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Laser-generated focused ultrasound transmitters with frequency-tuned outputs over sub-10-MHz range

机译:激光生成的聚焦超声发射器,频率调谐输出在Sub-10-MHz范围内

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摘要

Previous laser-generated focused ultrasound (LGFU) systems have been operated with 15 MHz frequency, allowing for high spatial precision (mu m). However, they have been limited only to proximal biomedical applications ex vivo with treatment depths smaller than 10 mm from the lens surface. Although the low-megahertz frequency operation has the advantage of a longer range of therapy, this requires a proper photoacoustic lens made of a nanocomposite coating over a spherically curved substrate whose transmission layer is physically designed for frequency-tuned outputs. This demands a fabrication method that can provide such a nanocomposite structure. We demonstrate photoacoustic lenses operated in an unexplored frequency range of 1-10 MHz, which can simultaneously produce high-amplitude pressure outputs sufficient for pulsed acoustic cavitation. We physically design a spatially elongated photoacoustic output and then fabricate a transmitter by controlling the density of light-absorbing nanoscale elements in a solution form and by using a replica mold to shape the lens curvature. Our approach is validated by fabricating and characterizing planar transmitters and then applied to focal configurations. This offers various possibilities for LGFU-based treatments (e.g., pulsed cavitational therapy such as histotripsy) over the low-megahertz frequency range, which has not been realized by conventional LGFU systems.
机译:以前的激光生成的聚焦超声(LGFU)系统已经使用> 15 MHz频率操作,允许高空间精度(MU M)。然而,它们仅限于近端的生物医学应用前体内,处理深度距离镜片表面小于10mm。尽管低兆赫兹频率操作具有较长范围的治疗的优点,但是这需要一种适当的光声透镜在球形弯曲的基板上由纳米复合涂层制成,其透射层物理设计用于频率调谐输出。这需要一种可以提供这种纳米复合材料结构的制造方法。我们展示了在1-10 MHz的未探测频率范围内操作的光声镜片,其可以同时产生足以用于脉冲声学空心的高幅度压力输出。我们在物理上设计了空间细长的光声输出,然后通过控制溶液形式的光吸收纳米元素的密度并通过使用复制模具来形成透镜曲率来制造发射器。我们的方法是通过制造和表征平面发射器来验证,然后应用于焦点配置。这为LGFU的处理提供了各种可能性(例如,脉冲空腔治疗,例如组织杆菌),其在低MEGAHerTZ频率范围内,该频率范围尚未通过传统的LGFU系统实现。

著录项

  • 来源
    《Applied Physics Letters》 |2019年第15期|154103.1-154103.5|共5页
  • 作者单位

    Sungkyunkwan Univ Dept Elect & Comp Engn Suwon 16419 South Korea;

    Inha Univ Dept Phys Incheon 22212 South Korea;

    Sungkyunkwan Univ Dept Elect & Comp Engn Suwon 16419 South Korea;

    Sungkyunkwan Univ Dept Elect & Comp Engn Suwon 16419 South Korea;

    Hanyang Univ Dept Organ & Nano Engn Seoul 04763 South Korea;

    Sungkyunkwan Univ Dept Elect & Comp Engn Suwon 16419 South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:17:49

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