Nano-engineered flexible pH sensor for point-of-care urease detection

A. Sardarinejad, D. Maurya, C. Y. Tay, B. Marshall, K. Alameh
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引用次数: 2

Abstract

Accurate pH monitoring is crucial for many applications, such as, water quality monitoring, blood monitoring, chemical and biological analyses, environmental monitoring and clinical diagnostic. The most common technique for pH measurement is based on the use of conventional glass pH electrodes. Glass electrodes have several limitations, such as mechanical fragility, large size, limited shapes and high cost, making them impractical for implementation as Lab-onchips and pH sensor capsules. Various metal oxides, such as RuO2, IrO2, TiO2, SnO2, Ta2O5 and PdO have recently been proposed for the realization of pH sensing electrodes. Specifically, ruthenium oxide exhibits unique properties including thermal stability, excellent corrosion resistance, low hysteresis high sensitivity, and low resistivity. In this paper, we demonstrate the concept of a miniaturized ion selective electrode (ISE) based pH sensor for point-of-care urease monitoring. The sensor comprises a thin film RuO2 on platinum sensing electrode, deposited using E-beam and R.F. magnetron sputtering, in conjunction with an integrated Ag/AgCl reference electrode. The performance and characterization of the developed pH/urea sensors in terms of sensitivity, resolution, reversibility and hysteresis are investigated. Experimental results show a linear potential-versus-urea-concentration response for urea concentrations in the range 0 - 180 mg/ml. Experimental results demonstrate super-Nernstian slopes in the range of 64.33 mV/pH - 73.83 mV/pH for RF sputtered RuO2 on platinum sensing electrode using a 80%:20% Ar:O2 gas ratio. The RuO2 sensor exhibits stable operation and fast dynamic response, making it attractive for in vivo use, wearable and flexible biomedical sensing applications.
用于即时脲酶检测的纳米工程柔性pH传感器
准确的pH值监测对于许多应用至关重要,例如水质监测、血液监测、化学和生物分析、环境监测和临床诊断。最常见的pH测量技术是基于使用传统的玻璃pH电极。玻璃电极有几个局限性,如机械易碎性、尺寸大、形状有限和成本高,使得它们不适合作为实验室芯片和pH传感器胶囊实施。各种金属氧化物,如RuO2, IrO2, TiO2, SnO2, Ta2O5和PdO最近被提出用于实现pH感测电极。具体来说,氧化钌具有独特的性能,包括热稳定性,优异的耐腐蚀性,低迟滞,高灵敏度和低电阻率。在本文中,我们展示了用于即时脲酶监测的小型化离子选择电极(ISE) pH传感器的概念。该传感器包括铂传感电极上的薄膜RuO2,采用电子束和射频磁控溅射沉积,与集成的Ag/AgCl参比电极结合使用。研究了所研制的pH/尿素传感器在灵敏度、分辨率、可逆性和滞后性方面的性能和表征。实验结果表明,在0 ~ 180 mg/ml尿素浓度范围内,电位与尿素浓度呈线性关系。实验结果表明,当Ar:O2气体比为80%:20%时,在铂传感电极上射频溅射的RuO2具有64.33 mV/pH ~ 73.83 mV/pH范围内的超能氏斜率。RuO2传感器具有稳定的运行和快速的动态响应,使其具有在体内使用,可穿戴和灵活的生物医学传感应用的吸引力。
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