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Functional layer engineering to improve performance of protonic ceramic fuel cells 被引量:4
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作者 Ning Wang Zhi-Yin Huang +5 位作者 Chun-Mei Tang Li-Xin Xing Ling Meng Yoshitaka Aoki Lei Du Si-Yu Ye 《Rare Metals》 SCIE EI CAS CSCD 2023年第7期2250-2260,共11页
Protonic ceramic fuel cells(PCFCs)have been attracting increasing attention because of their advances in high-efficiency power generation in an intermediate-temperature range,as compared to the high-temperature solid ... Protonic ceramic fuel cells(PCFCs)have been attracting increasing attention because of their advances in high-efficiency power generation in an intermediate-temperature range,as compared to the high-temperature solid oxide fuel cells(SOFCs).The greatest difference between PCFCs and SOFCs is the specific requirement of protonic(H+)conductivity at the PCFC cathode,in addition to the electronic(e^(-))and oxide-ion(O^(2-))conductivity.The development of a triple H^(+)/e^(-)/O^(2-)conductor for PCFC cathode is still challenging.Thus,the most-widely used cathode material is based on the mature e^(-)/O^(2-)conductor.However,this leads to insufficient triple phase boundary(TPB),i.e.,reaction area.Herein,an efficient strategy that uses a~100 nm-thick proton conductive functional layer(La_(0.5)Sr_(0.5)CoO_(3-δ),LSC55)in-between the typical La_(0.8)Sr_(0.2)CoO_(3-δ)cathode(a mature e-/O^(2-)conductor,LS C 82)and B aZr_(0.4)Ce_(0.4)Y_(0.1)Yb_(0.)1O_(3-δ)elec trolyte(11 mm in diameter,20μm in thickness)is proposed to significantly enhance the reaction area.Reasonably,the ohmic resistance and polarization resistance are both decreased by 47%and 62%,respectively,compared with that of PCFCs without the functional layer.The power density of the PCFC with such a functional layer can be raised by up to 2.24 times,superior to those described in previous reports.The enhanced PCFC performances are attributed to the well-built TPB and enhanced reaction area via the functional layer engineering strategy. 展开更多
关键词 Protonic ceramic fuel cell(PCFC) Cathode functional layer(CFL) Power density triple phase boundary(tpb)
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共烧温度对Pt/YSZ泵氧电极性能的影响
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作者 雷超 李向东 +2 位作者 周丽红 夏风 肖建中 《微纳电子技术》 CAS 北大核心 2013年第3期194-198,共5页
以钇稳定氧化锆(YSZ)为固体电解质,Pt作为电极材料,在不同温度下共烧制备了泵氧电极层原型。借助计时电流法和电化学阻抗谱(EIS)法,并结合SEM分析研究了共烧温度对泵氧电极性能的影响。结果表明,随着共烧温度的增加,泵电流先增大后减小... 以钇稳定氧化锆(YSZ)为固体电解质,Pt作为电极材料,在不同温度下共烧制备了泵氧电极层原型。借助计时电流法和电化学阻抗谱(EIS)法,并结合SEM分析研究了共烧温度对泵氧电极性能的影响。结果表明,随着共烧温度的增加,泵电流先增大后减小,界面电阻先减小后增大,1 400℃共烧电极三相界面(TPB)最长,活性最强;随着共烧温度的增加,电极反应活化能略微降低。虽然1 400℃共烧电极活化能较1 450℃大,但由于其活性区域大,三相界面长,综合表现为1 400℃共烧电极催化活性最强。 展开更多
关键词 PT YSZ 计时电流法 电化学阻抗谱(EIS) 扫描电子显微镜(SEM) 三相界面(tpb)
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