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Versatile Yolk-Shell Encapsulation: Catalytic, Photothermal, and Sensing Demonstration.
Lee, Hak-Lae; Wei, Haoran; Kim, Kiyoon; Choe, Hyun-Seok; Park, Hyun; Yu, Taekyung; Lee, Changha; Kim, Jae-Hong; Kim, Jae-Hyuk.
Afiliação
  • Lee HL; Department of Chemical and Environmental Engineering, Pusan National University, Busan, 46241, Korea.
  • Wei H; Department of Chemical and Environmental Engineering and Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT), Yale University, New Haven, CT, 06511, USA.
  • Kim K; Environmental Chemistry and Technology and Department of Civil and Environmental Engineering, University of Wisconsin-Madison, 660 N Park Street, Madison, WI, 53706, USA.
  • Choe HS; Department of Chemical Engineering, Kyung Hee University, Yongin, 17140, Korea.
  • Park H; Department of Chemical and Environmental Engineering, Pusan National University, Busan, 46241, Korea.
  • Yu T; Department of Naval Architecture and Ocean Engineering, Pusan National University, Busan, 46241, Korea.
  • Lee C; Department of Chemical Engineering, Kyung Hee University, Yongin, 17140, Korea.
  • Kim JH; School of Chemical and Biological Engineering, Seoul National University, Seoul, 08826, Korea.
  • Kim JH; Department of Chemical and Environmental Engineering and Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT), Yale University, New Haven, CT, 06511, USA.
Small ; 16(35): e2002311, 2020 09.
Article em En | MEDLINE | ID: mdl-32743935
ABSTRACT
Here, a novel, versatile synthetic strategy to fabricate a yolk-shell structured material that can encapsulate virtually any functional noble metal or metal oxide nanocatalysts of any morphology in a free suspension fashion is reported. This strategy also enables encapsulation of more than one type of nanoparticle inside a single shell, including paramagnetic iron oxide used for magnetic separation. The mesoporous organosilica shell provides efficient mass transfer of small target molecules, while serving as a size exclusion barrier for larger interfering molecules. Major structural and functional advantages of this material design are demonstrated by performing three proof-of-concept applications. First, effective encapsulation of plasmonic gold nanospheres for localized photothermal heating and heat-driven reaction inside the shell is shown. Second, hydrogenation catalysis is demonstrated under spatial confinement driven by palladium nanocubes. Finally, the surface-enhanced Raman spectroscopic detection of model pollutant by gold nanorods is presented for highly sensitive environmental sensing with size exclusion.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Small Assunto da revista: ENGENHARIA BIOMEDICA Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Small Assunto da revista: ENGENHARIA BIOMEDICA Ano de publicação: 2020 Tipo de documento: Article