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Associative pyridinium electrolytes for air-tolerant redox flow batteries

Chemistry

Associative pyridinium electrolytes for air-tolerant redox flow batteries

M. E. Carrington, K. Sokołowski, et al.

This groundbreaking research by Mark E. Carrington and colleagues uncovers the redox behavior of pyridinium electrolytes in redox flow batteries, highlighting their ability to operate under air exposure. With insights into the singlet-triplet energy gap as a predictor of capacity fade and innovative findings on π-dimerization that enhance air tolerance, this work paves the way for more durable energy storage solutions.

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~3 min • Beginner • English
Abstract
Pyridinium electrolytes are promising candidates for flow-battery-based energy storage. However, the mechanisms underlying both their charge–discharge processes and overall cycling stability remain poorly understood. Here we probe the redox behaviour of pyridinium electrolytes under representative flow battery conditions, offering insights into air tolerance of batteries containing these electrolytes while providing a universal physico-chemical descriptor of their reversibility. Leveraging a synthetic library of extended bispyridinium compounds, we track their performance over a wide range of potentials and identify the singlet–triplet free energy gap as a descriptor that successfully predicts the onset of previously unidentified capacity fade mechanisms. Using coupled operando nuclear magnetic resonance and electron paramagnetic resonance spectroscopies, we explain the redox behaviour of these electrolytes and determine the presence of two distinct regimes (narrow and wide energy gaps) of electrochemical performance. In both regimes, we tie capacity fade to the formation of free radical species, and further show that π-dimerization plays a decisive role in suppressing reactivity between these radicals and trace impurities such as dissolved oxygen. Our findings stand in direct contrast to prevailing views surrounding the role of π-dimers in redox flow batteries and enable us to efficiently mitigate capacity fade from oxygen even on prolonged exposure to air. These insights pave the way to new electrolyte systems, in which reactivity of reduced species is controlled by their propensity for intra- and intermolecular pairing of free radicals, enabling operation in air.
Publisher
Nature
Published On
Nov 29, 2023
Authors
Mark E. Carrington, Kamil Sokołowski, Erlendur Jónsson, Evan Wenbo Zhao, Anton M. Graf, Israel Temprano, Jade A. McCune, Clare P. Grey, Oren A. Scherman
Tags
redox flow batteries
pyridinium electrolytes
air tolerance
cycling stability
energy gap
free radicals
π-dimerization
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