Issue 9, 2025

Light-driven electron transfer in a lipid bilayer with mixed valence molecular wires

Abstract

Triarylamines (TAAs) are one of the most important classes of redox-active organic compounds, which are readily available from modular synthesis, thereby offering the possibility to easily adjust their intrinsic redox potentials. We present herein two bis(triarylamines) (BTAAs) with π-extended 2,7-diethynylfluorene or 2,2′-(1,3-butadiyne-1,4-diyl)-bis(7-ethynylfluorene) bridges and two benzoic acid headgroups per TAA and their (formally) mixed-valent radical cations. Owing to their amphiphilic character and favorable redox properties, these BTAAs are designed to serve as charge conduits through membranes. The lipid bilayer/BTAA systems are water-soluble, which allowed us to explore their photoactivity in aqueous solution and utilize their mixed valent form for membrane-mediated photoinduced electron transfer. Our findings will be relevant for constructing artificial nanoreactors for solar light energy conversion and light-driven redox chemistry in water.

Graphical abstract: Light-driven electron transfer in a lipid bilayer with mixed valence molecular wires

Supplementary files

Article information

Article type
Paper
Submitted
15 dec 2024
Accepted
17 feb 2025
First published
18 feb 2025
This article is Open Access
Creative Commons BY license

Sustainable Energy Fuels, 2025,9, 2302-2315

Light-driven electron transfer in a lipid bilayer with mixed valence molecular wires

N. Sinambela, M. Nau, G. Haug, M. Linseis, P. Koblischek, R. F. Winter and A. Pannwitz, Sustainable Energy Fuels, 2025, 9, 2302 DOI: 10.1039/D4SE01752H

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