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Effect of APS Dip-Coating Time on Interfacial Charge Transport in Dye-Sensitized Solar Cells

Journal of Electrical and Electronic Materials 2026;39(4):387-393.
Published online: July 1, 2026

1School of Electronic and Electrical Engineering, Sungkyunkwan University, Suwon 16419, Korea

2Department of Semiconductor Engineering, Ulsan College, Ulsan 44610, Korea

Corresponding author(s): hjkim6@uc.ac.kr (H. J. Kim); byhong@skku.edu (B. Hong)
• Received: May 10, 2026   • Revised: May 28, 2026   • Accepted: May 28, 2026

© 2026, the Korean Institute of Electrical and Electronic Material Engineers

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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  • Enhanced charge transport characteristics of hydrothermally grown rutile TiO2 nanorod arrays for dye-sensitized solar cells
    Kyu Seop Choi, Hyung Jin Kim, Byungyou Hong
    Surfaces and Interfaces.2026; 98: 110402.     CrossRef

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Effect of APS Dip-Coating Time on Interfacial Charge Transport in Dye-Sensitized Solar Cells
J Electr Electron Mater. 2026;39(4):387-393.   Published online July 1, 2026
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J Electr Electron Mater. 2026;39(4):387-393.   Published online July 1, 2026
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Effect of APS Dip-Coating Time on Interfacial Charge Transport in Dye-Sensitized Solar Cells
Image Image Image Image Image
Fig. 1. Schematic illustration of the dye-sensitized solar cell (DSSC) structure and APS surface modification on the nanoporous TiO₂ photoelectrode. The APS molecular layer acts as an interfacial barrier that suppresses charge recombination between TiO₂ and the electrolyte while enhancing dye adsorption through electrostatic interaction between amine functional groups and carboxyl groups of dye molecules
Fig. 2. Proposed interaction mechanism between aminopropyltrimethoxysilane (APS) and N719 dye molecules. The amine (–NH₂) functional group of APS promotes electrostatic interaction with carboxyl (–COOH) groups in the dye, increasing dye adsorption on the TiO₂ surface and improving interfacial charge transfer properties
Fig. 3. FT-IR spectra of nanoporous TiO₂ electrodes before and after APS surface treatment. Characteristic peaks corresponding to N–H stretching (~3,400 cm⁻¹), C–H stretching (~2,980–2,850 cm⁻¹), and Si–O–Si bonding (~1,100 cm⁻¹) confirm successful APS functionalization on the TiO₂ surface
Fig. 4. Current density–voltage (J–V) characteristics of DSSCs fabricated with different APS coating times under AM 1.5 illumination (100 mW/cm²)
Fig. 5. Nyquist plots of DSSCs with different APS coating times obtained from electrochemical impedance spectroscopy (EIS) measurements
Effect of APS Dip-Coating Time on Interfacial Charge Transport in Dye-Sensitized Solar Cells
CE (%) Voc (V) Jsc (mA/cm²) FF (%)
None 4.49 0.757 8.79 67.5
30 min 5.34 (+19%) 0.810 9.57 68.9
2 hours 3.40 (-25%) 0.821 5.74 72.2
24 hours 2.72 (-39%) 0.832 4.50 72.7
None 30 min 2 hours 24 hours
Wmax (Hz) 8.93 7.09 7.09 5.02
τe (ms) 17.8 22.4 22.4 31.7
Table 1. Photovoltaic parameters (Jsc, Voc, FF, and efficiency) of DSSCs as a function of APS coating time
Table 2. Impedance parameters and electron lifetime (τₙ) of DSSCs with different APS coating times obtained from EIS analysis