Han Danhong, Xu Jingjing, Wang Zhenhai, Yang Nana, Li Xunzhou, Qian Yingying, Li Ge, Dai Rujun, Xu Shengyong
Key Laboratory for the AGA & Chemistry of Nanodevices, Department of Electronics, Peking University Beijing 100871 P. R. China
TED Healthcare Technology Ltd Unit 350, 3/F, Block B, Beijing Venture Plaza, A11, An Xiang Bei li Rd. Beijing 100101 P. R. China.
RSC Adv. 2018 Sep 19;8(56):32344-32357. doi: 10.1039/c8ra05285a. eCollection 2018 Sep 12.
Researchers have utilized infrared (IR) lasers as energy sources in laser therapy for curing skin diseases and skin injuries with remarkable effects. Preliminary experiments have also shown that high-intensity IR laser pulses could penetrate thick body tissues, resulting in remarkable effects for recovery from injuries in deep muscles and cartilage tissues. However, for deep-level IR laser therapy, it is unclear how much of the laser power density penetrates the body tissues at certain depths and which of the three major effects of laser irradiation, namely, laser-induced photo-chemical effect, photo-thermal effect and mechanical dragging effect, play a key role in the curing process. Thus, in this study, we developed micro-sized thin-film thermocouple (TFTC) arrays on freestanding SiN thin-film windows as sensors for laser power density and local temperature. These devices showed excellent linear responses in output voltage to laser power density with wavelengths in the range of 325-1064 nm, and also indicated the local temperature at the laser spot. We systematically measured the penetrating effect and thermal effect through thick porcine tissues for high-intensity IR pulses with a laser system used in clinical treatment and subtracted the attenuation parameters for the porcine skin, fat and muscle tissue from the experimental data. The results offered reliable quantitative references for safe irradiation doses of high-intensity IR laser pulses in practical laser therapy.
研究人员已将红外(IR)激光用作激光治疗中的能量源,用于治疗皮肤疾病和皮肤损伤,效果显著。初步实验还表明,高强度红外激光脉冲可以穿透厚厚的身体组织,对深层肌肉和软骨组织损伤的恢复产生显著效果。然而,对于深层红外激光治疗,尚不清楚在特定深度有多少激光功率密度能穿透身体组织,以及激光照射的三种主要效应,即激光诱导的光化学效应、光热效应和机械拖动效应中,哪一种在治疗过程中起关键作用。因此,在本研究中,我们在独立的氮化硅薄膜窗口上开发了微型薄膜热电偶(TFTC)阵列,作为激光功率密度和局部温度的传感器。这些器件对波长在325 - 1064 nm范围内的激光功率密度的输出电压表现出优异的线性响应,并且还能指示激光光斑处的局部温度。我们使用临床治疗中使用的激光系统,系统地测量了高强度红外脉冲通过厚猪组织的穿透效应和热效应,并从实验数据中减去了猪皮肤、脂肪和肌肉组织的衰减参数。这些结果为实际激光治疗中高强度红外激光脉冲的安全照射剂量提供了可靠的定量参考。