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Tip-enhanced bulk photovoltaic effect. / Sturman, B.; Podivilov, E.

In: Physical Review B, Vol. 96, No. 13, 134107, 11.10.2017.

Research output: Contribution to journalArticlepeer-review

Harvard

Sturman, B & Podivilov, E 2017, 'Tip-enhanced bulk photovoltaic effect', Physical Review B, vol. 96, no. 13, 134107. https://doi.org/10.1103/physrevb.96.134107

APA

Vancouver

Sturman B, Podivilov E. Tip-enhanced bulk photovoltaic effect. Physical Review B. 2017 Oct 11;96(13):134107. doi: 10.1103/physrevb.96.134107

Author

Sturman, B. ; Podivilov, E. / Tip-enhanced bulk photovoltaic effect. In: Physical Review B. 2017 ; Vol. 96, No. 13.

BibTeX

@article{1b581f68ba8e45c3a354486701cfdbdc,
title = "Tip-enhanced bulk photovoltaic effect",
abstract = "Using the conventional macroscopic description of the bulk photovoltaic effect we analyze the light-induced currents and electric fields arising in the optical configuration with a continuous bottom electrode and a small circular top electrode. This scheme is relevant to recent experiments on the tip-enhanced photovoltaic effect in ferroelectrics. It is shown that a light-induced electric field remains nonzero inside the sample even in the short-circuit regime. Moreover, it is enhanced compared to the photovoltaic field in a large area and strongly enhanced near the top electrode. A field-assisted collection of charge carriers from the illuminated area produces a strong local enhancement of the current density near the top electrode. The tip-enhanced electric field is typically parallel to the photovoltaic current. It is sufficient to repolarize the crystal near the top electrode. The effect of the tip enhancement on the light-current transformation efficiency is considered, and predictions for the tip radius and sample thickness dependencies of the total light-induced current are made.",
keywords = "FERROELECTRICS, FIELD",
author = "B. Sturman and E. Podivilov",
year = "2017",
month = oct,
day = "11",
doi = "10.1103/physrevb.96.134107",
language = "English",
volume = "96",
journal = "Physical Review B",
issn = "2469-9950",
publisher = "American Physical Society",
number = "13",

}

RIS

TY - JOUR

T1 - Tip-enhanced bulk photovoltaic effect

AU - Sturman, B.

AU - Podivilov, E.

PY - 2017/10/11

Y1 - 2017/10/11

N2 - Using the conventional macroscopic description of the bulk photovoltaic effect we analyze the light-induced currents and electric fields arising in the optical configuration with a continuous bottom electrode and a small circular top electrode. This scheme is relevant to recent experiments on the tip-enhanced photovoltaic effect in ferroelectrics. It is shown that a light-induced electric field remains nonzero inside the sample even in the short-circuit regime. Moreover, it is enhanced compared to the photovoltaic field in a large area and strongly enhanced near the top electrode. A field-assisted collection of charge carriers from the illuminated area produces a strong local enhancement of the current density near the top electrode. The tip-enhanced electric field is typically parallel to the photovoltaic current. It is sufficient to repolarize the crystal near the top electrode. The effect of the tip enhancement on the light-current transformation efficiency is considered, and predictions for the tip radius and sample thickness dependencies of the total light-induced current are made.

AB - Using the conventional macroscopic description of the bulk photovoltaic effect we analyze the light-induced currents and electric fields arising in the optical configuration with a continuous bottom electrode and a small circular top electrode. This scheme is relevant to recent experiments on the tip-enhanced photovoltaic effect in ferroelectrics. It is shown that a light-induced electric field remains nonzero inside the sample even in the short-circuit regime. Moreover, it is enhanced compared to the photovoltaic field in a large area and strongly enhanced near the top electrode. A field-assisted collection of charge carriers from the illuminated area produces a strong local enhancement of the current density near the top electrode. The tip-enhanced electric field is typically parallel to the photovoltaic current. It is sufficient to repolarize the crystal near the top electrode. The effect of the tip enhancement on the light-current transformation efficiency is considered, and predictions for the tip radius and sample thickness dependencies of the total light-induced current are made.

KW - FERROELECTRICS

KW - FIELD

UR - http://www.scopus.com/inward/record.url?scp=85037071189&partnerID=8YFLogxK

U2 - 10.1103/physrevb.96.134107

DO - 10.1103/physrevb.96.134107

M3 - Article

AN - SCOPUS:85037071189

VL - 96

JO - Physical Review B

JF - Physical Review B

SN - 2469-9950

IS - 13

M1 - 134107

ER -

ID: 9647510