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首页> 外文期刊>Advanced Functional Materials >Layered LaSrGa_3O_7-Based Oxide-Ion Conductors: Cooperative Transport Mechanisms and Flexible Structures
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Layered LaSrGa_3O_7-Based Oxide-Ion Conductors: Cooperative Transport Mechanisms and Flexible Structures

机译:基于LaSrGa_3O_7的层状氧化物离子导体:协同传输机制和灵活的结构。

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摘要

Novel melilite-type gallium-oxides are attracting attention as promising new oxide-ion conductors with potential use in clean energy devices such as solid oxide fuel cells. Here, an atomic-scale investigation of the LaSrGa3O7-based system using advanced simulation techniques provides valuable insights into the defect chemistry and oxide ion conduction mechanisms, and includes comparison with the available experimental data. The simulation model reproduces the observed complex structure composed of layers of corner-sharing CaO_4 tetrahedra. A major finding is the first indication that oxide-ion conduction in La_(1.54)Sr_(0.46)Ga_3O_(7.27) occurs through an interstitialcy or cooperative-type mechanism involving the concerted knock-on motion of interstitial and lattice oxide ions. A key feature for the transport mechanism and high ionic conductivity is the intrinsic flexibility of the structure, which allows considerable local relaxation and changes in Ga coordination.
机译:新型的莫来石型氧化镓作为有前景的新型氧化物离子导体吸引了人们的注意,它们有望用于清洁能源设备(如固体氧化物燃料电池)中。在这里,使用先进的模拟技术对基于LaSrGa3O7的系统进行原子级研究,可提供有关缺陷化学和氧化物离子传导机制的宝贵见解,并包括与可用实验数据的比较。该模拟模型再现了观察到的由角共享CaO_4四面体的层组成的复杂结构。一个主要发现是第一个迹象表明,La_(1.54)Sr_(0.46)Ga_3O_(7.27)中的氧化物离子传导是通过间隙或协作型机制发生的,该机制涉及间隙和晶格氧化物离子的协同敲除运动。传输机理和高离子电导率的关键特征是该结构的固有柔性,从而可以实现相当大的局部弛豫和Ga配位的变化。

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  • 来源
    《Advanced Functional Materials》 |2010年第22期|p.3874-3880|共7页
  • 作者单位

    Dipartimento di Chimica Fisica Universita di Pavia Viale Taramelli 16, 27100 Pavia (Italy);

    Dipartimento di Chimica Fisica Universita di Pavia Viale Taramelli 16, 27100 Pavia (Italy);

    Department of Chemistry University of Bath Bath, BA2 7AY (UK);

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