TY - JOUR
T1 - Atomic-mismatch-induced interstitial Bi doping in Nb2O5 networks
T2 - A synergistic electronic-structural strategy for ultrafast charge trapping and efficient photocatalysis
AU - An, Lei
AU - Zhao, Hanle
AU - Wang, Kaiwei
AU - Qian, Jianing
AU - Yang, Yuqing
AU - Zhang, Fengquan
AU - Pan, Likun
AU - Ni, Tianjun
AU - Liu, Dong
N1 - Publisher Copyright:
© 2026 Elsevier Inc.
PY - 2026/11/15
Y1 - 2026/11/15
N2 - Niobium pentoxide (Nb2O5) is a promising photocatalyst due to its excellent chemical stability, non-toxicity, and suitable band positions. However, its wide bandgap and rapid charge recombination severely limit its solar-light utilization and photocatalytic efficiency. To overcome these limitations, we report an atomic-mismatch-driven interstitial bismuth doping strategy that synergistically constructs three-dimensionally interconnected Nb2O5 networks with an overall thickness of only 0.54 nm. This unique design not only tailors the electronic structure by introducing shallow-level defects and narrowing the bandgap but also optimizes the material's morphology for enhanced surface reactivity and charge transport. The optimized material (BiNO-2) exhibits exceptional photocatalytic activity, degrading 99.1% of the model pollutant new coccine within 15 min under simulated solar light, a rate 11 times higher than that of pristine Nb2O5 and surpassing commercial P25. The catalyst also demonstrates excellent versatility by efficiently degrading diverse pollutants including cationic dyes and pharmaceuticals. Mechanistic studies reveal that the degradation proceeds via hole- and hydroxyl-radical-mediated pathways, leading to cleavage of the toxic azo-aromatic core and a significant reduction in the ecological toxicity of the products. This work presents a generalized electronic-structural co-engineering strategy driven by atomic-mismatch principles, offering an environmentally safe and kinetically superior photocatalyst for sustainable water remediation.
AB - Niobium pentoxide (Nb2O5) is a promising photocatalyst due to its excellent chemical stability, non-toxicity, and suitable band positions. However, its wide bandgap and rapid charge recombination severely limit its solar-light utilization and photocatalytic efficiency. To overcome these limitations, we report an atomic-mismatch-driven interstitial bismuth doping strategy that synergistically constructs three-dimensionally interconnected Nb2O5 networks with an overall thickness of only 0.54 nm. This unique design not only tailors the electronic structure by introducing shallow-level defects and narrowing the bandgap but also optimizes the material's morphology for enhanced surface reactivity and charge transport. The optimized material (BiNO-2) exhibits exceptional photocatalytic activity, degrading 99.1% of the model pollutant new coccine within 15 min under simulated solar light, a rate 11 times higher than that of pristine Nb2O5 and surpassing commercial P25. The catalyst also demonstrates excellent versatility by efficiently degrading diverse pollutants including cationic dyes and pharmaceuticals. Mechanistic studies reveal that the degradation proceeds via hole- and hydroxyl-radical-mediated pathways, leading to cleavage of the toxic azo-aromatic core and a significant reduction in the ecological toxicity of the products. This work presents a generalized electronic-structural co-engineering strategy driven by atomic-mismatch principles, offering an environmentally safe and kinetically superior photocatalyst for sustainable water remediation.
KW - Charge carrier dynamics
KW - Degradation
KW - Interstitial doping
KW - Toxicity evolution
KW - Ultra-thin NbO nanosheets
UR - https://www.scopus.com/pages/publications/105040032941
U2 - 10.1016/j.jcis.2026.140802
DO - 10.1016/j.jcis.2026.140802
M3 - 文章
AN - SCOPUS:105040032941
SN - 0021-9797
VL - 722
JO - Journal of Colloid and Interface Science
JF - Journal of Colloid and Interface Science
M1 - 140802
ER -