Spatially inhomogeneous electron state deep in the extreme quantum limit of strontium titanate

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作者
Anand Bhattacharya
Brian Skinner
Guru Khalsa
Alexey V. Suslov
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[1] Argonne National Laboratory,Materials Science Division
[2] Massachusetts Institute of Technology,undefined
[3] Center for Nanoscale Science and Technology,undefined
[4] National Institute of Standards and Technology,undefined
[5] National High Magnetic Field Laboratory,undefined
[6] Present address: Department of Materials Science and Engineering,undefined
[7] Cornell University,undefined
[8] 126 Bard Hall,undefined
[9] Ithaca,undefined
[10] NY 14853-1501,undefined
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When an electronic system is subjected to a sufficiently strong magnetic field that the cyclotron energy is much larger than the Fermi energy, the system enters the extreme quantum limit (EQL) and becomes susceptible to a number of instabilities. Bringing a three-dimensional electronic system deeply into the EQL can be difficult however, since it requires a small Fermi energy, large magnetic field, and low disorder. Here we present an experimental study of the EQL in lightly-doped single crystals of strontium titanate. Our experiments probe deeply into the regime where theory has long predicted an interaction-driven charge density wave or Wigner crystal state. A number of interesting features arise in the transport in this regime, including a striking re-entrant nonlinearity in the current–voltage characteristics. We discuss these features in the context of possible correlated electron states, and present an alternative picture based on magnetic-field induced puddling of electrons.
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