High-yield TiO2 submicron sphere/nanoparticle-blended scattering layer for efficient and scalable dye-sensitized solar cells

Shahid, M.U. and Mohamed, N.M. and Muhsan, A.S. and Zaine, S.N.A. and Yar, A. and Ahmad, W. and Irshad, M.I. and Hussain, M.B. (2023) High-yield TiO2 submicron sphere/nanoparticle-blended scattering layer for efficient and scalable dye-sensitized solar cells. Emergent Materials, 6 (2). pp. 671-679.

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Abstract

Scattering layer in dye-sensitized solar cell (DSSC) has a proven potential to enhance the photoconversion efficiency (PCE) of DSSC by increasing light harvesting ability. Scattering layer composed of submicron sized particles which scatter light effectively; however, large size aggregated particles possess poor surface area and create voids between particles leading to lose interconnectivity, and consequently low dye adsorption and higher recombination with electrolyte. Several scattering structures are developed to overcome these issues, it is found that in majority previous reports very low precursor concentration is used and longer reaction time is given to attain highly homogenous and porous scattering particles which ultimately produced very small yield of TiO2. This low yield makes these processes limited to commercialize. Therefore, in current study, a facile approach has been used to prepare high-yield TiO2 submicron spheres (SMS) as a scattering particle and blended with nanoparticles (NPs) of TiO2 to overcome voids and increase surface area. Diffuse reflectance and incident-photon-to-current-conversion-efficiency (IPCE) investigations have demonstrated that prepared SMS/NP scattering layer is effective to broadened light harvesting spectrum. Moreover, electrochemical impedance spectroscopy (EIS) revealed that NPs incorporation in SMS significantly increased electron lifetime from 3.29 � 10�1 s for (0 wt NPs) to 3.95 � 10�1 s for (20 wt NPs); consequently, PCE increased by ~ 11, ~ 13, and ~ 23 as compared to 0 wt NPs, Dyesol-S (commercial scattering paste) and without scattering layer-based devices respectively. Results indicated that high yield with small reaction time of TiO2 submicron spheres have real potential to scale-up for the development of DSSC. © 2023, Qatar University and Springer Nature Switzerland AG.

Item Type: Article
Additional Information: cited By 3
Uncontrolled Keywords: Conversion efficiency; Dye-sensitized solar cells; Electrochemical impedance spectroscopy; Electrolytes; Incident light; TiO2 nanoparticles; Titanium dioxide, Dye- sensitized solar cells; Higher yield; Interconnectivity; Light-harvesting; Photoconversion efficiency; Scattering layer; Scattering particles; Submicron; Submicron-sized particles; Surface area, Spheres
Depositing User: Mr Ahmad Suhairi UTP
Date Deposited: 04 Jun 2024 14:11
Last Modified: 04 Jun 2024 14:11
URI: https://khub.utp.edu.my/scholars/id/eprint/18679

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