Insights into the Photoelectrocatalytic Behavior of gCN-Based Anode Materials Supported on Ni Foams

Author:

Benedoue Serge12,Benedet Mattia1,Gasparotto Alberto13,Gauquelin Nicolas4ORCID,Orekhov Andrey4,Verbeeck Johan4,Seraglia Roberta3,Pagot Gioele5ORCID,Rizzi Gian Andrea13ORCID,Balzano Vincenzo6,Gavioli Luca6ORCID,Noto Vito Di5ORCID,Barreca Davide3ORCID,Maccato Chiara13

Affiliation:

1. Department of Chemical Sciences, Padova University and INSTM, 35131 Padova, Italy

2. Laboratory of Applied Physical and Analytical Chemistry, Department of Inorganic Chemistry, Faculty of Science, University of Yaoundé, Yaoundé P.O. Box 812, Cameroon

3. CNR-ICMATE and INSTM, Department of Chemical Sciences, Padova University, 35131 Padova, Italy

4. EMAT and NANOlab Center of Excellence, University of Antwerp, 2020 Antwerpen, Belgium

5. Section of Chemistry for the Technology (ChemTech), Department of Industrial Engineering, University of Padova and INSTM, 35131 Padova, Italy

6. Interdisciplinary Laboratories for Advanced Materials Physics (i-LAMP), Dipartimento di Matematica e Fisica, Università Cattolica del Sacro Cuore, 25133 Brescia, Italy

Abstract

Graphitic carbon nitride (gCN) is a promising n-type semiconductor widely investigated for photo-assisted water splitting, but less studied for the (photo)electrochemical degradation of aqueous organic pollutants. In these fields, attractive perspectives for advancements are offered by a proper engineering of the material properties, e.g., by depositing gCN onto conductive and porous scaffolds, tailoring its nanoscale morphology, and functionalizing it with suitable cocatalysts. The present study reports on a simple and easily controllable synthesis of gCN flakes on Ni foam substrates by electrophoretic deposition (EPD), and on their eventual decoration with Co-based cocatalysts [CoO, CoFe2O4, cobalt phosphate (CoPi)] via radio frequency (RF)-sputtering or electrodeposition. After examining the influence of processing conditions on the material characteristics, the developed systems are comparatively investigated as (photo)anodes for water splitting and photoelectrocatalysts for the degradation of a recalcitrant water pollutant [potassium hydrogen phthalate (KHP)]. The obtained results highlight that while gCN decoration with Co-based cocatalysts boosts water splitting performances, bare gCN as such is more efficient in KHP abatement, due to the occurrence of a different reaction mechanism. The related insights, provided by a multi-technique characterization, may provide valuable guidelines for the implementation of active nanomaterials in environmental remediation and sustainable solar-to-chemical energy conversion.

Funder

CNR

Padova University

AMGA Foundation

INSTM Consortium

European Union’s Horizon 2020 research and innovation program

The FWO-Hercules

Dr. Riccardo Lorenzin

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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