English

First principles calculations of the Shift Current Bulk Photovoltaic Effect in Ferroelectrics

Materials Science 2015-06-04 v3

Abstract

We calculate the bulk photovoltaic response of the ferroelectrics BaTiO3_3 and PbTiO3_3 from first principles by applying "shift current" theory to the electronic structure from density functional theory. The first principles results for BaTiO3_3 reproduce eperimental photocurrent direction and magnitude as a function of light frequency, as well as the dependence of current on light polarization, demonstrating that shift current is the dominant mechanism of the bulk photovoltaic effect in BaTiO3_3. Additionally, we analyze the relationship between response and material properties in detail. The photocurrent does not depend simply or strongly on the magnitude of material polarization, as has been previously assumed; instead, electronic states with delocalized, covalent bonding that is highly asymmetric along the current direction are required for strong shift current enhancements. The complexity of the response dependence on both external and material parameters suggests applications not only in solar energy conversion, but to photocatalysis and sensor and switch type devices as well.

Keywords

Cite

@article{arxiv.1202.3168,
  title  = {First principles calculations of the Shift Current Bulk Photovoltaic Effect in Ferroelectrics},
  author = {Steve M. Young and Andrew M. Rappe},
  journal= {arXiv preprint arXiv:1202.3168},
  year   = {2015}
}

Comments

First submitted April 2011, submitted PRL July 2011