Department of Physics, Indian Institute of Technology Delhi, New Delhi 110016, India.
Department of Physics, Indian Institute of Technology Delhi, New Delhi 110016, India.
Biosens Bioelectron. 2018 Mar 15;101:135-145. doi: 10.1016/j.bios.2017.10.029. Epub 2017 Oct 16.
A lossy mode resonance (LMR) based sensor for urinary p-cresol testing on optical fiber substrate is developed. The sensor probe fabrication includes dip coating of nanocomposite layer of zinc oxide and molybdenum sulphide (ZnO/MoS) over unclad core of optical fiber as the transducer layer followed by the layer of molecular imprinted polymer (MIP) as the recognition medium. The addition of molybdenum sulphide in the transducer layer increases the absorption of light in the medium which enhances the LMR properties of zinc oxide thereby increasing the conductivity and hence the sensitivity of the sensor. The sensor probe is characterized for p-cresol concentration range from 0µM (reference sample) to 1000µM in artificially prepared urine. Optimizations of various probe fabrication parameters are carried to bring out the sensor's optimal performance with a sensitivity of 11.86nm/µM and 28nM as the limit of detection (LOD). A two-order improvement in LOD is obtained as compared to the recently reported p-cresol sensor. The proposed sensor possesses a response time of 15s which is 8 times better than that reported in the literature utilizing electrochemical method. Its response time is also better than the p-cresol sensor currently available in the market for the medical field. Thus, with a fast response, significant stability and repeatability, the proposed sensor holds practical implementation possibilities in the medical field. Further, the realization of sensor probe over optical fiber substrate adds remote sensing and online monitoring feasibilities.
基于有损模式共振 (LMR) 的光纤基底尿液对苯二酚检测传感器得以开发。传感器探头的制作包括将氧化锌和硫化钼(ZnO/MoS)纳米复合材料层通过浸涂的方式包裹在光纤的未涂覆芯上作为换能器层,随后再包裹分子印迹聚合物(MIP)作为识别层。在换能器层中添加硫化钼可增加介质对光的吸收,从而增强氧化锌的 LMR 特性,提高其导电性,进而提高传感器的灵敏度。该传感器探头可用于检测人工制备尿液中 0µM(参考样本)至 1000µM 的对苯二酚浓度。对各种探头制作参数进行优化,以实现传感器的最佳性能,其灵敏度为 11.86nm/µM,检测限(LOD)为 28nM。与最近报道的对苯二酚传感器相比,LOD 提高了两个数量级。与利用电化学方法报道的文献相比,该传感器的响应时间为 15s,提高了 8 倍。其响应时间也优于目前市场上用于医疗领域的对苯二酚传感器。因此,该传感器具有快速响应、显著的稳定性和可重复性,在医疗领域具有实际应用的可能性。此外,光纤基底传感器探头的实现增加了远程传感和在线监测的可行性。