| Literature DB >> 26738698 |
Gurpreet Singh Selopal1,2, Hui-Ping Wu3, Jianfeng Lu4, Yu-Cheng Chang3, Mingkui Wang4, Alberto Vomiero2,5, Isabella Concina1,2, Eric Wei-Guang Diau3.
Abstract
We report the synthesis and characterization of new metal-free organic dyes (namelyEntities:
Year: 2016 PMID: 26738698 PMCID: PMC4704050 DOI: 10.1038/srep18756
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Molecular structures of the B18, CPTD-R and BTD-R organic dyes.
Figure 2Characterization of dye molecules: (a) absorption and (b) emission spectra of B18, CPTD-R and BTD-R in CHCl3 solution. (c) Cyclic voltammograms of B18, CPTD-R and BTD-R, obtained in in freshly distilled CHCl3 using 0.5 M Tetrabutylammonium hexafluorophosphate (TBAPF6) as supporting electrolyte in a three–electrode configuration. (d) Schematic of potential levels of B18, CPTD-R and BTD-R with HOMO and LUMO levels showing electron injection to CB of ZnO and dye regeneration by I−/I3− electrolyte.
Absorption maxima (103/M−1 cm−1), emission maximums and electrochemical characteristics of B18, CPTD-R and BTD-R dyes.
| Dyes | Absorption λmax | Emission | Potentials and energy level | ||
|---|---|---|---|---|---|
| Eox/V | E0–0/V | Eox–E0–0 /V | |||
| B18 | 537(46.4) | 677 | 0.98 | 2.06 | −1.07 |
| CPTD-R | 565(59.5) | 694 | 0.77 | 1.97 | −1.20 |
| BTD-R | 530(38.7) | 715 | 0.9 | 2.98 | −1.08 |
aAbsorption and emission data were measured in CHCl3 at 25 °C; Electrochemical measurements were performed at 25 °C with each dye (0.5 mM) in CHCl3/0.1 M TBAPF6/N2, Pt disk working and Pt counter electrodes, Ag/AgCl reference electrode, scan rate = 50 mV s−1.
bExcitation wavelength/nm: B18, 537; CPTD-R, 565; BTD-R, 530.
cFirst oxidation values.
dEstimated from the intersection wavelengths of the normalized UV-vis absorption and the fluorescence spectra.
Figure 3Photovoltaic properties of standard mesoporous TiO2 DSSCs sensitized with the three different metal free organic dyes.
(a) Current density vs photovoltage curves under 1 sun illumination (AM 1.5 G, 100 mW cm−2); (b) IPCE spectra.
Functional performance comparison of three different dyes (B18, CPTD-R and BTD-R) with two metal oxides: Commercial TiO2 nanoparticles and hierarchical assembled ZnO nanoparticles based DSSCs.
| Photoanode | Dyes | Thickness | FF (%) | |||
|---|---|---|---|---|---|---|
| TiO2 | B18 | 16.63 | 669 | 5.40 | 71 | 2.56 |
| CPTD-R | 17.17 | 657 | 3.87 | 71 | 1.82 | |
| BTD-R | 16.79 | 590 | 2.44 | 68 | 0.97 | |
| ZnO | B18 | 8.46 | 543 | 8.85 | 56 | 2.68 |
| CPTD-R | 8.69 | 504 | 5.10 | 56 | 1.43 | |
| BTD-R | 9.87 | 542 | 7.14 | 52 | 2.03 |
*Total thickness of the ZnO photoanode, including the BL (800 nm thick).
Figure 4Comparison of electron-transport kinetics for three different dyes sensitized standard mesoporous TiO2: (a) τ vs N; (b) V vs N (τ: electron lifetime, V: open-circuit voltage and Ne: charge density).
Figure 5Photovoltaic properties.
(a) Current density vs photovoltage curves under 1 sun illumination (AM 1.5 G, 100 mW cm−2); (b) IPCE spectra of three different metal free organic dyes sensitized hierarchical structured ZnO DSSCs.
Figure 6Comparison of electron-transport kinetics for three different dyes sensitized hierarchical ZnO: (a) τR vs Ne; (b) Voc vs Ne; (τR: electron lifetime, Voc: open-circuit voltage, Ne: charge density).
Figure 7Comparison of electron-transport kinetics for hierarchical structured ZnO and standard mesoporous TiO2 sensitized by B18, CPTD-R and BTD-R based DSSCs: (a) τR vs Ne; (b) τC vs Jsc and (c) Voc vs Ne.
Figure 8(a) Current density vs photovoltage under 1 sun illumination (AM 1.5 G, 100 mW cm−2); (b) IPCE spectra for hierarchical structured ZnO DSSCs with and without BL sensitized by B18.
Effect of BL on the functional performance comparison: B18 dye sensitized hierarchical assembled ZnO nanoparticles based DSSCs with and without the BL.
| Photoanode | BL | Thickness | Voc (mV) | Jsc (mA cm−2) | FF (%) | |
|---|---|---|---|---|---|---|
| ZnO | Yes | 8.30 | 609 | 6.58 | 64 | 2.56 |
| No | 9.04 | 557 | 5.32 | 64 | 1.90 |
*Total thickness of the photoanode, including the BL. 800 nm is the thickness of BL considered in this work.
Figure 9Comparison of electron-transport kinetics for hierarchical structured ZnO DSSCs with and without BL sensitized by B18: (a) τ vs V; (b) τ vs J (c) τ vs N and (d) V vs N.
Figure 10Synthesis of B18, CPTD-R and BTD-R dye molecules.