Department of Complex Matter, Jozef Stefan Institute, Jamova cesta 39, 1000, Ljubljana, Slovenia.
Master Laser Dentistry, Catholic University of Sacred Hearth-Rome, Largo Francesco Vito, 1, 00168, Rome, Italy.
Lasers Surg Med. 2021 Sep;53(7):998-1004. doi: 10.1002/lsm.23357. Epub 2020 Dec 1.
The purpose of this ex vivo study is to investigate whether it is possible to pre-determine and set the optimal separation times for the SWEEPS Er:YAG laser pulses pair during laser-assisted irrigation of endodontic root canals based on known lateral dimensions of the endodontic access cavities of different types of teeth.
STUDY DESIGN/MATERIALS AND METHODS: As the optimal SWEEPS laser pulse pair separation for enhanced shockwave generation depends on the life-cycle of a single-pulse bubble, measurements of the oscillation time T of the Er:YAG laser-generated bubble were made in 23 different endodontic access cavities of different types of teeth progressively widened in three different steps, into larger cavities, for a total of 69 cavities of different shapes and sizes. Different fiber-tip geometries (flat and radial), laser pulse energies (10 mJ and 20 mJ) and depth of fiber-tip insertion (2 mm and 4 mm) were also investigated. The obtained data were then analyzed using the reported relationship between the bubble oscillation time and the diameter of a cylindrically shaped cavity.
A good fit to the relation analogue for ideal cylindrical cavities was found by taking the characteristic diameter of the access cavity to be represented by the cavity diameter either in the mesiodistal (D ) or buccolingual (D ) direction, or alternatively by the average of the two diameters (D ). The best fit was obtained for D (R = 0.73) followed in order by D (R = 0.71) and D (R = 0.63).
In spite of the endodontic cavities being non-cylindrical and of varied shape and size, the bubble oscillation time T and the corresponding optimal SWEEPS separation time can be well predicted using a single characteristic dimension of the access cavity. This finding enables a simple and practical method for determining optimal conditions for shock wave generation and enhanced photodynamic streaming in differently shaped and sized root canals, leading to improved treatment efficacy and safety of root canal irrigation. Lasers Surg. Med. 2020. © 2020 The Authors. Lasers in Surgery and Medicine published by Wiley Periodicals LLC.
本离体研究的目的是基于不同类型牙齿的根管治疗入口腔的已知横向尺寸,探究是否有可能在激光辅助冲洗根管时预先确定和设置 SWEEPS Er:YAG 激光脉冲对的最佳分离时间。
研究设计/材料与方法:由于增强冲击波产生的最佳 SWEEPS 激光脉冲对分离取决于单个脉冲气泡的生命周期,因此在逐步扩大到更大空腔的三个不同步骤中,对 23 种不同类型牙齿的不同根管治疗入口腔中的 Er:YAG 激光生成气泡的振荡时间 T 进行了测量,总共测量了 69 个不同形状和尺寸的空腔。还研究了不同光纤尖端几何形状(平面和径向)、激光脉冲能量(10 mJ 和 20 mJ)和光纤尖端插入深度(2 mm 和 4 mm)。然后,使用报告的气泡振荡时间与圆柱形空腔直径之间的关系对获得的数据进行分析。
通过将入口腔的特征直径表示为近远中(D )或颊舌(D )方向的腔直径,或者表示为两个直径的平均值(D ),发现与理想圆柱形空腔的模拟关系拟合良好。最佳拟合是通过 D (R = 0.73)获得的,其次是 D (R = 0.71)和 D (R = 0.63)。
尽管根管腔不是圆柱形的,形状和尺寸也各不相同,但使用入口腔的单个特征尺寸可以很好地预测气泡振荡时间 T 和相应的最佳 SWEEPS 分离时间。这一发现为在不同形状和尺寸的根管中确定冲击波产生和增强光动力流动的最佳条件提供了一种简单实用的方法,从而提高根管冲洗的治疗效果和安全性。激光外科学与医学。2020. © 2020 作者。激光外科学与医学由 Wiley 期刊出版公司出版。