» Articles » PMID: 25357131

Substrate Selection for Fundamental Studies of Electrocatalysts and Photoelectrodes: Inert Potential Windows in Acidic, Neutral, and Basic Electrolyte

Overview
Journal PLoS One
Date 2014 Oct 31
PMID 25357131
Citations 27
Authors
Affiliations
Soon will be listed here.
Abstract

The selection of an appropriate substrate is an important initial step for many studies of electrochemically active materials. In order to help researchers with the substrate selection process, we employ a consistent experimental methodology to evaluate the electrochemical reactivity and stability of seven potential substrate materials for electrocatalyst and photoelectrode evaluation. Using cyclic voltammetry with a progressively increased scan range, we characterize three transparent conducting oxides (indium tin oxide, fluorine-doped tin oxide, and aluminum-doped zinc oxide) and four opaque conductors (gold, stainless steel 304, glassy carbon, and highly oriented pyrolytic graphite) in three different electrolytes (sulfuric acid, sodium acetate, and sodium hydroxide). We determine the inert potential window for each substrate/electrolyte combination and make recommendations about which materials may be most suitable for application under different experimental conditions. Furthermore, the testing methodology provides a framework for other researchers to evaluate and report the baseline activity of other substrates of interest to the broader community.

Citing Articles

Electrochemical Redox Cycling with Pyrolytic Carbon Stacked-Layer Nanogap Electrodes.

Stovring N, Heiskanen A, Emneus J, Sylvest Keller S ACS Appl Mater Interfaces. 2025; 17(9):14375-14388.

PMID: 39969911 PMC: 11892468. DOI: 10.1021/acsami.4c18998.


Electrochemical and Optical Characterization of the Meniscus of Scanning Electrochemical Cell Microscopy (SECCM) Probes.

Valavanis D, Ciocci P, McPherson I, Meloni G, Lemineur J, Kanoufi F ACS Electrochem. 2025; 1(2):153-163.

PMID: 39935601 PMC: 11808645. DOI: 10.1021/acselectrochem.4c00029.


Optically Transparent Carbon Electrodes for Single Entity Electrochemistry.

Vernon K, Pungsrisai T, Wahab O, Alden S, Zhong Y, Choi M ACS Electrochem. 2025; 1(1):93-102.

PMID: 39878144 PMC: 11728714. DOI: 10.1021/acselectrochem.4c00048.


Monitoring Electrochemical Dynamics through Single-Molecule Imaging of hBN Surface Emitters in Organic Solvents.

Mayner E, Ronceray N, Lihter M, Chen T, Watanabe K, Taniguchi T ACS Nano. 2024; 18(40):27401-27410.

PMID: 39321411 PMC: 11468151. DOI: 10.1021/acsnano.4c07189.


Innovative Energy Storage Smart Windows Relying on Mild Aqueous Zn/MnO Battery Chemistry.

Palamadathil Kannattil H, Martinez Soria Gallo L, Harris K, Limoges B, Balland V Adv Sci (Weinh). 2024; 11(29):e2402369.

PMID: 38810148 PMC: 11304267. DOI: 10.1002/advs.202402369.


References
1.
Han J, Qiu W, Gao W . Potential dissolution and photo-dissolution of ZnO thin films. J Hazard Mater. 2010; 178(1-3):115-22. DOI: 10.1016/j.jhazmat.2010.01.050. View

2.
Stadler A . Transparent Conducting Oxides-An Up-To-Date Overview. Materials (Basel). 2017; 5(4):661-683. PMC: 5448960. DOI: 10.3390/ma5040661. View

3.
Kibsgaard J, Lauritsen J, Laegsgaard E, Clausen B, Topsoe H, Besenbacher F . Cluster-support interactions and morphology of MoS2 nanoclusters in a graphite-supported hydrotreating model catalyst. J Am Chem Soc. 2006; 128(42):13950-8. DOI: 10.1021/ja0651106. View

4.
Yeo B, Klaus S, Ross P, Mathies R, Bell A . Identification of hydroperoxy species as reaction intermediates in the electrochemical evolution of oxygen on gold. Chemphyschem. 2010; 11(9):1854-7. DOI: 10.1002/cphc.201000294. View

5.
Chen Z, Cummins D, Reinecke B, Clark E, Sunkara M, Jaramillo T . Core-shell MoO3-MoS2 nanowires for hydrogen evolution: a functional design for electrocatalytic materials. Nano Lett. 2011; 11(10):4168-75. DOI: 10.1021/nl2020476. View