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利用热成像和荧光光谱法对连续二极管激光辅助的吲哚菁绿龋齿消融的动力学特性进行研究。

Dynamic characterization of indocyanine green-assisted dental caries ablation with continuous diode laser using thermal imaging and fluorescence spectroscopy.

机构信息

Laser & Nanobiophotonics Laboratory, Faculty of Biomedical Engineering, Amirkabir University of Technology, Tehran, Iran.

Nanobiophotonics & Biomedical Research Laboratory, MIS-Electronics Inc., Richmond Hill, Canada.

出版信息

Lasers Med Sci. 2021 Apr;36(3):667-674. doi: 10.1007/s10103-020-03118-8. Epub 2020 Aug 8.

DOI:10.1007/s10103-020-03118-8
PMID:32772274
Abstract

We describe the time-resolved thermal changes in indocyanine green (ICG)-assisted diode laser ablation of dental caries as a potential technique for painless treatment based on the selective photoabsorption and controlled photothermal ablation. Static ablation mode produced a higher temperature rise compared with scanning mode due to localized accumulation of heat. A temperature rise between 45-80 and 70-95 °C was obtained after 20 s that corresponded to 29 and 80 W cm, respectively. The temperature of the tooth surface increased by irradiation time, and it behaved linearly up to 70 °C at 29 and 80 W cm. A maximum ablation per area of about 0.3 and 0.45 mg cm was achieved after 80 s exposure at 29 and 80 W cm, respectively. A statistically significant difference is observed in mean carious teeth weight at various exposure times between low and high irradiances. A thermal penetration depth of 0.8-9 mm is determined for 1-100 s of exposure time. The IR thermal imaging of ICG temperature as a function of exposure time showed a linear increase for 60 s beyond which it deviated. The laser-induced fluorescence spectroscopy indicated that the ICG quality can be altered during the course of irradiation, which in our case, it corresponded to ≈ 78% loss of signal within 23 min of exposure. The caries removal experiment was performed within 100 s corresponding to ≈ 7% loss. We believe that the application of the above-combined technique can be utilized as a monitoring device to control the ablation interaction process.

摘要

我们描述了吲哚菁绿(ICG)辅助二极管激光消融龋齿的时变热变化,作为一种基于选择性光吸收和光热控制消融的无痛治疗潜在技术。由于热量的局部积累,静态消融模式产生的温升高于扫描模式。在 20 秒后,分别获得了 45-80 和 70-95°C 的温升,这对应于 29 和 80 W/cm。随着照射时间的增加,牙齿表面的温度升高,在 29 和 80 W/cm 时分别达到 70°C 时呈线性增加。在 29 和 80 W/cm 下分别暴露 80 秒后,达到了约 0.3 和 0.45 mg/cm 的最大消融量。在低和高辐照度下,不同暴露时间的龋齿平均重量存在显著差异。在 1-100 秒的暴露时间内,确定了 0.8-9mm 的热穿透深度。ICG 温度随暴露时间的红外热成像显示,在 60 秒后呈线性增加,之后偏离。激光诱导荧光光谱表明,ICG 质量在照射过程中会发生变化,在我们的情况下,它对应于在暴露 23 分钟内信号损失约 78%。龋齿去除实验在 100 秒内完成,对应于约 7%的损失。我们相信,上述组合技术的应用可以用作监测设备来控制消融相互作用过程。

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