Electronic transport properties and hydrostatic pressure effect of FeSe$_{0.67}$Te$_{0.33}$ single crystals free of phase separation
Xiangzhuo Xing, Yue Sun, Xiaolei Yi, Meng Li, Jiajia Feng, Yan Meng,, Yufeng Zhang, Wenchong Li, Nan Zhou, Xiude He, Jun-Yi Ge, Wei Zhou, Tsuyoshi, Tamegai, Zhixiang Shi

TL;DR
This study synthesizes phase-separated-free FeSe$_{0.67}$Te$_{0.33}$ single crystals and investigates their electronic, magnetic, and pressure-dependent properties, revealing multiband effects, nematic suppression, and enhanced superconductivity.
Contribution
It provides the first detailed analysis of FeSe$_{0.67}$Te$_{0.33}$ single crystals without phase separation, elucidating their electronic structure and pressure effects.
Findings
Observation of a structural transition at 39 K.
Evidence of Dirac-cone state from magnetoresistance behavior.
Superconducting transition temperature increases with pressure.
Abstract
FeSeTe superconductors manifest some intriguing electronic properties depending on the value of . In FeSe single crystal, the nematic phase and Dirac band structure have been observed, while topological surface superconductivity with the Majorana bound state was found in the crystal of . Therefore, the electronic properties of single crystals with are crucial for probing the evolution of those intriguing properties as well as their relations. However, this study is still left blank due to the lack of single crystals because of phase separation. Here, we report the synthesis, magnetization, electronic transport properties, and hydrostatic pressure effect of FeSeTe single crystals free of phase separation. A structural (nematic) transition is visible at K, below which the resistivity exhibits a Fermi-liquid…
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