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      Ultrafast THz Field Control of Electronic and Structural Interactions in Vanadium Dioxide

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          Abstract

          Vanadium dioxide, an archetypal correlated-electron material, undergoes an insulator-metal transition near room temperature that exhibits electron-correlation-driven and structurally-driven physics. Using ultrafast optical spectroscopy and x-ray scattering we show that these processes can be disentangled in the time domain. Specifically, following intense sub-picosecond electric-field excitation, a partial collapse of the insulating gap occurs within the first ps. Subsequently, this electronic reconfiguration initiates a change in lattice symmetry taking place on a slower timescale. We identify the kinetic energy increase of electrons tunneling in the strong electric field as the driving force, illustrating a novel method to control electronic interactions in correlated materials on an ultrafast timescale.

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          Author and article information

          Journal
          2016-01-27
          2016-04-25
          Article
          1601.07490
          ad9b1e1b-5009-4ccb-adbb-132e5755cb4f

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          cond-mat.str-el

          Condensed matter
          Condensed matter

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