Huge efforts have been done in the last years on electrochemical and photoelectrochemicalreduction of CO2 to offer a sustainable route to recycle CO2. A promising route is to electrochemically reduce CO2 into CO which, by combination with hydrogen, can be used as a feedstock to different added-value products or fuels. Herein, perpendicular oriented TiO2 nanotubes (NTs) on the electrode plate were grown by anodic oxidation of titanium substrate and then decorated by a low loading of silver nanoparticles deposited by sputtering (i.e.Ag/TiO2 NTs). Due to their quasi one-dimensional arrangement, TiO2 NTs are able toprovide higher surface area for Ag adhesion and superior electron transport propertiesthan other Ti substrates (e.g. Ti foil and TiO2 nanoparticles), as confirmed by electro-chemical (CV, EIS, electrochemical active surface area) and chemical/morphological analysis (FESEM, TEM, EDS). These characteristics together with the role of the TiO2 NTs to enhance the stability of CO2·-intermediate formed due to titania redox couple (TiIV/TiIII) lead to an improvement of the CO production in the Ag/TiO2 NTs electrodes. Particular attention has been devoted to reduce the loading of noble metal in the electrode(14.5 %w/%w) and to increase the catalysts active surface area in order to decrease the required overpotential. © 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

Syngas production by electrocatalytic reduction of CO2 using Ag-decorated TiO2 nanotubes / Farkhondehfal, M. A.; Hernandez, S.; Rattalino, Matteo; Makkee, M.; Lamberti, A.; Chiodoni, A.; Bejtka, K.; Sacco, A.; Pirri, F. C.; Russo, N.. - In: INTERNATIONAL JOURNAL OF HYDROGEN ENERGY. - ISSN 0360-3199. - ELETTRONICO. - 45:(2020), pp. 26458-26471. [10.1016/j.ijhydene.2019.04.180]

Syngas production by electrocatalytic reduction of CO2 using Ag-decorated TiO2 nanotubes

Hernandez S.;RATTALINO, MATTEO;Lamberti A.;Chiodoni A.;Bejtka K.;Sacco A.;Pirri F. C.;Russo N.
2020

Abstract

Huge efforts have been done in the last years on electrochemical and photoelectrochemicalreduction of CO2 to offer a sustainable route to recycle CO2. A promising route is to electrochemically reduce CO2 into CO which, by combination with hydrogen, can be used as a feedstock to different added-value products or fuels. Herein, perpendicular oriented TiO2 nanotubes (NTs) on the electrode plate were grown by anodic oxidation of titanium substrate and then decorated by a low loading of silver nanoparticles deposited by sputtering (i.e.Ag/TiO2 NTs). Due to their quasi one-dimensional arrangement, TiO2 NTs are able toprovide higher surface area for Ag adhesion and superior electron transport propertiesthan other Ti substrates (e.g. Ti foil and TiO2 nanoparticles), as confirmed by electro-chemical (CV, EIS, electrochemical active surface area) and chemical/morphological analysis (FESEM, TEM, EDS). These characteristics together with the role of the TiO2 NTs to enhance the stability of CO2·-intermediate formed due to titania redox couple (TiIV/TiIII) lead to an improvement of the CO production in the Ag/TiO2 NTs electrodes. Particular attention has been devoted to reduce the loading of noble metal in the electrode(14.5 %w/%w) and to increase the catalysts active surface area in order to decrease the required overpotential. © 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
File in questo prodotto:
File Dimensione Formato  
Syngas production by electrocatalytic reduction of CO2using Ag-decorated TiO2nanotubes (IJHE_Amin'19).pdf

non disponibili

Descrizione: Editorial Version
Tipologia: 2a Post-print versione editoriale / Version of Record
Licenza: Non Pubblico - Accesso privato/ristretto
Dimensione 3.54 MB
Formato Adobe PDF
3.54 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
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/11583/2851490