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A Molecular-Switch-Embedded Organic Photodiode for Capturing Images against Strong Backlight

Title
A Molecular-Switch-Embedded Organic Photodiode for Capturing Images against Strong Backlight
Author(s)
Kang, MingyunHassan, Syed ZahidKo, Seong-MinChoi, ChangwonKim, JuheeParumala, Santosh K. R.Kim, Yun-HiJang, Yun HeeYoon, JinhwanJee, Dong-WooChung, Doe Sung
Issued Date
2022-04
Citation
Advanced Materials, v.34, no.17
Type
Article
Author Keywords
color-selectivitydiaryletheneimage sensorsmolecular switchesorganic photodiodes
Keywords
QUANTUM YIELDDIARYLETHENEPHOTODETECTORSREACTIVITYCOPOLYMERMEMORIES
ISSN
0935-9648
Abstract
When the intensity of the incident light increases, the photocurrents of organic photodiodes (OPDs) exhibit relatively early saturation, due to which OPDs cannot easily detect objects against strong backlights, such as sunlight. In this study, this problem is addressed by introducing a light-intensity-dependent transition of the operation mode, such that the operation mode of the OPD autonomously changes to overcome early photocurrent saturation as the incident light intensity passes the threshold intensity. The photoactive layer is doped with a strategically designed and synthesized molecular switch, 1,2-bis-(2-methyl-5-(4-cyanobiphenyl)-3-thienyl)tetrafluorobenzene (DAB). The proposed OPD exhibits a typical OPD performance with an external quantum efficiency (EQE) of 100% under low-intensity and high-intensity light illuminations, respectively, thereby resulting in an extension of the photoresponse linearity to a light intensity of 434 mW cm(-2). This unique and reversible transition of the operation mode can be explained by the unbalanced quantum yield of photocyclization/photocycloreversion of the molecular switch. The details of the operation mechanism are discussed in conjunction with various photophysical analyses. Furthermore, they establish a prototype image sensor with an array of molecular-switch-embedded OPD pixels to demonstrate their extremely high sensitivity against strong light illumination. © 2022 Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/16501
DOI
10.1002/adma.202200526
Publisher
Wiley-VCH Verlag
Related Researcher
  • 장윤희 Jang, Yun Hee
  • Research Interests Multiscale molecular modeling (quantum mechanics calculation; molecular dynamics simulation) : Supercomputer-assisted molecular-level understanding of materials and their chemistry; which leads to rational design of high-performance organic-inorganic-hybrid materials for clean and renewable energy as well as low-energy-consumption electronic devices
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Department of Energy Science and Engineering CMMM Lab(Curious Minds Molecular Modeling Laboratory) 1. Journal Articles

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