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Reductive Electropolymerization of a Vinyl-containing Poly-pyridyl Complex on Glassy Carbon and Fluorine-doped Tin Oxide Electrodes
Published on: January 30, 2015
Rapid Cathodic Coloration in Solution-Processable Electrochromic Polymers of Intrinsic Microporosity
A M Mahmudul Hasan1, Rupam Roy1, Mohammad K Shehab2
1Department of Chemistry, Butler Polymer Research Laboratory, University of Florida, Gainesville, Florida 32611, United States.
Abstract:
This study describes four solution-processable polymers of intrinsic microporosity with rapid electrochemical switching in solid-state two-terminal devices. Conventional electrochromic polymers are often designed to be conformationally coplanar to maximize π-orbital overlap, which is presumed to increase electronic conductivity and electrochemical redox accessibility. However, this reduces the void space and polymer chain mobility needed to facilitate electrolyte ion penetration and exchange, which typically reduces switching speed. Here, we pursue a polymer design that incorporates spirobisindane units to intentionally install nonplanarity and create permanent void space in polymer thin films, which would typically be considered antithetical to electrochromic polymer design. The four n-type polymers we produce have four distinct chromophores that each host two electrochemically accessible reduced states, for a total of 12 distinct optical profiles. In complete electrochemical devices with a gel electrolyte, we achieve >90% optical contrast (ΔT %) with a 1-s switching time (t95). This rapid electrochromic switching is attributed to the large accessible surface areas (>250 m2 g-1) of these polymers, as determined by CO2 sorption isotherms and electrochemical impedance spectroscopy measurements. Additionally, high coloration efficiencies (CE) up to 450 cm2 C-1 are achieved with >95% retention over 200 cycles. Together, these findings highlight that electrochemical redox accessibility and porosity are not mutually exclusive and provide macromolecular structural design guidelines for the next generation of organic mixed ionic-electronic conductors.
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