The design and fabrication of eco-friendly and costeffective (photo)electrocatalysts for the oxygen evolution reaction (OER) is a key research goal for a proper management of water splitting to address the global energy crisis. In this work, we focus on the preparation of supported MnO2/graphitic carbon nitride (g-CN) OER (photo)electrocatalysts by means of a novel preparation strategy. The proposed route consists of the plasma enhanced chemical vapor deposition (PE-CVD) of MnO2 nanoarchitectures on porous Ni scaffolds, the anchoring of controllable g-CN amounts by an amenable electrophoretic deposition (EPD) process, and the ultimate thermal treatment in air. The inherent method versatility and flexibility afforded defective MnO2/g-CN nanoarchitectures, featuring a g-CN content and nano-organization tunable as a function of EPD duration and the used carbon nitride precursor. Such a modulation had a direct influence on OER functional performances, which, for the best composite system, corresponded to an overpotential of 430 mV at 10 mA/cm2, a Tafel slope of ca. 70 mV/dec, and a turnover frequency of 6.52 × 10-3 s-1, accompanied by a very good time stability. The present outcomes, comparing favorably with previous results on analogous systems, were rationalized on the basis of the formation of type-II MnO2/g-CN heterojunctions, and yield valuable insights into this class of green (photo)electrocatalysts for end uses in solar-to-fuel conversion and water treatment.

Controllable anchoring of graphitic carbon nitride on MnO2 nanoarchitectures for oxygen evolution electrocatalysis

Benedet M.;Maccato C.;Rizzi G. A.;Barreca D.
;
Gasparotto A.
2023

Abstract

The design and fabrication of eco-friendly and costeffective (photo)electrocatalysts for the oxygen evolution reaction (OER) is a key research goal for a proper management of water splitting to address the global energy crisis. In this work, we focus on the preparation of supported MnO2/graphitic carbon nitride (g-CN) OER (photo)electrocatalysts by means of a novel preparation strategy. The proposed route consists of the plasma enhanced chemical vapor deposition (PE-CVD) of MnO2 nanoarchitectures on porous Ni scaffolds, the anchoring of controllable g-CN amounts by an amenable electrophoretic deposition (EPD) process, and the ultimate thermal treatment in air. The inherent method versatility and flexibility afforded defective MnO2/g-CN nanoarchitectures, featuring a g-CN content and nano-organization tunable as a function of EPD duration and the used carbon nitride precursor. Such a modulation had a direct influence on OER functional performances, which, for the best composite system, corresponded to an overpotential of 430 mV at 10 mA/cm2, a Tafel slope of ca. 70 mV/dec, and a turnover frequency of 6.52 × 10-3 s-1, accompanied by a very good time stability. The present outcomes, comparing favorably with previous results on analogous systems, were rationalized on the basis of the formation of type-II MnO2/g-CN heterojunctions, and yield valuable insights into this class of green (photo)electrocatalysts for end uses in solar-to-fuel conversion and water treatment.
2023
Istituto di Chimica della Materia Condensata e di Tecnologie per l'Energia - ICMATE
Inglese
15
40
47368
47380
13
https://pubs.acs.org/doi/10.1021/acsami.3c09363
Esperti anonimi
MnO2
nanoarchitectures
graphitic carbon nitride
plasma-enhanced chemical vapor deposition
electrophoretic deposition
oxygen evolution reaction
Internazionale
Elettronico
10
info:eu-repo/semantics/article
262
Benedet, M.; Gallo, A.; Maccato, C.; Rizzi, G. A.; Barreca, D.; Lebedev, O. I.; Modin, E.; Mcglynn, R.; Mariotti, D.; Gasparotto, A.
01 Contributo su Rivista::01.01 Articolo in rivista
open
   Progetti di Ricerca @CNR - avviso 2020 ASSIST
   ASSIST
   CNR

   P-DiSC#04BIRD2020-UNIPD EUREKA, DOR 2020−2022
   Padova University

   INSTM21PDGASPAROTTO-NANOMAT, INSTM21PDBARMAC-ATENA
   Padova University

   NYMPHEA project
   AMGA Foundation

   EPSRC - EP/V055232/1,EP/R008841/1
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/451001
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