In the quest for sustainable materials for quasi-solid-state (QS) electrolytes in aqueous dye-sensitized solar cells (DSSCs), novel bioderived polymeric membranes were prepared in this work by reaction of pre-oxidized kraft lignin with poly(ethylene glycol)diglycidylether (PEGDGE). The effect of PEGDGE/lignin relative proportions on the characteristics of the obtained membranes was thoroughly investigated, and clear structure-property correlations were highlighted. In particular, the glass transition temperature of the materials was found to decrease by increasing the amount of PEGDGE in the formulation, indicating that polyethylene glycol chains act as flexible segments that increase the molecular mobility of the three-dimensional polymeric network. Concurrently, their swelling ability in liquid electrolyte was found to increase with the concentration of PEGDGE, which was also shown to influence the ionic transport efficiency within the membrane. The incorporation of these lignin-based crosslinked systems as QS electrolyte frameworks in aqueous DSSCs allowed to achieve devices with excellent long-term stability under UV-vis light, which was found to be superior to benchmark QS-DSSCs incorporating state-of-the-art carboxymethylcellulose membranes. This study provides the first demonstration of lignin-based QS electrolytes for stable aqueous DSSCs, establishing a straightforward strategy to exploit the potential of lignin as functional polymer precursor for the field of sustainable photovoltaic devices.

A lignin-based electrolyte for aqueous solar cells / Bella, F.; De Haro, J. C.; Tatsi, E.; Fagiolari, L.; Bonomo, M.; Barolo, C.; Turri, S.; Griffini, G.. - ELETTRONICO. - (2021), pp. ELE PO001-ELE PO001. (Intervento presentato al convegno XXVII Congresso Nazionale della Società Chimica Italiana tenutosi a Virtual meeting nel 14-23 settembre 2021).

A lignin-based electrolyte for aqueous solar cells

F. Bella;L. Fagiolari;
2021

Abstract

In the quest for sustainable materials for quasi-solid-state (QS) electrolytes in aqueous dye-sensitized solar cells (DSSCs), novel bioderived polymeric membranes were prepared in this work by reaction of pre-oxidized kraft lignin with poly(ethylene glycol)diglycidylether (PEGDGE). The effect of PEGDGE/lignin relative proportions on the characteristics of the obtained membranes was thoroughly investigated, and clear structure-property correlations were highlighted. In particular, the glass transition temperature of the materials was found to decrease by increasing the amount of PEGDGE in the formulation, indicating that polyethylene glycol chains act as flexible segments that increase the molecular mobility of the three-dimensional polymeric network. Concurrently, their swelling ability in liquid electrolyte was found to increase with the concentration of PEGDGE, which was also shown to influence the ionic transport efficiency within the membrane. The incorporation of these lignin-based crosslinked systems as QS electrolyte frameworks in aqueous DSSCs allowed to achieve devices with excellent long-term stability under UV-vis light, which was found to be superior to benchmark QS-DSSCs incorporating state-of-the-art carboxymethylcellulose membranes. This study provides the first demonstration of lignin-based QS electrolytes for stable aqueous DSSCs, establishing a straightforward strategy to exploit the potential of lignin as functional polymer precursor for the field of sustainable photovoltaic devices.
2021
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2951980