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首页> 外文期刊>Lasers in Medical Science >Optimal Er:YAG laser irradiation parameters for debridement of microstructured fixture surfaces of titanium dental implants
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Optimal Er:YAG laser irradiation parameters for debridement of microstructured fixture surfaces of titanium dental implants

机译:钛牙种植体微结构夹具表面清创的最佳Er:YAG激光辐照参数

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摘要

Er:YAG laser (ErL) irradiation has been reported to be effective for treating peri-implant disease. The present study seeks to evaluate morphological and elemental changes induced on microstructured surfaces of dental endosseous implants by high-pulse-repetition-rate ErL irradiation and to determine the optimal irradiation conditions for debriding contaminated microstructured surfaces. In experiment 1, dual acid-etched microstructured implants were irradiated by ErL (pulse energy, 30–50 mJ/pulse; repetition rate, 30 Hz) with and without water spray and for used and unused contact tips. Experiment 2 compared the ErL treatment with conventional mechanical treatments (metal/plastic curettes and ultrasonic scalers). In experiment 3, five commercially available microstructures were irradiated by ErL light (pulse energy, 30–50 mJ/pulse; pulse repetition rate, 30 Hz) while spraying water. In experiment 4, contaminated microstructured surfaces of three failed implants were debrided by ErL irradiation. After the experiments, all treated surfaces were assessed by stereomicroscopy, scanning electron microscopy (SEM), and/or energy-dispersive X-ray spectroscopy (EDS). The stereomicroscopy, SEM, and EDS results demonstrate that, unlike mechanical treatments, ErL irradiation at 30 mJ/pulse and 30 Hz with water spray induced no color or morphological changes to the microstructures except for the anodized implant surface, which was easily damaged. The optimized irradiation parameters effectively removed calcified deposits from contaminated titanium microstructures without causing substantial thermal damage. ErL irradiation at pulse energies below 30 mJ/pulse (10.6 J/cm2/pulse) and 30 Hz with water spray in near-contact mode seems to cause no damage and to be effective for debriding microstructured surfaces (except for anodized microstructures).
机译:据报道Er:YAG激光(ErL)辐射可有效治疗植入物周围疾病。本研究旨在评估通过高脉冲重复频率ErL辐照在牙骨植入物的微结构表面上诱导的形态和元素变化,并确定清创受污染的微结构表面的最佳辐照条件。在实验1中,用ErL(脉冲能量为30–50 mJ /脉冲;重复频率为30 Hz)对双酸蚀刻的微结构植入物进行辐照,有无喷水,用于已使用和未使用的接触尖端。实验2将ErL处理与常规机械处理(金属/塑料刮匙和超声波洁牙机)进行了比较。在实验3中,在喷水时,用ErL光(脉冲能量为30–50 mJ /脉冲;脉冲重复频率为30 Hz)照射了五个市售的微结构。在实验4中,通过ErL辐照清除了三个失败的植入物的受污染的微结构表面。实验之后,通过立体显微镜,扫描电子显微镜(SEM)和/或能量色散X射线光谱(EDS)评估所有处理过的表面。立体显微镜,SEM和EDS结果表明,与机械处理不同的是,喷水在30mJ /脉冲和30Hz的ErL辐照下,喷水不会引起显微结构的颜色或形态变化,除了阳极氧化的植入物表面容易损坏之外。优化的辐照参数可有效地从受污染的钛微结构中清除钙化沉积物,而不会造成严重的热损伤。在近接触模式下,以30赫兹/脉冲(10.6焦耳/平方厘米/脉冲)和30赫兹以下的脉冲能量以近接触模式喷水进行ErL辐照似乎不会造成损坏,并且对清理微结构化表面有效(阳极氧化微结构除外)。

著录项

  • 来源
    《Lasers in Medical Science》 |2013年第4期|1057-1068|共12页
  • 作者单位

    Department of Periodontology Graduate School of Medical and Dental Sciences Tokyo Medical and Dental University">(1);

    Department of Periodontology Graduate School of Medical and Dental Sciences Tokyo Medical and Dental University">(1);

    Department of Periodontology Graduate School of Medical and Dental Sciences Tokyo Medical and Dental University">(1);

    Department of Periodontology Graduate School of Medical and Dental Sciences Tokyo Medical and Dental University">(1);

    Instrumental Analysis Research Center for Life Science Tokyo Medical and Dental University">(2);

    Graduation program of Master Course in Clinical Dentistry Federal University of Espirito Santo">(3);

    Department of Oral Surgery Heinrich Heine University">(4);

    Department of Periodontology Graduate School of Medical and Dental Sciences Tokyo Medical and Dental University">(1);

    Global Center of Excellence (GCOE) Program International Research Center for Molecular Science in Tooth and Bone Disease Tokyo Medical and Dental University">(5);

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Er:YAG laser; High pulse repetition rate; Implant; Peri-implantitis; Titanium; Microstructure;

    机译::: YAG激光;脉冲重复率高;注入;种植体周围炎;钛;微观结构;

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