超流氦中磁捕获超导微粒子的光学操作(会议报告)

M. Ashida, J. Naoi, M. Takamune, Y. Takahashi, S. Sasaki, M. Kumakura, Y. Moriwaki
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引用次数: 0

摘要

超流氦的激光烧蚀具有极低的温度、可忽略不计的小粘度、巨大的热导率和可见区的高透明度,为我们制造新型微结构和控制其运动提供了独特的机会。利用纳秒级Nd:YAG激光在超流氦中烧蚀,成功制备了半导体纳米和微球。[科学报告,4,5186(2014)]。最近,我们将这种方法应用于金属,如铟和铼,它们在低温下表现出超导性。为了选择超导粒子,我们利用迈斯纳效应产生的完全抗磁性,设计了一个双永磁体的磁阱。因此,我们在超流氦中制备并捕获了一个或多个激光烧蚀后的超导粒子[j] .应用物理学报,10,022701(2017)。在这里,我们通过向超导粒子照射激光,成功地控制了磁捕获超导粒子的位置。粒子被推离原来的被困位置,辐照后从被困位置释放,沿着捕获势的力和超流氦的粘滞力运动。通过跟踪粒子的运动,我们可以推断出超流氦和被困粒子的物理性质。因此,超导微粒子的光学制造和操作为我们研究超流动性和超导性提供了一个独特的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical manipulation of magnetically trapped superconducting micro particles in superfluid helium (Conference Presentation)
Laser ablation in superfluid helium, having extremely low temperature, negligibly small viscosity, huge thermal conductivity, and high transparency in visible region, provides us a unique opportunity to fabricate novel microstructures and control their motion. We have successfully fabricated nano and micro spheres of semiconductors by the laser ablation in the superfluid helium with a nanosecond Nd:YAG laser. [Scientific Reports 4, 5186 (2014).] Recently, we applied this method to metals, such as indium and rhenium, which show superconductivity at low temperature. To select superconducting particles, we utilized perfect diamagnetism caused by Meissner effect, designing a magnetic trap with two permanent magnets for the superconducting particles. Thus we fabricated and trapped a single or several superconducting particles after the laser ablation in the superfluid helium [Applied Physics Express 10, 022701(2017).] Here we successfully control the positions of the magnetically trapped superconducting particles, by irradiating a laser to them. The particles were pushed away from their original trapped positions and after the irradiation released from the displaced positions, moving along the force of the trapping potential and the viscosity force of the superfluid helium. By tracking the particles motion we can deduce physical properties of the superfluid helium and trapped particles. Thus the optical fabrication and manipulation of the superconducting micro particles provide us a unique opportunity to investigate superfluidity and superconductivity.
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