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High resolution imaging with impulse based thermoacoustic tomography

机译:高分辨率成像,具有基于脉冲的热声学层析造影

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Existing imaging modalities like microwave- or radiofrequency (RF) induced thermoacoustic tomography systems show the potential for resolving structures deep inside tissue due to the high penetration properties of RF. However, one of the major drawbacks of existing thermoacoustic tomography systems with pulse modulated carrier frequency excitation is the compromise between efficient signal generation and attainable spatial resolution. In order to overcome limitations of conventional thermoacoustic imaging methods, we herein present and experimentally validate our novel approach towards high resolution thermoacoustic tomography. Instead of carrier-frequency amplification, we utilize ultrahigh-energy electromagnetic impulses at nanosecond duration with near-field energy coupling, thus maintaining thermoacoustic signal strength without compromising spatial resolution. Preliminary experiments on highly absorbing objects, consisting of copper wires with characteristic sizes of ~100 μm, reveal the resolution performance which yields 160 μm. Furthermore, benefits like its cost effectiveness, simplicity and compactness with the potential application in small animal imaging as well as human body imaging show that thermoacoustic tomography with impulse excitation is a promising imaging modality which has a broad range of applications.
机译:现有的微波或射频(RF)诱导的热声断层扫描系统等现有的成像方式显示出由于RF的高渗透性能而在内部组织深层拆分结构的可能性。然而,具有脉冲调制载波频率激励的现有热声断层摄影系统的主要缺点之一是有效信号产生和可达到的空间分辨率之间的折衷。为了克服常规热声成像方法的限制,我们在本文中,并通过实验验证了我们对高分辨率热声层析成像的新方法。我们使用近场能量耦合利用纳秒持续时间的超高能量电磁脉冲而不是载波频率放大,从而保持热声信号强度而不损害空间分辨率。高吸收物体的初步实验,由具有〜100μm的特征尺寸的铜线组成,揭示了产量160μm的分辨率。此外,与小动物成像中的潜在应用以及人体成像中的潜在应用,以及人体成像的潜在应用表明,具有脉冲激励的热声学断层扫描是具有广泛应用的有望的成像模型。

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