Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.
Phys Rev Lett. 2010 Jul 23;105(4):045302. doi: 10.1103/PhysRevLett.105.045302. Epub 2010 Jul 22.
The shear modulus of solid H{4}e exhibits an anomalous increase at low temperatures that behaves qualitatively similar to the frequency change in torsional oscillator experiments. We propose that this stiffening of the shear modulus with decreasing temperature can be described with a glass susceptibility assuming a temperature-dependent relaxation time τ(T). Below a characteristic crossover temperature T{X}, where ωτ(T{X})∼1, a significant slowing down of dynamics leads to an increase in the shear modulus. We predict that the maximum change of the amplitude of the shear modulus and the height of the dissipation peak are independent of the applied frequency ω. Our calculations also show a qualitative difference in behavior of the shear modulus depending on the temperature dependence of τ(T).
固体 H{4}e 的剪切弹性模量在低温下表现出异常增加,其行为与扭转振荡器实验中的频率变化定性相似。我们假设剪切弹性模量随温度降低而变硬可以用玻璃磁化率来描述,同时假设弛豫时间 τ(T) 随温度变化。在特征交叉温度 T{X}以下,ωτ(T{X})∼1,动力学显著减慢,导致剪切弹性模量增加。我们预测,剪切弹性模量幅度的最大变化和耗散峰的高度与所施加的频率 ω 无关。我们的计算还表明,剪切弹性模量的行为取决于 τ(T) 的温度依赖性,存在定性差异。