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Platinum incorporation into titanate perovskites to deliver emergent active and stable platinum nanoparticles.
Kothari, Maadhav; Jeon, Yukwon; Miller, David N; Pascui, Andrea Eva; Kilmartin, John; Wails, David; Ramos, Silvia; Chadwick, Alan; Irvine, John T S.
Afiliação
  • Kothari M; School of Chemistry, University of St Andrews, St Andrews, UK.
  • Jeon Y; School of Chemistry, University of St Andrews, St Andrews, UK.
  • Miller DN; Department of Environmental and Energy Engineering, Yonsei University, Wonju, Korea.
  • Pascui AE; School of Chemistry, University of St Andrews, St Andrews, UK.
  • Kilmartin J; Johnson Matthey Technology Centre, Sonning Common, Reading, UK.
  • Wails D; Johnson Matthey Technology Centre, Sonning Common, Reading, UK.
  • Ramos S; Johnson Matthey Technology Centre, Sonning Common, Reading, UK.
  • Chadwick A; School of Physical Sciences, University of Kent, Canterbury, UK.
  • Irvine JTS; School of Physical Sciences, University of Kent, Canterbury, UK.
Nat Chem ; 13(7): 677-682, 2021 Jul.
Article em En | MEDLINE | ID: mdl-34031562
Platinum functions exceptionally well as a nanoparticulate catalyst in many important fields, such as in the removal of atmospheric pollutants, but it is scarce, expensive and not always sufficiently durable. Here, we report a perovskite system in which 0.5 wt% Pt is integrated into the support and its subsequent conversion through exsolution to achieve a resilient catalyst. Owing to the instability of most Pt oxides at high temperatures, a thermally stable platinum oxide precursor, barium platinate, was used to preserve the platinum as an oxide during the solid-state synthesis in an approach akin to the Trojan horse legend. By tailoring the procedure, it is possible to produce a uniform equilibrated structure with active emergent Pt nanoparticles strongly embedded in the perovskite surface that display better CO oxidation activity and stability than those of conventionally prepared Pt catalysts. This catalyst was further evaluated for a variety of reactions under realistic test environments-CO and NO oxidation, diesel oxidation catalysis and ammonia slip reactions were investigated.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article