Cause, Regulation and Utilization of Dye Aggregation in Dye-Sensitized Solar Cells
Abstract
:1. Introduction
2. Operating Principle and Characterization Parameters of DSSCs
2.1. Operating Principle
- The ground-state dye molecules adsorbed on the metal oxide surface are excited by light, and the electrons transition from highest occupied molecular orbital (HOMO) to lowest unoccupied molecular orbital (LUMO).
- Excited electrons are injected into the conduction band of the metal oxide, then electrons migrate to the conductive substrate, and enter the external circuit to form a current.
- Regeneration of the oxidized dye by electron donation from the redox couple of the electrolyte.
- The oxidized species in the electrolyte receive electrons from the external circuit to complete the process.
2.2. Characterization Parameters of Cell Efficiency
3. Dye Aggregation in DSSCs
3.1. The Mechanism of Dye Aggregation
3.2. The Influence Factors of Dye Aggregation
3.3. Methods for Inhibiting Dye Aggregation
3.3.1. Molecular Engineering
3.3.2. Co-Adsorbents
3.3.3. Sensitization Conditions
3.3.4. Other Methods
3.4. Future Prospects for Utilizing Dye Aggregation
4. Application of Quantum Computation in the Study of Dye Aggregation
4.1. Computational Methodologies
4.2. Functional Development to Accurately Describe Aggregations
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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DSSCs | |||||||||
---|---|---|---|---|---|---|---|---|---|
Dye | Dye-Bath Solvent 1 (Co-Adsorbents) | λmax/nm 2 | λmax/nm 3 | Dye Loading Amount (10−7 mol cm−2) | Jsc/mA cm−2 | Voc/V | FF | η/% | Ref. |
1 | CHCl3/MeOH | 307, 344, 485 | 441 | - | 10.36 | 0.715 | 0.722 | 5.35 | [71] |
CHCl3/MeOH (DCA) | - | 441 | - | 10.02 | 0.714 | 0.712 | 5.09 | ||
2 | CHCl3/MeOH | 306, 368, 468 | 454 | - | 6.87 | 0.687 | 0.678 | 3.20 | |
CHCl3/MeOH (DCA) | - | 450 | - | 7.48 | 0.683 | 0.734 | 3.75 | ||
3 | ACN/CHCl3 | 643 | - | 2.16 | 7.64 | 0.668 | 0.710 | 3.62 | [73] |
4 | ACN/CHCl3 | 643 | - | 2.29 | 8.89 | 0.683 | 0.770 | 4.67 | |
5 | ACN/CHCl3 | 643 | - | 2.00 | 10.95 | 0.706 | 0.750 | 5.80 | |
6 | ACN/CHCl3 | 643 | - | 1.96 | 11.55 | 0.715 | 0.700 | 5.78 | |
7 | ACN/CHCl3 | 642 | - | 2.47 | 8.78 | 0.671 | 0.770 | 4.53 | |
8 | ACN/CHCl3 | 650 | - | 1.63 | 11.95 | 0.717 | 0.710 | 6.08 | |
9 | ACN/TBA/DMSO | 378, 496 | - | 14.11 | 0.660 | 0.653 | 6.08 | [75] | |
10 | ACN/TBA/DMSO | 384, 494 | - | 14.32 | 0.910 | 0.539 | 7.04 | ||
11 | Toluene/EtOH | 465, 620, 675 | - | 1.55 | 10.51 | 0.700 | 0.719 | 5.19 | [76] |
12 | Toluene/EtOH | 465, 621, 678 | - | 1.62 | 12.79 | 0.701 | 0.716 | 6.42 | |
13 | Toluene/EtOH | 465, 623, 683 | - | 1.67 | 17.93 | 0.711 | 0.715 | 9.12 | |
14 | THF/EtOH | - | - | 0.782 | 8.60 | 0.604 | 0.690 | 3.60 | [77] |
THF/EtOH (CDCA) | - | - | 0.537 | 8.90 | 0.610 | 0.680 | 3.70 | ||
THF/EtOH 4 | - | - | 0.776 | 10.70 | 0.650 | 0.700 | 4.90 | ||
16 | CHCl3/EtOH | 432, 459, 580, 646 | 634 | 0.525 | 11.60 | 0.760 | 0.710 | 6.26 | [78] |
17 | CHCl3/EtOH | 446, 575, 628 | 626 | 0.358 | 11.47 | 0.860 | 0.670 | 6.60 | |
18 | CHCl3/EtOH | 431, 457, 585, 646 | 640 | 0.402 | 12.50 | 0.781 | 0.720 | 7.03 | |
19 | EtOH/ACN | 697 | 705 | 0.307 | 3.98 | 0.601 | 0.700 | 1.67 | [79] |
EtOH/ACN (CDCA) | - | - | 0.276 | 4.27 | 0.611 | 0.720 | 1.89 | ||
23 | THF/EtOH | 458 | - | - | 2.50 | 0.520 | 0.780 | 1.00 | [80] |
THF/EtOH (DCA) | - | - | - | 8.90 | 0.600 | 0.760 | 4.05 | ||
24 | THF/EtOH | 494 | - | - | 9.25 | 0.630 | 0.610 | 3.56 | |
THF/EtOH (DCA) | - | - | - | 10.8 | 0.650 | 0.600 | 4.20 | ||
25 | CH2Cl2/MeOH | 305, 424 | 422 | 8.12 | 12.26 | 0.756 | 0.660 | 6.14 | [81] |
26 | CH2Cl2/MeOH | 305, 414 | 412 | 9.48 | 11.92 | 0.740 | 0.660 | 5.85 | |
27 | CH2Cl2/MeOH | 305, 420 | 422 | 10.57 | 10.92 | 0.705 | 0.680 | 5.25 | |
28 | Toluene | 501 | 419 | - | 14.83 | 0.755 | 0.720 | 8.10 | [82] |
29 | Toluene | 494 | 416 | - | 13.21 | 0.756 | 0.750 | 7.50 | |
30 | Toluene | 488 | 414 | - | 12.00 | 0.752 | 0.730 | 6.60 | |
31 | THF | 422, 464, 569, 615 | - | - | 13.20 | 0.650 | 0.620 | 5.33 | [83] |
32 | DMSO | 437 | 464 | - | 14.00 | 0.570 | 0.690 | 5.51 | [84] |
33 | N/A | 253, 290, 401 | 453 | - | 10.20 | 0.707 | 0.592 | 5.20 | [85] |
34 | ACN/TBA | 477 | - | 2.88 | 15.64 | 0.667 | 0.670 | 7.02 | [86] |
35 | ACN/TBA | 488 | - | 2.26 | 18.16 | 0.680 | 0.650 | 7.99 | |
36 | ACN/TBA | 487 | - | 2.38 | 18.19 | 0.706 | 0.690 | 8.82 | |
37 | THF/EtOH (CDCA) | - | - | 0.238 | 13.59 | 0.759 | 0.772 | 8.30 | [87] |
THF/EtOH (HC-A1) | - | - | 0.220 | 15.62 | 0.759 | 0.762 | 9.05 | ||
38 | THF/EtOH (CDCA) | - | - | 0.208 | 15.58 | 0.858 | 0.738 | 9.87 | |
THF/EtOH (HC-A1) | - | - | 0.204 | 16.42 | 0.846 | 0.769 | 10.69 | ||
39 | THF/EtOH (CDCA) | - | - | 0.199 | 15.82 | 0.858 | 0.731 | 9.94 | |
THF/EtOH (HC-A1) | - | - | 0.186 | 16.50 | 0.846 | 0.772 | 10.80 | ||
40 | CHCl3/EtOH | 508 | 474 | 2.33 | 13.44 | 0.786 | 0.675 | 7.13 | [88] |
CHCl3/EtOH (CDCA) | - | - | 2.32 | 15.06 | 0.775 | 0.704 | 8.21 | ||
CHCl3/EtOH (dye 41) | - | - | 1.87 + 0.45 | 18.30 | 0.737 | 0.729 | 9.83 | ||
41 | CH2Cl2 | 318, 405, 546 | - | - | 8.46 | 0.601 | 0.760 | 3.86 | [89] |
CH2Cl2 (CDCA) | - | - | - | 17.50 | 0.657 | 0.740 | 8.56 | ||
CHCl3 | - | - | - | 16.25 | 0.618 | 0.720 | 7.22 | ||
CHCl3 (CDCA) | - | - | - | 17.82 | 0.646 | 0.720 | 8.29 | ||
N719 | EtOH | - | - | - | 0.22 | 0.600 | 0.230 | 0.03 | [90] |
EtOH/H2O | - | - | - | 4.15 | 0.650 | 0.570 | 1.50 | ||
45 | TBA/ACN | 8.07 | 0.800 | 0.760 | 4.90 | [91] | |||
TBA/ACN (CDCA) | 8.08 | 0.790 | 0.680 | 4.34 | |||||
46 | TBA/ACN | 11.57 | 0.810 | 0.590 | 5.57 | ||||
TBA/ACN (CDCA) | 11.59 | 0.800 | 0.680 | 6.30 | |||||
47 | CH2Cl2 | 438 | 423 | 4.46 | 9.70 | 0.760 | 0.720 | 5.33 | [92] |
ACN | - | - | 4.39 | 9.40 | 0.720 | 0.680 | 4.59 | ||
EtOH | - | - | 3.36 | 9.10 | 0.709 | 0.660 | 4.23 | ||
THF | - | - | 3.25 | 8.20 | 0.663 | 0.670 | 3.61 | ||
DMF | - | - | 0.69 | 5.60 | 0.579 | 0.620 | 2.00 | ||
49 | THF 5 | - | - | 1.11 | 12.73 | 0.650 | 0.680 | 5.60 | [93] |
THF 6 | - | - | 1.25 | 11.83 | 0.640 | 0.700 | 5.29 | ||
50 | ACN/H2O 7 | - | - | - | 0.48 | 0.220 | 0.460 | 0.05 | [94] |
ACN/H2O 8 | - | - | - | 2.83 | 0.290 | 0.610 | 0.50 | ||
51 | N/A | - | - | - | 14.37 | 0.740 | 0.685 | 7.23 | [95] |
N/A 9 | - | - | - | 14.91 | 0.780 | 0.715 | 8.28 | ||
52 | N/A | - | - | - | 1.60 | 0.480 | 0.643 | 1.00 | [96] |
N/A 10 | - | - | - | 2.99 | 0.500 | 0.669 | 1.47 | ||
53 | THF | 513 | - | - | 10.64 | 0.520 | 0.700 | 3.87 | [97] |
54 | THF | 488 | - | - | 15.23 | 0.560 | 0.730 | 6.23 | |
55 | ACN/TBA/DMSO | 262, 294, 345, 476 | - | - | 15.78 | 0.601 | 0.640 | 6.04 | [98] |
56 | ACN/TBA/DMSO | 258, 298, 351, 478 | - | - | 14.00 | 0.612 | 0.640 | 5.48 | |
57 | ACN/TBA | 314, 429 | - | 3.69 | 12.09 | 0.620 | 0.670 | 5.02 | [99] |
58 | ACN | 285, 405, 475 | - | 1.92 | 6.56 | 0.540 | 0.689 | 2.44 | [100] |
ACN (CDCA) | - | - | 2.04 | 5.87 | 0.560 | 0.686 | 2.25 | ||
ssDSSCs | |||||||||
14 | N/A 11 | 438 | - | - | 0.65 | 0.719 | 0.780 | 3.89 | [101] |
15 | N/A 11 | 458 | - | - | 0.78 | 0.740 | 0.730 | 4.51 | |
20 | ACN/TBA | - | - | 0.28 | 6.40 | 0.710 | 0.570 | 2.60 | [102] |
21 | ACN/TBA | - | - | - | 6.80 | 0.790 | 0.430 | 2.30 | |
22 | ACN/TBA | - | - | 0.19 | 7.10 | 0.790 | 0.460 | 2.60 | |
44 | ACN | - | - | - | 12.90 | 0.550 | 0.483 | 3.40 | [103] |
ACN (CA) | - | - | - | 13.45 | 0.552 | 0.506 | 3.60 | ||
44 | TBA/ACN | - | - | 0.066 | 4.70 | 0.760 | 0.727 | 2.60 | [104] |
TBA/ACN (MAPbBr3) | - | - | 0.052 | 5.40 | 0.810 | 0.704 | 3.10 | ||
48 | ACN/TBA | 439 | - | - | 16.14 | 0.496 | 0.420 | 3.33 | [105] |
Toluene | 484 | - | - | 13.42 | 0.453 | 0.390 | 2.40 |
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Xu, F.; Testoff, T.T.; Wang, L.; Zhou, X. Cause, Regulation and Utilization of Dye Aggregation in Dye-Sensitized Solar Cells. Molecules 2020, 25, 4478. https://doi.org/10.3390/molecules25194478
Xu F, Testoff TT, Wang L, Zhou X. Cause, Regulation and Utilization of Dye Aggregation in Dye-Sensitized Solar Cells. Molecules. 2020; 25(19):4478. https://doi.org/10.3390/molecules25194478
Chicago/Turabian StyleXu, Fang, Thomas T. Testoff, Lichang Wang, and Xueqin Zhou. 2020. "Cause, Regulation and Utilization of Dye Aggregation in Dye-Sensitized Solar Cells" Molecules 25, no. 19: 4478. https://doi.org/10.3390/molecules25194478
APA StyleXu, F., Testoff, T. T., Wang, L., & Zhou, X. (2020). Cause, Regulation and Utilization of Dye Aggregation in Dye-Sensitized Solar Cells. Molecules, 25(19), 4478. https://doi.org/10.3390/molecules25194478