Chinese Journal of Lasers, Volume. 49, Issue 15, 1507105(2022)

Ablation Characteristics of Hard Tooth Tissues Irradiated by 9.3 μm CO2 Laser

Jianwei Xue1, Lingjin Wu1, Xiaowei Shi1, Jing Huang2, Hang Liang1, and Xianzeng Zhang1、*
Author Affiliations
  • 1College of Photonic and Electronic Engineering, Fujian Normal University, Key Laboratory of Opto-Electronic Science and Technology for Medicine of Ministry of Education, Fujian Provincial Key Laboratory of Photonics Technology, Fuzhou 350007, Fujian, China
  • 2School and Hospital of Stomatology, Fujian Medical University, Fuzhou 350007, Fujian, China
  • show less
    References(20)

    [1] Blaskovic M, Gabrić D, Coleman N J et al. Bone healing following different types of osteotomy: scanning electron microscopy (SEM) and three-dimensional SEM analyses[J]. Microscopy and Microanalysis, 22, 1170-1178(2016).

    [2] Aleksic V, Aoki A, Iwasaki K et al. Low-level Er∶YAG laser irradiation enhances osteoblast proliferation through activation of MAPK/ERK[J]. Lasers in Medical Science, 25, 559-569(2010).

    [3] Sasaki K M, Aoki A, Ichinose S et al. Ultrastructural analysis of bone tissue irradiated by Er∶YAG Laser[J]. Lasers in Surgery and Medicine, 31, 322-332(2002).

    [4] Stübinger S, Biermeier K, Bächi B et al. Comparison of Er∶YAG laser, piezoelectric, and drill osteotomy for dental implant site preparation: a biomechanical and histological analysis in sheep[J]. Lasers in Surgery and Medicine, 42, 652-661(2010).

    [5] Braun A, Krillke R F, Frentzen M et al. Heat generation caused by ablation of dental hard tissues with an ultrashort pulse laser (USPL) system[J]. Lasers in Medical Science, 30, 475-481(2015).

    [6] Ding Y, Xiao S M, Yang H et al. Application of Nd∶YAG laser in stomatology[J]. West China Journal of Stomatology, 33, 445-450(2015).

    [7] Zhang X Z[D]. Hard biotissue ablation with pulse lasers and its novel medical technology, 23(2010).

    [8] Apel C, Meister J, Ioana R S et al. The ablation threshold of Er∶YAG and Er∶YSGG laser radiation in dental enamel[J]. Lasers in Medical Science, 17, 246-252(2002).

    [9] Hibst R, Keller U. Experimental studies of the application of the Er∶YAG laser on dental hard substances: I. Measurement of the ablation rate[J]. Lasers in Surgery and Medicine, 9, 338-344(1989).

    [10] Belikov A V, Erofeev A V, Shumilin V V et al. Comparative study of the 3 μm laser action on different hard tooth tissue samples using free running pulsed Er-doped YAG, YSGG, YAP and YLF lasers[J]. Proceedings of SPIE, 2080, 60-67(1993).

    [11] Lin Q, Lin Y, Xie Y D et al. Study on crystal structure change of laser-ablated human dentin surface based on X-ray diffraction[J]. Laser & Optoelectronics Progress, 57, 231701(2020).

    [12] Jiang J T, Wei M E, Xiong Z D et al. Observation of dentin ablation using an Er∶YAG laser in a sub-pulse sequence mode[J]. Chinese Journal of Lasers, 48, 0107001(2021).

    [13] Almehdi A, Aoki A, Ichinose S et al. Histological and SEM analysis of root cementum following irradiation with Er∶YAG and CO2 lasers[J]. Lasers in Medical Science, 28, 203-213(2013).

    [14] Fried D, Zuerlein M J, Le C Q et al. Thermal and chemical modification of dentin by 9-11-microm CO2 laser pulses of 5-100-micros duration[J]. Lasers in Surgery and Medicine, 31, 275-282(2002).

    [15] Takahashi K, Kimura Y, Matsumoto K. Morphological and atomic analytical changes after CO2 laser irradiation emitted at 9.3 μm on human dental hard tissues[J]. Journal of Clinical Laser Medicine & Surgery, 16, 167-173(1998).

    [16] Badreddine A H, Couitt S, Donovan J et al. Demineralization inhibition by high-speed scanning of 9.3 μm CO2 single laser pulses over enamel[J]. Lasers in Surgery and Medicine, 53, 703-712(2021).

    [17] Lee R, Chan K H, Jew J et al. Synergistic effect of fluoride and laser irradiation for the inhibition of the demineralization of dental enamel[J]. Proceedings of SPIE, 10044, 100440L(2017).

    [18] Hsu D J, Darling C L, Lachica M M et al. Nondestructive assessment of the inhibition of enamel demineralization by CO2 laser treatment using polarization sensitive optical coherence tomography[J]. Journal of Biomedical Optics, 13, 054027(2008).

    [19] Rechmann P, Sherathiya K, Kinsel R et al. Influence of irradiation by a novel CO2 9.3-μm short-pulsed laser on sealant bond strength[J]. Lasers in Medical Science, 32, 609-620(2017).

    [20] Rechmann P, Bartolome N, Kinsel R et al. Bond strength of etch-and-rinse and self-etch adhesive systems to enamel and dentin irradiated with a novel CO2 9.3 μm short-pulsed laser for dental restorative procedures[J]. Lasers in Medical Science, 32, 1981-1993(2017).

    Tools

    Get Citation

    Copy Citation Text

    Jianwei Xue, Lingjin Wu, Xiaowei Shi, Jing Huang, Hang Liang, Xianzeng Zhang. Ablation Characteristics of Hard Tooth Tissues Irradiated by 9.3 μm CO2 Laser[J]. Chinese Journal of Lasers, 2022, 49(15): 1507105

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Optical Diagnostics and Therapy

    Received: Nov. 2, 2021

    Accepted: Jan. 17, 2022

    Published Online: Jul. 29, 2022

    The Author Email: Zhang Xianzeng (xzzhang@fjnu.edu.cn)

    DOI:10.3788/CJL202249.1507105

    Topics