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Inorganic-organic superlattice thin films for thermoelectrics

机译:用于热电的无机-有机超晶格薄膜

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摘要

Nanoscale layer-engineering is an attractive tool to tailor the performance of thermoelectric materials as it potentially allows us to suppress thermal conductivity without significantly hindering the electrical transport properties. By combining the state-of-the-art thin-film fabrication technique for inorganics, i.e. atomic layer deposition (ALD), with its emerging counterpart for the organics, i.e. molecular layer deposition (MLD), it is possible to fabricate in a single reactor oxide-organic thin-film superlattices in which periodically introduced single/few-molecule organic layers alternate with thicker thermoelectric oxide layers. In such fundamentally new types of superlattice materials the oxide-organic interfaces with notable property mismatch are anticipated to hinder the phonon transport and/or bring about charge confinement effects thereby enhancing the material's thermoelectric figure-of-merit. The experimental data so far gathered for the (Zn,Al)O:HQ and (Ti,Nb)O-2:HQ systems (HQ stands for hydroquinone) show significantly suppressed thermal conductivities. Here in this topical review we summarize the experimental and computational studies carried out on these superlattice materials and discuss the future potential of the ALD/MLD-fabricated inorganic-organic superlattice and nanolaminate thin-film structures in thermoelectrics.
机译:纳米级层工程是一种定制热电材料性能的有吸引力的工具,因为它潜在地使我们能够抑制热导率而又不会显着阻碍电传输性能。通过将用于无机物的最新薄膜制造技术(即原子层沉积(ALD))与针对有机物的新兴薄膜制造技术(即分子层沉积(MLD))相结合,可以在单个表面上制造反应器氧化物-有机薄膜超晶格,其中定期引入的单分子/少分子有机层与较厚的热电氧化物层交替出现。在这种根本上新型的超晶格材料中,具有显着性能不匹配的氧化物-有机界面被认为会阻碍声子的传输和/或带来电荷限制效应,从而提高材料的热电品质因数。到目前为止,针对(Zn,Al)O:HQ和(Ti,Nb)O-2:HQ系统(HQ代表对苯二酚)收集的实验数据显示出显着抑制的热导率。在本专题综述中,我们总结了对这些超晶格材料进行的实验和计算研究,并讨论了由ALD / MLD制造的无机-有机超晶格和纳米层压薄膜结构在热电学中的未来潜力。

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