Thermal history-dependent characteristics in van der Waals ferromagnet Fe5−xGeTe2 (x ∼ 0.16)

Author:

Yadav Ramesh Lalmani1ORCID,Bag Pallab1ORCID,Lai Chien-Chih1ORCID,Kuo Yung-Kang1ORCID,Kuo Chia-Nung23,Lue Chin-Shan234ORCID

Affiliation:

1. Department of Physics, National Dong Hwa University 1 , Hualien 97401, Taiwan

2. Department of Physics, National Cheng Kung University 2 , Tainan 70101, Taiwan

3. Taiwan Consortium of Emergent Crystalline Materials, National Science and Technology Council 3 , Taipei 10601, Taiwan

4. Program on Key Materials, Academy of Innovative Semiconductor and Sustainable Manufacturing, National Cheng Kung University 4 , Tainan 70101, Taiwan

Abstract

We investigated the thermal-history dependence of physical properties in a quenched Fe5−xGeTe2 (x ∼ 0.16) single crystal by measuring magnetization (M), electrical resistivity (ρ), Seebeck coefficient (S), and thermal conductivity (κ) as a function of temperature (T). The results reveal anomalies in these physical quantities around various transition points: ferromagnetic (TC ∼ 310–300 K), helimagnetic (TH ∼ 275 K), charge ordering (TCO ∼ 165 K), spin-reorientation (T* ∼ 100–120 K), and a Fermi-liquid (FL) phase below TL ∼ 35 K. Using power-law fitting, the M(T) analysis near TC shows that Fe moments become primarily itinerant after thermal cycling. The ρ(T) results indicate inherent residual stresses in the crystal that alter with thermal cycling, influencing ferromagnetic domain formations within grain boundaries. The system exhibits a strongly correlated FL behavior at low temperatures, which ceases above TL due to spin fluctuations. In the T-range of T* ≤ T ≤ TCO, ρ(T) and S(T) analyses suggest significant electronic band structure modifications with multiband effects. The κ(T) data indicate phonon-dominated heat transport in the crystal, with a phonon behavior influenced by inherent lattice strains following initial thermal cycles, as evidenced by the decreased phonon peak height at low temperatures. In addition, there is evidence of phonon localization and electron–phonon coupling at higher temperatures.

Funder

National Science and Technology Council

Publisher

AIP Publishing

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