Naeem Rajaa B, Atilla Doğu Çağdaş
Department of Electrical and Computer Engineering, Altinbas University, 34217 Istanbul, Türkiye.
Electrical-Electronics Engineering Department, Faculty of Engineering and Architecture, Altinbas University, 34217 Istanbul, Türkiye.
Micromachines (Basel). 2025 May 28;16(6):641. doi: 10.3390/mi16060641.
An optimized design of photodetectors and antennas for Förster Resonance Energy Transfer (FRET)-based glucose biosensing in endoscopic capsules is presented. The compact antenna design is tailored for the visible optical frequencies (~526 THz) associated with FRET-based glucose monitoring and integrates structural flexibility to conform to the spatial constraints of endoscopic capsules, such as mechanical bending features. The antenna is embedded in a multimode medium artificial tissue simulating a glucose environment with several layers, providing efficient coupling to the FRET emission signal for glucose sensing. Stable S11 parameters and a maximum gain of 9 dBi are realized by statelier mesh settings, bend adaptation, and cautious SAR constraint handlers. Results of the Specific Absorption Rate (SAR) confirm the limited energy absorption within permissible bounds, confirming its application for biomedical purposes. These results affirm the feasibility of non-invasive glucose measurement in interstitial fluid in this configuration that can be operable through an endoscope with improved sensitivity and functionality.
本文提出了一种用于基于荧光共振能量转移(FRET)的内镜胶囊葡萄糖生物传感的光电探测器和天线的优化设计。紧凑的天线设计是针对与基于FRET的葡萄糖监测相关的可见光学频率(约526太赫兹)量身定制的,并集成了结构灵活性以适应内镜胶囊的空间限制,如机械弯曲特性。该天线嵌入在模拟具有多层葡萄糖环境的多模介质人工组织中,为葡萄糖传感提供与FRET发射信号的有效耦合。通过更稳定的网格设置、弯曲适配和谨慎的比吸收率(SAR)约束处理程序,实现了稳定的S11参数和9 dBi的最大增益。比吸收率(SAR)的结果证实了在允许范围内有限的能量吸收,证实了其在生物医学目的中的应用。这些结果证实了在这种配置下在间质液中进行无创葡萄糖测量的可行性,该配置可通过具有更高灵敏度和功能的内窥镜操作。