Solar-Driven Dehydrogenation and Dehydration of Formate to Syngas with Near-Zero CO2 Emission

Abstract

Syngas, a vital H₂ and CO mixture, is crucial for industrial applications and advancing the circular carbon economy. Traditional photocatalytic CO₂ reduction to syngas relies on sacrificial agents and photosensitizers, limiting scalability and practice. Here, we demonstrate a Co₃O₄-CdS heterojunction photocatalyst that efficiently converts formate (HCOO⁻), a stable, easily-handled and accessible CO₂ reduction product, into syngas under alkaline conditions (pH ~10). This dual-function catalyst enables CO generation via CdS-mediated dehydration and H₂ production via Co₃O₄-mediated dehydrogenation, achieving a syngas production rate of ~3300 µmol g⁻¹ h⁻¹. Notably, this system operates without sacrificial agents or noble metals, with near-zero CO₂ emissions, surpassing current efficiency benchmarks. By recycling CO₂ into formic acid and further converting it to syngas, this approach promotes a closed carbon loop. Its cost-effectiveness, ease of formate storage, direct solar utilization, and low carbon footprint position it as a promising pathway for sustainable syngas production and clean energy solutions.

Supplementary files

Article information

Article type
Paper
Submitted
18 Dec 2024
Accepted
20 Feb 2025
First published
21 Feb 2025

J. Mater. Chem. A, 2025, Accepted Manuscript

Solar-Driven Dehydrogenation and Dehydration of Formate to Syngas with Near-Zero CO2 Emission

H. Yin, Z. Sun, K. Liu, Z. Li, A. A. Wibowo, J. Chen, H. Gu, X. Jing, Y. Chen, D. MacDonald, G. Jia, I. Hadar and Z. Yin, J. Mater. Chem. A, 2025, Accepted Manuscript , DOI: 10.1039/D4TA08991J

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