3D phase imaging recovers an object's volumetric refractive index from intensity and/or holographic measurements. Partially coherent methods, such as illumination-based differential phase contrast (DPC), are particularly simple to implement in a commercial brightfield microscope. 3D DPC acquires images at multiple focus positions and with different illumination source patterns in order to reconstruct 3D refractive index. Here, we present a practical extension of the 3D DPC method that does not require a precise motion stage for scanning the focus and uses optimized illumination patterns for improved performance. The user scans the focus by hand, using the microscope's focus knob, and the algorithm self-calibrates the axial position to solve...
Realizing high resolution across large volumes is challenging for 3D imaging techniques with high-sp...
Quantitative optical microscopy continues to be a powerful tool for biomedical research and the scie...
Quantitative optical microscopy continues to be a powerful tool for biomedical research and the scie...
We demonstrate 3D differential phase-contrast (DPC) microscopy, based on computational illumination ...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
Illumination-based differential phase contrast (DPC) is a phase imaging method that uses a pair of i...
Phase contrast microscopy reveals transparent objects under optical microscopes, and has been widely...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
Phase contrast microscopy reveals transparent objects under optical microscopes, and has been widely...
The phase sensitivity limit of Differential Phase Contrast (DPC) with partially coherent light is an...
Differential phase contrast (DPC) is a non-interference quantitative phase imaging method achieved b...
Differential phase contrast (DPC) is a non-interference quantitative phase imaging method achieved b...
We present a new technique for quantitative phase and amplitude microscopy from a single color image...
We present a new technique for quantitative phase and amplitude microscopy from a single color image...
Realizing high resolution across large volumes is challenging for 3D imaging techniques with high-sp...
Quantitative optical microscopy continues to be a powerful tool for biomedical research and the scie...
Quantitative optical microscopy continues to be a powerful tool for biomedical research and the scie...
We demonstrate 3D differential phase-contrast (DPC) microscopy, based on computational illumination ...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
Illumination-based differential phase contrast (DPC) is a phase imaging method that uses a pair of i...
Phase contrast microscopy reveals transparent objects under optical microscopes, and has been widely...
We demonstrate 3D phase and absorption recovery from partially coherent intensity images captured wi...
Phase contrast microscopy reveals transparent objects under optical microscopes, and has been widely...
The phase sensitivity limit of Differential Phase Contrast (DPC) with partially coherent light is an...
Differential phase contrast (DPC) is a non-interference quantitative phase imaging method achieved b...
Differential phase contrast (DPC) is a non-interference quantitative phase imaging method achieved b...
We present a new technique for quantitative phase and amplitude microscopy from a single color image...
We present a new technique for quantitative phase and amplitude microscopy from a single color image...
Realizing high resolution across large volumes is challenging for 3D imaging techniques with high-sp...
Quantitative optical microscopy continues to be a powerful tool for biomedical research and the scie...
Quantitative optical microscopy continues to be a powerful tool for biomedical research and the scie...