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Narrow-Wide Copolymers Designed for Red-Selective Absorption by Time-Dependent Density Functional Theory Calculations

Title
Narrow-Wide Copolymers Designed for Red-Selective Absorption by Time-Dependent Density Functional Theory Calculations
Author(s)
Jeon, WoojinChoi, ChangwonCheon, JiwonLee, JewonLansac, YvesJang, Yun Hee
Issued Date
2023-07
Citation
The Journal of Physical Chemistry C, v.127, no.31, pp.15290 - 15299
Type
Article
Keywords
DONOR-ACCEPTOR COPOLYMERSPOLYMER SOLAR-CELLSTHIN-FILM TRANSISTORSLOW-BANDGAPDIKETOPYRROLOPYRROLE POLYMERSPHOTOVOLTAIC PROPERTIESELECTRON-ACCEPTORCHARGE-TRANSPORTPERFORMANCENANOPARTICLES
ISSN
1932-7447
Abstract
Conformable RGB-color-selective narrowband photodiode components are desirable for retinal prosthesis and vision restoration, but polymers strongly absorbing only the red (R) color are particularly rare because red light (R) absorption achieved by push-pull-type low-bandgap copolymers is often accompanied by higher energy absorption in green/blue regions (G/B), hampering the color selectivity. The push-pull copolymers can be designed to suppress such high-energy absorption, but in this case, their low-energy absorption tends to be pushed to the near-IR region, hampering the red light sensitivity. We have thus defined the red selectivity (RS) of a polymer as the ratio of its red region absorption (625-800 nm) to its total absorption in the visible and near-IR regions (400-1000 nm) and proposed a minimally hybridized narrow-wide (rather than push-pull) design rule for RS-enhancing copolymers. Their HOMO/LUMO are localized in the narrow-bandgap units, their HOMO-1/LUMO+1 are localized in the other wide-bandgap units, and the hybridization between the two units is minimized by a significant twist introduced to the backbone by a molecular design. Herein, utilizing time-dependent density functional theory calculations validated on short oligomer models, we refine these design rules with additional guidelines on the relative energies of these frontier molecular orbitals and then apply them to design new narrow-wide polymers for strong red-selective absorption. We propose not only new polymers based on the previously reported diketopyrrolopyrrole (DPP) narrow unit coupled with new wide units but also new polymers based on the newly found beyond-DPP narrow units, thieno[3,4-g]quinoxaline and benzo[1,2-c;4,5-c′]bis[1,2,5]thiadiazole (B2T), coupled with typical wide units such as methyl thiophene and xylene, respectively. © 2023 American Chemical Society
URI
http://hdl.handle.net/20.500.11750/46473
DOI
10.1021/acs.jpcc.3c01587
Publisher
American Chemical Society
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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