shuming
AU - Wang, Chenhui
AU - Liu, Guowei
AU - Li, Hao
AU - Yang, Jiangang
AU - Li, Jing
AU - Sun, Tao
AU - Hai, Xiao
AU - Li, Lei
AU - Liu, Xue
AU - Zhang, Ying
AU - Zhang, Weifeng
AU - Zhang, Quan
AU - Wang, Kedong
AU - Xu, Nan
AU - Ma, Yaping
AU - Ming, Fangfei
AU - Cui, Ping
AU - Lu, Jiong
AU - Zhang, Zhenyu
AU - Xiao, Xudong
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/11/26
Y1 - 2024/11/26
N2 - Defect engineering in the inherently inert basal planes of transition metal dichalcogenides (TMDs), involving the introduction of chalcogen vacancies, represents a pivotal approach to enhance catalytic activity by exposing high-density catalytic metal single-atom sites. However, achieving a single-atom limit spacing between chalcogen vacancies to form ordered superstructures remains challenging for creating uniformly distributed high-density metal single-atom sites on TMDs comparable to carbon-supported single-atom catalysts (SACs). Here we unveil an efficient TMD-based topological catalyst for hydrogen evolution reaction (HER), featuring high-density single-atom reactive centers on a few-layer (7 × 7)-PtTe2-x superstructure. Compared with pristine Pt(111), PtTe2, and (2 × 2)-PtTe2-x, (7 × 7)-PtTe2-x exhibits superior HER performance owing to its substantially increased density of undercoordinated Pt sites, alongside exceptional catalytic stability when operating at high current densities. First-principles calculations confirm that multiple types of undercoordinated Pt sites on (7 × 7)-PtTe2-x exhibit favorable hydrogen adsorption Gibbs free energies, and remain active upon increasing hydrogen coverage. Furthermore, (7 × 7)-PtTe2-x possesses nontrivial band topologies with robust edge states, suggesting potential enhancements for HER. Our findings are expected to advance TMD-based catalysts and exploration of topological materials in catalysis.
AB - Defect engineering in the inherently inert basal planes of transition metal dichalcogenides (TMDs), involving the introduction of chalcogen vacancies, represents a pivotal approach to enhance catalytic activity by exposing high-density catalytic metal single-atom sites. However, achieving a single-atom limit spacing between chalcogen vacancies to form ordered superstructures remains challenging for creating uniformly distributed high-density metal single-atom sites on TMDs comparable to carbon-supported single-atom catalysts (SACs). Here we unveil an efficient TMD-based topological catalyst for hydrogen evolution reaction (HER), featuring high-density single-atom reactive centers on a few-layer (7 × 7)-PtTe2-x superstructure. Compared with pristine Pt(111), PtTe2, and (2 × 2)-PtTe2-x, (7 × 7)-PtTe2-x exhibits superior HER performance owing to its substantially increased density of undercoordinated Pt sites, alongside exceptional catalytic stability when operating at high current densities. First-principles calculations confirm that multiple types of undercoordinated Pt sites on (7 × 7)-PtTe2-x exhibit favorable hydrogen adsorption Gibbs free energies, and remain active upon increasing hydrogen coverage. Furthermore, (7 × 7)-PtTe2-x possesses nontrivial band topologies with robust edge states, suggesting potential enhancements for HER. Our findings are expected to advance TMD-based catalysts and exploration of topological materials in catalysis.
KW - few-layer platinum telluride
KW - hydrogen evolution
KW - nontrivial band topology
KW - periodic Te vacancies
KW - precise nanofabrication
UR - https://www.scopus.com/pages/publications/85209154257
U2 - 10.1021/acsnano.4c10085
DO - 10.1021/acsnano.4c10085
M3 - 文章
C2 - 39530547
AN - SCOPUS:85209154257
SN - 1936-0851
VL - 18
SP - 32635
EP - 32649
JO - ACS Nano
JF - ACS Nano
IS - 47
ER -