Graphene Electrode for Studying CO2 Electroreduction Nanocatalysts under Realistic Conditions in Microcells

Author:

Toleukhanova Saltanat1,Shen Tzu‐Hsien1,Chang Chen1,Swathilakshmi Swathilakshmi1,Bottinelli Montandon Tecla1,Tileli Vasiliki1ORCID

Affiliation:

1. Institute of Materials, École Polytechnique Fédérale de Lausanne Lausanne CH–1015 Switzerland

Abstract

AbstractThe ability to resolve the dynamic evolution of electrocatalytically induced processes with electrochemical liquid‐phase electron microscopy (EM) is limited by the microcell configuration. Herein, a free‐standing tri‐layer graphene is integrated as a membrane and electrode material into the electrochemical chip and its suitability as a substrate electrode at the high cathodic potentials required for CO2 electroreduction (CO2ER) is evaluated. The three‐layer stacked graphene is transferred onto an in‐house fabricated single‐working electrode chip for use with bulk‐like reference and counter electrodes to facilitate evaluation of its effectiveness. Electrochemical measurements show that the graphene working electrode exhibits a wider inert cathodic potential range than the conventional glassy carbon electrode while achieving good charge transfer properties for nanocatalytic redox reactions. Operando scanning electron microscopy studies clearly demonstrate the improvement in spatial resolution but reveal a synergistic effect of the electron beam and the applied potential that limits the stability time window of the graphene‐based electrochemical chip. By optimizing the operating conditions, in situ monitoring of Cu nanocube degradation is achieved at the CO2ER potential of −1.1 V versus RHE. Thus, this improved microcell configuration allows EM observation of catalytic processes at potentials relevant to real systems.

Funder

NCCR Catalysis

Publisher

Wiley

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