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Au@AuPd Core-Alloyed Shell Nanoparticles for Enhanced Electrocatalytic Activity and Selectivity under Visible Light Excitation.
da Silva, Kaline N; Shetty, Shwetha; Sullivan Allsop, Sam; Cai, Rongsheng; Wang, Shiqi; Quiroz, Jhon; Chundak, Mykhailo; Dos Santos, Hugo L S; Abdelsalam, IbrahiM; Oropeza, Freddy E; de la Peña O'Shea, Víctor A; Heikkinen, Niko; Sitta, Elton; Alves, Tiago V; Ritala, Mikko; Huo, Wenyi; Slater, Thomas J A; Haigh, Sarah J; Camargo, Pedro H C.
Affiliation
  • da Silva KN; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Shetty S; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Sullivan Allsop S; Department of Materials, University of Manchester, Manchester M13 9PL, United Kingdom.
  • Cai R; Department of Materials, University of Manchester, Manchester M13 9PL, United Kingdom.
  • Wang S; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Quiroz J; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Chundak M; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Dos Santos HLS; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Abdelsalam I; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Oropeza FE; Photoactivated Processes Unit, IMDEA Energy Institute, Avda. Ramón de la Sagra 3, 28935 Mostoles, Madrid, Spain.
  • de la Peña O'Shea VA; Photoactivated Processes Unit, IMDEA Energy Institute, Avda. Ramón de la Sagra 3, 28935 Mostoles, Madrid, Spain.
  • Heikkinen N; VTT Technical Research Centre of Finland, P O Box 1000, FIN-02044 Espoo, Finland.
  • Sitta E; Department of Chemistry, Federal University of Sao Carlos, Rod. Washington Luis, km 235, Sao Carlos 13565-905, Brazil.
  • Alves TV; Departamento de Físico-Química, Instituto de Química, Universidade Federal da Bahia, Rua Barão de Jeremoabo, 14740170-115 Salvador, BA, Brazil.
  • Ritala M; Department of Chemistry, University of Helsinki, A.I. Virtasen aukio 1, PO Box 55, FIN-0014 Helsinki, Finland.
  • Huo W; College of Mechanical and Electrical Engineering, Nanjing Forestry University, Nanjing 210037, P. R. China.
  • Slater TJA; NOMATEN Centre of Excellence, National Centre for Nuclear Research, Otwock 05-400, Poland.
  • Haigh SJ; Cardiff Catalysis Institute, School of Chemistry, Cardiff University, Cardiff CF10 3AT, United Kingdom.
  • Camargo PHC; Department of Materials, University of Manchester, Manchester M13 9PL, United Kingdom.
ACS Nano ; 18(35): 24391-24403, 2024 Sep 03.
Article in En | MEDLINE | ID: mdl-39164202
ABSTRACT
Plasmonic catalysis has been employed to enhance molecular transformations under visible light excitation, leveraging the localized surface plasmon resonance (LSPR) in plasmonic nanoparticles. While plasmonic catalysis has been employed for accelerating reaction rates, achieving control over the reaction selectivity has remained a challenge. In addition, the incorporation of catalytic components into traditional plasmonic-catalytic antenna-reactor nanoparticles often leads to a decrease in optical absorption. To address these issues, this study focuses on the synthesis of bimetallic core@shell Au@AuPd nanoparticles (NPs) with ultralow loadings of palladium (Pd) into gold (Au) NPs. The goal is to achieve NPs with an Au core and a dilute alloyed shell containing both Au and Pd, with a low Pd content of around 10 atom %. By employing the (photo)electrocatalytic nitrite reduction reaction (NO2RR) as a model transformation, experimental and theoretical analyses show that this design enables enhanced catalytic activity and selectivity under visible light illumination. We found that the optimized Pd distribution in the alloyed shell allowed for stronger interaction with key adsorbed species, leading to improved catalytic activity and selectivity, both under no illumination and under visible light excitation conditions. The findings provide valuable insights for the rational design of antenna-reactor plasmonic-catalytic NPs with controlled activities and selectivity under visible light irradiation, addressing critical challenges to enable sustainable molecular transformations.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Nano Year: 2024 Document type: Article Affiliation country: Finland Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Nano Year: 2024 Document type: Article Affiliation country: Finland Country of publication: United States