Nanoscale Science and Engineering Center, University of California, Berkeley, CA, USA.
Faculties of Science and Engineering, The University of Hong Kong, Hong Kong, China.
Nature. 2019 Dec;576(7786):243-247. doi: 10.1038/s41586-019-1800-4. Epub 2019 Dec 11.
Heat transfer in solids is typically conducted through either electrons or atomic vibrations known as phonons. In a vacuum, heat has long been thought to be transferred by radiation but not by phonons because of the lack of a medium. Recent theory, however, has predicted that quantum fluctuations of electromagnetic fields could induce phonon coupling across a vacuum and thereby facilitate heat transfer. Revealing this unique quantum effect experimentally would bring fundamental insights to quantum thermodynamics and practical implications to thermal management in nanometre-scale technologies. Here we experimentally demonstrate heat transfer induced by quantum fluctuations between two objects separated by a vacuum gap. We use nanomechanical systems to realize strong phonon coupling through vacuum fluctuations, and observe the exchange of thermal energy between individual phonon modes. The experimental observation agrees well with our theoretical calculations and is unambiguously distinguished from other effects such as near-field radiation and electrostatic interaction. Our discovery of phonon transport through quantum fluctuations represents a previously unknown mechanism of heat transfer in addition to the conventional conduction, convection and radiation. It paves the way for the exploitation of quantum vacuum in energy transport at the nanoscale.
固体中的热传递通常通过电子或原子振动(称为声子)进行。在真空中,长期以来人们认为热通过辐射传递,而不是通过声子传递,因为真空中缺乏介质。然而,最近的理论预测,电磁场的量子涨落可以在真空中诱导声子耦合,从而促进热传递。实验揭示这种独特的量子效应将为量子热力学带来基本的认识,并为纳米尺度技术中的热管理带来实际的影响。在这里,我们通过实验证明了通过真空间隙分离的两个物体之间的量子涨落引起的热传递。我们使用纳米机械系统通过真空涨落实现强声子耦合,并观察到单个声子模式之间的热能交换。实验观察与我们的理论计算吻合得很好,并且与其他效应(如近场辐射和静电相互作用)明显区分开来。我们通过量子涨落发现的声子输运代表了除传统传导、对流和辐射之外的热传递的一种未知机制。它为在纳米尺度上利用量子真空进行能量输运铺平了道路。