SearcharxivSearch

arXiv subjects

Emmanuel Yakubu

Publications and source records attributed to Emmanuel Yakubu.

2 recordsLinked to original sources

Competing magnetic phases in Cr$_{3+δ}$Te$_4$ are spatially segregated

Cr$_{1+x}$Te$_2$ is a self-intercalated vdW system that is of current interest for its room-temperature FM phases and tunable topological properties. Early NPD measurements on the monoclinic phase Cr$_3$Te$_4$ ($x=0.5$) presented evidence for competing FM and AFM phases. Here we apply neutron diffraction to a single crystal of Cr$_{3+δ}$Te$_4$ with $δ=-0.10$ and discover that it consists of two distinct monoclinic phases, one with FM order below $T_{\rm C} \approx 321$ K and another that develops AFM order below $T_{\rm N} \approx 86$ K. In contrast, we find that a crystal with $δ=-0.26$ exhibits only FM order. The single-crystal analysis is complemented by results obtained with NPD, XPD, and TEM measurements on the $δ=-0.10$ composition. From observations of spontaneous magnetostriction of opposite sign at $T_{\rm C}$ and $T_{\rm N}$, along with the TEM evidence for both monoclinic phases in a single thin ($\approx$ 100 nm) grain, we conclude that the two phases must have a fine-grained ($\lesssim$ 100 nm) intergrowth character, as might occur from high-temperature spinodal decomposition during the growth process. Calculations of the relaxed lattice structures for the FM and AFM phases with DFT provide a rationalization of the observed spontaneous magnetostrictions. Correlations between the magnitude and orientation of the magnetic moments with lattice parameter variation demonstrate that the magnetic orders are sensitive to strain, thus explaining why magnetic ordering temperatures and anisotropies can be different between bulk and thin-film samples, when the latter are subject to epitaxial strain. Our results point to the need to investigate the supposed coexistence FM and AFM phases reported elsewhere in the Cr$_{1+x}$Te$_2$ system, such as in the Cr$_5$Te$_8$ phase ($x=0.25$).

cond-mat.str-el

High magnetic anisotropy and magnetocaloric effects in single crystal Cr$_2$Te$_3$

We report a systematic investigation of anisotropic magnetocaloric effects in single crystal Cr$_2$Te$_3$. Single crystal samples are synthesized by chemical vapor transport and characterized by x-ray and Laue diffraction methods. The maximum magnetic entropy change $-ΔS_{\text M}^{\text{max}}$ is 4.50 J kg$^{-1}$ K$^{-1}$ for the easy c-axis (3.36 J kg$^{-1}$ K$^{-1}$ for the hard ab-plane) and the relative cooling power RCP is 296.7 J kg$^{-1}$ for the easy c-axis (183.84 J kg$^{-1}$ for the hard axis ab-plane) near the Curie temperature for a magnetic field change of 9 T. The magneto-crystalline anisotropy constant K$_u$ is estimated to be 486.92 kJ m$^{-3}$ at 146 K, decreasing to 148.60 kJ m$^{-3}$ at 168 K. Meanwhile, the maximum of the rotational magnetic entropy change $ΔS_{\text M}^{\text R}(T, H)$ between the c-axis and the ab-plane is about 1.14 J kg$^{-1}$K$^{-1}$ for magnetic-field change of 9 T. The critical exponents are estimated by analyzing magnetocaloric effects, which indicate 2D-Ising type magnetic system. The accuracy of estimated critical exponents is verified by scaling analysis. The maximum magnetic entropy change $-ΔS_{\text M}^{\text{max}}$ $\approx$5.25 J kg$^{-1}$ K$^{-1}$ (along the c-axis) and the corresponding adiabatic temperature change $ΔT_{\text{ad}}$ $\approx$3.31 K (along the c-axis) are estimated by analyzing heat capacity measurements with a magnetic field up to 9 Tesla.

cond-mat.mtrl-sci