Magnetically disordered ground state in the triangular-lattice antiferromagnets Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$

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Main Authors: Ma, Zhen, Chen, Yingqi, Fu, Zhongtuo, Li, Shuaiwei, Tong, Xin-An, Du, Hong, Embs, Jan Peter, Zheng, Shuhan, Zhang, Yongjun, Liu, Meifeng, Zhong, Ruidan, Liu, Jun-Ming, Wen, Jinsheng
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Published: 2025
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author Ma, Zhen
Chen, Yingqi
Fu, Zhongtuo
Li, Shuaiwei
Tong, Xin-An
Du, Hong
Embs, Jan Peter
Zheng, Shuhan
Zhang, Yongjun
Liu, Meifeng
Zhong, Ruidan
Liu, Jun-Ming
Wen, Jinsheng
author_facet Ma, Zhen
Chen, Yingqi
Fu, Zhongtuo
Li, Shuaiwei
Tong, Xin-An
Du, Hong
Embs, Jan Peter
Zheng, Shuhan
Zhang, Yongjun
Liu, Meifeng
Zhong, Ruidan
Liu, Jun-Ming
Wen, Jinsheng
contents Quantum spin liquids~(QSLs) represent a unique quantum disordered state of matter that hosts long-range quantum entanglement and fractional excitations. However, structural disorder resulting from site mixing between different types of ions usually arises in real QSL candidates, which is considered as an obstacle to gain the insight into the intrinsic physics. Here, we have synthesized two new rare-earth compounds Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$. X-ray diffractions reveal a perfect triangular-lattice structure with no detectable disorder. Magnetic susceptibility measurements do not capture any phase transition or spin freezing down to 1.8~K. A fit to low-temperature data indicates dominant antiferromagnetic interactions with the Curie-Weiss temperature of -1.40~K and -0.43~K for Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$, respectively. Specific heat results show no sign of long-range magnetic order down to $\sim$0.1~K either, but only a Schottky anomaly that is continuously mediated by the external magnetic fields. Additionally, inelastic neutron scattering is employed to detect low-energy spin excitations in Rb$_3$Yb(VO$_4$)$_2$. The absence of magnetic excitation signals as well as static magnetic order down to 97~mK aligns with the results from magnetic susceptibility and specific heat. Collectively, these findings point to a quantum disordered ground state with persistent spin dynamics, reminiscent of QSL behaviors. Our work provides a promising platform for further exploration of quantum magnetism in this new disorder-free system.
format Preprint
id arxiv_https___arxiv_org_abs_2504_17470
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Magnetically disordered ground state in the triangular-lattice antiferromagnets Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$
Ma, Zhen
Chen, Yingqi
Fu, Zhongtuo
Li, Shuaiwei
Tong, Xin-An
Du, Hong
Embs, Jan Peter
Zheng, Shuhan
Zhang, Yongjun
Liu, Meifeng
Zhong, Ruidan
Liu, Jun-Ming
Wen, Jinsheng
Strongly Correlated Electrons
Materials Science
Quantum spin liquids~(QSLs) represent a unique quantum disordered state of matter that hosts long-range quantum entanglement and fractional excitations. However, structural disorder resulting from site mixing between different types of ions usually arises in real QSL candidates, which is considered as an obstacle to gain the insight into the intrinsic physics. Here, we have synthesized two new rare-earth compounds Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$. X-ray diffractions reveal a perfect triangular-lattice structure with no detectable disorder. Magnetic susceptibility measurements do not capture any phase transition or spin freezing down to 1.8~K. A fit to low-temperature data indicates dominant antiferromagnetic interactions with the Curie-Weiss temperature of -1.40~K and -0.43~K for Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$, respectively. Specific heat results show no sign of long-range magnetic order down to $\sim$0.1~K either, but only a Schottky anomaly that is continuously mediated by the external magnetic fields. Additionally, inelastic neutron scattering is employed to detect low-energy spin excitations in Rb$_3$Yb(VO$_4$)$_2$. The absence of magnetic excitation signals as well as static magnetic order down to 97~mK aligns with the results from magnetic susceptibility and specific heat. Collectively, these findings point to a quantum disordered ground state with persistent spin dynamics, reminiscent of QSL behaviors. Our work provides a promising platform for further exploration of quantum magnetism in this new disorder-free system.
title Magnetically disordered ground state in the triangular-lattice antiferromagnets Rb$_3$Yb(VO$_4$)$_2$ and Cs$_3$Yb(VO$_4$)$_2$
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2504.17470