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Clinical application of laser-induced breakdown spectroscopy to the analysis of teeth and dental materials.

机译:激光诱导击穿光谱法在牙齿和牙科材料分析中的临床应用。

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OBJECTIVES: The luminous plasma generated during laser ablation of dental tissue and dental materials has been analyzed to determine qualitative and quantitative elemental composition. BACKGROUND DATA: The use of pulsed lasers for controlled material ablation now is frequently suggested as an alternative to mechanical drilling for the removal of caries and in tooth modification. Spectral analysis of the ablated plasma can be exploited to monitor precisely the laser drilling process in vivo and in real time. METHODS: Teeth samples and dental materials were ablated using pulses from a Nd:YAG laser. The line positions and intensities in the spectra, recorded in real time, were used to identify elements and to determine their relative concentrations. RESULTS: From the spectra of horizontally and vertically cut tooth slices, profiles of elemental distribution were determined; these were used in a range of monitoring applications. We showed that the transition from caries to healthy tooth material could be identified through the decrease in calcium (Ca) and phosphorus (P) concentrations, whereas nonmineralizing elements and organic materials increased in concentration. We also could relate the spatial distribution of elements to their migration or accumulation over time, for example, the migration of aluminium (Al) from dental restorative materials to the tooth matrix. CONCLUSIONS: The plasma existing during laser ablation (in vitro/in vivo) can be analyzed spectrally in real time. From the spectra, one can pinpoint high/low levels of element concentrations within the tooth matrix. Thus, this analysis could be used to monitor the ablation of material during laser dental treatment.
机译:目的:分析了在牙科组织和牙科材料的激光烧蚀过程中产生的发光等离子体,以确定元素的定性和定量组成。背景数据:现在经常建议使用脉冲激光进行受控的材料消融,作为机械钻孔的替代方法,以去除龋齿和进行牙齿修饰。可以利用烧蚀等离子体的光谱分析来精确地监测体内和实时的激光钻孔过程。方法:使用Nd:YAG激光脉冲消融牙齿样品和牙科材料。实时记录的光谱中的谱线位置和强度用于识别元素并确定其相对浓度。结果:从水平和垂直切割的牙齿切片的光谱中,确定了元素分布的轮廓。这些被用于一系列监控应用中。我们表明,可以通过降低钙(Ca)和磷(P)浓度来确定从龋齿向健康牙齿材料的过渡,而非矿化元素和有机材料的浓度可以增加。我们还可以将元素的空间分布与其随时间的迁移或积累相关联,例如,铝(Al)从牙齿修复材料向牙齿基质的迁移。结论:激光消融过程中(体外/体内)存在的血浆可以实时进行光谱分析。从光谱中,可以查明牙齿基质中元素浓度的高/低水平。因此,该分析可用于监测激光牙科治疗过程中材料的烧蚀。

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