Revealing electronic structure of nanostructured cobalt titanate via a combination of optical and electrochemical approaches toward water splitting and CO2 reduction

Author:

Moghiminia Shokufeh1,Farsi Hossein123ORCID,Zubkov Tykhon2,Hosseini Seyyedamirhossein24ORCID,Behforouz Mitra5,Fahmideh Mahdizadeh Fariba1,Barekati Neda Sadat1,Moghadam Nazanin Gholamian3,Irandoost Eshagh1,Estes Justine2,Li Zhihai2ORCID

Affiliation:

1. Department of Chemistry University of Birjand Birjand Iran

2. Department of Chemistry Ball State University Muncie Indiana USA

3. Developing Nanomaterials for Environmental Protection Research Lab University of Birjand Birjand Iran

4. Department of Chemistry University of Utah Salt Lake City Utah USA

5. Department of Biology Ball State University Muncie Indiana USA

Abstract

AbstractBackgroundThe shortage of clean energy has become a serious problem due to the rapid development of societies and the increasing consumption of fossil fuels. Metal oxide semiconductor nanomaterials have been studied as photo‐/electrocatalysts for water splitting in terms of clean energy generation. Applications of semiconductors depend on their electronic structures. Therefore, elucidating the electronic diagram is essential for determining the specific applications of novel semiconductors.ResultsHerein, we demonstrate using a combination of UV–visible diffuse reflectance spectroscopy (DRS) and Mott–Schottky analysis via electrochemical impedance spectroscopy for sketching the electronic diagram of nanostructured cobalt titanate (CoTiO3) prepared by the sol–gel method. UV–visible DRS studies reveal a band gap of 2.5 and 2.1 eV for direct and indirect transitions of prepared nanostructured materials, respectively. Mott–Schottky analysis shows a 0.8 V versus Ag/AgCl value for the flat band potential for CoTiO3. We further show the application of this diagram toward the interpretation of the electrochemical behavior of nanostructured CoTiO3 for electrochemical water splitting reactions and the electrochemical CO2 reduction reaction (eCO2RR).ConclusionThe presented electrochemical and photoelectrochemical studies demonstrate nanostructured CoTiO3 as an effective catalyst for electrochemical water oxidation and the eCO2RR. Moreover, our results provide valuable information for further investigation of water splitting and photovoltaic energy conversion. © 2023 Society of Chemical Industry (SCI).

Publisher

Wiley

Subject

Inorganic Chemistry,Organic Chemistry,Pollution,Waste Management and Disposal,Fuel Technology,Renewable Energy, Sustainability and the Environment,General Chemical Engineering,Biotechnology

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