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  4. Effect of auxiliary donors and position of benzothiadiazole on the optical and photovoltaic properties of dithieno[3,2-b:2′,3′-d]pyrrole-based sensitizers
 
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Effect of auxiliary donors and position of benzothiadiazole on the optical and photovoltaic properties of dithieno[3,2-b:2′,3′-d]pyrrole-based sensitizers

Journal
Solar Energy
Journal Volume
208
Pages
539-547
Date Issued
2020
Author(s)
Kumar S
Justin Thomas K.R
Li C.-T
Fan M.-S
Ho K.-C.
KUO-CHUAN HO  
DOI
10.1016/j.solener.2020.08.001
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85089415141&doi=10.1016%2fj.solener.2020.08.001&partnerID=40&md5=99c08bc8ae75116f091016786788f3dd
https://scholars.lib.ntu.edu.tw/handle/123456789/576749
Abstract
Organic dyes used as sensitizers in dye-sensitized solar cells offer endless opportunities for modulation of cell efficiency through structural diversifications. Despite the countless number of dyes developed, structure-property analysis by varying chromophores and their topology in dyes is useful to formulate design principles. Herein, we report six new organic dyes featuring dithienopyrrole (DTP), benzothiadiazole (BTD) and cyanoacrylic acid units. The effect of auxiliary donors such as triphenylamine or diphenylaminofluorene and the position of benzothiadiazole on the optical and photovoltaic properties were evaluated by appropriate design of dyes. Incorporation of additional donor enhanced the spectral response of the dyes by elongating the conjugation length and supplementing the donor-acceptor interaction. Moving the BTD unit from the position between DTP and acceptor (D-D-A-π-A) to a position between the auxiliary donor and DTP (D-A-D-A) altered the absorption as well as electrochemical properties. Theoretical calculations revealed that the later molecular configuration ensures sufficient overlap of HOMO and LUMO and facilitate the charge transfer propensity from arylamine donor to acceptor which is beneficial for light harvesting. Among the dyes, a D-A-D-A dye possessing triphenylamine exhibited highest power conversion efficiency (η = 7.57%). The structure-property relationship is supported by electron transfer kinetics elucidated by electrochemical impedance spectroscopic studies. The best performing dye displayed high charge recombination and sufficiently low charge transfer resistance in the device. ? 2020 International Solar Energy Society
Subjects
Charge transfer; Chromophores; Conversion efficiency; Dye-sensitized solar cells; Efficiency; Photovoltaic effects; Spectroscopic analysis; Charge transfer resistance; Donor-acceptor interaction; Electrochemical impedance; Electron transfer kinetics; Molecular configurations; Power conversion efficiencies; Structure property relationships; Theoretical calculations; Structural design; cell component; chemical composition; design method; dye; optical method; organic compound; photovoltaic system; reaction kinetics; topology
SDGs

[SDGs]SDG7

Other Subjects
Charge transfer; Chromophores; Conversion efficiency; Dye-sensitized solar cells; Efficiency; Photovoltaic effects; Spectroscopic analysis; Charge transfer resistance; Donor-acceptor interaction; Electrochemical impedance; Electron transfer kinetics; Molecular configurations; Power conversion efficiencies; Structure property relationships; Theoretical calculations; Structural design; cell component; chemical composition; design method; dye; optical method; organic compound; photovoltaic system; reaction kinetics; topology
Type
journal article

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