论文标题
高吞吐量在空间敏感的单发定量相显微镜
High throughput spatially sensitive single-shot quantitative phase microscopy
论文作者
论文摘要
具有高空间相灵敏度的高空间带宽产品对于单次定量显微镜(QPM)系统是必不可少的。它为QPM在生物医学成像领域的广泛应用开放。通常实施时间上低相干长度的光源,以以降低时间分辨率或较小的视场(FOV)(FOV),以实现QPM的高空间相灵敏度。相反,像激光器这样的高时间连贯光源能够以较小的空间相敏感性为代价来利用QPM系统的完整FOV。在目前的工作中,我们在QPM中采用了伪热来源(PTL),从而克服了传统光源的局限性。 PTL在常规光源上的功能在各种测试对象上进行了系统的研究和证明,例如USAF分辨率图和薄光学波导(高度〜8 nm)。在PTLS的情况下,QPM的空间相灵敏度与白光源相当。通过摄像机速度和成像对组织病理学胎盘组织样品的高速大型FOV相限制的实时精子细胞的高速成像证明了基于PTLS的QPM的高速和大型FOV功能。
High space-bandwidth product with high spatial phase sensitivity is indispensable for a single-shot quantitative phase microscopy (QPM) system. It opens avenue for widespread applications of QPM in the field of biomedical imaging. Temporally low coherence length light sources are generally implemented to achieve high spatial phase sensitivity in QPM at the cost of either reduced temporal resolution or smaller field of view (FOV). On the contrary, high temporal coherence light sources like lasers are capable of exploiting the full FOV of the QPM systems at the expense of less spatial phase sensitivity. In the present work, we employed pseudo-thermal light source (PTLS) in QPM which overcomes the limitations of conventional light sources. The capabilities of PTLS over conventional light sources are systematically studied and demonstrated on various test objects like USAF resolution chart and thin optical waveguide (height ~ 8 nm). The spatial phase sensitivity of QPM in case of PTLS is measured to be equivalent to that for white light source. The high-speed and large FOV capabilities of PTLS based QPM is demonstrated by high-speed imaging of live sperm cells that is limited by the camera speed and by imaging extra-ordinary large FOV phase imaging on histopathology placenta tissue samples.