Efficient photoelectrocatalytic conversion of CO2 to formic acid using Ag-TiO2 nanoparticles formed on the surface of nanoporous structured Ti foil

No Thumbnail Available

Date

2022

Journal Title

Journal ISSN

Volume Title

Publisher

Korean Society of Industrial Engineering Chemistry

Abstract

Global warming and adverse climate change, which have been intensified by a strident increase in carbon dioxide (CO<inf>2</inf>) emissions, have necessitated the development of alternative techniques to reduce the disproportionate concentration of CO<inf>2</inf> in the atmosphere. The photoelectrochemical reduction of CO<inf>2</inf> is a technique of lowering the energy required to convert greenhouse gases into useful end products. Herein, we have manufactured an innovative, cost-effective silver (Ag) decorated anatase TiO<inf>2</inf> (TO-Agx; ‘x’ stands for different concentration of Ag) nanoparticles which created on the 3D nanoporous structured surface of a thin titanium foil (Ti-foil) by the assist of chemical treatment with hydrogen peroxide (H<inf>2</inf>O<inf>2</inf>) and different concentrations (1, 5, 10, 20 mM) of silver nitrate (AgNO<inf>3</inf>) solution and followed by calcination at 500 °C. As-prepared samples were analyzed by several characterization techniques such as XRD, XPS, TEM and Raman spectroscopy. Among various samples (TO, TO-Ag<inf>1</inf>, TO-Ag<inf>5</inf>, TO-Ag<inf>20</inf>), the TO-Ag<inf>10</inf> sample were exposed a supreme photocurrent density of 83.2 µA/cm−2 (86.1% higher than TO sample which is untreated with AgNO<inf>3</inf> solution). Because of its high photocurrent density, the sample TO-Ag<inf>10</inf> were selected as the electrode material for photoelectrochemical CO<inf>2</inf> reduction reaction and a lowest reduction onset potential (−1.018 V) was observed on linear sweep voltammetry analysis in the presence of light with Ag/AgCl reference electrode. 1H NMR analysis of the product solution exposed the production of formic acid as a single product of CO<inf>2</inf> reduction reaction after the chronoamperometric electrolysis were carried out more than 6 h. The maximum faradaic efficiency (73%) and formic acid yield (193 µmol cm−2 h−1) were found at an applied potential of −1.2 V (vs. Ag/AgCl reference electrode) for TO-Ag<inf>10</inf> photocathode. © 2022 The Korean Society of Industrial and Engineering Chemistry

Description

Keywords

Carbon dioxide, Chlorine compounds, Cost effectiveness, Electrochemistry, Electrodes, Formic acid, Global warming, Greenhouse gases, Photocurrents, Silver compounds, Silver nanoparticles, TiO2 nanoparticles, Ag/AgCl, CO reduction, Nano-porous, Photo-electrocatalysis, Photocurrent density, Photoelectrocatalysis, Photoelectrochemicals, Reduction reaction, TiO2 nanoparticle, Titanium dioxide

Citation

Journal of Industrial and Engineering Chemistry, 2022, 113, , pp. 124-131

Collections

Endorsement

Review

Supplemented By

Referenced By