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Photovoltaic Effect of a Ferroelectric-Luminescent Heterostructure under Infrared Light Illumination
Author(s) -
Haoxin Mai,
Teng Lü,
Qian Li,
Qingbo Sun,
Khu Vu,
Hua Chen,
Genmiao Wang,
Mark G. Humphrey,
Felipe Kremer,
Li Li,
Ray L. Withers,
Yun Liu
Publication year - 2018
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/acsami.8b09745
Subject(s) - materials science , heterojunction , ferroelectricity , optoelectronics , photocurrent , photovoltaic effect , photovoltaic system , band gap , luminescence , photon upconversion , dielectric , ecology , biology
In this report, a ferroelectric-luminescent heterostructure is designed to convert infrared light into electric power. We use BiFeO 3 (BFO) as the ferroelectric layer and Y 2 O 3 :Yb,Tm (YOT) as the upconversion layer. Different from conventional ferroelectric materials, this heterostructure exhibits switchable and stable photovoltaic effects under 980 nm illumination, whose energy is much lower than the band gap of BFO. The energy transfer mechanism in this heterostructure is therefore studied carefully. It is found that a highly efficient nonradiative energy transfer process from YOT to BFO plays a critical role in achieving the below-band-gap photon-excited photovoltaic effects in this heterostructure. Our results also indicate that by introducing asymmetric electrodes, both the photovoltage and photocurrent are further enhanced when the built-in field and the depolarization field are aligned. The construction of ferroelectric-luminescent heterostructure is consequently proposed as a promising route to enhance the photovoltaic effects of ferroelectric materials by extending the absorption of the solar spectrum.

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