Issue 22, 2020

Multifunctional nanostructures of Au–Bi2O3 fractals for CO2 reduction and optical sensing

Abstract

The development of nanomaterials with multifunctional properties presents a viable business case for potential scale-up of nanomaterial fabrication. Hence, the design and engineering of structures as well as tuning of active sites are crucial in generating multifunctional properties in nanomaterials. In this regard, we demonstrate a three-dimensional (3D) fractal structure of Au–Bi2O3 with a fractal dimension (Df) of ≈ 1.80, which is obtained from the small-angle X-ray scattering (SAXS) measurement and through the box counting algorithm. The fractal structures, fabricated via a one-step direct synthesis, gives a homogeneous distribution of catalytically active nanocrystals Au and Bi2O3 on a 3D platform with a large active surface area, resulting in a strong enhancement of its localized electric field. Therefore, when applied as a catalyst for electrochemical CO2 reduction reactions (CO2RR) and optical gas sensing, the material displays an excellent performance. Specifically, the fractal structure exhibits a high selectivity towards the formation of formate, achieving a very high faradaic efficiency of 97% and high mass-specific formate current density of −54 mA mg−1 at −1.1 V vs. a reversible hydrogen electrode (RHE). Similarly, this structure displayed a plasmonic shift as high as ∼5 nm for 4 vol% acetone sensing with a detection limit of 100 ppm towards different volatile organic compounds (VOCs).

Graphical abstract: Multifunctional nanostructures of Au–Bi2O3 fractals for CO2 reduction and optical sensing

Supplementary files

Article information

Article type
Paper
Submitted
13 Feb 2020
Accepted
18 May 2020
First published
26 May 2020

J. Mater. Chem. A, 2020,8, 11233-11245

Multifunctional nanostructures of Au–Bi2O3 fractals for CO2 reduction and optical sensing

T. Tran-Phu, R. Daiyan, Z. Fusco, Z. Ma, L. R. A. Rahim, A. Kiy, P. Kluth, X. Guo, Y. Zhu, H. Chen, R. Amal and A. Tricoli, J. Mater. Chem. A, 2020, 8, 11233 DOI: 10.1039/D0TA01723J

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