Please use this identifier to cite or link to this item: doi:10.22028/D291-37102
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Title: Synthesis and covalent immobilization of redox-active metallopolymers for organic phase electrochemistry
Author(s): Hübner, Hanna
Candeago, Riccardo
Schmitt, Deborah
Schießer, Alexander
Xiong, Beichen
Gallei, Markus UdsID
Su, Xiao
Language: English
In:
Title: Polymer : the international journal for the science and technology of polymers
Volume: 244
Publisher/Platform: Elsevier
Year of Publication: 2022
Free key words: Ferrocene
Thiol
Immobilization
Metallopolymer
Redox-polymer
Electrochemical selective separations
Heterogeneous interfaces
Electrochemical sensors
DDC notations: 540 Chemistry
Publikation type: Journal Article
Abstract: Redox-active metallopolymers are promising stimuli-responsive platforms for a range of applications including sensing, energy storage, and selective separations. In particular, heterogeneously-functionalized metallopolymers can modulate the capture and release of target molecules, driven by redox electron-transfer. However, prior metallopolymer-functionalized electrodes have been fabricated by non-covalent methods, and tailored for aqueous phase applications. As such, despite the existing potential for heterogeneous applications in organic phase, there are significant constraints to the stability of metallopolymers in organic solvents, including high solubility in solvents such as chloroform or tetrahydrofuran. We propose the immobilization of thiol-functionalized redox-active metallopolymers on metallic surfaces as a facile way to enhance stability and cyclability in organic media, and thus broaden the applicability of redox-metallopolymers for organic phase applications. We explore the anionic polymerization of metal-containing monomers vinylferrocene (VFc) and ferrocenyldimethylsilane (FS), and their thiol end-functionalization by living anionic polymerization strategies. PFS and PVFc with molar masses ranging from 1800 to 49900 g mol−1 and 2900 to 6300 g mol−1 respectively were prepared with a segment of poly(ethylene sulfide), as characterized by size-exclusion chromatography, NMR spectroscopy, MALDI/ToF, thermogravimetry, and elemental analysis. Both metallopolymers were immobilized on gold substrates by a grafting-to protocol, with demonstrated redox-responsiveness by electrochemical control. In the case of immobilized PVFc, operando electrochemical testing demonstrated the stable and reversible electrochemical cycling capabilities (>74% maximum current retained after 100 oxidation/reduction cycles) in several organic solvents including chloroform, tetrahydrofuran, ethanol, methanol, acetonitrile, and acetone. Immobilized PFS was stable in chloroform, with a 83% maximum current retained after 100 oxidation/reduction cycles. We envision future applications of these covalently immobilized metallopolymers for a broad range of fields from selective separations to sensing and energy storage.
DOI of the first publication: 10.1016/j.polymer.2022.124656
URL of the first publication: https://www.sciencedirect.com/science/article/abs/pii/S0032386122001434
Link to this record: urn:nbn:de:bsz:291--ds-371024
hdl:20.500.11880/33660
http://dx.doi.org/10.22028/D291-37102
ISSN: 0032-3861
Date of registration: 26-Aug-2022
Faculty: NT - Naturwissenschaftlich- Technische Fakultät
Department: NT - Chemie
Professorship: NT - Prof. Dr. Markus Gallei
Collections:SciDok - Der Wissenschaftsserver der Universität des Saarlandes



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