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Mathematical model for the electrochemical impedance response of a continuous glucose monitor

机译:连续葡萄糖监测器电化学阻抗响应的数学模型

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摘要

A mathematical model is developed for the impedance response of immobilized glucose oxidase electrochemical biosensors. The coupling between the homogeneous reactions and heterogeneous reactions considered in the model included anomerization between alpha-D-glucose and beta-D-glucose and four reversible enzymatic catalytic reactions transforming beta-D-glucose and oxygen into gluconic acid and hydrogen peroxide. The electroactive hydrogen peroxide was considered to be reversibly oxidized or reduced at the electrode. The electrochemical system was modeled mathematically as a one-dimensional boundary-value problem and solved by use of Newman's BAND algorithm. The corresponding impedance was calculated for each specified frequency. The resulted limiting current, reaction profiles, and impedance response provide insights into the influence of system parameters such as interstitial glucose concentration and enzymatic rate constants. This model has a potential application in predicting sensor design and diagnosing sensor failure mechanisms. (c) 2018 Elsevier Ltd. All rights reserved.
机译:为固定化葡萄糖氧化酶电化学生物传感器的阻抗响应而开发了一种数学模型。在模型中考虑的均相反应与非均相反应之间的偶联包括α-D-葡萄糖和β-D-葡萄糖和四种可逆酶促催化反应在葡萄糖酸和过氧化氢中转化β-D-葡萄糖和氧气的四种可逆酶促催化反应。将过氧化氢被认为是可逆氧化或在电极上降低的。电化学系统以数学方式为一维边值问题,并通过使用纽曼的频段算法来解决。针对每个指定频率计算相应的阻抗。得到的限制电流,反应谱和阻抗响应提供了对系统参数如间质葡萄糖浓度和酶速率常数影响的见解。该模型具有在预测传感器设计和诊断传感器故障机制方面的潜在应用。 (c)2018年elestvier有限公司保留所有权利。

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