材料科学
过电位
吸收(声学)
分解水
密度泛函理论
拉伤
压电
带隙
光电子学
化学物理
氢
催化作用
化学工程
可见光谱
强度(物理)
纳米技术
吸收光谱法
分子物理学
作者
Yahaya Saadu Itas,Mayeen Uddin Khandaker,Rajesh Haldhar,Sultan Albarakati,Ibrahim Mahariq,Ahmed S. Mayet,Mazen R. Alrahili
标识
DOI:10.1016/j.ijhydene.2025.152602
摘要
Piezo-photochemical water splitting is a promising pathway to achieving sustainable energy. Density functional theory (DFT) approach was used investigate BaTiO 3 photocatalysts strategically modified by (Mo + N) and (W + N) co-doping under strain to assess their piezo-photocatalytic performance. Co-doping and strain efficiently regulated electronic structure, band gap, and defect chemistry, improving visible-light absorption and catalytic activity. Hydrogen evolution reactions were favoured by intermediate temperature fluctuations and high carrier mobility. (Mo + N) co-doped BaTiO 3 exhibited superior performance with low overpotential and visible absorption up to 401 nm, but efficiency declined under strain due to band gap widening and increased energy barriers. Conversely, (W + N) co-doping maintained stable piezoelectric response and strong absorption across 400–600 nm, effectively balancing strain effects. Optimal strain conditions were 0.00 % for (Mo + N), all ranges for (W + N), and 0.04 % for pure BaTiO 3 . Overall, strategic co-doping synergistically combined N-induced defects with Mo/W d-orbital states, enhancing carrier mobility and absorption with multiple intensity peaks, better than individual W-, Mo-, or N-doping strategies. • Piezo-photocatalytic properties of (Mo + N) and (W + N) co-doped BaTiO 3 for hydrogen energy. • Induced strain efficiently regulates piezo-photocatalytic properties. • (Mo + N) co-doped BaTiO 3 exhibits superior performance because of low overpotential. • Strategic co-doping synergistically combined N-induced defects with Mo/W d-orbital states. • Carrier mobility, absorption with multiple intensity peaks, better than individual W-, Mo-, or N-doping.
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