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Continuous Monitoring of pH and Blood Gases Using Ion-Sensitive and Gas-Sensitive Field Effect Transistors Operating in the Amperometric Mode in Presence of Drift

机译:使用在漂移情况下以安培模式工作的离子敏感和气体敏感场效应晶体管连续监测pH和血气

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摘要

Accurate and cost-effective integrated sensor systems for continuous monitoring of pH and blood gases continue to be in high demand. The capacity of ion-selective and Gas-sensitive field effect transistors (FETs) to serve as low-power sensors for accurate continuous monitoring of pH and blood gases is evaluated in the amperometric or current mode of operation. A stand-alone current-mode topology is employed in which a constant bias is applied to the gate with the drain current serving as the measuring signal. Compared with voltage-mode operation (e.g., in the feedback mode in ion-selective FETs), current-mode topologies offer the advantages of small size and low power consumption. However, the ion-selective FET (ISFET) and the Gas-sensitive FET (GasFET) exhibit a similar drift behavior, imposing a serious limitation on the accuracy of these sensors for continuous monitoring applications irrespective of the mode of operation. Given the slow temporal variation associated with the drift characteristics in both devices, a common post-processing technique that involves monitoring the variation of the drain current over short intervals of time can potentially allow extraction of the measuring signal in presence of drift in both sensor types. Furthermore, in the amperometric mode the static sensitivity of a FET-based sensor, given by the product of the FET transconductance and the sensitivity of the device threshold voltage to the measurand concentration, can be increased by adjusting the device design parameters. Increasing the sensitivity, while of interest in its own right, also enhances the accuracy of the proposed method. Rigorous analytical validation of the method is presented for GasFET operation in the amperometric mode. Moreover, the correction algorithm is verified experimentally using a Si3N4-gate ISFET operating in the amperometric mode to monitor pH variations ranging from 3.5 to 10.
机译:持续需要精确且经济高效的集成传感器系统来连续监测pH和血气。离子选择和气体敏感场效应晶体管(FET)用作低功率传感器以精确连续监测pH和血气的能力已通过安培或电流操作模式进行了评估。采用独立的电流模式拓扑结构,其中以漏极电流作为测量信号将恒定偏置电压施加到栅极。与电压模式操作(例如,在离子选择FET中的反馈模式下)相比,电流模式拓扑具有体积小和功耗低的优点。但是,离子选择FET(ISFET)和气体敏感FET(GasFET)表现出相似的漂移行为,这严重限制了这些传感器在连续监控应用中的精度,而与操作模式无关。考虑到两种设备中与漂移特性相关的缓慢的时间变化,一种涉及在短时间间隔内监视漏极电流变化的通用后处理技术可能会潜在地允许在两种传感器类型均存在漂移的情况下提取测量信号。此外,在电流模式下,可以通过调整器件设计参数来提高由FET跨导和器件阈值电压对被测物浓度的乘积所得出的基于FET的传感器的静态灵敏度。灵敏度的提高,尽管其本身是令人感兴趣的,但也可以提高所提出方法的准确性。对于在电流模式下的GasFET操作,该方法进行了严格的分析验证。此外,使用在电流模式下运行以监控3.5至10范围内的pH值变化的Si3N4栅极ISFET,通过实验验证了校正算法。

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