Giant Electrostatic Modification of Magnetism via Electrolyte-Gate-Induced Cluster Percolation in La$_{1-x}$Sr$_x$CoO$_{3-\delta}
Phys. Rev. Materials 2, 111406 (2018) Electrical control of magnetism is a long-standing goal in physics and technology, recently developed electrolyte gating techniques providing a promising route to realization. Validating a recent theoretical prediction, here we demonstrate large enhancement of e...
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Zusammenfassung: | Phys. Rev. Materials 2, 111406 (2018) Electrical control of magnetism is a long-standing goal in physics and
technology, recently developed electrolyte gating techniques providing a
promising route to realization. Validating a recent theoretical prediction,
here we demonstrate large enhancement of electrostatic modulation of
ferromagnetic order in ion-gel-gated ultrathin
La$_{0.5}$Sr$_{0.5}$CoO$_{3-\delta}$ by thickness-tuning to the brink of a
magnetic percolation transition. Application of only 3-4 V then drives a
transition from a short-range-ordered insulator to a robust long-range
ferromagnetic metal, realizing giant electrostatic Curie temperature modulation
over a 150 K window. In operando polarized neutron reflectometry confirms
gate-controlled ferromagnetism, also demonstrating unusually deep penetration
of induced magnetization, in further agreement with theory. |
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DOI: | 10.48550/arxiv.1807.09364 |