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Near infrared imaging of teeth at wavelengths between 1200 and 1600 nm

机译:1200至1600 nm波长的牙齿近红外成像

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Near-IR (NIR) imaging is a new technology that is currently being investigated for the detection and assessment of dental caries without the use of ionizing radiation. Several papers have been published on the use of transillumination and reflectance NIR imaging to detect early caries in enamel. The purpose of this study was to investigate alternative near infrared wavelengths besides 1300-nm in the range from 1200-1600-nm to determine the wavelengths that yield the highest contrast in both transmission and reflectance imaging modes. Artificial lesions were created on thirty tooth sections of varying thickness for transillumination imaging. NIR images at wavelengths from the visible to 1600-nm were also acquired for fifty-four whole teeth with occlusal lesions using a tungsten halogen lamp with several spectral filters and a Ge-enhanced CMOS image sensor. Cavity preparations were also cut into whole teeth and Z250 composite was used as a restorative material to determine the contrast between composite and enamel at NIR wavelengths. Slightly longer NIR wavelengths are likely to have better performance for the transillumination of occlusal caries lesions while 1300-nm appears best for the transillumination of proximal surfaces. Significantly higher performance was attained at wavelengths that have higher water absorption, namely 1460-nm and wavelengths greater than 1500-nm and these wavelength regions are likely to be more effective for reflectance imaging. Wavelengths with higher water absorption also provided higher contrast of composite restorations.
机译:近红外(NIR)成像是一项新技术,目前正在研究它在不使用电离辐射的情况下检测和评估龋齿。关于使用透照和反射近红外成像检测牙釉质中早期龋齿的文章已经发表了几篇。这项研究的目的是研究1200-1600-nm之间除1300-nm外的其他近红外波长,以确定在透射和反射成像模式下产生最高对比度的波长。在透射照明成像的三十个不同厚度的牙齿上创建了人工病变。还使用具有几个光谱滤光片的卤素钨灯和Ge增强型CMOS图像传感器,为54颗具有咬合病变的整颗牙齿获取了从可见光到1600 nm波长的NIR图像。还可以将蛀牙制剂切成整颗牙齿,并使用Z250复合材料作为修复材料来确定复合材料和牙釉质在NIR波长下的对比度。稍长的NIR波长可能对咬合龋病变的透照具有更好的性能,而1300 nm对于近端表面的透照显得最好。在具有较高吸水率的波长(即1460 nm和大于1500 nm的波长)下,可以获得明显更高的性能,并且这些波长区域可能对于反射成像更有效。具有更高吸水率的波长也提供了复合修复体的更高对比度。

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