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高频原子隧穿使硫族化物单晶具有超低且类似玻璃的热导率。

High frequency atomic tunneling yields ultralow and glass-like thermal conductivity in chalcogenide single crystals.

作者信息

Sun Bo, Niu Shanyuan, Hermann Raphael P, Moon Jaeyun, Shulumba Nina, Page Katharine, Zhao Boyang, Thind Arashdeep S, Mahalingam Krishnamurthy, Milam-Guerrero JoAnna, Haiges Ralf, Mecklenburg Matthew, Melot Brent C, Jho Young-Dahl, Howe Brandon M, Mishra Rohan, Alatas Ahmet, Winn Barry, Manley Michael E, Ravichandran Jayakanth, Minnich Austin J

机构信息

Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA, 91125, USA.

Tsinghua-Berkeley Shenzhen Institute and Tsinghua Shenzhen International Graduate School, Guangdong Provincial Key Laboratory of Thermal Management Engineering and Materials, Tsinghua University, 518055, Shenzhen, Guangdong, China.

出版信息

Nat Commun. 2020 Nov 27;11(1):6039. doi: 10.1038/s41467-020-19872-w.

Abstract

Crystalline solids exhibiting glass-like thermal conductivity have attracted substantial attention both for fundamental interest and applications such as thermoelectrics. In most crystals, the competition of phonon scattering by anharmonic interactions and crystalline imperfections leads to a non-monotonic trend of thermal conductivity with temperature. Defect-free crystals that exhibit the glassy trend of low thermal conductivity with a monotonic increase with temperature are desirable because they are intrinsically thermally insulating while retaining useful properties of perfect crystals. However, this behavior is rare, and its microscopic origin remains unclear. Here, we report the observation of ultralow and glass-like thermal conductivity in a hexagonal perovskite chalcogenide single crystal, BaTiS, despite its highly symmetric and simple primitive cell. Elastic and inelastic scattering measurements reveal the quantum mechanical origin of this unusual trend. A two-level atomic tunneling system exists in a shallow double-well potential of the Ti atom and is of sufficiently high frequency to scatter heat-carrying phonons up to room temperature. While atomic tunneling has been invoked to explain the low-temperature thermal conductivity of solids for decades, our study establishes the presence of sub-THz frequency tunneling systems even in high-quality, electrically insulating single crystals, leading to anomalous transport properties well above cryogenic temperatures.

摘要

具有类玻璃热导率的晶体固体因其基本特性和热电等应用而备受关注。在大多数晶体中,非谐相互作用和声子晶体缺陷引起的声子散射竞争导致热导率随温度呈现非单调趋势。具有低热导率的玻璃态趋势且随温度单调增加的无缺陷晶体是理想的,因为它们本质上是热绝缘的,同时保留了完美晶体的有用特性。然而,这种行为很少见,其微观起源仍不清楚。在这里,我们报告了在一种六角钙钛矿硫属化物单晶BaTiS中观察到的超低和类玻璃热导率,尽管其具有高度对称且简单的原胞。弹性和非弹性散射测量揭示了这种异常趋势的量子力学起源。在Ti原子的浅双阱势中存在一个双能级原子隧穿系统,其频率足够高,能够散射直至室温的载热声子。虽然几十年来一直有人用原子隧穿来解释固体的低温热导率,但我们的研究表明,即使在高质量的电绝缘单晶中也存在亚太赫兹频率的隧穿系统,这导致了远高于低温的异常输运特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8fa/7699621/6d36f663cd9f/41467_2020_19872_Fig1_HTML.jpg

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