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Enhanced Amplified Spontaneous Emission in Perovskites Using a Flexible Cholesteric Liquid Crystal Reflector.

Authors :
Stranks SD
Wood SM
Wojciechowski K
Deschler F
Saliba M
Khandelwal H
Patel JB
Elston SJ
Herz LM
Johnston MB
Schenning AP
Debije MG
Riede MK
Morris SM
Snaith HJ
Source :
Nano letters [Nano Lett] 2015 Aug 12; Vol. 15 (8), pp. 4935-41. Date of Electronic Publication: 2015 Jul 08.
Publication Year :
2015

Abstract

Organic-inorganic perovskites are highly promising solar cell materials with laboratory-based power conversion efficiencies already matching those of established thin film technologies. Their exceptional photovoltaic performance is in part attributed to the presence of efficient radiative recombination pathways, thereby opening up the possibility of efficient light-emitting devices. Here, we demonstrate optically pumped amplified spontaneous emission (ASE) at 780 nm from a 50 nm-thick film of CH3NH3PbI3 perovskite that is sandwiched within a cavity composed of a thin-film (∼7 μm) cholesteric liquid crystal (CLC) reflector and a metal back-reflector. The threshold fluence for ASE in the perovskite film is reduced by at least two orders of magnitude in the presence of the CLC reflector, which results in a factor of two reduction in threshold fluence compared to previous reports. We consider this to be due to improved coupling of the oblique and out-of-plane modes that are reflected into the bulk in addition to any contributions from cavity modes. Furthermore, we also demonstrate enhanced ASE on flexible reflectors and discuss how improvements in the quality factor and reflectivity of the CLC layers could lead to single-mode lasing using CLC reflectors. Our work opens up the possibility of fabricating widely wavelength-tunable "mirror-less" single-mode lasers on flexible substrates, which could find use in applications such as flexible displays and friend or foe identification.

Details

Language :
English
ISSN :
1530-6992
Volume :
15
Issue :
8
Database :
MEDLINE
Journal :
Nano letters
Publication Type :
Academic Journal
Accession number :
25989354
Full Text :
https://doi.org/10.1021/acs.nanolett.5b00678