Aug 2026· Nature Communications· Vol 17· 0 citations· 34 references
Medicine
Abstract
As a vital industrial feedstock, carbon monoxide (CO) is widely employed in pharmaceutical, electronic and fine chemical synthesis, yet its efficient production in high purity remains challenging. Here we report a solar-driven route to high-purity CO from formic acid using a nonmetallic plasmonic photocatalyst based on aluminum-doped tungsten oxide (Al-W18O49). Plasmon-derived hot electrons drive the cleavage of C-H in adsorbed formic acid, while a concomitant photothermal effect markedly accelerates the overall kinetics. This synergistic mechanism lowers the apparent activation energy of HCOOH dehydration to 10.5 kJ mol−1, substantially below its thermocatalytic barrier of 80.6 kJ mol−1, and enables a CO production rate of 1.88 mol g−1 h−1 under 1 W cm−2 irradiation. A continuous-flow reactor operated stably for 350 hours, delivering CO at a maximum rate of 2000 L m−2 h−1 under concentrated sunlight. This work develops a practical photocatalytic system for the sustainable production of high-purity CO. This study introduces Al-doped W18O49 nanowires that synergistically utilize plasmonic hot electrons and photothermal effects, enabling solar-driven formic acid dehydration for efficient pure CO generation.
High efficiency and durable non-noble-metal electrocatalysts for the hydrogen evolution reaction (HER) are essential for large-scale green hydrogen production. In this work, a trimetallic polyoxometalate (POM) precursor H2[Co(NH3)6]2[CeMo12O42] (Co2CeMo12) was synthesized via the self-assembly of POM. Subsequently,...
Pingfan Wu, Xiao Feng, Sizhan Shu et al.· Polyoxometalates· 0 citations
Ammonia is a cornerstone chemical for global food security and an emerging carbon-free energy carrier, yet its industrial synthesis via the Haber–Bosch process remains energy-intensive and carbon-emitting. Non-thermal plasma catalysis offers a promising decentralized alternative for nitrogen fixation under milder condi...
Sebastián Gámez, A. Chatterjee, F. Manaigo et al.· Molecules· 0 citations
Solar-driven bi-reforming of methane (BRM) offers a compelling route to simultaneously valorize greenhouse gases CH4 and CO2 into syngas, but its practical implementation remains hindered by sluggish kinetics, catalyst deactivation, and low solar-to-fuel efficiency. Here, we report a plasmon-driven synergy of hot ele...
Shan Jiang, Ming-Xi Jiang, Nan Sun et al.· National Science Review· 0 citations
The production of solar fuels directly from atmospheric CO2 remains a long-standing goal, primarily because catalysts perform poorly under highly dilute CO2 (approximately 420 ppm) and in the presence of oxygen. Herein, we report a molecular activation strategy that simultaneously enriches the local CO2 concentration...
The production of green hydrogen (H2) is a sustainable approach to addressing the current energy crisis without contributing to long‐term greenhouse gas emissions. Many semiconductors based photocatalysts have shown great promise for light‐driven H2 generation. However, nanostructured powder form suffers from slow elec...
Aminul Islam, Mohammad Mobarak Hossain, M. A. R. Khan et al.· Advanced Energy and Sustaina...· 0 citations