AgBiS 2 is a narrow-band-gap, water-stable semiconductor with strong visible-light absorption, making it a promising absorber material in devices for solar-driven photoelectrocatalysis. Despite extensive studies on its photovoltaic performance, the role of cation disorder in governing PEC activity remains unexplored. Here, we investigate this effect on solvothermally synthesized AgBiS 2 nanoparticles in photoanode thin films fabricated using ultrasonic spray coating. Mild thermal annealing partially homog- enizes the cation distribution, as evidenced by lattice contraction in X-ray diffraction and absorption analyses, while spectroscopic characterization reveals subtle band-structure tuning toward a slightly n-type behavior. The annealed electrodes exhibit higher photocurrents and increased donor density. Impedance spectroscopy reveals improved hole flux to the semiconductor/electrolyte interface, while transient absorption spectroscopy identifies sub-bandgap trap-mediated recombination as the primary perfor- mance bottleneck. In addition, Operando X-ray absorption measurements show that annealing stabilizes the material under bias by suppressing ion migration. Together, these results reveal influences of thermal treatment on the structure and charge-carrier dynamics in AgBiS 2 photoanodes and support its implementation as low band gap material in electrode architectures. For the first time, we also demonstrate their optimal use with fast redox mediators for selective photooxidation and sustainable solar energy conversion

Structure–Property–Performance Relationships in a Low Band‐Gap AgBiS 2 Photoanodic Material / Domenici, Sara; Ragonese, Paola; Marchini, Edoardo; Mazzanti, Michele; Landrot, Gautier; Prato, Mirko; Cara, Eleonora; Pozzati, Micaela; Wittke, Matthis; Wang, Mengjiao; Caramori, Stefano; Poli, Isabella; Gatti, Teresa. - In: SMALL STRUCTURES. - ISSN 2688-4062. - 7:5(2026). [10.1002/sstr.70487]

Structure–Property–Performance Relationships in a Low Band‐Gap AgBiS 2 Photoanodic Material

Domenici, Sara;Cara, Eleonora;Pozzati, Micaela;Wang, Mengjiao;Gatti, Teresa
2026

Abstract

AgBiS 2 is a narrow-band-gap, water-stable semiconductor with strong visible-light absorption, making it a promising absorber material in devices for solar-driven photoelectrocatalysis. Despite extensive studies on its photovoltaic performance, the role of cation disorder in governing PEC activity remains unexplored. Here, we investigate this effect on solvothermally synthesized AgBiS 2 nanoparticles in photoanode thin films fabricated using ultrasonic spray coating. Mild thermal annealing partially homog- enizes the cation distribution, as evidenced by lattice contraction in X-ray diffraction and absorption analyses, while spectroscopic characterization reveals subtle band-structure tuning toward a slightly n-type behavior. The annealed electrodes exhibit higher photocurrents and increased donor density. Impedance spectroscopy reveals improved hole flux to the semiconductor/electrolyte interface, while transient absorption spectroscopy identifies sub-bandgap trap-mediated recombination as the primary perfor- mance bottleneck. In addition, Operando X-ray absorption measurements show that annealing stabilizes the material under bias by suppressing ion migration. Together, these results reveal influences of thermal treatment on the structure and charge-carrier dynamics in AgBiS 2 photoanodes and support its implementation as low band gap material in electrode architectures. For the first time, we also demonstrate their optimal use with fast redox mediators for selective photooxidation and sustainable solar energy conversion
2026
File in questo prodotto:
File Dimensione Formato  
Small Structures - 2026 - Domenici - Structure Property Performance Relationships in a Low Band‐Gap AgBiS2 Photoanodic.pdf

accesso aperto

Tipologia: 2a Post-print versione editoriale / Version of Record
Licenza: Creative commons
Dimensione 5.74 MB
Formato Adobe PDF
5.74 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/3011348