Highly water-dispersible, redox-active 1D coordination polymers (CPs) have been synthesized using low-cost precursors. These CPs, containing chloranilic acid as organic ligand and a transition element, such as Fe and Mn as a metal center, form long-term stable slurries containing up to 100 g/L solid particles in aqueous media (0.5 M NaCl, 1 mg carbon nanotubes). Voltammetry studies showed that the iron-based particulate slurries exhibited three different redox stages with no metal plating. However, the suspensions with manganese-based coordination polymers experienced a metal plating process in the same potential window range as for the iron-based CPs. Moreover, the particulate suspension of iron-CPs shown longer-term stability than their isostructural analogs based on manganese. The 1D Fe-CPs were used as catholyte and anolyte in a symmetrical cell with a low-cost size exclusion cellulose membrane acting as a separator. The cell experienced a reversible capacity value of 45 mAh/g (225 mAh/L) at a current density value of 20 mA/g for 50 cycles (~12 days) at neutral pH. This study opens the possibility of using inexpensive coordination polymers as single bifunctional electrolyte material in aqueous batteries and other sustainable energy storage-related systems.

Montero, J., Navalpotro, P., D'Epifanio, A., Mecheri, B., Licoccia, S., Carretero-González, J. (2021). Redox-active coordination polymers as bifunctional electrolytes in slurry-based aqueous batteries at neutral pH. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 895 [10.1016/j.jelechem.2021.115442].

Redox-active coordination polymers as bifunctional electrolytes in slurry-based aqueous batteries at neutral pH

D'Epifanio A.;Mecheri B.;Licoccia S.;
2021-01-01

Abstract

Highly water-dispersible, redox-active 1D coordination polymers (CPs) have been synthesized using low-cost precursors. These CPs, containing chloranilic acid as organic ligand and a transition element, such as Fe and Mn as a metal center, form long-term stable slurries containing up to 100 g/L solid particles in aqueous media (0.5 M NaCl, 1 mg carbon nanotubes). Voltammetry studies showed that the iron-based particulate slurries exhibited three different redox stages with no metal plating. However, the suspensions with manganese-based coordination polymers experienced a metal plating process in the same potential window range as for the iron-based CPs. Moreover, the particulate suspension of iron-CPs shown longer-term stability than their isostructural analogs based on manganese. The 1D Fe-CPs were used as catholyte and anolyte in a symmetrical cell with a low-cost size exclusion cellulose membrane acting as a separator. The cell experienced a reversible capacity value of 45 mAh/g (225 mAh/L) at a current density value of 20 mA/g for 50 cycles (~12 days) at neutral pH. This study opens the possibility of using inexpensive coordination polymers as single bifunctional electrolyte material in aqueous batteries and other sustainable energy storage-related systems.
2021
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/07 - FONDAMENTI CHIMICI DELLE TECNOLOGIE
English
Con Impact Factor ISI
Battery; Coordination polymers; Electrolyte; Energy storage
Regione Lazio for funding the research through the project POR FESR LAZIO 2014–2020, No A0375-2020-36492.
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85107662138&doi=10.1016/j.jelechem.2021.115442&partnerID=40&md5=c170283731f7f5a47f9f22f90c2337d1
Montero, J., Navalpotro, P., D'Epifanio, A., Mecheri, B., Licoccia, S., Carretero-González, J. (2021). Redox-active coordination polymers as bifunctional electrolytes in slurry-based aqueous batteries at neutral pH. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 895 [10.1016/j.jelechem.2021.115442].
Montero, J; Navalpotro, P; D'Epifanio, A; Mecheri, B; Licoccia, S; Carretero-González, J
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/288951
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