ArXiv · 2026
High-entropy stabilization chemistry is redefining materials design by transforming configurational disorder, arising from the deliberate incorporation of multiple principal cations, into a thermodynamic advantage that promotes phase stability and enables emergent functionalities. In this work, we investigate the evolution of magnetic ordering in spinel-type high entropy oxides by systematically varying the cation composition of the B site within a fixed high-entropy A-site matrix, (Ni_(0.2)Mg_(0.2)Co_(0.2)Cu_(0.2)Zn_(0.2))B₂O₄. Upon introducing multicomponent B-site configurations, we uncover a strikingly linear dependence of the magnetic transition temperature (T_C) on the T_Cs of the corresponding single B-site high-entropy systems. Remarkably, this trend persists even in highly complex (Ni_(0.2)Mg_(0.2)Co_(0.2)Cu_(0.2)Zn_(0.2))(Cr_(0.2)Mn_(0.2)Fe_(0.2)Ga_(0.2)X_(0.2))₂O₄, X = Al and Ti. Despite the material's extremely high degree of disorder, absence of a dominant magnetic ion or a straightforward superexchange pathway, detailed magnetization measurements, low-temperature X-ray magnetic circular dichroism, and neutron powder diffraction studies reveal robust long-range ferrimagnetic ordering. These results reveal an emergent predictability in ferrimagnetic high-entropy spinel oxides, where, despite extreme configurational disorder and competing interactions, robust ferrimagnetic order can arise from, rather than be hindered by, extreme configurational disorder. This establishes a pathway for predictively tuning magnetic transition temperatures in high-entropy oxides beyond conventional ordered systems.
Try inveni