IF 3.3 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Rachel Burstow, Diana Andrés, Noé Jiménez, Francisco Camarena, Maya Thanou, Antonios N Pouliopoulos
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引用次数: 0

摘要

声全息技术可通过对发射场进行波束赋形,在所需的二维平面或三维体积上构建所需的波阵面,是生物医学应用领域一项相对较新的技术。继 Gabor 在 20 世纪 40 年代创造出光学全息图之后,声全息技术于 1985 年首次被理论化,而 3D 打印技术的最新发展则为制造单片声全息透镜提供了更简便、更快捷的方法,这种透镜可连接到单元素传感器上。当超声波通过透镜材料时,会对其进行相移,从而在二维图像平面上产生干涉图案,形成所需的压力场。这项技术已经有许多应用,并越来越受到医学界的关注,尤其是在治疗众所周知难以操作的区域(如大脑)方面。声学全息图可以提供一种非侵入性、精确和针对特定病人的方式来给药、诱导热疗、创建组织细胞模式,并对许多其他医学领域有所帮助。然而,声全息影像仍存在一些局限性,如创建三维全息图的困难和单片透镜的被动性。本综述旨在概述迄今为止所报道的声全息图在生物医学方面的应用,并讨论其目前的局限性以及为充分发挥其在生物医学界的潜力而需要开展的未来工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Acoustic holography in biomedical applications.

Acoustic holography can be used to construct an arbitrary wavefront at a desired 2D plane or 3D volume by beam shaping an emitted field and is a relatively new technique in the field of biomedical applications. Acoustic holography was first theorized in 1985 following Gabor's work in creating optical holograms in the 1940s. Recent developments in 3D printing have led to an easier and faster way to manufacture monolithic acoustic holographic lenses that can be attached to single-element transducers. As ultrasound passes through the lens material, a phase shift is applied to the waves, causing an interference pattern at the 2D image plane or 3D volume, which forms the desired pressure field. This technology has many applications already in use and has become of increasing interest for the biomedical community, particularly for treating regions that are notoriously difficult to operate on, such as the brain. Acoustic holograms could provide a non-invasive, precise, and patient specific way to deliver drugs, induce hyperthermia, or create tissue cell patterns. However, there are still limitations in acoustic holography, such as the difficulties in creating 3D holograms and the passivity of monolithic lenses. This review aims to outline the biomedical applications of acoustic holograms reported to date and discuss their current limitations and the future work that is needed for them to reach their full potential in the biomedical community.

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来源期刊
Physics in medicine and biology
Physics in medicine and biology 医学-工程:生物医学
CiteScore
6.50
自引率
14.30%
发文量
409
审稿时长
2 months
期刊介绍: The development and application of theoretical, computational and experimental physics to medicine, physiology and biology. Topics covered are: therapy physics (including ionizing and non-ionizing radiation); biomedical imaging (e.g. x-ray, magnetic resonance, ultrasound, optical and nuclear imaging); image-guided interventions; image reconstruction and analysis (including kinetic modelling); artificial intelligence in biomedical physics and analysis; nanoparticles in imaging and therapy; radiobiology; radiation protection and patient dose monitoring; radiation dosimetry
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