Ahmed Israr, El Turk Said, Al Ghaferi Amal, Samad Yarjan Abdul, Butt Haider
Department of Mechanical Engineering Khalifa University Abu Dhabi 127788 United Arab Emirates.
Department of Aerospace Engineering Khalifa University Abu Dhabi 127788 United Arab Emirates.
Small Sci. 2023 Dec 3;4(2):2300189. doi: 10.1002/smsc.202300189. eCollection 2024 Feb.
Diabetes mellitus (DM) presents a substantial global health concern due to elevated blood glucose levels, necessitating an affordable, rapid, and reliable continuous glucose monitoring (CGM) solution. In this pursuit, a pioneering approach is introduced utilizing optical fiber (OF) sensors based on nanocomposite photonic hydrogel functionalized with phenylboronic acid (PBA) for precise CGM. The fabrication of OF sensors involves a streamlined process, involving one-step polymerization of PBA-based hydrogel onto a commercial fiber tip and the integration of gold nanoparticles (AuNPs) via a simple dipping process. These sensors offer robust performance within the physiological glucose range (0-20 mm), exhibiting a remarkable 25% increase in transmission intensity and a 4 nm blue shift in the surface plasmon resonance with increasing glucose concentration. Additionally, there is a noticeable elevation in reflection intensity, affirming the sensor's suitability for remote sensing applications. These results are further validated using a green laser, underlining the method's reliability. The sensors exhibit a swift 30 s response time, followed by a 5 min saturation period, for all measurements. Practicality is demonstrated through smartphone readouts, utilizing the phone's photodiode to measure optical power changes concerning various glucose concentrations. These OF sensors hold great promise for CGM integration, enhancing diabetic management.
由于血糖水平升高,糖尿病(DM)成为全球重大的健康问题,因此需要一种经济实惠、快速且可靠的连续血糖监测(CGM)解决方案。在这一探索过程中,引入了一种开创性方法,即利用基于用苯硼酸(PBA)功能化的纳米复合光子水凝胶的光纤(OF)传感器进行精确的CGM。OF传感器的制造过程简便,包括将基于PBA的水凝胶一步聚合到商用光纤尖端,并通过简单的浸渍过程集成金纳米颗粒(AuNP)。这些传感器在生理葡萄糖范围(0 - 20 mM)内具有强大的性能,随着葡萄糖浓度的增加,传输强度显著增加25%,表面等离子体共振发生4 nm的蓝移。此外,反射强度明显升高,证实了该传感器适用于遥感应用。使用绿色激光进一步验证了这些结果,突出了该方法的可靠性。对于所有测量,传感器的响应时间迅速,为30秒,随后是5分钟的饱和期。通过智能手机读数展示了其实用性,利用手机的光电二极管测量与各种葡萄糖浓度相关的光功率变化。这些OF传感器在CGM集成方面具有巨大潜力,可改善糖尿病管理。