Sustainable high-energy radiation powering selective CO2 reduction to CH3OH over atomic dual-metal-sites embedded metal-organic framework

Author:

Hu Changjiang1,Jiang Zhiwen1,Wu Qunyan2,Cao Shuiyan1,Li Qiuhao1,Chen Chong1,Yuan Li-Yong3,Wang Yunlong1ORCID,Peng Jing4,Shi Weiqun3ORCID,Zhai Maolin4ORCID,Mostafavi Mehran5,Ma Jun1ORCID

Affiliation:

1. Nanjing University of Aeronautics and Astronautics

2. Laboratory of Nuclear Energy Chemistry and Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Institute of High Energy Physics

3. Institute of High Energy Physics, Chinese Academy of Sciences

4. Peking University

5. CNRS/University of Paris-Saclay

Abstract

AbstractThe efficient use of renewable high-energy radiation (X/γ-rays or accelerated e) as the energy input for the chemical transformation of carbon dioxide (CO2) and water to energy-rich fuels holds new promise for a carbon-neutral, sustainable energy economy; however, such processes are challenging to implement, and require the assistance of catalysts capable of sensitizing the secondary electron scattering and providing active metal sites to bind intermediates. Herein, we report that atomic Cu-Ni dual-metal-sites embedded in a metal-organic framework matrix enable efficient and selective (~ 98%) conversion of CO2to CH3OH in irradiated aqueous solutions. The reaction is initiated by the direct generation of CO2•‒radicals via aqueous electrons attachment, followed by a series of interfacial reactions. We showed that the UiO-66(Hf) matrix serves as a radiation sensitizer to break electron yield limitation in water radiolysis, dramatically promoting CO2activation and conversion efficiency. With the synergistic metal centers and a hydroxyl radical scavenger, we achieved stable and selective CH3OH production over multiple irradiation cycles. Pulse radiolysis experiments with theoretical calculations revealed the transient kinetics occurred on the nanosecond timescale and cascade hydrogenation steps. Our study highlighted an unprecedented catalytic route to produce CH3OH with CO2feedstock and introduced a desirable atomic structure to improve performance.

Publisher

Research Square Platform LLC

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