Department of Biotechnology, Chemistry and Pharmacy, University of Siena, 53100 Siena, Italy.
CSGI (Consorzio per lo Sviluppo dei Sistemi a Grande Interfase), 50019 Florence, Italy.
Sensors (Basel). 2018 Sep 21;18(10):3196. doi: 10.3390/s18103196.
In this work, we report the analysis of the electrochemical detection of electroactive species with band microelectrodes that operate under controlled convection. The study focuses on the determination of the collection efficiency of the analyte as a function of inlet flow velocity and microband geometry (inlaid, bumped and recessed), also providing a straightforward method for the theoretical determination of the lower detection limit. The analysis has been carried out by simulating the dimensionless mass transport with the finite element method, delivering the stationary limiting current density. Simulations have been performed on systems consisting of single and double band electrodes to investigate the trail effect on the electrochemical detection. We show that the obtained dimensionless results can be easily turned into dimensional data, providing a tool for the design of devices. The proposed method is general and can easily be extended to systems with different geometry.
在这项工作中,我们报告了带有带微电极的电活性物质的电化学检测分析,该微电极在受控对流下工作。该研究集中于确定作为入口流速和微带几何形状(嵌入式,凸起和凹陷)函数的分析物的收集效率,还提供了一种理论上确定下限检测限的直接方法。通过有限元法模拟无维质量传输来进行分析,以获得稳定的极限电流密度。对由单个和双带电极组成的系统进行了模拟,以研究电化学检测中的尾随效应。结果表明,获得的无量纲结果可以很容易地转换为尺寸数据,为器件设计提供了工具。所提出的方法是通用的,可以很容易地扩展到具有不同几何形状的系统。