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利用量子传感器在氢化物超导体中成像梅斯纳效应。

Imaging the Meissner effect in hydride superconductors using quantum sensors.

机构信息

Department of Physics, University of California, Berkeley, CA, USA.

Materials Science Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

出版信息

Nature. 2024 Mar;627(8002):73-79. doi: 10.1038/s41586-024-07026-7. Epub 2024 Feb 28.

Abstract

By directly altering microscopic interactions, pressure provides a powerful tuning knob for the exploration of condensed phases and geophysical phenomena. The megabar regime represents an interesting frontier, in which recent discoveries include high-temperature superconductors, as well as structural and valence phase transitions. However, at such high pressures, many conventional measurement techniques fail. Here we demonstrate the ability to perform local magnetometry inside a diamond anvil cell with sub-micron spatial resolution at megabar pressures. Our approach uses a shallow layer of nitrogen-vacancy colour centres implanted directly within the anvil; crucially, we choose a crystal cut compatible with the intrinsic symmetries of the nitrogen-vacancy centre to enable functionality at megabar pressures. We apply our technique to characterize a recently discovered hydride superconductor, CeH (ref. ). By performing simultaneous magnetometry and electrical transport measurements, we observe the dual signatures of superconductivity: diamagnetism characteristic of the Meissner effect and a sharp drop of the resistance to near zero. By locally mapping both the diamagnetic response and flux trapping, we directly image the geometry of superconducting regions, showing marked inhomogeneities at the micron scale. Our work brings quantum sensing to the megabar frontier and enables the closed-loop optimization of superhydride materials synthesis.

摘要

通过直接改变微观相互作用,压力为探索凝聚相和地球物理现象提供了一个强大的调谐旋钮。兆巴范围代表了一个有趣的前沿领域,最近的发现包括高温超导体,以及结构和价态相变。然而,在如此高的压力下,许多传统的测量技术都失效了。在这里,我们展示了在兆巴压力下使用具有亚微米空间分辨率的金刚石压腔进行局部磁测量的能力。我们的方法使用直接植入压砧内的浅氮空位色心层;至关重要的是,我们选择了与氮空位中心的固有对称性兼容的晶体切割,以使其在兆巴压力下具有功能。我们应用我们的技术来表征最近发现的氢化物超导体 CeH(参考文献)。通过同时进行磁测量和电输运测量,我们观察到超导的双重特征:迈斯纳效应的抗磁性和电阻急剧下降到接近零。通过局部绘制顺磁响应和磁通俘获的图,我们直接成像超导区域的几何形状,显示出微米尺度上的明显不均匀性。我们的工作将量子传感带到了兆巴前沿,并能够实现超氢化物材料合成的闭环优化。

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