Structural Analysis and Intrinsic Enzyme Mimicking Activities of Ligand‐Free PtAg Nanoalloys

Author:

Chen Lizhen1ORCID,Klemeyer Lars1ORCID,Ruan Mingbo2,Liu Xin1,Werner Stefan3,Xu Weilin2,Koeppen Andrea3,Bücker Robert45,Gonzalez Marta Gallego6,Koziej Dorota17,Parak Wolfgang J.1ORCID,Chakraborty Indranath18ORCID

Affiliation:

1. Fachbereich Physik Center for Hybrid Nanostructures (CHyN) Universität Hamburg 22761 Hamburg Germany

2. State Key Laboratory of Electroanalytical Chemistry and Jilin Province Key Laboratory of Low Carbon Chemical Power Changchun Institute of Applied Chemistry Chinese Academy of Science 5625 Renmin Street Changchun 130022 P. R. China

3. Fachbereich Chemie Universität Hamburg 20146 Hamburg Germany

4. Centre for Structural Systems Biology (CSSB) Department of Chemistry University of Hamburg 22761 Hamburg Germany

5. Rigaku Europe SE 63263 Neu‐Isenburg Germany

6. CIC BiomaGUNE San Sebastian 20014 Spain

7. The Hamburg Centre for Ultrafast Imaging 22761 Hamburg Germany

8. School of Nano Science and Technology Indian Institute of Technology Kharagpur Kharagpur 721302 India

Abstract

AbstractNanozymes are nanomaterials with biocatalytic properties under physiological conditions and are one class of artificial enzymes to overcome the high cost and low stability of natural enzymes. However, surface ligands on nanomaterials will decrease the catalytic activity of the nanozymes by blocking the active sites. To address this limitation, ligand‐free PtAg nanoclusters (NCs) are synthesized and applied as nanozymes for various enzyme‐mimicking reactions. By taking advantage of the mutual interaction of zeolitic imidazolate frameworks (ZIF‐8) and Pt precursors, a good dispersion of PtAg bimetal NCs with a diameter of 1.78 ± 0.1 nm is achieved with ZIF‐8 as a template. The incorporation of PtAgNCs in the voids of ZIF‐8 is confirmed with structural analysis using the atomic pair‐distribution function and powder X‐ray diffraction. Importantly, the PtAgNCs present good catalytic activity for various enzyme‐mimicking reactions, including peroxidase‐/catalase‐ and oxidase‐like reactions. Further, this work compares the catalytic activity between PtAg NCs and PtAg nanoparticles with different compositions and finds that these two nanozymes present a converse dependency of Ag‐loading on their activity. This study contributes to the field of nanozymes and presents a potential option to prepare ligand‐free bimetal biocatalysts with sizes in the nanocluster regime.

Funder

Deutsche Forschungsgemeinschaft

European Commission

European Research Council

China Scholarship Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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