Photocatalytic CO2 Reduction Enhanced by Synergetic Interactions among Photon Phonon and Molecule
Chen Sun, Yimin Xuan

TL;DR
This paper introduces a novel hybrid photocatalyst that leverages vibrational strong coupling among photons, phonons, and molecules to significantly enhance CO2 reduction efficiency, revealing a new light-vibration-matter interaction mechanism.
Contribution
It demonstrates a new hybrid architecture utilizing vibrational strong coupling to boost photocatalytic CO2 reduction, achieving record yields and unveiling a novel photo-thermal activation mechanism.
Findings
Achieved a CO yield of 167.7 μmol h-1 g-1, the highest for Cu2O-based photocatalysts.
Demonstrated 46% enhancement over non-VSC systems.
Verified vibrational coupling via Fourier-transform infrared spectroscopy.
Abstract
Photocatalytic CO2 reduction is limited by inefficient CO2 activation and poor solar spectrum utilization. Here, we discovered and revealed the vibration coupling mechanism among photons, phonons, and molecules, which remarkably enhances photocatalytic catalysis of CO2 into fuels. We designed the nitrogen-doped Cu2O-based catalyst loaded onto the quartz optical substrate. The N-doping Cu2O converts linearly geometry of adsorbed CO2 molecules, which efficiently lowers the activation barrier and facilitates CO2 dissociation. Once the Cu-based catalyst is combined with a micro-pillar quartz film, the system induces vibrational strong coupling (VSC) between the asymmetric CO2 stretching mode and surface phonon polariton resonances. These resonances arise from the photothermal conversion of incident solar photons on the micro-pillars. The resonant coupling phenomena were further verified by…
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