2022 Annual Meeting
(328i) Porous Phosphorus-Doped Boron Nitride Materials for Photocatalytic CO2 Reduction
Authors
Porous amorphous boron nitride (BN), as opposed to crystalline BN, has proved to be a promising material for CO2 photoreduction with photocatalytic activity competitive with the benchmark TiO2 P25 and the ability to harvest visible light1. The introduction of other atoms/functional groups to BN-based materials can further alter their bandgap, and electron transfer mechanisms. Therefore, it is expected that photocatalytic activity can be influenced through chemical doping. Studies have shown that non-metal heteroatoms (S or P) can alter the optoelectronic properties of graphitic carbon nitride2â4, while for BN materials only C, O and Si have been studied for this purpose5â7. The electronic properties of P could make it a suitable dopant for porous BN.
In our study, we explore P doping of porous BN materials and the impact on the materialâs optoelectronic and photocatalytic properties. To do this, we have synthesized amorphous pure and P-doped BN, and have used XPS and NEXAFS to quantify the P content and their chemical environment, depending on the synthesis route and precursors. The materials exhibit micro- and mesoporosity with high surface area, and good CO2 adsorption capacity as determined by N2 adsorption at 77 K, and CO2 adsorption at 298 K, respectively. DR-UV/Vis combined with XPS analysis show that our P-doped samples have a reduced bandgap, and as a result can harvest larger portion of the visible light spectrum during CO2 photoreduction, as compared to the pure BN sample.
References:
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