Literature DB >> 23073153

Composite fuel electrode La(0.2)Sr(0.8)TiO(3-δ)-Ce(0.8)Sm(0.2)O(2-δ) for electrolysis of CO2 in an oxygen-ion conducting solid oxide electrolyser.

Yuanxin Li1, Jianer Zhou, Dehua Dong, Yan Wang, J Z Jiang, Hongfa Xiang, Kui Xie.   

Abstract

Composite Ni-YSZ fuel electrodes are able to operate only under strongly reducing conditions for the electrolysis of CO(2) in oxygen-ion conducting solid oxide electrolysers. In an atmosphere without a flow of reducing gas (i.e., carbon monoxide), a composite fuel electrode based on redox-reversible La(0.2)Sr(0.8)TiO(3+δ) (LSTO) provides a promising alternative. The Ti(3+) was approximately 0.3% in the oxidized LSTO (La(0.2)Sr(0.8)TiO(3.1)), whereas the Ti(3+) reached approximately 8.0% in the reduced sample (La(0.2)Sr(0.8)TiO(3.06)). The strong adsorption of atmospheric oxygen in the form of superoxide ions led to the absence of Ti(3+) either on the surface of oxidized LSTO or the reduced sample. Reduced LSTO showed typical metallic behaviour from 50 to 700 °C in wet H(2); and the electrical conductivity of LSTO reached approximately 30 S cm(-1) at 700 °C. The dependence of [Ti(3+)] concentration in LSTO on P(O(2)) was correlated to the applied potentials when the electrolysis of CO(2) was performed with the LSTO composite electrode. The electrochemical reduction of La(0.2)Sr(0.8)TiO(3+δ) was the main process but was still present up to 2 V at 700 °C during the electrolysis of CO(2); however, the electrolysis of CO(2) at the fuel electrode became dominant at high applied voltages. The current efficiency was approximately 36% for the electrolysis of CO(2) at 700 °C and a 2 V applied potential.

Entities:  

Year:  2012        PMID: 23073153     DOI: 10.1039/c2cp42232h

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  6 in total

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3.  Enhancing CO2 electrolysis through synergistic control of non-stoichiometry and doping to tune cathode surface structures.

Authors:  Lingting Ye; Minyi Zhang; Ping Huang; Guocong Guo; Maochun Hong; Chunsen Li; John T S Irvine; Kui Xie
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4.  In situ formation of oxygen vacancy in perovskite Sr(0.95)Ti(0.8)Nb(0.1)M(0.1)O3 (M = Mn, Cr) toward efficient carbon dioxide electrolysis.

Authors:  Jun Zhang; Kui Xie; Haoshan Wei; Qingqing Qin; Wentao Qi; Liming Yang; Cong Ruan; Yucheng Wu
Journal:  Sci Rep       Date:  2014-11-18       Impact factor: 4.379

5.  Electrochemical properties of La0.5Sr0.5Fe0.95Mo0.05O3-δ as cathode materials for IT-SOEC.

Authors:  Yunting Hou; Yadun Wang; Lijun Wang; Qifei Zhang; Kuo-Chih Chou
Journal:  RSC Adv       Date:  2021-09-28       Impact factor: 3.361

6.  In situ growth of Ni(x)Cu(1-x) alloy nanocatalysts on redox-reversible rutile (Nb,Ti)O₄ towards high-temperature carbon dioxide electrolysis.

Authors:  Haoshan Wei; Kui Xie; Jun Zhang; Yong Zhang; Yan Wang; Yongqiang Qin; Jiewu Cui; Jian Yan; Yucheng Wu
Journal:  Sci Rep       Date:  2014-06-03       Impact factor: 4.379

  6 in total

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