[1] OMAR A, ALI M S, ABD RAHIM N. Electron transport properties analysis of titanium dioxide dye-sensitized solar cells (TiO2-DSSCs) based natural dyes using electrochemical impedance spectroscopy concept: a review[J]. Solar Energy, 2020, 207: 1088-1121.
[2] REN Y M, SUN D Y, CAO Y M, et al. A stable blue photosensitizer for color palette of dye-sensitized solar cells reaching 12.6% efficiency[J]. Journal of the American Chemical Society, 2018, 140(7): 2405-2408.
[3] LIM D S, CHOI K, HAYATI D, et al. Blue-colored dyes featuring a diketopyrrolopyrrole spacer for translucent dye-sensitized solar cells[J]. Dyes and Pigments, 2020, 173: 107840.
[4] JAMES S, CONTRACTOR R. Study on nature-inspired fractal design-based flexible counter electrodes for dye-sensitized solar cells fabricated using additive manufacturing[J]. Scientific Reports, 2018, 8: 17032.
[5] LI G, SHENG L, LI T Y, et al. Engineering flexible dye-sensitized solar cells for portable electronics[J]. Solar Energy, 2019, 177: 80-98.
[6] LIU J, LI Y, YONG S, et al. Flexible printed monolithic-structured solid-state dye sensitized solar cells on woven glass fibre textile for wearable energy harvesting applications[J]. Scientific Reports, 2019, 9: 1362.
[7] MUSTAFA M N, SULAIMAN Y. Fully flexible dye-sensitized solar cells photoanode modified with titanium dioxide-graphene quantum dot light scattering layer[J]. Solar Energy, 2020, 212: 332-338.
[8] RAÏSSI M, PELLEGRIN Y, LEFEVRE F X, et al. Digital printing of efficient dye-sensitized solar cells (DSSCs)[J]. Solar Energy, 2020, 199: 92-99.
[9] ANTA J A, CASANUEVA F, OSKAM G. A numerical model for charge transport and recombination in dye-sensitized solar cells[J]. The Journal of Physical Chemistry B, 2006, 110(11): 5372-5378.
[10] KAKIAGE K, AOYAMA Y, YANO T, et al. Highly-efficient dye-sensitized solar cells with collaborative sensitization by silyl-anchor and carboxy-anchor dyes[J]. Chemical Communications, 2015, 51(88): 15894-15897.
[11] SNAITH H J. Estimating the maximum attainable efficiency in dye-sensitized solar cells[J]. Advanced Functional Materials, 2010, 20(1): 13-19.
[12] VILLANUEVA J, ANTA J A, GUILLÉN E, et al. Numerical simulation of the current-voltage curve in dye-sensitized solar cells[J]. The Journal of Physical Chemistry C, 2009, 113(45): 19722-19731.
[13] BISQUERT J, MORA-SERÓ I. Simulation of steady-state characteristics of dye-sensitized solar cells and the interpretation of the diffusion length[J]. The Journal of Physical Chemistry Letters, 2010, 1(1): 450-456.
[14] BARNES P R F, ANDERSON A Y, DURRANT J R, et al. Simulation and measurement of complete dye sensitised solar cells: including the influence of trapping, electrolyte, oxidised dyes and light intensity on steady state and transient device behaviour[J]. Physical Chemistry Chemical Physics: PCCP, 2011, 13(13): 5798-5816.
[15] TRIPATHI B, YADAV P, KUMAR M. Theoretical upper limit of short-circuit current density of TiO2 nanorod based dye-sensitized solar cell[J]. Results in Physics, 2013, 3: 182-186.
[16] TRIPATHI B, YADAV P, KUMAR M. Charge transfer and recombination kinetics in dye-sensitized solar cell using static and dynamic electrical characterization techniques[J]. Solar Energy, 2014, 108: 107-116.
[17] 程友良,杨卫平.染料敏化太阳能电池电子传输的数值模拟研究[J].新能源进展,2020,8(1):68-74.
CHENG Y L, YANG W P. Numerical simulation of electron transmission of dye-sensitized solar cells[J]. Advances in New and Renewable Energy, 2020, 8(1): 68-74(in Chinese).
[18] 程友良,杨卫平,李卫华,等.天然染料敏化太阳能电池性能模拟研究[J].新能源进展,2020,8(2):157-164.
CHENG Y L, YANG W P, LI W H, et al. Simulation study on performance of natural dye sensitized solar cells[J]. Advances in New and Renewable Energy, 2020, 8(2): 157-164(in Chinese).
[19] RUDRA S, SEO H W, SARKER S, et al. Simulation and electrochemical impedance spectroscopy of dye-sensitized solar cells[J]. Journal of Industrial and Engineering Chemistry, 2021, 97: 574-583.
[20] PAPAGEORGIOU N, GRÄTZEL M, INFELTA P P. On the relevance of mass transport in thin layer nanocrystalline photoelectrochemical solar cells[J]. Solar Energy Materials and Solar Cells, 1996, 44(4): 405-438. |