TY - JOUR
T1 - Ag-TiO2 nanocomposites enable efficient photocatalytic NH3 synthesis by modulating electronic metal-support interaction
AU - Kong, Fudan
AU - Xu, Baorong
AU - Zhao, Chao
AU - Gong, Xiangjiao
AU - Jia, Chaoqun
AU - Zhao, Wenli
AU - Ou, Honghui
AU - Yang, Guidong
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/8/1
Y1 - 2026/8/1
N2 - In the heterogeneous catalytic system of photocatalysis, the interface between the active metal and the semiconductor support is crucial in the catalytic process. Especially, the oxygen vacancies at the interface of metal oxide carriers have a huge impact on the reaction performance. Here, we researched the influence of the interfacial electronic interaction strength between the active metal and the semiconductor support on the performance of photocatalytic nitrate reduction for ammonia (NH3) synthesis. The experimental results show that TiO2 with low oxygen vacancy density (OVs) has a strong interfacial electronic interaction with the Ag nanoclusters (Ag-TiO2), demonstrating a relatively high NH3 yield rate of 2.31 mmol g-1h-1. Mechanistic studies reveal that the creation of OVs induces a structural transition on the TiO2 surface from an ordered to a disordered state. This surface structural disorder weakens the interfacial electronic interaction between the Ag nanoclusters and the TiO2 substrate (Ag-TiO2-x). This attenuated interaction reduces the local electron density on TiO2 and OVs act as electron traps to capture the plasmon-induced electrons injected from Ag nanoclusters, collectively impairing charge separation and transfer efficiency in Ag-TiO2-x. As a result, Ag-TiO2 possesses superior photoinduced charge carrier separation efficiency compared to Ag-TiO2-x. These findings provide new insights into the interplay among metals, supports, and defects, offering important guidance for the sensible development of highly efficient supported catalysts.
AB - In the heterogeneous catalytic system of photocatalysis, the interface between the active metal and the semiconductor support is crucial in the catalytic process. Especially, the oxygen vacancies at the interface of metal oxide carriers have a huge impact on the reaction performance. Here, we researched the influence of the interfacial electronic interaction strength between the active metal and the semiconductor support on the performance of photocatalytic nitrate reduction for ammonia (NH3) synthesis. The experimental results show that TiO2 with low oxygen vacancy density (OVs) has a strong interfacial electronic interaction with the Ag nanoclusters (Ag-TiO2), demonstrating a relatively high NH3 yield rate of 2.31 mmol g-1h-1. Mechanistic studies reveal that the creation of OVs induces a structural transition on the TiO2 surface from an ordered to a disordered state. This surface structural disorder weakens the interfacial electronic interaction between the Ag nanoclusters and the TiO2 substrate (Ag-TiO2-x). This attenuated interaction reduces the local electron density on TiO2 and OVs act as electron traps to capture the plasmon-induced electrons injected from Ag nanoclusters, collectively impairing charge separation and transfer efficiency in Ag-TiO2-x. As a result, Ag-TiO2 possesses superior photoinduced charge carrier separation efficiency compared to Ag-TiO2-x. These findings provide new insights into the interplay among metals, supports, and defects, offering important guidance for the sensible development of highly efficient supported catalysts.
KW - Ammonia synthesis
KW - Hybrid photocatalyst
KW - Metal interface
KW - Oxygen vacancies
UR - https://www.scopus.com/pages/publications/105035494184
U2 - 10.1016/j.ces.2026.123984
DO - 10.1016/j.ces.2026.123984
M3 - 文章
AN - SCOPUS:105035494184
SN - 0009-2509
VL - 331
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 123984
ER -