| Literature DB >> 35839429 |
Shiqi Zhou1, Yunxuan Zhao2, Run Shi2, Yucheng Wang3, Anumol Ashok1, Frédéric Héraly1, Tierui Zhang2,4, Jiayin Yuan1.
Abstract
Single-atom catalysts (SACs), on account of their outstanding catalytic potential, are currently emerging as high-performance materials in the field of heterogeneous catalysis. Constructing a strong interaction between the single atom and its supporting matrix plays a pivotal role. Herein, Ti3 C2 Tx -MXene-supported Ni SACs are reported by using a self-reduction strategy via the assistance of rich Ti vacancies on the Ti3 C2 Tx MXene surface, which act as the trap and anchor sites for individual Ni atoms. The constructed Ni SACs supported by the Ti3 C2 Tx MXene (Ni SACs/Ti3 C2 Tx ) show an ultralow onset potential of -0.03 V (vs reversible hydrogen electrode (RHE)) and an exceptional operational stability toward the hydrazine oxidation reaction (HzOR). Density functional theory calculations suggest a strong coupling of the Ni single atoms and their surrounding C atoms, which optimizes the electronic density of states, increasing the adsorption energy and decreasing the reaction activation energy, thus boosting the electrochemical activity. The results presented here will encourage a wider pursuit of 2D-materials-supported SACs designed by a vacancy-trapping strategy.Entities:
Keywords: Ni single-atom electrocatalysts; Tizzm3219903Czzm3219902Tzzm321990x MXene; Ti vacancies; electronic density of states; hydrazine oxidation reaction
Year: 2022 PMID: 35839429 DOI: 10.1002/adma.202204388
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 32.086