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高超音速胶体声子学中声学带隙的起源:弹性阻抗的作用

Origin of the Acoustic Bandgaps in Hypersonic Colloidal Phononics: The Role of the Elastic Impedance.

作者信息

Cang Yu, Sainidou Rebecca, Rembert Pascal, Magnabosco Giulia, Still Tim, Vogel Nicolas, Graczykowski Bartlomiej, Fytas George

机构信息

Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.

School of Aerospace Engineering and Applied Mechanics, Tongji University, Zhangwu Road 100, Shanghai 200092, China.

出版信息

J Phys Chem B. 2022 Sep 1;126(34):6575-6584. doi: 10.1021/acs.jpcb.2c03923. Epub 2022 Aug 23.

Abstract

How phonons propagate in nanostructures determines the flow of elastic and thermal energy in dielectric materials. However, a reliable theoretical prediction of the phonon dispersion relation requires experimental verification both near to and far from the Brillouin zone of the nanostructure. We report on the experimental hypersonic phonon dispersion of hard (SiO) and soft (polymer) fcc colloidal crystals infiltrated in liquid polydimethylsiloxane with different elastic impedance contrast using Brillouin light spectroscopy. We discuss the distinct differences with first-principles full elastodynamic calculations involving a multiple-scattering theory. Interparticle contacts strongly impact the long-wavelength speed of sound and the nature of the particle vibration resonance-induced hybridization hypersonic bandgap. The absence of the order-induced Bragg bandgap in SiO and its presence in soft opals cannot be fully accounted for by the theory, limiting its predictive power. Bridging the elasticity of the two colloidal crystals with suitable SiO core-shell (polymer) particles reveals an unprecedented crossover behavior in the dispersion relation. In view of many conversational parameters, the control tuning of phonon propagation in soft matter-based hypersonic phononics remains challenging.

摘要

声子在纳米结构中的传播方式决定了介电材料中弹性和热能的流动。然而,要对声子色散关系进行可靠的理论预测,需要在靠近和远离纳米结构布里渊区的情况下进行实验验证。我们利用布里渊光光谱法报告了在具有不同弹性阻抗对比度的液体聚二甲基硅氧烷中渗透的硬(SiO)和软(聚合物)面心立方胶体晶体的实验高超音速声子色散情况。我们讨论了与涉及多重散射理论的第一性原理全弹性动力学计算的明显差异。粒子间的接触强烈影响长波长声速以及粒子振动共振诱导的杂化高超音速带隙的性质。SiO中不存在有序诱导的布拉格带隙而软蛋白石中存在该带隙,这一情况无法完全由该理论解释,限制了其预测能力。用合适的SiO核壳(聚合物)粒子连接两种胶体晶体的弹性,揭示了色散关系中前所未有的交叉行为。鉴于众多的对话参数,在基于软物质的高超音速声子学中控制声子传播的调谐仍然具有挑战性。

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