Abdelghani Mohamed, Hussien Osama
Faculty of EMS, German University in Cairo, Cairo, Egypt.
Faculty of IET, German University in Cairo, Cairo, Egypt.
Sci Rep. 2025 Jul 17;15(1):25964. doi: 10.1038/s41598-025-10701-y.
Recent advancements in microelectronics have provided substantial motivation for ongoing innovation within the domain of sensor and measurement technologies. The application of humidity sensors across diverse settings has been integral to system monitoring initiatives. There exists potential for further enhancements aimed at the development of sensors that are not only more efficient and safer but also more conducive to human interaction. The sensors thus developed and presented in this article hold promise for deployment in pioneering applications, offering precision measurements surpassing those of traditional sensors. Moreover, these advanced sensors are poised to be integral components of emergent applications in biomedical research and energy harvesting technologies. In this study, a lab-on-a-chip (LOC) design that uses microfluidic principles is designed and implemented. The proposed design is concerned with measuring the relative humidity of the surrounding medium using a capacitive transducer. The proposed methodology is designed, implemented, and tested on a low-cost experimental setup; results were recorded using LabVIEW. Achieving a resolution of 33.993 mL/V with a sensitivity of 0.0596 V m/F and noise tolerance of 2.028 V, the system successfully demonstrated its capability by implementing a prototype that charges a 22 pF capacitor. While the observed capacitance change and corresponding voltage output remain too low for direct device charging, this proof-of-concept demonstrates the potential of harvesting ambient moisture-driven energy. Further work on materials and circuit design will be needed to quantify power output and advance toward sustainable mobile-device charging.
微电子学的最新进展为传感器和测量技术领域的持续创新提供了强大动力。湿度传感器在各种环境中的应用一直是系统监测工作的重要组成部分。进一步改进传感器仍有潜力,目标是开发出不仅效率更高、更安全,而且更有利于人机交互的传感器。本文所开发并展示的这些传感器有望应用于开创性应用中,提供超越传统传感器的精确测量。此外,这些先进传感器有望成为生物医学研究和能量收集技术中新兴应用的重要组成部分。在本研究中,设计并实现了一种采用微流体原理的芯片实验室(LOC)设计。所提出的设计涉及使用电容式换能器测量周围介质的相对湿度。所提出的方法在低成本实验装置上进行了设计、实现和测试;结果使用LabVIEW记录。该系统通过实现一个为22 pF电容器充电的原型,成功展示了其能力,实现了33.993 mL/V的分辨率、0.0596 V m/F的灵敏度和2.028 V的噪声容限。虽然观察到的电容变化和相应的电压输出仍然过低,无法直接为设备充电,但这个概念验证展示了收集环境湿度驱动能量的潜力。需要在材料和电路设计方面进一步开展工作,以量化功率输出并朝着可持续移动设备充电迈进。