logo
ResearchBunny Logo
Direct cleavage of C=O double bond in CO₂ by the subnano MoO<sub>x</sub> surface on Mo₂N

Chemistry

Direct cleavage of C=O double bond in CO₂ by the subnano MoO<sub>x</sub> surface on Mo₂N

H. Liu, W. Wang, et al.

This groundbreaking study by Hao-Xin Liu, Wei-Wei Wang, Xin-Pu Fu, Jin-Cheng Liu, and Chun-Jiang Jia unveils a novel MoOₓ/Mo₂N catalyst that dramatically enhances CO₂ hydrogenation efficiency to carbon monoxide, leveraging rich oxygen vacancies to cleave C=O bonds at impressive rates. Join us in exploring the future of CO₂-related synthesis!

00:00
00:00
~3 min • Beginner • English
Abstract
Compared to H2-assisted activation mode, the direct dissociation of CO2 into carbonyl (*CO) with a simplified reaction route is advantageous for CO2-related synthetic processes and catalyst upgrading, while the stable C = O double bond makes it very challenging. Herein, we construct a subnano MoO3 layer on the surface of Mo2N, which provides a dynamically changing surface of MoO3/MoOx (x < 3) for catalyzing CO2 hydrogenation. Rich oxygen vacancies on the subnano MoOx surface with a high electron donating capacity served as a scissor to directly shear the C = O double bond of CO2 to form CO at a high rate. The O atoms leached in CO2 dissociation are removed timely by H2 to regenerate active oxygen vacancies. Owing to the greatly enhanced dissociative activation of CO2, this MoOx/Mo2N catalyst without any supported active metals shows excellent performance for catalyzing CO2 hydrogenation to CO. The construction of highly disordered defective surface on heterostructures paves a new pathway for molecule activation.
Publisher
Nature Communications
Published On
Oct 23, 2024
Authors
Hao-Xin Liu, Wei-Wei Wang, Xin-Pu Fu, Jin-Cheng Liu, Chun-Jiang Jia
Tags
CO₂ dissociation
carbonyl
MoOₓ/Mo₂N catalyst
CO hydrogenation
oxygen vacancies
C=O bond cleavage
synthesis
Listen, Learn & Level Up
Over 10,000 hours of research content in 25+ fields, available in 12+ languages.
No more digging through PDFs, just hit play and absorb the world's latest research in your language, on your time.
listen to research audio papers with researchbunny