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AC spectroscopic study of charge transfer across a single interface between zinc oxide and yttria-stabilized zirconium dioxide.

机译:交流光谱研究了电荷在氧化锌和氧化钇稳定的二氧化锆之间单个界面上的转移。

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摘要

In solid-state electrochemical cells, the charge transfer processes at the electrode/electrolyte interface play an important role in determining the overall performance of the cell. In this study, the electrochemical behavior of a simple interface between a single crystal of zinc oxide (ZnO) and a single crystal of yttria-stabilized zirconium dioxide (YSZ) has been investigated using small-signal ac immittance spectroscopy (ACIS). From the total cell immittance data, acquired as a function of frequency over a range of temperatures (200{dollar}spcirc{dollar}C {dollar}leq{dollar} T {dollar}leq{dollar} 900{dollar}spcirc{dollar}C), partial pressures of oxygen (10{dollar}sp{lcub}-4{rcub} -{dollar}1 atm.) and dc bias voltage, the physical processes that play a role in the charge transport were identified.; A simple equivalent circuit that best represents the data and is consistent with the physical model has been assigned for the system under investigation. The equivalent circuit parameter values were obtained using an data analysis program, called "CPFMULIT", developed for this work. In all, five semicircular relaxations were observed and each of these relaxations has been associated with a physical process.; At the lowest temperature range the total impedence of the cell was found to be dominated by the bulk ionic resistance of YSZ. The effects of chemisorption of oxygen on ZnO surface were observed at 275{dollar}spcirc{dollar}C-450{dollar}spcirc{dollar}C. The contribution of hole conduction in YSZ to the total impedance of the system was seen in the immittance data acquired at temperatures above 500{dollar}spcirc{dollar}C. The space charge region at the ZnO/YSZ interface was found to be dominated by the space charge on the ZnO side. A simple charge transfer reaction at this interface has been proposed. The mode of charge transfer appears to involve many intermediate steps but the overall electrochemical reaction is possibly of the form {dollar}Znsb{lcub}Zn{rcub}Osb{lcub}O{rcub}+Vsbsp{lcub}O{rcub}{lcub}cdotcdot{rcub}(YSZ) + espprimerightleftharpoons Znsbsp{lcub}i{rcub}{lcub}cdot{rcub}(ZnO) + Osbsp{lcub}O{rcub}{lcub}times{rcub}(YSZ){dollar}. The reaction rate was found to be rate limited by the diffusion of zinc interstitials through zinc oxide.
机译:在固态电化学电池中,电极/电解质界面处的电荷转移过程在确定电池的整体性能方面起着重要作用。在这项研究中,已经使用小信号交流阻抗谱(ACIS)研究了氧化锌(ZnO)单晶和氧化钇稳定的二氧化锆(YSZ)单晶之间简单界面的电化学行为。从整个温度范围内频率的频率函数获得的总细胞阻抗数据(200 {dollar} spcirc {dollar} C {dollar} leq {dollar} T {dollar} leq {dollar} 900 {dollar} spcirc {dollar } C),确定了氧气的分压(10 {dollar} sp {lcub} -4 {rcub}-{dollar} 1 atm。)和直流偏置电压,以及在电荷传输中起作用的物理过程。已为正在研究的系统分配了一个最能代表数据并与物理模型一致的简单等效电路。等效电路参数值是使用为该工作开发的数据分析程序“ CPFMULIT”获得的。总共观察到五个半圆形弛豫,并且这些弛豫中的每一个都与物理过程有关。在最低温度范围内,发现电池的总阻抗受YSZ的整体离子电阻支配。在275 {sp $ {C} -450 {dolspsorption {C}下观察到氧在ZnO表面的化学吸附作用。 YSZ中的空穴传导对系统总阻抗的贡献可以从在高于500spC的温度下获得的阻抗数据中看出。 ZnO / YSZ界面处的空间电荷区被ZnO侧的空间电荷所控制。已经提出了在该界面上的简单电荷转移反应。电荷转移的方式似乎涉及许多中间步骤,但是整个电化学反应可能是{dollar} Znsb {lcub} Zn {rcub} Osb {lcub} O {rcub} + Vsbsp {lcub} O {rcub} { lcub} cdotcdot {rcub}(YSZ)+ espprimerightleftharpoons Znsbsp {lcub} i {rcub} {lcub} cdot {rcub}(ZnO)+ Osbsp {lcub} O {rcub} {lcub} times {rcub}(YSZ){dollar }。发现反应速率受到锌间隙通过氧化锌的扩散的限制。

著录项

  • 作者

    Choudhury, Apurba.;

  • 作者单位

    Marquette University.;

  • 授予单位 Marquette University.;
  • 学科 Engineering Materials Science.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1991
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:50:20

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