Department of Computer and Electrical Engineering, Nazarbayev University, Kabanbay batyr, Nur-Sultan 010000, Kazakhstan.
Laboratory of Biosensors and Bioinstruments, National Laboratory of Astana, Kabanbay batyr, Nur-Sultan 010000, Kazakhstan.
Sensors (Basel). 2021 Jan 27;21(3):828. doi: 10.3390/s21030828.
Thermal ablation is achieved by delivering heat directly to tissue through a minimally invasive applicator. The therapy requires a temperature control between 50-100 °C since the mortality of the tumor is directly connected with the thermal dosimetry. Existing temperature monitoring techniques have limitations such as single-point monitoring, require costly equipment, and expose patients to X-ray radiation. Therefore, it is important to explore an alternative sensing solution, which can accurately monitor temperature over the whole ablated region. The work aims to propose a distributed fiber optic sensor as a potential candidate for this application due to the small size, high resolution, bio-compatibility, and temperature sensitivity of the optical fibers. The working principle is based on spatial multiplexing of optical fibers to achieve 3D temperature monitoring. The multiplexing is achieved by high-scattering, nanoparticle-doped fibers as sensing fibers, which are spatially separated by lower-scattering level of single-mode fibers. The setup, consisting of twelve sensing fibers, monitors tissue of 16 mm × 16 mm × 25 mm in size exposed to a gold nanoparticle-mediated microwave ablation. The results provide real-time 3D thermal maps of the whole ablated region with a high resolution. The setup allows for identification of the asymmetry in the temperature distribution over the tissue and adjustment of the applicator to follow the allowed temperature limits.
热消融是通过微创施源器将热量直接传递到组织来实现的。该疗法需要将温度控制在 50-100°C 之间,因为肿瘤的死亡率与热剂量直接相关。现有的温度监测技术存在一些局限性,如单点监测、需要昂贵的设备,并且会使患者暴露在 X 射线辐射下。因此,探索一种替代的传感解决方案非常重要,这种解决方案可以准确监测整个消融区域的温度。由于光纤的尺寸小、分辨率高、生物兼容性好和对温度敏感,这项工作旨在提出分布式光纤传感器作为该应用的潜在候选方案。其工作原理基于光纤的空间复用来实现 3D 温度监测。复用是通过高散射、纳米颗粒掺杂光纤作为传感光纤来实现的,这些光纤通过低散射水平的单模光纤在空间上分离。该设置由 12 根传感光纤组成,监测暴露于金纳米颗粒介导的微波消融下的 16mm×16mm×25mm 大小的组织。结果提供了整个消融区域的实时 3D 热图,具有高分辨率。该设置允许识别组织上温度分布的不对称性,并调整施源器以遵循允许的温度限制。