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Pressure gradients in solid 4He: Thermal quenching and annealing

机译:固体4He中的压力梯度:热淬火和退火

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摘要

Torsional oscillator measurements on solid ~4He show a frequency increase at low temperatures that suggests mass decoupling or nonclassical rotational inertia (NCRI). The magnitude of the NCRI appears to be larger when the helium is frozen and cooled rapidly. Annealing at high temperatures usually reduces the NCRI, with an accompanying drop in pressure, suggesting that defects are involved. Measurements in quenched or deformed crystals show a T2 term in the temperature dependence of the pressure which has also been attributed to defects. We have built a cell with two capacitive gauges to measure the temperature dependence of the pressure and the magnitude of pressure gradients in solid helium. The helium can be melted in a few seconds using a heater embedded in the crystal and can be refrozen and quenched to low temperature very rapidly. From the maximum pressure differences in the cell, we infer a yield stress of order 4 kPa for solid ~4He near melting. The pressure gradients relax when the temperature is raised above about 0.5 K via a thermally activated annealing process with an activation barrier of about 5 K. The existence of significant pressure gradients makes it difficult to measure the thermodynamic temperature dependence of the pressure, for example to extract information about glassy regions or other defects.
机译:在固体〜4He上的扭转振荡器测量结果表明,在低温下频率增加,表明质量解耦或非经典旋转惯性(NCRI)。当氦快速冷冻和冷却时,NCRI的大小似乎更大。高温退火通常会降低NCRI,并伴有压力下降,表明存在缺陷。淬火或变形晶体的测量结果显示,压力的温度依赖性为T2项,这也归因于缺陷。我们建立了一个带有两个电容式仪表的电池,用于测量压力对温度的依赖性以及固态氦气中压力梯度的大小。可以使用嵌入晶体中的加热器在几秒钟内将氦气熔化,然后将其重新冷冻并迅速淬火至低温。从电池中的最大压力差,我们推断出接近熔化的固体〜4He的屈服应力约为4 kPa。当通过具有约5 K的激活势垒的热激活退火过程将温度升高到约0.5 K以上时,压力梯度会松弛。存在明显的压力梯度使得难以测量压力的热力学温度依赖性,例如提取有关玻璃状区域或其他缺陷的信息。

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  • 来源
    《Physical review》 |2011年第9期|p.094512.1-094512.9|共9页
  • 作者

    A. Suhel; J. R. Beamish;

  • 作者单位

    Department of Physics, University of Alberta, Edmonton, Alberta, Canada, T6G 2E1;

    Department of Physics, University of Alberta, Edmonton, Alberta, Canada, T6G 2E1;

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