An extensive experimental investigation on the structural, static magnetic, and non-equilibrium dynamical properties of polycrystalline Mn2CuGe Heusler alloy using powder X-ray diffraction, DC magnetization, magnetic relaxation, magnetic memory effect, and specific heat measurements is presented. Structural studies reveal that the alloy crystallizes in a mixed hexagonal crystal structure (space groups P3c1 (no. 158) and P63/mmc (no. 194)) with lattice parameters a = b = 7.18(4) A˚ and c = 13.12(4) A˚ for the majority phase. The DC magnetization analysis reveals a paramagnetic to ferrimagnetic phase transition around TC≈ 682 K with a compensation of magnetization at ≈ 250 K, and a spin-glass transition around TP≈ 25.6 K. The N\'eel theory of ferrimagnets supports the ferrimagnetic nature of the studied alloy and the estimated TC (≈ 687 K) from this theory is consistent with that obtained from the DC magnetization data. A detailed study of non-equilibrium spin dynamics via magnetic relaxation and memory effect experiments shows the evolution of the system through a number of intermediate states and striking magnetic memory effect. Furthermore, heat capacity measurements suggest a large electronic contribution to the specific heat capacity suggesting strong spin fluctuations, due to competing magnetic interactions. All the observations render a spin-glass behavior in Mn2CuGe, attributed to the magnetic frustration possibly arising out of the competing ferromagnetic and antiferromagnetic interactions.
@article{arxiv.2407.14950,
title = {Ferrimagnetic hexagonal Mn$_2$CuGe Heusler alloy with a low-temperature spin-glass state},
author = {Abhinav Kumar Khorwal and Sonu Vishvakarma and Sujoy Saha and Debashish Patra and Akriti Singh and Surajit Saha and V. Srinivas and Ajit K. Patra},
journal= {arXiv preprint arXiv:2407.14950},
year = {2024}
}