Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte

To overcome the critical limitations of liquid-electrolyte-based dye-sensitized solar cells, quasi-solid-state electrolytes have been explored as a means of addressing long-term device stability, albeit with comparatively low ionic conductivities and device performances. Although metal oxide additiv...

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Main Authors: Saidi, Norshahirah Mohamad, Omar, Fatin Saiha, Numan, Arshid, Apperley, David C., Algaradah, Mohammed M., Ramesh, Kasi, Avestro, Alyssa-Jennifer, Ramesh, Subramaniam
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Published: American Chemical Society 2019
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Online Access:http://eprints.um.edu.my/23579/
https://doi.org/10.1021/acsami.9b07062
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spelling my.um.eprints.235792020-01-24T02:52:04Z http://eprints.um.edu.my/23579/ Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte Saidi, Norshahirah Mohamad Omar, Fatin Saiha Numan, Arshid Apperley, David C. Algaradah, Mohammed M. Ramesh, Kasi Avestro, Alyssa-Jennifer Ramesh, Subramaniam Q Science (General) QC Physics QD Chemistry To overcome the critical limitations of liquid-electrolyte-based dye-sensitized solar cells, quasi-solid-state electrolytes have been explored as a means of addressing long-term device stability, albeit with comparatively low ionic conductivities and device performances. Although metal oxide additives have been shown to augment ionic conductivity, their propensity to aggregate into large crystalline particles upon high-heat annealing hinders their full potential in quasi-solid-state electrolytes. In this work, sonochemical processing has been successfully applied to generate fine Co3O4 nanoparticles that are highly dispersible in a PAN:P(VP-co-VAc) polymer-blended gel electrolyte, even after calcination. An optimized nanocomposite gel polymer electrolyte containing 3 wt % sonicated Co3O4 nanoparticles (PVVA-3) delivers the highest ionic conductivity (4.62 × 10-3 S cm-1) of the series. This property is accompanied by a 51% enhancement in the apparent diffusion coefficient of triiodide versus both unmodified and unsonicated electrolyte samples. The dye-sensitized solar cell based on PVVA-3 displays a power conversion efficiency of 6.46% under AM1.5 G, 100 mW cm-2. By identifying the optimal loading of sonochemically processed nanoparticles, we are able to generate a homogenous extended particle network that effectively mobilizes redox-active species through a highly amorphous host matrix. This effect is manifested in a selective 51% enhancement in photocurrent density (JSC = 16.2 mA cm-2) and a lowered barrier to N719 dye regeneration (RCT = 193 ω) versus an unmodified solar cell. To the best of our knowledge, this work represents the highest known efficiency to date for dye-sensitized solar cells based on a sonicated Co3O4-modified gel polymer electrolyte. Sonochemical processing, when applied in this manner, has the potential to make meaningful contributions toward the ongoing mission to achieve the widespread exploitation of stable and low-cost dye-sensitized solar cells. Copyright © 2019 American Chemical Society. American Chemical Society 2019 Article PeerReviewed Saidi, Norshahirah Mohamad and Omar, Fatin Saiha and Numan, Arshid and Apperley, David C. and Algaradah, Mohammed M. and Ramesh, Kasi and Avestro, Alyssa-Jennifer and Ramesh, Subramaniam (2019) Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte. ACS Applied Materials & Interfaces, 11 (33). pp. 30185-30196. ISSN 1944-8244 https://doi.org/10.1021/acsami.9b07062 doi:10.1021/acsami.9b07062
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic Q Science (General)
QC Physics
QD Chemistry
spellingShingle Q Science (General)
QC Physics
QD Chemistry
Saidi, Norshahirah Mohamad
Omar, Fatin Saiha
Numan, Arshid
Apperley, David C.
Algaradah, Mohammed M.
Ramesh, Kasi
Avestro, Alyssa-Jennifer
Ramesh, Subramaniam
Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte
description To overcome the critical limitations of liquid-electrolyte-based dye-sensitized solar cells, quasi-solid-state electrolytes have been explored as a means of addressing long-term device stability, albeit with comparatively low ionic conductivities and device performances. Although metal oxide additives have been shown to augment ionic conductivity, their propensity to aggregate into large crystalline particles upon high-heat annealing hinders their full potential in quasi-solid-state electrolytes. In this work, sonochemical processing has been successfully applied to generate fine Co3O4 nanoparticles that are highly dispersible in a PAN:P(VP-co-VAc) polymer-blended gel electrolyte, even after calcination. An optimized nanocomposite gel polymer electrolyte containing 3 wt % sonicated Co3O4 nanoparticles (PVVA-3) delivers the highest ionic conductivity (4.62 × 10-3 S cm-1) of the series. This property is accompanied by a 51% enhancement in the apparent diffusion coefficient of triiodide versus both unmodified and unsonicated electrolyte samples. The dye-sensitized solar cell based on PVVA-3 displays a power conversion efficiency of 6.46% under AM1.5 G, 100 mW cm-2. By identifying the optimal loading of sonochemically processed nanoparticles, we are able to generate a homogenous extended particle network that effectively mobilizes redox-active species through a highly amorphous host matrix. This effect is manifested in a selective 51% enhancement in photocurrent density (JSC = 16.2 mA cm-2) and a lowered barrier to N719 dye regeneration (RCT = 193 ω) versus an unmodified solar cell. To the best of our knowledge, this work represents the highest known efficiency to date for dye-sensitized solar cells based on a sonicated Co3O4-modified gel polymer electrolyte. Sonochemical processing, when applied in this manner, has the potential to make meaningful contributions toward the ongoing mission to achieve the widespread exploitation of stable and low-cost dye-sensitized solar cells. Copyright © 2019 American Chemical Society.
format Article
author Saidi, Norshahirah Mohamad
Omar, Fatin Saiha
Numan, Arshid
Apperley, David C.
Algaradah, Mohammed M.
Ramesh, Kasi
Avestro, Alyssa-Jennifer
Ramesh, Subramaniam
author_facet Saidi, Norshahirah Mohamad
Omar, Fatin Saiha
Numan, Arshid
Apperley, David C.
Algaradah, Mohammed M.
Ramesh, Kasi
Avestro, Alyssa-Jennifer
Ramesh, Subramaniam
author_sort Saidi, Norshahirah Mohamad
title Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte
title_short Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte
title_full Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte
title_fullStr Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte
title_full_unstemmed Enhancing the Efficiency of a Dye-Sensitized Solar Cell Based on a Metal Oxide Nanocomposite Gel Polymer Electrolyte
title_sort enhancing the efficiency of a dye-sensitized solar cell based on a metal oxide nanocomposite gel polymer electrolyte
publisher American Chemical Society
publishDate 2019
url http://eprints.um.edu.my/23579/
https://doi.org/10.1021/acsami.9b07062
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