Diluted CO2 photoreduction and charge transfer dynamics investigation in biomimetic S-scheme heterojunction
Qiang Cheng1, Jiaqi Yin1, Kai Wang2
1College of Urban and Environmental Sciences, Huangshi Key Laboratory of Prevention and Control of Soil Pollution, Hubei Normal University, Huangshi 435002, PR China.
Abstract:
The strategic design of novel photocatalysts for diluted CO2 conversion is imperative, yet their catalytic activity is often constrained by sluggish charge transfer kinetics. A biomimetic heterojunction photocatalyst was fabricated via in-situ deposition of SnS2 nanosheets onto resorcinol-formaldehyde (RF) resin spheres, tailored for the photoreduction of diluted CO2 under simulated solar conditions. Serving as a growth substrate, RF spheres enable the formation of SnS₂, yielding core-shell biomimetic photocatalysts with intimate interfacial contact. They synergistically enhance SnS₂'s visible-light absorption while establishing an step-scheme (S-scheme) heterojunction, a synergistic effect that enables efficient charge separation and transfer. The CO production rate of the optimized SnS2@RF sample attained 77.3 μmol g-1 h-1, surpassing SnS2 nanosheets and RF spheres by 3.2 and 2.2 times, respectively. The distinct charge transfer in the S-scheme is facilitated by mechanistic investigations using femtosecond transient absorption spectroscopy (fs-TAS) and in situ X-ray photoelectron spectroscopy (XPS). This work demonstrates an effective strategy for enhancing biomimetic photocatalysts via the construction of S-scheme heterojunctions and provides atomistic insights into their solar fuel generation mechanisms.
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