Metal organic framework derived In<sub>2</sub>O<sub>3</sub>/ZrO<sub>2</sub> heterojunctions with interfacial oxygen vacancies for highly selective CO<sub>2</sub>-to-methanol hydrogenation.

Koley, Paramita; Shit, Subhash Chandra; Yoshida, Takefumi; Jampaiah, Deshetti; Ariga-Miwa, Hiroko; Uruga, Tomoya; Kaishyop, Jyotishman; Hosseinnejad, Tayebeh et al. · Nat Commun · 2025

basic_science · Level V

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Abstract

The hydrogenation of CO<sub>2</sub> to methanol is a promising route for carbon capture and utilization, however achieving high selectivity and productivity remains a challenge. This study presents a novel catalyst synthesized by pyrolyzing a zirconium-based metal-organic framework impregnated with indium, yielding ultrafine In<sub>2</sub>O<sub>3</sub> nanoparticles uniformly embedded within a ZrO<sub>2</sub> and carbon matrix. The resulting In<sub>2</sub>O<sub>3</sub>/ZrO<sub>2</sub> heterojunction exhibited abundant oxygen vacancies at the interface, which is crucial for enhancing the catalytic performance. Under gas-phase conditions, the catalyst achieves an exceptional methanol selectivity of 81% with a record-high productivity of 2.64 gMeOH·gcat⁻¹·h⁻¹ at mild reaction conditions, while in liquid-phase hydrogenation, methanol selectivity reaches 96%. Comprehensive structural characterizations confirmed that oxygen vacancies and the heterointerface served as active sites, facilitating CO<sub>2</sub> activation and methanol stabilization. Mechanistic insights from in-situ DRIFTS and ATR-IR spectroscopy revealed that methanol formation proceeds via the formate pathway, further supported by in-situ ambient-pressure X-ray photoelectron spectroscopy, demonstrating electronic structural modulation and an increased concentration of oxygen vacancies. These findings underscore the critical role of defect engineering in optimizing CO<sub>2</sub> hydrogenation catalysts and provide a pathway for designing highly efficient systems for sustainable methanol production.