Nanoscale investigation of the reactivity of photocatalyticsystemsis crucial for their fundamental understanding and improving theirdesign and applicability. Here, we present a photochemical nanoscopytechnique that unlocks the local spatial detection of molecular productsduring plasmonic hot-carrier-driven photocatalytic reactions withnanometric precision. By applying the methodology to Au/TiO2 plasmonic photocatalysts, we experimentally and theoretically determinedthat smaller and denser Au nanoparticle arrays present lower opticalcontribution with quantum efficiency in hot-hole-driven photocatalysisclosely related to the population heterogeneity. As expected, thehighest quantum yield from a redox probe oxidation is achieved atthe plasmon peak. Investigating a single plasmonic nanodiode, we unravelthe areas where oxidation and reduction products are evolved withsubwavelength resolution (similar to 200 nm), illustrating the bipolarbehavior of such nanosystems. These results open the way to quantitativeinvestigations at the nanoscale to evaluate the photocatalytic reactivityof low-dimensional materials in a variety of chemical reactions.

Local photochemical nanoscopy of hot-carrier-driven catalytic reactions using plasmonic nanosystems / O. Henrotte, E.Y. Santiago, A. Movsesyan, L. Mascaretti, M. Afshar, A. Minguzzi, A. Vertova, Z.M. Wang, R. Zbořil, Š. Kment, A.O. Govorov, A. Naldoni. - In: ACS NANO. - ISSN 1936-0851. - 17:12(2023 Jun 27), pp. 11427-11438. [10.1021/acsnano.3c01009]

Local photochemical nanoscopy of hot-carrier-driven catalytic reactions using plasmonic nanosystems

A. Minguzzi;A. Vertova;
2023

Abstract

Nanoscale investigation of the reactivity of photocatalyticsystemsis crucial for their fundamental understanding and improving theirdesign and applicability. Here, we present a photochemical nanoscopytechnique that unlocks the local spatial detection of molecular productsduring plasmonic hot-carrier-driven photocatalytic reactions withnanometric precision. By applying the methodology to Au/TiO2 plasmonic photocatalysts, we experimentally and theoretically determinedthat smaller and denser Au nanoparticle arrays present lower opticalcontribution with quantum efficiency in hot-hole-driven photocatalysisclosely related to the population heterogeneity. As expected, thehighest quantum yield from a redox probe oxidation is achieved atthe plasmon peak. Investigating a single plasmonic nanodiode, we unravelthe areas where oxidation and reduction products are evolved withsubwavelength resolution (similar to 200 nm), illustrating the bipolarbehavior of such nanosystems. These results open the way to quantitativeinvestigations at the nanoscale to evaluate the photocatalytic reactivityof low-dimensional materials in a variety of chemical reactions.
photocatalysis; plasmonics; scanning electrochemical microscopy; in situ nanoscopy; hot charge carriers
Settore CHIM/02 - Chimica Fisica
Settore CHEM-02/A - Chimica fisica
   Novel Multilayered and Micro.Machined Electrode nano-Architectures for Electrocatalytic Applica-tions (Fuel cells and Electrolyzers)
   Fuel cells and Electrolyzers
   MINISTERO DELL'ISTRUZIONE E DEL MERITO
   2017YH9MRK_004
27-giu-2023
Article (author)
File in questo prodotto:
File Dimensione Formato  
ACS Nano.pdf

accesso riservato

Descrizione: articolo pubblicato
Tipologia: Publisher's version/PDF
Dimensione 9.4 MB
Formato Adobe PDF
9.4 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
ACS nano post.pdf

accesso aperto

Tipologia: Post-print, accepted manuscript ecc. (versione accettata dall'editore)
Dimensione 1.33 MB
Formato Adobe PDF
1.33 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1055228
Citazioni
  • ???jsp.display-item.citation.pmc??? 3
  • Scopus 12
  • ???jsp.display-item.citation.isi??? 12
  • OpenAlex ND
social impact