Band structure engineering for a graphitic carbon nitride-based hybrid with improved photocatalytic CO2 reduction performance

Abstract

Graphitic carbon nitride has emerged as a sustainable photocatalyst for CO2 reduction, yet its efficiency is constrained by narrow light absorption and inefficient charge separation. To overcome these limitations, this work introduces a dual-engineering strategy combining doping and thermodynamic band structure regulation. Boron (B) doping of graphitic carbon nitride nanosheets (CNNs) at different temperatures (BCNx) induces a maximum 0.12 eV bandgap narrowing and upward conduction band shift, extending light absorption to 457 nm. By coupling BCNx with sodium 2,5,8-tri(40-pyridyl)-1,3,4,6,7,9-hexaazaphenalenate (TPHAP), we achieve adjustable band alignment, where B-CN400/TPHAP exhibited the optimal offset of the conduction band (ΔECB = 0.43 eV), creating a strong interfacial driving force for charge separation. This optimized alignment drives efficient charge separation and transfer, yielding a record CO production rate of 60.5 μmol g−1 with 97.1% CO selectivity. Furthermore, through systematic characterization studies, we investigated the optimal band alignment matching to determine its impact on the formation of band offset. This study establishes a universal paradigm for photocatalytic material design, demonstrating that synergistic band structure modulation and interfacial engineering can unlock the full potential of hybrids for solar fuel production.

Graphical abstract: Band structure engineering for a graphitic carbon nitride-based hybrid with improved photocatalytic CO2 reduction performance

Supplementary files

Article information

Article type
Paper
Submitted
23 Jun 2025
Accepted
06 Sep 2025
First published
08 Sep 2025

New J. Chem., 2025, Advance Article

Band structure engineering for a graphitic carbon nitride-based hybrid with improved photocatalytic CO2 reduction performance

Y. Li, X. Li, B. Li, R. Guo and X. Gao, New J. Chem., 2025, Advance Article , DOI: 10.1039/D5NJ02600H

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