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Cited 5 time in webofscience Cited 6 time in scopus
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Role of Pi-Electron Density at the Interface of Small Molecule-Sensitized Solar Cellsopen access

Authors
Asiam, Francis KwakuRahman, Md. MahbuburKaliamurthy, Ashok KumarMuthu, SenthilkumarYadagiri, BommaramoniKang, Hyeong CheolChen, ChengYoo, KicheonLee, Jae-Joon
Issue Date
Mar-2023
Publisher
American Chemical Society
Keywords
Amines; Carrier Concentration; Charge Transfer; Density Functional Theory; Electron Density Measurement; Electrons; Energy Conversion Efficiency; Molecules; Titanium Dioxide; Band Alignments; Charge-transfer Mechanism; Direct-charge Transfers; Dye- Sensitized Solar Cells; Electrons Clouds; Luminols; Sensitiser; Sensitized Solar Cells; Small Molecules; Transfer Interface; Dye-sensitized Solar Cells
Citation
The Journal of Physical Chemistry C, v.127, no.8, pp 3928 - 3939
Pages
12
Indexed
SCIE
SCOPUS
Journal Title
The Journal of Physical Chemistry C
Volume
127
Number
8
Start Page
3928
End Page
3939
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/20480
DOI
10.1021/acs.jpcc.2c08210
ISSN
1932-7447
1932-7455
Abstract
Conventional dye-sensitized solar cells (DSSCs) involving charge-transfer interfaces face charge injection losses and offsets for TiO2-sensitizer band alignment. The direct charge -transfer mechanism in DSSCs with catechol (CT, 1,2-benzene-diol)-based compounds minimizes the injection losses and eliminates band alignment issues, although the photovoltaic performance of the corresponding device is very poor due to the ultrafast (picosecond) recombination of photoexcited electrons. Just as in a natural photosystem, structural selectivity toward inhibition of this recombination needs to be defined. The interfacial electron density and back electron transfer kinetics at the molecular sensitizer-TiO2 interface play a significant role in the overall energy conversion efficiency. Herein, we identified, for the first time, that the ir-electron cloud at the sensitizer-TiO2 interface facilitates the degree of recombination. Comparative density functional theory analyses confirmed that these electron clouds act as large recombination sites. Luminol (LM) and isoluminol (ILM) were employed as "small molecule" sensitizers without the cloud, having a secondary amine linker, which increased the photoenergy conversion efficiency of the single-step sensitization-based photovoltaic cell (type-II DSSC) by reducing the recombination. The device with LM exhibited a power-conversion efficiency (PCE) of ca. 1.11% (representing 363% improvement when compared to CT), the highest ever reported in this category. This understanding is insightful for the design of novel small molecular sensitizers for future DSSCs.
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College of Engineering (Department of Energy and Materials Engineering)
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