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Breakdown of the Debye approximation for the acoustic modes with nanometric wavelengths in glasses

机译:玻璃中具有纳米波长的声学模式的德拜近似分解

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摘要

On the macroscopic scale, the wavelengths of sound waves in glasses are large enough that the details of the disordered microscopic structure are usually irrelevant, and the medium can be considered as a continuum. On decreasing the wavelength this approximation must of course fail at one point. We show here that this takes place unexpectedly on the mesoscopic scale characteristic of the medium range order of glasses, where it still works well for the corresponding crystalline phases. Specifically, we find that the acoustic excitations with nanometric wavelengths show the clear signature of being strongly scattered, indicating the existence of a cross-over between well-defined acoustic modes for larger wavelengths and ill-defined ones for smaller wavelengths. This cross-over region is accompanied by a softening of the sound velocity that quantitatively accounts for the excess observed in the vibrational density of states of glasses over the Debye level at energies of a few milli-electronvolts. These findings thus highlight the acoustic contribution to the well-known universal low-temperature anomalies found in the specific heat of glasses.
机译:在宏观尺度上,玻璃中声波的波长足够大,以至于无序的微观结构的细节通常是无关紧要的,并且可以将介质视为连续体。在减小波长时,这种近似当然必须在一点上失败。我们在这里表明,这出乎意料地在玻璃的中等范围级的介观尺度特征上发生,对于相应的结晶相它仍然很好地起作用。具体而言,我们发现具有纳米波长的声激发表现出明显的强散射特征,这表明较大波长的清晰声模与较小波长的不确定声模之间存在交叉。该跨接区域伴随着声速的软化,该声速定量地解释了在几毫伏的能量下,超过德拜能级的状态的玻璃振动密度所观察到的过量。因此,这些发现突显了声学对玻璃比热中普遍存在的低温异常的影响。

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