Microbial synthesis of core/shell gold/palladium nanoparticles for applications in green chemistry

Author:

Deplanche Kevin1,Merroun Mohamed L.2,Casadesus Merixtell3,Tran Dung T.4,Mikheenko Iryna P.1,Bennett James A.5,Zhu Ju5,Jones Ian P.4,Attard Gary A.3,Wood J.5,Selenska-Pobell Sonja2,Macaskie Lynne E.1

Affiliation:

1. Unit of Functional Bionanomaterials, School of Biosciences, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK

2. Institut für Radiochemie, Forschungszentrum Dresden Rossendorf, PO Box 510119, 01314 Dresden, Germany

3. School of Chemistry, Cardiff University, Park Place, Cardiff CF10 3AT, UK

4. School of Metallurgy and Materials, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK

5. School of Chemical Engineering, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK

Abstract

We report a novel biochemical method based on the sacrificial hydrogen strategy to synthesize bimetallic gold (Au)–palladium (Pd) nanoparticles (NPs) with a core/shell configuration. The ability of Escherichia coli cells supplied with H 2 as electron donor to rapidly precipitate Pd(II) ions from solution is used to promote the reduction of soluble Au(III). Pre-coating cells with Pd(0) (bioPd) dramatically accelerated Au(III) reduction, with the Au(III) reduction rate being dependent upon the initial Pd loading by mass on the cells. Following Au(III) addition, the bioPd–Au(III) mixture rapidly turned purple, indicating the formation of colloidal gold. Mapping of bio-NPs by energy dispersive X-ray microanalysis suggested Au-dense core regions and peripheral Pd but only Au was detected by X-ray diffraction (XRD) analysis. However, surface analysis of cleaned NPs by cyclic voltammetry revealed large Pd surface sites, suggesting, since XRD shows no crystalline Pd component, that layers of Pd atoms surround Au NPs. Characterization of the bimetallic particles using X-ray absorption spectroscopy confirmed the existence of Au-rich core and Pd-rich shell type bimetallic biogenic NPs. These showed comparable catalytic activity to chemical counterparts with respect to the oxidation of benzyl alcohol, in air, and at a low temperature (90°C).

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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