Intensity diffraction tomography (IDT) provides quantitative, volumetric refractive index reconstructions of unlabeled biological samples from intensity-only measurements. IDT is scanless and easily implemented in standard optical microscopes using an LED array but suffers from large data requirements and slow acquisition speeds. Here, we develop multiplexed IDT (mIDT), a coded illumination framework providing high volume-rate IDT for evaluating dynamic biological samples. mIDT combines illuminations from an LED grid using physical model-based design choices to improve acquisition rates and reduce dataset size with minimal loss to resolution and reconstruction quality. We analyze the optimal design scheme with our mIDT framework in simulati...
We have developed a full-field high resolution quantitative phase imaging technique for observing dy...
Recovering molecular information remains a grand challenge in the widely used holographic and comput...
Markwirth A, Lachetta M, Mönkemöller V, et al. Video-rate multi-color structured illumination micros...
We present multiplexed Intensity Diffraction Tomography (mIDT) for live biological sample imaging. W...
We demonstrate a label-free, scan-free intensity diffraction tomography technique utilizing annular ...
Intensity Diffraction Tomography (IDT) is a recently developed quantitative phase imaging tool with ...
We demonstrate a motion-free intensity diffraction tomography technique that enables direct inversio...
We propose a novel intensity diffraction tomography (IDT) reconstruction algorithm based on the spli...
Intensity diffraction tomography (IDT) is a 3D phase imaging technique that enables the reconstructi...
In this thesis, we study the 3 challenges described above. First, we study different reconstruction ...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
Quantitative label-free imaging is an important tool for the study of living microorganisms that, du...
Phase contrast microscopy reveals transparent objects under optical microscopes, and has been widely...
Crucial benefits provided by partially coherent light microscopy such as improved spatial resolution...
Realizing high resolution across large volumes is challenging for 3D imaging techniques with high-sp...
We have developed a full-field high resolution quantitative phase imaging technique for observing dy...
Recovering molecular information remains a grand challenge in the widely used holographic and comput...
Markwirth A, Lachetta M, Mönkemöller V, et al. Video-rate multi-color structured illumination micros...
We present multiplexed Intensity Diffraction Tomography (mIDT) for live biological sample imaging. W...
We demonstrate a label-free, scan-free intensity diffraction tomography technique utilizing annular ...
Intensity Diffraction Tomography (IDT) is a recently developed quantitative phase imaging tool with ...
We demonstrate a motion-free intensity diffraction tomography technique that enables direct inversio...
We propose a novel intensity diffraction tomography (IDT) reconstruction algorithm based on the spli...
Intensity diffraction tomography (IDT) is a 3D phase imaging technique that enables the reconstructi...
In this thesis, we study the 3 challenges described above. First, we study different reconstruction ...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
Quantitative label-free imaging is an important tool for the study of living microorganisms that, du...
Phase contrast microscopy reveals transparent objects under optical microscopes, and has been widely...
Crucial benefits provided by partially coherent light microscopy such as improved spatial resolution...
Realizing high resolution across large volumes is challenging for 3D imaging techniques with high-sp...
We have developed a full-field high resolution quantitative phase imaging technique for observing dy...
Recovering molecular information remains a grand challenge in the widely used holographic and comput...
Markwirth A, Lachetta M, Mönkemöller V, et al. Video-rate multi-color structured illumination micros...