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首页> 外文期刊>Nanomaterials >Phonon Bridge Effect in Superlattices of Thermoelectric TiNiSn/HfNiSn With Controlled Interface Intermixing
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Phonon Bridge Effect in Superlattices of Thermoelectric TiNiSn/HfNiSn With Controlled Interface Intermixing

机译:具有控制界面混合热电锡/ HFNISN超晶图形的声子桥效应

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The implementation of thermal barriers in thermoelectric materials improves their power conversion rates effectively. For this purpose, material boundaries are utilized and manipulated to affect phonon transmissivity. Specifically, interface intermixing and topography represents a useful but complex parameter for thermal transport modification. This study investigates epitaxial thin film multilayers, so called superlattices (SL), of TiNiSn/HfNiSn, both with pristine and purposefully deteriorated interfaces. High-resolution transmission electron microscopy and X-ray diffractometry are used to characterize their structural properties in detail. A differential 3 ω -method probes their thermal resistivity. The thermal resistivity reaches a maximum for an intermediate interface quality and decreases again for higher boundary layer intermixing. For boundaries with the lowest interface quality, the interface thermal resistance is reduced by 23% compared to a pristine SL. While an uptake of diffuse scattering likely explains the initial deterioration of thermal transport, we propose a phonon bridge interpretation for the lowered thermal resistivity of the interfaces beyond a critical intermixing. In this picture, the locally reduced acoustic contrast of the less defined boundary acts as a mediator that promotes phonon transition.
机译:热电材料中的热屏障的实现有效地提高了它们的功率转换率。为此目的,利用和操纵物质边界以影响声子透射率。具体地,接口混合和地形表示热传输修改的有用而复杂的参数。本研究调查外延薄膜多层,所以称为Supertarce(SL),Tinisn / Hfnisn,既具有原始和有目的地劣化的接口。高分辨率透射电子显微镜和X射线衍射测定法用于详细表征它们的结构性质。差速器3Ω-Method探测其热电阻率。热电阻率达到中间界面质量的最大值,并且再次降低以用于较高的边界层混合。对于接口质量最低的边界,与原始SL相比,接口热阻减少了23%。虽然漫射散射的吸收可能解释了热传输的初始劣化,但是我们提出了对界面的降低的热电阻率超出了临界混合的近似电阻率的声音桥接解释。在该图片中,较少限定的边界的局部声学对比度充当促进声子转变的介质。

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