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Toward virtual biopsy through an all fiber optic ultrasonic miniaturized transducer: a proposal

机译:通过全光纤超声微型换能器进行虚拟活检:一项提案

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The present generation of devices based on opto-acoustic and acousto-optic conversion lets us foresee the possibility of realizing complete miniaturized transmitting-receiving transducers, able to generate and detect wideband ultrasound by laser light. In the present paper, a miniaturized ultrasonic transducer entirely based on fiber optic technology is proposed. Such a device springs from the conjunction between our research, which has produced a highly efficient fiber optic opto-acoustic source, with the results obtained by other researchers concerning the realization of an ultrasonic receiver based on optical interferometry. Making use of the thermo-elastic effect for ultrasound generation, a source of ultrasound can be obtained by coupling an optical fiber to a pulsed laser, if a film capable of absorbing laser light is placed onto the fiber end. Starting from these remarks, we propose an efficient opto-acoustic source, able to generate pressure pulses with amplitude of the order of 10/sup 4/ Pa and bandwidth extending up to 40 MHz and beyond by using graphite materials as the absorbing film. This solution makes use of a low-power pulsed laser as an optical source possible. An ultrasonic receiving element was realized placing a Fabry-Perot cavity over the tip of an optical fiber. The cavity thickness modulation induced by the ultrasonic beam is detected by an interferometer optical technique. We have realized a prototype of a receiving device that exhibits a sensitivity comparable with that of piezoelectric devices (10-100 nV/Pa) and an almost flat bandwidth extending up to 20 MHz or more. The extreme miniaturization of the resulting ultrasonic transducer, together with its wide ultrasonic frequency bandwidth, is the first step toward ultrasonic tissue biopsy. In this paper, before discussing the problem of constructing a complete ultrasonic transducer composed by a transmitter and receiver, the results carried out in these fields during the last decade are reviewed.
机译:基于光声和声光转换的新一代设备使我们预见了实现完全微型化的收发收发器的可能性,该收发器能够通过激光产生和检测宽带超声。本文提出了一种完全基于光纤技术的小型化超声换能器。这样的设备源于我们的研究之间的结合,该研究产生了高效的光纤光声源,其他研究人员获得了有关基于光学干涉法实现超声波接收器的结果。如果将能够吸收激光的薄膜放在光纤末端,则利用热弹性效应产生超声波,可以通过将光纤耦合到脉冲激光器来获得超声波源。从这些评论出发,我们提出一种有效的光声源,通过使用石墨材料作为吸收膜,该声源能够产生幅度为10 / sup 4 / Pa量级和带宽扩展到40 MHz甚至更高的压力脉冲。该解决方案使得可以使用低功率脉冲激光器作为光源。实现了超声接收元件,将Fabry-Perot腔放置在光纤尖端上。由超声波束引起的腔厚度调制通过干涉仪光学技术来检测。我们已经实现了一种接收设备的原型,它具有与压电设备相当的灵敏度(10-100 nV / Pa),并且几乎平坦的带宽可以扩展到20 MHz或更高。最终的超声换能器的极度微型化及其宽的超声频率带宽是实现超声组织活检的第一步。本文在讨论构建由发射器和接收器组成的完整超声换能器的问题之前,回顾了过去十年在这些领域中进行的研究。

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