Engineering new limits to magnetostriction through metastability in iron-gallium alloys.

Meisenheimer, P B; Steinhardt, R A; Sung, S H; Williams, L D; Zhuang, S; Nowakowski, M E; Novakov, S; Torunbalci, M M et al. · Nat Commun · 2021

basic_science · Level V

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Abstract

Magnetostrictive materials transduce magnetic and mechanical energies and when combined with piezoelectric elements, evoke magnetoelectric transduction for high-sensitivity magnetic field sensors and energy-efficient beyond-CMOS technologies. The dearth of ductile, rare-earth-free materials with high magnetostrictive coefficients motivates the discovery of superior materials. Fe<sub>1-x</sub>Ga<sub>x</sub> alloys are amongst the highest performing rare-earth-free magnetostrictive materials; however, magnetostriction becomes sharply suppressed beyond x = 19% due to the formation of a parasitic ordered intermetallic phase. Here, we harness epitaxy to extend the stability of the BCC Fe<sub>1-x</sub>Ga<sub>x</sub> alloy to gallium compositions as high as x = 30% and in so doing dramatically boost the magnetostriction by as much as 10x relative to the bulk and 2x larger than canonical rare-earth based magnetostrictors. A Fe<sub>1-x</sub>Ga<sub>x</sub> - [Pb(Mg<sub>1/3</sub>Nb<sub>2/3</sub>)O<sub>3</sub>]<sub>0.7</sub>-[PbTiO<sub>3</sub>]<sub>0.3</sub> (PMN-PT) composite magnetoelectric shows robust 90° electrical switching of magnetic anisotropy and a converse magnetoelectric coefficient of 2.0 × 10<sup>-5</sup> s m<sup>-1</sup>. When optimally scaled, this high coefficient implies stable switching at ~80 aJ per bit.