Elucidating Structural Disorder in Ultra‐Thin Bi‐Rich Bismuth Oxyhalide Photocatalysts

Author:

Marks Melissa12ORCID,Jeppesen Henrik3ORCID,Nielsen Mads Lund Nygaard1,Kong Jintao4,Ceccato Marcel12ORCID,van der Veen Monique A.4ORCID,Bøjesen Espen Drath15ORCID,Lock Nina12ORCID

Affiliation:

1. Interdisciplinary Nanoscience Centre (iNANO) Aarhus University Gustav Wieds Vej 14 Aarhus C 8000 Denmark

2. Department of Biological and Chemical Engineering Aarhus University Åbogade 40 Aarhus N 8200 Denmark

3. Deutsches Elektronen‐Synchrotron (DESY) Notkestr. 85 22607 Hamburg Germany

4. Department of Chemical Engineering Technische Universiteit Delft Delft HZ 2629 The Netherlands

5. iMAT Aarhus University Centre for Integrated Materials Research Aarhus University Langelandsgade 140 Aarhus C 8000 Denmark

Abstract

AbstractAdvancing the field of photocatalysis requires the elucidation of structural properties that underpin the photocatalytic properties of promising materials. The focus of the present study is layered, Bi‐rich bismuth oxyhalides, which are widely studied for photocatalytic applications yet poorly structurally understood, due to high levels of disorder, nano‐sized domains, and the large number of structurally similar compounds. By connecting insights from multiple scattering techniques, utilizing electron‐, X‐ray‐ and neutron probes, the crystal phase of the synthesized materials is allocated as layered Bi24O31X10 (X = Cl, Br), albeit with significant deviation from the reported 3D crystalline model. The materials comprise anisotropic platelet‐shaped crystalline domains, exhibiting significant in‐plane ordering in two dimensions but disorder and an ultra‐thin morphology in the layer stacking direction. Increased synthesis pH tailored larger, more ordered crystalline domains, leading to longer excited state lifetimes determined via femtosecond transient absorption spectroscopy (fs‐TAS). Although this likely contributes to improved photocatalytic properties, assessed via the photooxidation of benzylamine, increasing the overall surface area facilitated the most significant improvement in photocatalytic performance. This study, therefore, enabled both phase allocation and a nuanced discussion of the structure‐property relationship for complicated, ultra‐thin photocatalysts.

Funder

Oak Ridge National Laboratory

Danmarks Grundforskningsfond

Carlsbergfondet

Danmarks Frie Forskningsfond

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Publisher

Wiley

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