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Correcting for Electrocatalyst Desorption and Inactivation in Chronoamperometry Experiments

机译:在计时安培法实验中校正电催化剂的解吸和失活

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Chronoamperometric experiments with adsorbed electrocatalysts are commonly performed either for analytical purposes or for studying the catalytic mechanism of a redox enzyme. In the context of amperometric sensors, the current may be recorded as a function of time while the analyte concentration is being increased to determine a linearity range. In mechanistic studies of redox enzymes, chronoamperometry proved powerful for untangling the effects of electrode potential and time, which are convoluted in cyclic voltammetric measurements, and for studying the energetics and kinetics of inhibition. In all such experiments, the fact that the catalyst's coverage and/or activity decreases over time distorts the data. This may hide meaningful features, introduce systematic errors, and limit the accuracy of the measurements. We propose a general and surprisingly simple method for correcting for electrocatalyst desorption and inactivation, which greatly increases the precision of chronoamperometric experiments. Rather than subtracting a baseline, this consists in dividing the current, either by a synthetic signal that is proportional to the instant electroactive coverage or by the signal recorded in a control experiment. In the latter, the change in current may result from film loss only or from film loss plus catalyst inactivation. We describe the different strategies for obtaining the control signal by analyzing various data recorded with adsorbed redox enzymes: nitrate reductase, NiFe hydrogenase, and FeFe hydrogenase. In each case we discuss the trustfulness and the benefit of the correction. This method also applies to experiments where electron transfer is mediated, rather than direct, providing the current is proportional to the time-dependent concentration of catalyst.
机译:通常使用吸附的电催化剂进行计时安培实验,用于分析目的或研究氧化还原酶的催化机理。在电流型传感器的情况下,可以在增加分析物浓度以确定线性范围的同时,将电流记录为时间的函数。在氧化还原酶的机理研究中,计时电流法证明了其对解决电极电位和时间的影响(在循环伏安法测量中令人费解)以及研究抑制能和动力学的强大作用。在所有这些实验中,催化剂的覆盖率和/或活性随时间降低的事实使数据失真。这可能会隐藏有意义的功能,引入系统错误并限制测量的准确性。我们提出了一种通用且令人惊讶的简单方法来校正电催化剂的解吸和失活,这大大提高了计时电流法实验的精度。与其减去基线,不如将电流除以与瞬时电活性覆盖成比例的合成信号或对照实验中记录的信号。在后者中,电流的变化可能仅由膜损失或由膜损失加催化剂失活引起。我们通过分析各种吸附氧化还原酶记录的数据来描述获得控制信号的不同策略:硝酸还原酶,NiFe氢化酶和FeFe氢化酶。在每种情况下,我们都讨论了更正的可信性和好处。如果电流与催化剂的时间依赖性成正比,则该方法也适用于介导而不是直接进行电子转移的实验。

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