论文标题

电子特性的非平凡掺杂演变

Nontrivial doping evolution of electronic properties in Ising-superconducting alloys

论文作者

Wan, Wen, Wickramaratne, Darshana, Dreher, Paul, Harsh, Rishav, Mazin, I. I., Ugeda, Miguel M.

论文摘要

过渡金属二分元化物为具有量身定制特性的工程师2D材料提供了前所未有的多功能性,以探索新型的结构和电子相变。在这项工作中,我们介绍了NB $ _ {1-δ} $ MO $ $ $ $_Δ$ se $ se $ _2 $的电子基态的原子级演化(0 <$δ$ <1),使用低温(300 mk)扫描隧道显微镜和光谱(STM/STSS)。特别是,我们研究了整个金属中这种2D合金的原子和电子结构到半导体过渡(单层NBSE $ _2 $ to Mose $ _2 $)。我们的测量值使我们可以提取MO原子的有效掺杂,带隙的演化和带偏移,它们具有$δ$的单调。此外,我们证明了集体电子相(电荷密度波和超导性)非常强大。我们进一步表明,超导TC随着掺杂而非单向变化。使用第一原理计算来解释正常和超导状态下的这种对比行为。我们表明,MO掺杂在费米水平上降低了状态的密度,而对MO含量的函数则降低了对旋转的旋转波动的幅度。我们的结果描绘了2D TMD合金中电子结构演变的详细图片,这与未来的2D材料设计至关重要。

Transition metal dichalcogenides offer unprecedented versatility to engineer 2D materials with tailored properties to explore novel structural and electronic phase transitions. In this work, we present the atomic-scale evolution of the electronic ground state of a monolayer of Nb$_{1-δ}$Mo$_δ$Se$_2$ across the entire alloy composition range (0 < $δ$ < 1) using low-temperature (300 mK) scanning tunneling microscopy and spectroscopy (STM/STS). In particular, we investigate the atomic and electronic structure of this 2D alloy throughout the metal to semiconductor transition (monolayer NbSe$_2$ to MoSe$_2$). Our measurements let us extract the effective doping of Mo atoms, the bandgap evolution and the band shifts, which are monotonic with $δ$. Furthermore, we demonstrate that collective electronic phases (charge density wave and superconductivity) are remarkably robust against disorder. We further show that the superconducting TC changes non-monotonically with doping. This contrasting behavior in the normal and superconducting state is explained using first-principles calculations. We show that Mo doping decreases the density of states at the Fermi level and the magnitude of pair-breaking spin fluctuations as a function of Mo content. Our results paint a detailed picture of the electronic structure evolution in 2D TMD alloys, which is of utmost relevance for future 2D materials design.

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