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Earth-abundant LaFeO is a promising p-type semiconductor for photoelectrochemical cells due to its stable photoresponses, high photovoltages and appropriate band alignments, but the photoelectrochemical properties of LaFeO , especially the incident-photon-to-current conversion efficiency, need to be further improved. Herein, we propose to partially substitute La of LaFeO with Ag to enhance the photoelectrochemical performance of LaFeO . The combined experimental and computational studies show that Ag-substitution improves surface charge transfer kinetics through introducing active electronic states and increasing electrochemically active surface areas. Furthermore, Ag-substitution decreases grain boundary number and increases majority carrier density, which promotes bulk charge transports. Ag-substitution also reduces the bandgap energy, increasing the flux of carriers involved in photoelectrochemical reactions. As a result, after 8 % Ag-substitution, the photocurrent density of LaFeO is enhanced by more than 6 times (-0.64 mA cm at 0.5 V vs RHE) in the presence of oxygen, which is the highest photocurrent gain compared with other cation substitution or doping. The corresponding photocurrent onset potential also demonstrates a positive shift of 30 mV. This work highlights the versatile effects of Ag-substitution on the photoelectrochemical properties of LaFeO , which can provide useful insights into the mechanism of enhanced photoelectrochemical performance by doping or substitution.
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http://dx.doi.org/10.1002/cssc.202300645 | DOI Listing |
Chem Sci
August 2025
Department of Physics, Faculty of Mathematics and Natural Sciences, Universitas Indonesia Depok 16424 Indonesia
Biomass and CO valorization constitutes a sustainable solution to mitigate global waste accumulation by converting biomass and CO into valuable chemicals and fuels. Among various conversion strategies, photoelectrochemical (PEC) systems have emerged as a promising approach due to their ability to drive redox reactions under mild conditions using solar energy. However, challenges such as poor selectivity, charge recombination, and inefficient light harvesting hinder the widespread adoption of PEC biomass and CO valorization.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
Key Laboratory of Functional Materials Physics and Chemistry of the Ministry of Education, College of Physics, Jilin Normal University, Siping 136000, China; United Laboratory of High Pressure Physics and Earthquake Science, Institute of Earthquake Forecasting, Earthquake Administration, Beijing 100
This study reports the synthesis of MIL-88B(Fe)/BiOBr, an efficient Z-scheme heterojunction photocatalyst for metronidazole (MNZ) degradation. The composite achieved a degradation efficiency of 95.2 % under visible light irradiation, outperforming the single-component catalysts (MIL-88B(Fe): 39.
View Article and Find Full Text PDFSci Rep
August 2025
Department of Chemical Engineering, Ilam University, Ilam, Iran.
The current study has been conducted to assess the influence of the morphology of bismuth ferrite perovskite (BiFeO) on its photocatalytic performance. Nanorod and nanoparticle morphologies of BiFeO were prepared using the hydrothermal process and analyzed with several techniques. The photocatalysts' effectiveness was appraised by MB photo-degradation in the presence of visible light.
View Article and Find Full Text PDFAnal Chem
August 2025
Hubei Key Laboratory of Plasma Chemistry and Advanced Materials, Hubei Engineering Technology Research Center of Optoelectronic and New Energy Materials, Wuhan Institute of Technology, Wuhan 430205, P. R. China.
Photoelectrochemical (PEC) biosensors remain constrained in multianalyte detection due to inefficient charge separation and signal crosstalk. To address these challenges, we developed a dual small-molecule probe-modulated charge separation system by integrating coumarin 6 (C6) and a silane probe (SP) into a titanium-based metal organic framework (Ti MOF). The porous crystalline structure and favorable electron transport properties of the Ti MOF enable efficient interfacial electron redistribution between the molecular probes and the MOF scaffold.
View Article and Find Full Text PDFChemistry
August 2025
Department of Functional Interfaces, Leibniz Institute of Photonic Technology Jena, Albert-Einstein-Strasse 9, Jena, 07745, Germany.
Heterostructures of Cobalt-Iron (Co-Fe) Prussian blue analogues (PBA) and inorganic semiconductors are attractive materials for photocatalytic and photoelectrochemical water oxidation. Their efficiency is rooted in the charge transfer (CT) at the PBA|semiconductor interface. The interfacial CT, however, often suffers from sluggish kinetics, optimization of which has been elusive.
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