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Graphene/Strontium Titanate: Approaching Single Crystal-Like Charge Transport in Polycrystalline Oxide Perovskite Nanocomposites through Grain Boundary Engineering

机译:石墨烯/钛酸锶:通过晶界工程接近多晶氧化物钙钛矿纳米复合材料中的单晶电荷转移

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摘要

Grain boundaries critically limit the electronic performance of oxide perovskites. These interfaces lower the carrier mobilities of polycrystalline materials by several orders of magnitude compared to single crystals. Despite extensive effort, improving the mobility of polycrystalline materials (to meet the performance of single crystals) is still a severe challenge. In this work, the grain boundary effect is eliminated in perovskite strontium titanate (STO) by incorporating graphene into the polycrystalline microstructure. An effective mass model provides strong evidence that polycrystalline graphene/strontium titanate (G/STO) nanocomposites approach single crystal-like charge transport. This phenomenological model reduces the complexity of analyzing charge transport properties so that a quantitative comparison can be made between the nanocomposites and STO single crystals. In other related works, graphene composites also optimize the thermal transport properties of thermoelectric materials. Therefore, decorating grain boundaries with graphene appears to be a robust strategy to achieve "phonon glass-electron crystal" behavior in oxide perovskites.
机译:晶界严重限制了氧化物钙钛矿的电子性能。与单晶相比,这些界面将多晶材料的载流子迁移率降低了几个数量级。尽管付出了巨大的努力,但是提高多晶材料的迁移率(以满足单晶的性能)仍然是一个严峻的挑战。在这项工作中,通过将石墨烯掺入多晶微结构中,消除了钙钛矿钛酸锶(STO)中的晶界效应。有效的质量模型提供了有力的证据,证明多晶石墨烯/钛酸锶(G / STO)纳米复合材料接近单晶状电荷传输。这种现象学模型降低了分析电荷传输特性的复杂性,因此可以在纳米复合材料和STO单晶之间进行定量比较。在其他相关工作中,石墨烯复合材料还优化了热电材料的热传输性能。因此,用石墨烯修饰晶界似乎是在氧化物钙钛矿中实现“声子玻璃-电子晶体”行为的可靠策略。

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