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The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy

To investigate the effects of fiber lateral scanning speed across the stone surface (v(fiber)) and fiber standoff distance (SD) on dusting efficiency during short pulse holmium (Ho): YAG laser lithotripsy (LL), pre-soaked BegoStone samples were treated in water using 0.2 J/20 Hz at SD of 0.10~0.50 m...

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Autores principales: Chen, Junqin, Li, Daiwei, Yu, Wenjun, Ma, Zhiteng, Li, Chenhang, Xiang, Gaoming, Wu, Yuan, Yao, Junjie, Zhong, Pei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9457447/
https://www.ncbi.nlm.nih.gov/pubmed/36078979
http://dx.doi.org/10.3390/jcm11175048
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author Chen, Junqin
Li, Daiwei
Yu, Wenjun
Ma, Zhiteng
Li, Chenhang
Xiang, Gaoming
Wu, Yuan
Yao, Junjie
Zhong, Pei
author_facet Chen, Junqin
Li, Daiwei
Yu, Wenjun
Ma, Zhiteng
Li, Chenhang
Xiang, Gaoming
Wu, Yuan
Yao, Junjie
Zhong, Pei
author_sort Chen, Junqin
collection PubMed
description To investigate the effects of fiber lateral scanning speed across the stone surface (v(fiber)) and fiber standoff distance (SD) on dusting efficiency during short pulse holmium (Ho): YAG laser lithotripsy (LL), pre-soaked BegoStone samples were treated in water using 0.2 J/20 Hz at SD of 0.10~0.50 mm with v(fiber) in the range of 0~10 mm/s. Bubble dynamics, pressure transients, and stone damage were analyzed. To differentiate photothermal ablation vs. cavitation damage, experiments were repeated in air, or in water with the fiber tip at 0.25 mm proximity from the ureteroscope end to mitigate cavitation damage. At SD = 0.10 mm, the maximum dusting efficiency was produced at v(fiber) = 3.5 mm/s, resulting in long (17.5 mm), shallow (0.15 mm), and narrow (0.4 mm) troughs. In contrast, at SD = 0.50 mm, the maximum efficiency was produced at v(fiber) = 0.5 mm/s, with much shorter (2.5 mm), yet deeper (0.35 mm) and wider (1.4 mm), troughs. With the ureteroscope end near the fiber tip, stone damage was significantly reduced in water compared to those produced without the ureteroscope. Under clinically relevant v(fiber) (1~3 mm/s), dusting at SD = 0.5 mm that promotes cavitation damage may leverage the higher frequency of the laser (e.g., 40 to 120 Hz) and, thus, significantly reduces the procedure time, compared to at SD = 0.1 mm that promotes photothermal ablation. Dusting efficiency during short pulse Ho: YAG LL may be substantially improved by utilizing an optimal combination of v(fiber), SD, and frequency.
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spelling pubmed-94574472022-09-09 The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy Chen, Junqin Li, Daiwei Yu, Wenjun Ma, Zhiteng Li, Chenhang Xiang, Gaoming Wu, Yuan Yao, Junjie Zhong, Pei J Clin Med Article To investigate the effects of fiber lateral scanning speed across the stone surface (v(fiber)) and fiber standoff distance (SD) on dusting efficiency during short pulse holmium (Ho): YAG laser lithotripsy (LL), pre-soaked BegoStone samples were treated in water using 0.2 J/20 Hz at SD of 0.10~0.50 mm with v(fiber) in the range of 0~10 mm/s. Bubble dynamics, pressure transients, and stone damage were analyzed. To differentiate photothermal ablation vs. cavitation damage, experiments were repeated in air, or in water with the fiber tip at 0.25 mm proximity from the ureteroscope end to mitigate cavitation damage. At SD = 0.10 mm, the maximum dusting efficiency was produced at v(fiber) = 3.5 mm/s, resulting in long (17.5 mm), shallow (0.15 mm), and narrow (0.4 mm) troughs. In contrast, at SD = 0.50 mm, the maximum efficiency was produced at v(fiber) = 0.5 mm/s, with much shorter (2.5 mm), yet deeper (0.35 mm) and wider (1.4 mm), troughs. With the ureteroscope end near the fiber tip, stone damage was significantly reduced in water compared to those produced without the ureteroscope. Under clinically relevant v(fiber) (1~3 mm/s), dusting at SD = 0.5 mm that promotes cavitation damage may leverage the higher frequency of the laser (e.g., 40 to 120 Hz) and, thus, significantly reduces the procedure time, compared to at SD = 0.1 mm that promotes photothermal ablation. Dusting efficiency during short pulse Ho: YAG LL may be substantially improved by utilizing an optimal combination of v(fiber), SD, and frequency. MDPI 2022-08-28 /pmc/articles/PMC9457447/ /pubmed/36078979 http://dx.doi.org/10.3390/jcm11175048 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Junqin
Li, Daiwei
Yu, Wenjun
Ma, Zhiteng
Li, Chenhang
Xiang, Gaoming
Wu, Yuan
Yao, Junjie
Zhong, Pei
The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy
title The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy
title_full The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy
title_fullStr The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy
title_full_unstemmed The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy
title_short The Effects of Scanning Speed and Standoff Distance of the Fiber on Dusting Efficiency during Short Pulse Holmium: YAG Laser Lithotripsy
title_sort effects of scanning speed and standoff distance of the fiber on dusting efficiency during short pulse holmium: yag laser lithotripsy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9457447/
https://www.ncbi.nlm.nih.gov/pubmed/36078979
http://dx.doi.org/10.3390/jcm11175048
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