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Dimensional reduction of helium-4 inside argon-plated MCM-41 nanopores

机译:氩气-4内氦-4内的尺寸减少MCM-41纳米孔

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摘要

The angstrom-scale coherence length describing the superfluid wave function of ~4He at low temperatures has prevented its preparation in a truly one-dimensional geometry. Mesoporous ordered silica-based structures, such as the molecular sieve MCM-41, offer a promising avenue towards physical confinement, but the minimal pore diameters that can be chemically synthesized have proven to be too large to reach the quasi-one-dimensional limit. We present an active nano-engineering approach to this problem by preplating MCM-41 with a single, well controlled layer of Ar gas before filling the pores with helium. The structure inside the pore is investigated via experimental adsorption isotherms and neutron scattering measurements that are in agreement with large scale quantum Monte Carlo simulations. The results demonstrate angstrom and Kelvin scale tunability of the effective confinement potential experienced by ~4He atoms inside the MCM-41. with the Ar layer reducing the diameter of the confining media into a regime where a number of solid layers surround a one-dimensional quantum liquid.
机译:描述在低温下〜4HE的超流波函数的抗辐射相干长度已经防止了其在真正一维几何形状中的制备。中孔有序的基于二氧化硅的结构,如分子筛MCM-41,为物理禁闭提供了有希望的大道,但是可以被化学合成的最小孔径已经被证明太大而无法达到准一维极限。在用氦气填充孔之前,通过使用单个良好的Ar气体层预先塑造MCM-41,介绍了一个活跃的纳米工程方法。通过实验吸附等温线和中子散射测量来研究孔隙内的结构,这些测量与大规模量子蒙特卡罗模拟一致。结果证明了MCM-41内部〜4HE原子所经历的有效限制潜力的埃斯特罗姆和赫尔文测量性。与AR层将限制介质的直径降低到围绕一维量子液体的各个固体层的状态。

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  • 来源
    《Physical review》 |2020年第14期|144505.1-144505.13|共13页
  • 作者单位

    Department of Physics University of Vermont Burlington Vermont 05405 USA Materials Science Program University of Vermont Burlington Vermont 05404 USA;

    Center for Neutron Research National Institute of Standards and Technology Gaithersburg Maryland 20899-6100 USA;

    Department of Physics Indiana University Bloomington Indiana 47408 USA;

    Department of Physics Indiana University Bloomington Indiana 47408 USA;

    Department of Physics ana Astronomy University of Tennessee Knoxville Tennessee 37996 USA Min H. Kao Department of Electrical Engineering and Computer Science University of Tennessee Knoxville Tennessee 37996 USA Department of Physics University of Vermont Burlington Vermont 05405 USA;

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