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Y2Si2O7 硅酸盐中巨大声子非谐性和晶格热导率反常压力依赖性。

Giant Phonon Anharmonicity and Anomalous Pressure Dependence of Lattice Thermal Conductivity in Y2Si2O7 silicate.

机构信息

High-performance Ceramics Division, Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 110016 Shenyang, China.

出版信息

Sci Rep. 2016 Jul 19;6:29801. doi: 10.1038/srep29801.

Abstract

Modification of lattice thermal conductivity (κL) of a solid by means of hydrostatic pressure (P) has been a crucially interesting approach that targets a broad range of advanced materials from thermoelectrics and thermal insulators to minerals in mantle. Although it is well documented knowledge that thermal conductivity of bulk materials normally increase upon hydrostatic pressure, such positive relationship is seriously challenged when it comes to ceramics with complex crystal structure and heterogeneous chemical bonds. In this paper, we predict an abnormally negative trend dκL/dP < 0 in Y2Si2O7 silicate using density functional theoretical calculations. The mechanism is disclosed as combined effects of slightly decreased group velocity and significantly augmented scattering of heat-carrying acoustic phonons in pressured lattice, which is originated from pressure-induced downward shift of low-lying optic and acoustic phonons. The structural origin of low-lying optic phonons as well as the induced phonon anharmonicity is also qualitatively elucidated with respect to intrinsic bonding heterogeneity of Y2Si2O7. The present results are expected to bring deeper insights for phonon engineering and modulation of thermal conductivity in complex solids with diverging structural flexibility, enormous bonding heterogeneity, and giant phonon anharmonicity.

摘要

通过静压(P)对晶格热导率(κL)进行修饰,一直是一种非常有趣的方法,适用于从热电材料和热绝缘体到地幔矿物等广泛的先进材料。尽管已有充分的文献知识表明,大多数情况下,块状材料的热导率会随静压而增加,但对于具有复杂晶体结构和不均匀化学键的陶瓷来说,这种正相关关系受到了严重挑战。在本文中,我们使用密度泛函理论计算预测了 Y2Si2O7 硅酸盐中异常的负趋势 dκL/dP<0。这种机制是由于受压晶格中载热声子的群速度略有降低和散射明显增加所致,其源于受压引起的低能光学和声学声子的向下位移。低能光学声子的结构起源以及诱导的声子非谐性也与 Y2Si2O7 的固有键合异质性有关,从定性角度进行了说明。本研究结果有望为复杂固体中的声子工程和热导率调制提供更深入的见解,这些复杂固体具有不同的结构灵活性、巨大的键合异质性和巨大的声子非谐性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f04f/4949468/9a7aac206143/srep29801-f1.jpg

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