微电极
计时安培法
循环伏安法
多物理
电极
氧化还原
材料科学
工作电极
纳米技术
流量(数学)
参比电极
计算机科学
电解质
工艺工程
分析化学(期刊)
电化学
化学
环境化学
工程类
机械
物理
有限元法
物理化学
冶金
结构工程
作者
Bertrand J. Neyhouse,Kevin M. Tenny,Yet‐Ming Chiang,Fikile R. Brushett
标识
DOI:10.1021/acsaem.1c02580
摘要
The assessment of candidate materials for redox flow batteries requires effective diagnostic techniques for monitoring the evolution of electrolyte state of charge and state of health to interrogate time-dependent changes in system behavior. Further, such tools can be applied in practical embodiments to inform maintenance schedules and optimize energy utilization. In this work, we develop and test a flow-through, microelectrode-based electrochemical sensor to continuously measure active species concentrations in redox flow cells. A gold microelectrode (working electrode) and platinum wire (pseudoreference electrode) are sealed into a stainless steel fitting (counter electrode), and three-electrode electroanalytical techniques (i.e., voltammetry, chronoamperometry) are performed to correlate steady-state current to concentration. To validate transport and thermodynamics that govern the sensing mechanism, we combine multiphysics simulation with ex situ experimental testing, confirming that the device is capable of accurately determining individual species concentrations. We then evaluate the microelectrode sensor in a symmetric redox flow cell, demonstrating the utility of this approach for measuring operando concentrations, and discuss additional considerations for successful implementation (e.g., measurement protocol, material selection, flow cell design). Assembled from commercially available, off-the-shelf components, the sensor can be readily adopted by research laboratories and integrated into existing experimental workflows, making it a promising tool for studying flow battery materials.
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