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arXiv · 1505.06525

Cluster spin-glass ground state in quasi-one-dimensional KCr$_{3}$As$_{3}$

Abstract

We report structural and physical properties of a new quasi-one-dimensional Cr-based compound, KCr$_{3}$As$_{3}$, which is prepared by potassium deintercalation from the superconductive K$_{2}$Cr$_{3}$As$_{3}$. KCr$_{3}$As$_{3}$ adopts the TlFe$_{3}$Te$_{3}$-type structure with space group $P6_{3}$/$m$ (No. 176). The high-temperature magnetic susceptibility obeys the Curie-Weiss law with an effective magnetic moment of 0.68 $μ_{\mathrm{B}}$/Cr. Below 56 K the susceptibility deviates from the high-temperature Curie-Weiss behavior, coinciding with the rapid increase in resistivity, which suggests formation of spin clusters. The short-range spin correlations are also supported by the specific-heat data. The title material does not exhibit bulk superconductivity; instead, it shows a cluster spin-glass state below $\sim$ 5 K.

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Jin-Ke Bao, Lin Li, Zhang-Tu Tang, Yi Liu, Yu-Ke Li, Hua Bai, Chun-Mu Feng, Zhu-An Xu, Guang-Han Cao. 2015-05-25. Cluster spin-glass ground state in quasi-one-dimensional KCr$_{3}$As$_{3}$. https://doi.org/10.1103/physrevb.91.180404

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