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Redox Polyelectrolytes with pH-Sensitive Electroactive Functionality in Aqueous Media

  • Kai Jher Tan
  • , Satoshi Morikawa
  • , Nil Ozbek
  • , Magdalena Lenz
  • , Carsten René Arlt
  • , André Tschöpe
  • , Matthias Franzreb
  • , T. Alan Hatton*
  • *Bu çalışma için yazışmadan sorumlu yazar
  • Massachusetts Institute of Technology
  • Karlsruhe Institute of Technology

Araştırma çıktısı: Dergi yayınıMakaleHakem

9 Atıf (Scopus)

Özet

A framework of ferrocene-containing polymers bearing adjustable pH- and redox-active properties in aqueous electrolyte environments was developed. The electroactive metallopolymers were designed to possess enhanced hydrophilicity compared to the vinylferrocene (VFc) homopolymer, poly(vinylferrocene) (PVFc), by virtue of the comonomer incorporated into the macromolecule, and could also be prepared as conductive nanoporous carbon nanotube (CNT) composites that offered a variety of different redox potentials spanning a ca. 300 mV range. The presence of charged non-redox-active moieties such as methacrylate (MA) in the polymeric structure endowed it with acid dissociation properties that interacted synergistically with the redox activity of the ferrocene moieties to impart pH-dependent electrochemical behavior to the overall polymer, which was subsequently studied and compared to several Nernstian relationships in both homogeneous and heterogeneous configurations. This zwitterionic characteristic was leveraged for the enhanced electrochemical separation of several transition metal oxyanions using a P(VFc0.63-co-MA0.37)-CNT polyelectrolyte electrode, which yielded an almost twofold preference for chromium as hydrogen chromate versus its chromate form, and also exemplified the electrochemically mediated and innately reversible nature of the separation process through the capture and release of vanadium oxyanions. These investigations into pH-sensitive redox-active materials provide insight for future developments in stimuli-responsive molecular recognition, with extendibility to areas such as electrochemical sensing and selective separation for water purification.

Orijinal dilİngilizce
Sayfa (başlangıç-bitiş)2943-2956
Sayfa sayısı14
DergiLangmuir
Hacim39
Basın numarası8
DOI'lar
Yayın durumuYayınlandı - 28 Şub 2023

Bibliyografik not

Publisher Copyright:
© 2023 American Chemical Society.

Finansman

This work made use of the Department of Chemistry Instrumentation Facility (DCIF) at the Massachusetts Institute of Technology, as well as the Center for Nanoscale Systems (CNS) at Harvard University (supported by the National Science Foundation under Award No. 1541959). The authors gratefully acknowledge Dr. Yayuan Liu for help with preliminary XPS measurements and Dr. Seoni Kim for assistance with certain ICP-OES experiments. K.-J.T. was supported by a Natural Sciences and Engineering Research Council of Canada (NSERC) postgraduate doctoral scholarship (PGS D). M.L., C.-R.A., and A.T. were funded by the Karlsruhe House of Young Scientists (KHYS).

FinansörlerFinansör numarası
National Science Foundation1541959
Massachusetts Institute of Technology
Harvard University
Natural Sciences and Engineering Research Council of Canada

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