Stimulated emission depletion (STED) microscopy is a typical laser-scanning super-resolution imaging technology, the emergence of which has opened a new research window for studying the dynamic processes of live biological samples on a nanometer scale. According to the characteristics of STED, a high depletion power is required to obtain a high resolution. However, a high laser power can induce severe phototoxicity and photobleaching, which limits the applications for live cell imaging, especially in two-color STED super-resolution imaging. Therefore, we developed a low-power two-color STED super-resolution microscope with a single supercontinuum white-light laser. Using this system, we achieved low-power two-color super-resolution imaging ...
The increasing interest in "seeing" the molecular environment in biological systems has led to the r...
Two-photon excitation (2PE) microscopy [1] has proven to be an excellent technique for in vivo fluor...
Stimulation emission depletion (STED) microscopy breaks the spatial resolution limit of conventional...
The resolution of optical microscopes is limited by the optical diffraction limit; in particular, th...
Super-resolution fluorescence microscopy has become an important catalyst for discovery in the life ...
Super-resolution fluorescence microscopy has become an important catalyst for discovery in the life ...
Fluorescent microscopy has become an essential tool to study biological molecules, pathways and even...
Researchers have a growing need to push optical microscopy beyond the diffraction limit to answer ke...
The stimulated emission depletion microscopy (STED) is a super-resolution technique that enables to ...
Researchers have a growing need to push optical microscopy beyond the diffraction limit to answer ke...
Stimulated emission depletion (STED) microscopy provides subdiffraction resolution while preserving ...
Optical resolution has always been restricted by the Ernst diffraction limit, which states that lens...
The fundamental barrier of traditional microscopy has always been the Abbe limit. Diffraction has se...
We developed two-photon excitation stimulated emission depletion (STED) nanoscopy using high-peak-po...
The fundamental barrier of traditional microscopy has always been the Abbe limit. Diffraction has se...
The increasing interest in "seeing" the molecular environment in biological systems has led to the r...
Two-photon excitation (2PE) microscopy [1] has proven to be an excellent technique for in vivo fluor...
Stimulation emission depletion (STED) microscopy breaks the spatial resolution limit of conventional...
The resolution of optical microscopes is limited by the optical diffraction limit; in particular, th...
Super-resolution fluorescence microscopy has become an important catalyst for discovery in the life ...
Super-resolution fluorescence microscopy has become an important catalyst for discovery in the life ...
Fluorescent microscopy has become an essential tool to study biological molecules, pathways and even...
Researchers have a growing need to push optical microscopy beyond the diffraction limit to answer ke...
The stimulated emission depletion microscopy (STED) is a super-resolution technique that enables to ...
Researchers have a growing need to push optical microscopy beyond the diffraction limit to answer ke...
Stimulated emission depletion (STED) microscopy provides subdiffraction resolution while preserving ...
Optical resolution has always been restricted by the Ernst diffraction limit, which states that lens...
The fundamental barrier of traditional microscopy has always been the Abbe limit. Diffraction has se...
We developed two-photon excitation stimulated emission depletion (STED) nanoscopy using high-peak-po...
The fundamental barrier of traditional microscopy has always been the Abbe limit. Diffraction has se...
The increasing interest in "seeing" the molecular environment in biological systems has led to the r...
Two-photon excitation (2PE) microscopy [1] has proven to be an excellent technique for in vivo fluor...
Stimulation emission depletion (STED) microscopy breaks the spatial resolution limit of conventional...