@article{Lei2026, 
author = {Zhuonan Lei and Wenhua Xue and Haijiao Xie and Tao Sun and Enzhou Liu},
title = {Hydrogen evolution and pollutant purification over NiMoO4/Twinned Mn0.5Cd0.5S mediated by ·OH radicals in alkaline media},
year = {2026},
journal = {Composite Functional Materials},
volume = {2},
number = {2},
keywords = {Twinned Mn0.5Cd0.5S, Homo-heterojunctions, NiMoO4, Double S-scheme, ·OH Radicals, Alkaline Media},
url = {https://www.sciopen.com/article/10.63823/2026040001},
doi = {10.63823/2026040001},
abstract = {Employing photocatalysis for water splitting to generate hydrogen (H2) is regarded as a highly viable strategy for attaining green and efficient H2 production. However, photocatalysis faces significant challenges in charge separation and instability. Notably, sulfide-based photocatalysts are often severely limited by photocorrosion issues. In this work, we employed a NiMoO4/twinned Mn0.5Cd0.5S (NiMoO4/T-MCS) heterojunction as a model catalyst. By modulating the alkalinity of the aqueous solution to promote rapid consumption of photogenerated holes (h+), the surface reaction kinetics was greatly enhanced, achieving an exceptional H2 evolution rate (rH2) of 28.22 mmol·g-1·h-1 in 4 M NaOH solution. The external NaOH facilitates the water oxidation half-reaction, preferentially consuming photogenerated h+ to generate ·OH radicals. This process triggers surface hydroxylation, significantly boosting both catalytic activity and stability. Furthermore, the generated ·OH radicals effectively degrade methylene blue (MB). Critically, the substantially enhanced surface reaction efficiency—particularly the rapid consumption of photogenerated h+—dramatically improves the system’s operational stability. This study demonstrates concurrent H2 production and pollutant purification solely through solution modulation, alongside a significant enhancement in system efficiency.}
}