<listing id="l9bhj"><var id="l9bhj"></var></listing>
<var id="l9bhj"><strike id="l9bhj"></strike></var>
<menuitem id="l9bhj"></menuitem>
<cite id="l9bhj"><strike id="l9bhj"></strike></cite>
<cite id="l9bhj"><strike id="l9bhj"></strike></cite>
<var id="l9bhj"></var><cite id="l9bhj"><video id="l9bhj"></video></cite>
<menuitem id="l9bhj"></menuitem>
<cite id="l9bhj"><strike id="l9bhj"><listing id="l9bhj"></listing></strike></cite><cite id="l9bhj"><span id="l9bhj"><menuitem id="l9bhj"></menuitem></span></cite>
<var id="l9bhj"></var>
<var id="l9bhj"></var>
<var id="l9bhj"></var>
<var id="l9bhj"><strike id="l9bhj"></strike></var>
<ins id="l9bhj"><span id="l9bhj"></span></ins>
Volume 43 Issue 8
Aug.  2021
Turn off MathJax
Article Contents
DING Yu-shi, LI Ying. Transport properties of Ba3Ca1+xNb2?xO9?δ composite perovskite oxides[J]. Chinese Journal of Engineering, 2021, 43(8): 1032-1036. doi: 10.13374/j.issn2095-9389.2020.12.03.003
Citation: DING Yu-shi, LI Ying. Transport properties of Ba3Ca1+xNb2?xO9?δ composite perovskite oxides[J]. Chinese Journal of Engineering, 2021, 43(8): 1032-1036. doi: 10.13374/j.issn2095-9389.2020.12.03.003

Transport properties of Ba3Ca1+xNb2?xO9?δ composite perovskite oxides

doi: 10.13374/j.issn2095-9389.2020.12.03.003
More Information
  • Corresponding author: E-mail: liying@mail.neu.edu.cn
  • Received Date: 2020-12-03
    Available Online: 2021-03-13
  • Publish Date: 2021-08-25
  • ABO3-type perovskite oxides and A3B′B′′2O9-type composite perovskite oxides exhibit proton conduction from 200 ℃ to 1000 ℃. These high-temperature proton conductors have received considerable attention due to their promise as electrolytes in fuel cells, electrolytic hydrogen production, hydrogen separation, electrochemical reactors, sensors, etc. The Ba3Ca1+xNb2?xO9?δ composite perovskite-type solid electrolyte has stable chemical properties and corrosion resistance to CO2 and H2O, so it can be used in long-term electrochemical devices. Protons are incorporated into Ba3Ca1+xNb2?xO9?δ in a humid or hydrogen-containing atmosphere because of the reaction of H2O and oxygen vacancies in proton conductors. However, proton conductors also exhibit oxygen vacancy conduction in the high-temperature range. In addition, electron holes can be generated by an oxygen vacancy reaction with atmospheric oxygen, causing proton conductors to exhibit electron-hole conduction. Hence, more oxygen vacancies can be produced with more Ca2+ dopant in Ba3Ca1+xNb2?xO9?δ due to a lack of positive charge. Meanwhile, the proton and electron-hole concentrations increase with oxygen vacancies, and the conductivity of Ba3Ca1+xNb2?xO9?δ can be improved. However, the crystal structure of Ba3Ca1+xNb2?xO9?δ can be changed with Ca2+ doping, and changes in proton, oxygen vacancy, and electron-hole transport numbers, the ratio of protons, oxygen vacancies, and electron-hole conductivity to total conductivity respectively, are unknown with Ca2+ doping, with different effects of crystal structure for protons, oxygen vacancies, and electron-hole conduction. Ba3Ca1+xNb2?xO9?δ has high conductivity in a humid atmosphere, and the proton transport number with doping amount needs to be further studied. In this work, Ba3Ca1+xNb2?xO9?δ (x=0, 0.10, 0.18, and 0.30) with a composite perovskite phase was prepared using a solid-state reaction method. With the increase in Ca2+ doping amount, the conductivity of Ba3Ca1+xNb2?xO9?δ samples first increased and then decreased, and the conductivity of the sample with x=0.18 was the highest. The electron-hole transport number of Ba3Ca1+xNb2?xO9?δ under the atmosphere containing hydrogen was relatively low. Protons were mainly conductive carriers in Ba3Ca1+xNb2?xO9?δ below 750 ℃, while Ba3Ca1+xNb2?xO9?δ exhibited mainly oxygen vacancy conduction at 800 ℃. With the increase in dopant amount, the oxygen vacancy transport number of Ba3Ca1+xNb2?xO9?δ increased gradually, while the proton transport number decreased gradually.

     

  • loading
  • [1]
    Kreuer K D. Proton-conducting oxides. Annu Rev Mater Res, 2003, 33(1): 333 doi: 10.1146/annurev.matsci.33.022802.091825
    [2]
    Marthinsen A, Wahnstr?m G. Percolation transition in hole-conducting acceptor-doped Barium zirconate. Chem Mater, 2020, 32(13): 5558 doi: 10.1021/acs.chemmater.0c00515
    [3]
    張俊英, 張中太. BaCeO3和SrCeO3基鈣鈦礦型固體電解質. 北京科技大學學報, 2000, 22(3):249 doi: 10.3321/j.issn:1001-053X.2000.03.016

    Zhang J Y, Zhang Z T. Solid electrolyte based on perovskite-type BaCeO3 and SrCeO3. J Univ Sci Technol Beijing, 2000, 22(3): 249 doi: 10.3321/j.issn:1001-053X.2000.03.016
    [4]
    鄭敏輝, 甄秀欣, 趙志剛. SrCeO3基高溫質子導體的制備與性能測定. 北京科技大學學報, 1993, 15(3):310

    Zheng M H, Zhen X X, Zhao Z G. Preparation and characterization of Yb doped SrCeO3 based high temperature proton conductor. J Univ Sci Technol Beijing, 1993, 15(3): 310
    [5]
    Zhou Y, Guan X, Zhou H, et al. Strongly correlated perovskite fuel cells. Nature, 2016, 534(7606): 231 doi: 10.1038/nature17653
    [6]
    Bi L, Da'As E H, Shafi S P. Proton-conducting solid oxide fuel cell (SOFC) with Y-doped BaZrO3 electrolyte. Electrochem Commun, 2017, 80: 20 doi: 10.1016/j.elecom.2017.05.006
    [7]
    Xie D, Ling A, Yan D, et al. A comparative study on the composite cathodes with proton conductor and oxygen ion conductor for proton-conducting solid oxide fuel cell. Electrochimica Acta, 2020, 344: 136143 doi: 10.1016/j.electacta.2020.136143
    [8]
    Tong Y C, Wang Y, Cui C S, et al. Preparation and characterization of symmetrical protonic ceramic fuel cells as electrochemical hydrogen pumps. J Power Sources, 2020, 457: 228036 doi: 10.1016/j.jpowsour.2020.228036
    [9]
    Ishiyama T, Kishimoto H, Develos-Bagarinao K, et al. Correlation between dissolved protons in nickel-doped BaZr0.1Ce0.7Y0.1 Yb0.1O3?δ and its electrical conductive properties. Inorg Chem, 2017, 56(19): 11876 doi: 10.1021/acs.inorgchem.7b01875
    [10]
    Tong Y C, Meng X, Luo T, et al. Protonic ceramic electrochemical cell for efficient separation of hydrogen. ACS Appl Mater Interfaces, 2020, 12(23): 25809 doi: 10.1021/acsami.0c04024
    [11]
    Montaleone D, Mercadelli E, Escolástico S, et al. All-ceramic asymmetric membranes with superior hydrogen permeation. J Mater Chem A, 2018, 6(32): 15718 doi: 10.1039/C8TA04764B
    [12]
    Morejudo S H, Zanón R, Escolástico S, et al. Direct conversion of methane to aromatics in a catalytic co-ionic membrane reactor. Science, 2016, 353(6299): 563 doi: 10.1126/science.aag0274
    [13]
    Li Y, Wang C Z, Zhang Z L, et al. A hydrogen sensor using SrCe0.95Yb0.05O3?α as proton conductor and YHx+YH2?z as reference electrode for determining hydrogen pressure in solid steel. J Mater Sci Technol, 2010, 26(10): 957 doi: 10.1016/S1005-0302(10)60155-7
    [14]
    Kalyakin A S, Lyagaeva J G, Chuikin A Y, et al. A high-temperature electrochemical sensor based on CaZr0.95Sc0.05O3?δ for humidity analysis in oxidation atmospheres. J Solid State Electrochem, 2019, 23(1): 73 doi: 10.1007/s10008-018-4108-7
    [15]
    鞠靚辰, 李楊, 滿文寬, 等. CaF2—SiO2型硅傳感器輔助電極的制備及其定硅性能. 工程科技學報, 2016, 38(4):476

    Ju L C, L Y, Man W K, et al. Preparation and property of silicon sensor auxiliary electrodes based on the CaF2—SiO2 system. Chin J Eng, 2016, 38(4): 476
    [16]
    Zhu Z W, Guo E Y, Wei Z L, et al. Tailoring Ba3Ca1.18Nb1.82O9?δ with NiO as electrolyte for proton-conducting solid oxide fuel cells. J Power Sources, 2018, 373: 132 doi: 10.1016/j.jpowsour.2017.10.091
    [17]
    Jaiswal S K, Yoon K J, Son J W, et al. Synthesis and investigation on stability and electrical conductivity of Ti-doped Ba3CaTa2?xTixO9 (0≤x≤1.0) complex oxides. J Alloys Compd, 2019, 775: 736 doi: 10.1016/j.jallcom.2018.10.185
    [18]
    Wang S W, Chen Y, Fang S M, et al. Novel chemically stable Ba3Ca1.18Nb1.82?xYxO9?δ proton conductor: Improved proton conductivity through tailored cation ordering. Chem Mater, 2014, 26(6): 2021 doi: 10.1021/cm403684b
    [19]
    Ananyev M V, Farlenkov A S, Kurumchin E K. Isotopic exchange between hydrogen from the gas phase and proton-conducting oxides: Theory and experiment. Int J Hydrog Energy, 2018, 43(29): 13373 doi: 10.1016/j.ijhydene.2018.05.150
    [20]
    Sa?inas R, Einarsrud M A, Grande T. Toughening of Y-doped BaZrO3 proton conducting electrolytes by hydration. J Mater Chem A, 2017, 5(12): 5846 doi: 10.1039/C6TA11022C
    [21]
    Bohn H G, Schober T, Mono T, et al. The high temperature proton conductor Ba3Ca1.18Nb1.82O9?δ. I. Electrical conductivity. Solid State Ionics, 1999, 117(3-4): 219 doi: 10.1016/S0167-2738(98)00420-2
    [22]
    Liang K C, Du Y, Nowick A S. Fast high-temperature proton transport in nonstoichiometric mixed perovskites. Solid State Ionics, 1994, 69(2): 117 doi: 10.1016/0167-2738(94)90399-9
    [23]
    Ding Y S, Li Y, Huang W L. Influence of grain interior and grain boundaries on transport properties of scandium-doped calcium zirconate. J Am Ceram Soc, 2020, 103(4): 2653 doi: 10.1111/jace.16968
    [24]
    Ding Y S, Li Y, Zhang C J, et al. Effect of grain interior and grain boundaries on transport properties of Sc-doped CaHfO3. J Alloys Compd, 2020, 834: 155126 doi: 10.1016/j.jallcom.2020.155126
    [25]
    Frade J R. Theoretical behaviour of concentration cells based on ABO3 perovskite materials with protonic and oxygen ion conduction. Solid State Ionics, 1995, 78(1-2): 87 doi: 10.1016/0167-2738(95)00008-T
  • 加載中

Catalog

    通訊作者: 陳斌, bchen63@163.com
    • 1. 

      沈陽化工大學材料科學與工程學院 沈陽 110142

    1. 本站搜索
    2. 百度學術搜索
    3. 萬方數據庫搜索
    4. CNKI搜索

    Figures(4)

    Article views (488) PDF downloads(23) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return
    久色视频