Magnetic field tunability of spin polarized excitations in a high temperature magnet
ORAL
Abstract
Magnetic semiconductors are at the heart of modern device physics because they naturally provide a non-zero magnetic moment below the ordering temperature, spin-dependent band gap, and spin polarization that originates from exchange-coupled magnetization or an applied field creating a spin-split band structure. Strongly correlated spinel ferrites are amongst the most noteworthy contenders for semiconductor spintronics. NiFe$_2$O$_4$, in particular, displays spin-filtering, linear magnetoresistance, and wide application in the microwave regime. To unravel the spin-charge interaction in NiFe$_2$O$_4$, we bring together magnetic circular dichroism, photoconductivity, and prior optical absorption with complementary first principles calculations. Analysis uncovers a metamagnetic transition modifying electronic structure in the minority channel below the majority channel gap, exchange splittings emerging from spin-split bands, anisotropy of excitons surrounding the indirect gap, and magnetic-field dependent photoconductivity. These findings open the door for the creation and control of spin-polarized excitations from minority channel charge charge transfer in NiFe$_2$O$_4$ and other members of the spinel ferrite family.
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Authors
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Brian Holinsworth
Univ of Tennessee, Knoxville
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Hunter Sims
Oak Ridge National Lab
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Judy Cherian
Univ of Tennessee, Knoxville
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Dipanjan Mazumdar
Univ of Tennessee, Knoxville
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Nathan Harms
Univ of Tennessee, Knoxville
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Brandon Chapman
Univ of Tennessee, Knoxville
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Arun Gupta
University of Alabama, Birmingham
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Steve McGill
National High Magnetic Field Lab, National High Magnetic Field Laboratory, Natl High Magnetic Field Lab, Tallahassee, FL, USA
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Janice Musfeldt
Univ of Tennessee, Knoxville