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Route to Intelligent Imaging Reconstruction via Terahertz Nonlinear Ghost Imaging

机译:通过太赫兹非线性重影成像技术进行智能成像重建的途径

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摘要

Terahertz (THz) imaging is a rapidly emerging field, thanks to many potential applications in diagnostics, manufacturing, medicine and material characterisation. However, the relatively coarse resolution stemming from the large wavelength limits the deployment of THz imaging in micro- and nano-technologies, keeping its potential benefits out-of-reach in many practical scenarios and devices. In this context, single-pixel techniques are a promising alternative to imaging arrays, in particular when targeting subwavelength resolutions. In this work, we discuss the key advantages and practical challenges in the implementation of time-resolved nonlinear ghost imaging (TIMING), an imaging technique combining nonlinear THz generation with time-resolved time-domain spectroscopy detection. We numerically demonstrate the high-resolution reconstruction of semi-transparent samples, and we show how the Walsh–Hadamard reconstruction scheme can be optimised to significantly reduce the reconstruction time. We also discuss how, in sharp contrast with traditional intensity-based ghost imaging, the field detection at the heart of TIMING enables high-fidelity image reconstruction via low numerical-aperture detection. Even more striking—and to the best of our knowledge, an issue never tackled before—the general concept of “resolution” of the imaging system as the “smallest feature discernible” appears to be not well suited to describing the fidelity limits of nonlinear ghost-imaging systems. Our results suggest that the drop in reconstruction accuracy stemming from non-ideal detection conditions is complex and not driven by the attenuation of high-frequency spatial components (i.e., blurring) as in standard imaging. On the technological side, we further show how achieving efficient optical-to-terahertz conversion in extremely short propagation lengths is crucial regarding imaging performance, and we propose low-bandgap semiconductors as a practical framework to obtain THz emission from quasi-2D structures, i.e., structure in which the interaction occurs on a deeply subwavelength scale. Our results establish a comprehensive theoretical and experimental framework for the development of a new generation of terahertz hyperspectral imaging devices.
机译:太赫兹(THz)成像是一个快速发展的领域,这要归功于在诊断,制造,医学和材料表征方面的许多潜在应用。但是,由于大波长而产生的相对较粗糙的分辨率限制了THz成像在微技术和纳米技术中的部署,从而使其在许多实际情况和设备中无法获得潜在的好处。在这种情况下,单像素技术是成像阵列的有前途的替代方法,特别是在瞄准亚波长分辨率时。在这项工作中,我们讨论了实现时间分辨非线性幻影成像(TIMING)的关键优势和实际挑战,时间分辨非线性幻像成像是一种将非线性THz生成与时间分辨时域光谱检测相结合的成像技术。我们用数值方法演示了半透明样本的高分辨率重构,并且展示了如何优化Walsh-Hadamard重构方案以显着减少重构时间。我们还讨论了与传统的基于强度的重影形成鲜明对比的是,TIMING核心的场检测如何通过低数值孔径检测实现高保真图像重建。就我们所知,这是迄今为止从未解决过的一个问题,而且更为惊人,成像系统的“分辨率”这一“最小特征可识别”的一般概念似乎不太适合描述非线性重影的保真度极限。 -成像系统。我们的结果表明,由于非理想的检测条件而导致的重构精度下降是复杂的,并且不受标准成像中高频空间分量(即模糊)的衰减的驱动。在技​​术方面,我们进一步展示了如何在极短的传播长度内实现有效的光-太赫兹转换对成像性能至关重要,并且我们提出了低带隙半导体作为从准2D结构获得THz发射的实用框架。相互作用发生在深亚波长范围内的结构。我们的研究结果为开发新一代太赫兹高光谱成像设备建立了全面的理论和实验框架。

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