论文标题

分层超导体SC $ _ {20} $ c $ _ {8-x} $ b $ _x $ _x $ c $ _ {20} $的实验和计算确定最佳硼含量

Experimental and Computational Determination of Optimal Boron Content in Layered Superconductor Sc$_{20}$C$_{8-x}$B$_x$C$_{20}$

论文作者

Ninomiya, Hiroki, Koshinuma, Terunari, Nishio, Taichiro, Fujihisa, Hiroshi, Kawashima, Kenji, Hase, Izumi, Ishida, Shigeyuki, Ogino, Hiraku, Iyo, Akira, Yoshida, Yoshiyuki, Gotoh, Yoshito, Eisaki, Hiroshi

论文摘要

由于其低X射线散射功率,因此通常很难量化材料中的光元素量,因为这意味着无法通过X射线分析轻松估算它们。同时,最近报道的分层超导体,sc $ _ {20} $ c $ _ {8-x} $ b $ _x $ _x $ c $ _ {20} $,需要少量的硼,这是轻元素,这是其结构稳定性。在这种情况下,在这里,我们使用实验和计算方法对最佳$ x $值进行定量评估。使用高压合成方法,即使在烧结后也可以维持起始成分,我们获得了SC $ _ {20} $(C,b)$ _ {8} $ c $ _ {20} $ apeas a phase a phase a phase a phase a phase sc $ _ {15} $ c $ _ {19} $ _ {19} $ _ {19} $和b (sc $ _ {15} $ b $ _y $ c $ _ {19} $)。我们的实验表明,$ y $值的增加促进了sc $ _ {20} $(c,b)$ _ {8} $ c $ _ {20} $结构的相位形成;但是,构成此阶段的名义$ y $值似乎有上限。在假设具有相同的$ x \ sim 5 $的实际$ x $值的实际$ x $ value的假设是的,该$ x $值的最大$ t_ \ mathrm {c} $ $(= 7.6 \ text {k})$在假设的假设是,以相同的$ t_ \ mathrm {c} $为$ x \ sim 5 $的$ x \ sim 5 $作为报告value $(= 7.7 \ text {k})$ x $ x $ x $ x。此外,我们通过基于第一原理来计算形成焓来构建能量凸壳图。我们的计算结果表明,sc $ _ {20} $ c $ _4 $ _4 $ b $ _4 $ c $ c $ _ {20} $ $(x = 4)$的组成是热力学上最稳定的,这与实验获得的值是相当一致的。

It is generally difficult to quantify the amounts of light elements in materials because of their low X-ray-scattering power, as this means that they cannot be easily estimated via X-ray analyses. Meanwhile, the recently reported layered superconductor, Sc$_{20}$C$_{8-x}$B$_x$C$_{20}$, requires a small amount of boron, which is a light element, for its structural stability. In this context, here, we quantitatively evaluate the optimal $x$ value using both the experimental and computational approaches. Using the high-pressure synthesis approach that can maintain the starting composition even after sintering, we obtain the Sc$_{20}$(C,B)$_{8}$C$_{20}$ phase by the reaction of the previously reported Sc$_{15}$C$_{19}$ and B (Sc$_{15}$B$_y$C$_{19}$). Our experiments demonstrate that an increase in $y$ values promotes the phase formation of the Sc$_{20}$(C,B)$_{8}$C$_{20}$ structure; however, there appears to be an upper limit to the nominal $y$ value to form this phase. The maximum $T_\mathrm{c}$ $(=7.6\text{ K})$ is found to correspond with the actual $x$ value of $x \sim 5$ under the assumption that the sample with the same $T_\mathrm{c}$ as the reported value $(=7.7\text{ K})$ possesses the optimal $x$ amount. Moreover, we construct the energy convex hull diagram by calculating the formation enthalpy based on first principles. Our computational results indicate that the composition of Sc$_{20}$C$_4$B$_4$C$_{20}$ $(x=4)$ is the most thermodynamically stable, which is reasonably consistent with the experimentally obtained value.

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