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Direct observation of shift and ballistic photovoltaic currents
Author(s) -
A. Bürger,
Radhe Agarwal,
Alexey Aprelev,
Edward Schruba,
Alejandro Gutierrez-Perez,
V. M. Fridkin,
Jonathan E. Spanier
Publication year - 2019
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aau5588
Subject(s) - photovoltaic system , paradigm shift , current (fluid) , blueshift , photovoltaic effect , ballistic conduction , relaxation (psychology) , quantum dot , anomalous photovoltaic effect , physics , condensed matter physics , materials science , optoelectronics , electron , photoluminescence , electrical engineering , quantum mechanics , engineering , psychology , social psychology , thermodynamics
The quantum phenomenon of shift photovoltaic current was predicted decades ago, but this effect was never observed directly because shift and ballistic currents coexist. The atomic-scale relaxation time of shift, along with the absence of a photo-Hall behavior, has made decisive measurement of shift elusive. Here, we report a facile, direct-current, steady-state method for unambiguous determination of shift by means of the simultaneous measurements of linear and circular bulk photovoltaic currents under magnetic field, in a sillenite piezoelectric crystal. Comparison with theoretical predictions permits estimation of the signature length scale for shift. Remarkably, shift and ballistic photovoltaic currents under monochromatic illumination simultaneously flow in opposite directions. Disentangling the shift and ballistic contributions opens the way for quantitative, fundamental insight into and practical understanding of these radically different photovoltaic current mechanisms and their relationship.

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