CNR-Istituto di Cibernetica "E. Caianiello", Via Campi Flegrei 34, I-80078, Pozzuoli (NA), Italy.
Lab Chip. 2015 May 7;15(9):2117-24. doi: 10.1039/c5lc00143a.
Simple and effective imaging strategies are of utmost interest for applications on a lab-on-chip scale. In fact, the majority of diagnostic tools for medical as well as biotechnological studies still employ image-based approaches. Having onboard the chip a compact but powerful imaging apparatus with multiple imaging capabilities, such as 3D dynamic focusing along the optical axis, unlimited field of view (FoV) and double outputs, namely, intensity and quantitative phase-contrast maps of biological objects, is of extreme importance for the next generation of Lab-on-a-Chip (LoC) devices. Here we present a coherent 3D microscopy approach with a holographic modality that is specifically suitable for studying biological samples while they simply flow along microfluidic paths. The LoC device is equipped with a compact linear array detector to capture and generate a new conceptual type of a digital hologram in the space-time domain, named here as Space-Time Digital Hologram (STDH). The reported results show that the method is a promising diagnostic tool for optofluidic investigations of biological specimens.
简单有效的成像策略是在芯片实验室规模上应用的关键。事实上,大多数医学和生物技术研究的诊断工具仍然采用基于图像的方法。在芯片上配备一个紧凑但功能强大的成像仪器,具有多种成像功能,例如沿着光轴的 3D 动态聚焦、无限的视场(FoV)和双输出,即生物物体的强度和定量相位对比图,对于下一代的芯片实验室(LoC)设备来说是至关重要的。在这里,我们提出了一种具有全息模式的相干 3D 显微镜方法,特别适合于研究生物样本,同时它们简单地沿着微流道流动。该 LoC 设备配备了一个紧凑的线性阵列探测器,用于在时空域中捕获和生成一种新的数字全息图概念类型,这里称为时空数字全息图(STDH)。所报道的结果表明,该方法是一种有前途的光流诊断工具,可用于生物样本的研究。