Colossal magnetostriction effect in rare-earth orthoferrites
Moumita Das, Arup Ghosh, Moumita Nandi, Arumugam Thamizhavel, Dipten Bhattacharya, Prabhat Mandal
Abstract
Within the entire gamut of magnetostrictive, piezomagnetic, and ferromagnetic shape memory alloy systems, the striction effect is found to vary from a few tens of parts per million to a few percent. Here, we report the observation of an unprecedentedly large magnetic-field-induced lattice strain along the c axis (more than 60-100% at 90 kOe field) in single crystals of orthorhombic RFeO3 (R = Dy, Ho) below their spin-reorientation transition temperature TSR. However, the striction effect is two orders of magnitude smaller along the a and b axes. Like magnetostriction, the magnetodielectric effect is highly anisotropic and very large along the c axis. Such gigantic striction and dielectric effects along the c axis arise as a result of a magnetic-field-induced first-order structural phase transition which possibly stems from large spin-orbit coupling (and, thereby, enormous magnetocrystalline anisotropy). The observed colossal striction in rare-earth orthoferrites could open new opportunities for applications requiring large, reversible magnetic-field-induced strain.
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