Incommensurate spin density wave and magnetocaloric effect in the metallic triangular lattice HoAl2Ge2

Fei Gao, Jieming Sheng, Weijun Ren, Qiang Zhang, Xiaohua Luo, Ji Qi, Mengru Cong, Bing Li, Liusuo Wu, Zhidong Zhang

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8 Scopus citations

Abstract

We report the magnetic structure and the magnetocaloric effect (MCE) of the ternary compound HoAl2Ge2 with a trigonal CaAl2Si2-type crystal structure. A neutron powder diffraction experiment reveals that HoAl2Ge2 exhibits an incommensurate spin density wave (SDW) with a propagation vector k=(0.23,0,0.06). The special arrangement of magnetic moments in HoAl2Ge2 induces interesting physical phenomena and large magnetocaloric effects. The rise in resistivity at low temperatures indicates the effect of the SDW state in the electronic transport. The maximum magnetic-entropy change is -16.1J/kgK under a magnetic field change of 0-70 kOe for an isotropic HoAl2Ge2 powder and it increases to -17.9J/kgK for a single crystal when the magnetic field (H) is applied parallel to the ab plane. A large rotating magnetic-entropy change of -5.1J/kgK for H=20kOe in a HoAl2Ge2 single crystal is obtained, which is closely associated to the magnetic anisotropy of the SDW order and its response to the external magnetic field. We discuss the large MCE in terms of the field-induced metamagnetic transition from the incommensurate SDW order to the ferromagnetic order. Our study establishes the triangular lattice RAl2Ge2 (R = rare-earth elements) as a unique family of compounds to explore the existence of the incommensurate spin density waves and the correlated physical properties.

Original languageEnglish
Article number134426
JournalPhysical Review B
Volume106
Issue number13
DOIs
StatePublished - Oct 1 2022

Funding

This work has been supported by the Ministry of Science and Technology of China (Grants No. 2020YFA0406002 and No. 2021YFB3501201) and the National Natural Science Foundation of China (Grants No. 52071323, No. 12104255, No. 52031014, and No. 12134020). A portion of this research used resources at the Spallation Neutron Source, a DOE Office of Science User Facility operated by the Oak Ridge National Laboratory.

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