[1]
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Innovative Study of Photogalvanics in Solar Energy Transformation and Performance Analysis: Alizarin Cyanine Green, EDTA and Sodium Stearate System
Oriental Journal Of Chemistry,
2023
DOI:10.13005/ojc/390216
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[2]
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Innovation in progressive study for prospective energy source through photo‐galvanic‐system:
d
‐Xylose
+
MB
+Brij‐35+
NaLS
International Journal of Energy Research,
2022
DOI:10.1002/er.8525
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[3]
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Photogalvanics of Dodecyltrimethyl Ammonium Bromide‐Quinoline Yellow‐alkali: A solar energy conversion, storage, photostability, and spectral study
International Journal of Energy Research,
2022
DOI:10.1002/er.8106
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[4]
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Improved supercapacitive performance of low pore size and highly stable nanostructured NiCo2O4 electrodes
Journal of Solid State Electrochemistry,
2021
DOI:10.1007/s10008-021-04911-3
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[5]
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Improved supercapacitive performance of low pore size and highly stable nanostructured NiCo2O4 electrodes
Journal of Solid State Electrochemistry,
2021
DOI:10.1007/s10008-021-04911-3
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[6]
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UV-Visible Spectrophotometric and Photochemical Characterization of Safranine–Fructose–Sodium Lauryl Sulphate System in Photogalvanic Cell
Applied Solar Energy,
2020
DOI:10.3103/S0003701X20050102
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[7]
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Simultaneous electrochemical solar power generation and storage using metanil yellow-formic acid as a new sensitizer-reductant couple in photogalvanic cells
RSC Advances,
2019
DOI:10.1039/C8RA10014D
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[8]
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Spectrophotometric and conductometric studies of molecular interaction of brilliant cresyl blue with cationic, anionic and non-ionic surfactant in aqueous medium for application in photogalvanic cells for solar energy conversion and storage
Energy Reports,
2018
DOI:10.1016/j.egyr.2017.09.001
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[9]
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Spectrophotometric and conductometric studies of molecular interaction of brilliant cresyl blue with cationic, anionic and non-ionic surfactant in aqueous medium for application in photogalvanic cells for solar energy conversion and storage
Energy Reports,
2018
DOI:10.1016/j.egyr.2017.09.001
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