论文标题

高压在高压下通过催化的Yttrium催化氢化的262开尔文的超导性

Superconductivity to 262 kelvin via catalyzed hydrogenation of yttrium at high pressures

论文作者

Snider, Elliot, Dasenbrock-Gammon, Nathan, McBride, Raymond, Wang, Xiaoyu, Meyers, Noah, Lawler, Keith V., Zurek, Eva, Salamat, Ashkan, Dias, Ranga

论文摘要

在高压下,在有机衍生的碳硫氢氢化物中,室温超导性已达到,其临界超导过渡温度(TC)为288 Kelvin。这种开发是新的富氢材料的一部分,具有较高的临界温度。金属超水是这些材料的子类,可为非常高的TC超导性提供不同且可能更有希望的途径。最有希望的二元金属超水含有碱性或稀土元素,最近对LAH10的实验观察表明,它们能够达到250至260 kelvin的TC。预测表明,YTTrium Superhydrides是最有希望的,估计的TC超过300 kelvin YH10。在这里,我们报告了在182 Gigapascal的262 kelvin的临界温度下表现出超导性的Yttrium Superdrice的合成。钯薄膜通过保护溅射的YTTrium免受氧化并促进随后的氢化来有助于合成。通过观察零电阻,同位素效应和外部磁场下TC的降低,可以确定声子介导的超导性。在零温度下,上临界磁场为103特斯拉。我们建议YH9是基于测量的拉曼光谱和TC与计算的拉曼结果的比较,是合成的产品。

Room temperature superconductivity has been achieved under high pressure in an organically derived carbonaceous sulfur hydride with a critical superconducting transition temperature (Tc) of 288 kelvin. This development is part of a new class of dense, hydrogen rich materials with remarkably high critical temperatures. Metal superhydrides are a subclass of these materials that provide a different and potentially more promising route to very high Tc superconductivity. The most promising binary metal superhydrides contain alkaline or rare earth elements, and recent experimental observations of LaH10 have shown them capable of Tc s up to 250 to 260 kelvin. Predictions have shown yttrium superhydrides to be the most promising with an estimated Tc in excess of 300 kelvin for YH10. Here we report the synthesis of an yttrium superhydride that exhibits superconductivity at a critical temperature of 262 kelvin at 182 gigapascal. A palladium thin film assists the synthesis by protecting the sputtered yttrium from oxidation and promoting subsequent hydrogenation. Phonon mediated superconductivity is established by the observation of zero resistance, an isotope effect and the reduction of Tc under an external magnetic field. The upper critical magnetic field is 103 tesla at zero temperature. We suggest YH9 is the synthesized product based on comparison of the measured Raman spectra and Tc to calculated Raman results.

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