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硅酸镧镓结构中的间隙氧离子传导性:LaGaₓGe₁₋ₓO₄(0 < x ≤ 1.5)中(Ga,Ge)O单元形成导致的载流子俘获

Interstitial Oxide Ion Conductivity in the Langasite Structure: Carrier Trapping by Formation of (Ga,Ge)O Units in LaGa Ge O (0 < ≤ 1.5).

作者信息

Diaz-Lopez Maria, Shin J Felix, Li Ming, Dyer Matthew S, Pitcher Michael J, Claridge John B, Blanc Frédéric, Rosseinsky Matthew J

机构信息

Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.

Stephenson Institute for Renewable Energy, University of Liverpool, Chadwick Building, Peach Street, Liverpool L69 7ZF, United Kingdom.

出版信息

Chem Mater. 2019 Aug 13;31(15):5742-5758. doi: 10.1021/acs.chemmater.9b01734. Epub 2019 Jul 8.

Abstract

Framework oxides with the capacity to host mobile interstitial oxide anions are of interest as electrolytes in intermediate temperature solid oxide fuel cells (SOFCs). High performance materials of this type are currently limited to the anisotropic oxyapatite and melilite structure types. The langasite structure is based on a corner-shared tetrahedral network similar to that in melilite but is three-dimensionally connected by additional octahedral sites that bridge the layers by corner sharing. Using low-temperature synthesis, we introduce interstitial oxide charge carriers into the LaGa Ge O langasites, attaining a higher defect content than reported in the lower dimensional oxyapatite and melilite systems in LaGaGeO ( = 1.5). Neutron diffraction and multinuclear solid state O and Ga NMR, supported by DFT calculations, show that the excess oxygen is accommodated by the formation of a (Ge,Ga)O structural unit, formed from a pair of edge-sharing five-coordinated Ga/Ge square-based pyramidal sites bridged by the interstitial oxide and a strongly displaced framework oxide. This leads to more substantial local deformations of the structure than observed in the interstitial-doped melilite, enabled by the octahedral site whose primary coordination environment is little changed by formation of the pair of square-based pyramids from the originally tetrahedral sites. AC impedance spectroscopy on spark plasma sintered pellets showed that, despite its higher interstitial oxide content, the ionic conductivity of the LaGa Ge O langasite family is lower than that of the corresponding melilites La Sr GaO. The cooperative structural relaxation that forms the interstitial-based (Ga,Ge)O units stabilizes higher defect concentrations than the single-site GaO trigonal bipyramids found in melilite but effectively traps the charge carriers. This highlights the importance of controlling local structural relaxation in the design of new framework electrolytes and suggests that the propensity of a framework to form extended units around defects will influence its ability to generate high mobility interstitial carriers.

摘要

能够容纳可移动间隙氧阴离子的骨架氧化物作为中温固体氧化物燃料电池(SOFC)的电解质备受关注。目前,这类高性能材料仅限于各向异性的磷灰石和黄长石结构类型。硅酸镧镓锗结构基于一个与黄长石中类似的共角四面体网络,但通过额外的八面体位置在三维方向上相连,这些八面体位置通过共角连接各层。通过低温合成,我们将间隙氧电荷载流子引入到LaGaGeO硅酸镧镓锗中,在LaGaGeO( = 1.5)中获得了比低维磷灰石和黄长石体系中报道的更高的缺陷含量。在DFT计算的支持下,中子衍射和多核固态O和Ga NMR表明,过量的氧通过形成一个(Ge,Ga)O结构单元来容纳,该结构单元由一对由间隙氧桥接的共边五配位Ga/Ge方基金字塔位点和一个强烈位移的骨架氧化物形成。这导致结构的局部变形比在间隙掺杂的黄长石中观察到的更显著,这是由八面体位置实现的,其主要配位环境在从原始四面体位置形成这对方基金字塔时变化很小。对火花等离子烧结颗粒进行的交流阻抗谱表明,尽管LaGaGeO硅酸镧镓锗族的间隙氧化物含量较高,但其离子电导率低于相应的黄长石LaSrGaO。形成基于间隙的(Ga,Ge)O单元的协同结构弛豫比在黄长石中发现的单位点GaO三角双锥稳定了更高的缺陷浓度,但有效地捕获了电荷载流子。这突出了在新型骨架电解质设计中控制局部结构弛豫的重要性,并表明框架围绕缺陷形成扩展单元的倾向将影响其产生高迁移率间隙载流子的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a89/7011757/a02e3028ee71/cm9b01734_0001.jpg

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