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Design and Implementation of a pH Sensor for Micro Solution Based on Nanostructured Ion-Sensitive Field-Effect Transistor

机译:基于纳米结构离子敏感场效应晶体管的微液PH传感器的设计与实现

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摘要

pH sensors based on a nanostructured ion-sensitive field-effect transistor have characteristics such as fast response, high sensitivity and miniaturization, and they have been widely used in biomedicine, food detection and disease monitoring. However, their performance is affected by many factors, such as gate dielectric material, channel material and channel thickness. In order to obtain a pH sensor with high sensitivity and fast response, it is necessary to determine the appropriate equipment parameters, which have high processing cost and long production time. In this study, a nanostructured ion-sensitive field-effect transistor was developed based on the SILVACO technology computer-aided design (TCAD) simulator. Through experiments, we analyzed the effects of the gate dielectric material, channel material and channel thickness on the electrical characteristics of the nanostructured field-effect transistor. Based on simulation results, silicon nitride was selected as the gate dielectric layer, while indium oxide was chosen as the channel layer. The structure and parameters of the dual channel ion-sensitive field-effect transistor were determined and discussed in detail. Finally, according to the simulation results, a pH sensor based on the nanostructured ion-sensitive field-effect transistor was fabricated. The accuracy of simulation results was verified by measuring the output, transfer and pH characteristics of the device. The fabricated pH sensor had a subthreshold swing as low as 143.19 mV/dec and obtained an actual sensitivity of 88.125 mV/pH. In addition, we also tested the oxidation reaction of hydrogen peroxide catalyzed by horseradish peroxidase, and the sensitivity was up to 144.26 pA mol−1 L−1, verifying that the ion-sensitive field-effect transistor (ISFET) can be used to detect the pH of micro solution, and then combine the enzyme-linked assay to detect the concentration of protein, DNA, biochemical substances, biomarkers, etc.
机译:基于纳米结构离子敏感场效应晶体管的pH传感器具有快速响应,高灵敏度和小型化的特性,并且它们已广泛用于生物医学,食物检测和疾病监测。然而,它们的性能受到许多因素的影响,例如栅极介电材料,通道材料和沟道厚度。为了获得具有高灵敏度和快速响应的pH传感器,有必要确定适当的设备参数,具有高处理成本和长生产时间。在本研究中,基于Silvaco技术计算机辅助设计(TCAD)模拟器开发了纳米结构离子敏感场效应晶体管。通过实验,我们分析了栅极电介质材料,通道材料和通道厚度对纳米结构的磁场效应晶体管的电特性的影响。基于模拟结果,选择氮化硅作为栅极介电层,而选择氧化铟作为沟道层。确定并详细讨论双通道离子敏感场效应晶体管的结构和参数。最后,根据仿真结果,制造了基于纳米结构离子敏感场效应晶体管的pH传感器。通过测量设备的输出,转移和pH特性来验证模拟结果的准确性。制造的pH传感器具有低至143.19mV / DEC的亚阈值摆幅,并获得88.125mV / pH的实际灵敏度。此外,我们还测试了通过辣根过氧化物酶催化的过氧化氢的氧化反应,灵敏度高达144.26Pa mol-1 L-1,验证了离子敏感场效应晶体管(ISFET)可用于检测微溶液的pH,然后将酶联的测定与蛋白质,DNA,生化物质,生物标志物等的浓度组合以检测蛋白质,DNA,生物化学物质,生物标志物等的浓度。

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