六方氮化硼中双曲声子-极化子模式在固体界面上的超快倏逝热传递

IF 37.2 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
William Hutchins, Saman Zare, Dan M. Hirt, John A. Tomko, Joseph R. Matson, Katja Diaz-Granados, Mackey Long, Mingze He, Thomas Pfeifer, Jiahan Li, James H. Edgar, Jon-Paul Maria, Joshua D. Caldwell, Patrick E. Hopkins
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引用次数: 0

摘要

固体-固体界面的热传输对于先进的电子和光子应用至关重要,然而传统的传导途径往往限制了性能。在极性晶体中,称为声子极化子的杂化振动模式为克服固有声子热传导的局限性提供了一条有希望的途径。在这里,我们的工作证明了体积受限的双曲声子极化(HPhP)模式可以以远远超过声子-声子传导的速率在固体-固体界面上传递能量。利用中红外、亚皮秒分辨率可调探针脉冲的泵探针热反射,我们通过金源的宽带辐射加热,远程和选择性地观察了六方氮化硼(hBN)的HPhP模式。我们的测量确定,在界面处撞击的热电子直接辐射到近场hBN的HPhPs中,绕过声子-声子传输途径。这种极化耦合使得固体中的热输运速度比扩散声子过程快几个数量级。因此,我们展示了通过声子-极化子耦合在金- hbn界面上显著的热输运增强,提高了界面传热的极限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ultrafast evanescent heat transfer across solid interfaces via hyperbolic phonon–polariton modes in hexagonal boron nitride

Ultrafast evanescent heat transfer across solid interfaces via hyperbolic phonon–polariton modes in hexagonal boron nitride

Thermal transport across solid–solid interfaces is vital for advanced electronic and photonic applications, yet conventional conduction pathways often restrict performance. In polar crystals, hybridized vibrational modes called phonon polaritons offer a promising avenue to overcome the limitations of intrinsic phonon heat conduction. Here our work demonstrates that volume-confined hyperbolic phonon polariton (HPhP) modes can transfer energy across solid–solid interfaces at rates far exceeding phonon–phonon conduction. Using pump–probe thermoreflectance with a mid-infrared, tunable probe pulse with subpicosecond resolution, we remotely and selectively observe HPhP modes in hexagonal boron nitride (hBN) via broadband radiative heating from a gold source. Our measurements ascertain that hot electrons impinging at the interface radiate directly into the HPhPs of hBN in the near field, bypassing the phonon–phonon transport pathway. Such polaritonic coupling enables thermal transport speeds in solids orders of magnitude faster than possible through diffusive phonon processes. We thereby showcase a pronounced thermal transport enhancement across the gold–hBN interface via phonon–polariton coupling, advancing the limits of interfacial heat transfer.

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来源期刊
Nature Materials
Nature Materials 工程技术-材料科学:综合
CiteScore
62.20
自引率
0.70%
发文量
221
审稿时长
3.2 months
期刊介绍: Nature Materials is a monthly multi-disciplinary journal aimed at bringing together cutting-edge research across the entire spectrum of materials science and engineering. It covers all applied and fundamental aspects of the synthesis/processing, structure/composition, properties, and performance of materials. The journal recognizes that materials research has an increasing impact on classical disciplines such as physics, chemistry, and biology. Additionally, Nature Materials provides a forum for the development of a common identity among materials scientists and encourages interdisciplinary collaboration. It takes an integrated and balanced approach to all areas of materials research, fostering the exchange of ideas between scientists involved in different disciplines. Nature Materials is an invaluable resource for scientists in academia and industry who are active in discovering and developing materials and materials-related concepts. It offers engaging and informative papers of exceptional significance and quality, with the aim of influencing the development of society in the future.
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