Author Affiliations
Abstract
1 School of Information Engineering, Nanchang University, Nanchang 330031, China
2 Division of Physical Biology, Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China
3 Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
The fluorescence from the out-of-focus region excited by the sidelobes of a Bessel beam is the major concern for light-sheet fluorescence microscopy (LSFM) with Bessel beam plane illumination. Here, we propose a method of applying the subtractive imaging to overcome the limitation of the conventional LSFM with Bessel beam plane illumination. In the proposed method, the sample is imaged twice by line scanning using the extended solid Bessel beam and the ring-like Bessel beam. By subtracting between the two images with similar out-of-focus blur, the improved image quality with the suppression of the Bessel beam sidelobes and enhanced sectioning ability with improved contrast are demonstrated.
180.2520 Fluorescence microscopy 170.6900 Three-dimensional microscopy 100.2980 Image enhancement 
Chinese Optics Letters
2018, 16(11): 111801
Author Affiliations
Abstract
1 W.M. Keck Center for Adaptive Optical Microscopy, Baskin Engineering, University of California, Santa Cruz, California 95064, USA
2 Department of Pharmaceutical Chemistry, University of California, San Francisco, California 94143, USA
3 Current address: Department of Cellular Biology, University of Georgia, Athens, Georgia 30602, USA
A woofer–tweeter adaptive optical structured illumination microscope (AOSIM) is presented. By combining a low-spatial-frequency large-stroke deformable mirror (woofer) with a high-spatial-frequency low-stroke deformable mirror (tweeter), we are able to remove both large-amplitude and high-order aberrations. In addition, using the structured illumination method, as compared to widefield microscopy, the AOSIM can accomplish high-resolution imaging and possesses better sectioning capability. The AOSIM was tested by correcting a large aberration from a trial lens in the conjugate plane of the microscope objective aperture. The experimental results show that the AOSIM has a point spread function with an FWHM that is 140 nm wide (using a water immersion objective lens with NA=1.1) after correcting a large aberration (5.9 μm peak-to-valley wavefront error with 2.05 μm RMS aberration). After structured light illumination is applied, the results show that we are able to resolve two beads that are separated by 145 nm, 1.62× below the diffraction limit of 235 nm. Furthermore, we demonstrate the application of the AOSIM in the field of bioimaging. The sample under investigation was a green-fluorescent-protein-labeled Drosophila embryo. The aberrations from the refractive index mismatch between the microscope objective, the immersion fluid, the cover slip, and the sample itself are well corrected. Using AOSIM we were able to increase the SNR for our Drosophila embryo sample by 5×.
Active or adaptive optics Microscopy Superresolution 
Photonics Research
2017, 5(4): 04000329
Author Affiliations
Abstract
1 Centre for Micro-Photonics, Faculty of Science, Engineering and Technology, Swinburne University of Technology,Hawthorn, VIC 3122, Australia
2 Department of Mechanical Engineering, Eindhoven University of Technology,Postbus 513, 5600MB Eindhoven, The Netherlands
3 Optoelectronics Research Centre, University of Southampton, Southampton, SO17 1BJ, UK
4 Melbourne Centre for Nanofabrication, 151 Wellington Road, Clayton, VIC 3168, Australia
5 Ecole Polytechnique Fédérale de Lausanne, Rue de la Maladiére 71b, CH—2002 Neuchatel, Switzerland
6 Center for Nanotechnology, King Abdulaziz University, Jeddah 21589, Saudi Arabia
A novel fluorescence lifetime imaging microscopy (FLIM) working with deep UV 240–280 nm wavelength excitations has been developed. UV-FLIM is used for measurement of defect-related fluorescence and its changes upon annealing from femtosecond laser-induced modifications in fused silica. This FLIM technique can be used with microfluidic and biosamples to characterize temporal characteristics of fluorescence upon UV excitation, a capability easily added to a standardmicroscope-based FLIM. UV-FLIMwas tested to show annealing of the defects induced by silica structuringwith ultrashort laser pulses. Frequency-domain fluorescencemeasurementswere converted into the time domain to extract long fluorescence lifetimes from defects in silica.
Microscopy Microscopy Ultraviolet Ultraviolet Laser materials processing Laser materials processing 
Photonics Research
2015, 3(5): 05000283
Author Affiliations
Abstract
Quantitative interferometric microscopy is an important method for observing biological samples such as cells and tissues. As a key step in phase recovery, a fast phase unwrapping algorithm is proposed. By shifting mod 2\pi wrapped phase map for one pixel, then multiplying the original phase map and the shifted one, the phase discontinuities could be easily determined with high speed and efficiency. The method aims at enhancing phase retrieving efficiency without any background knowledge. We test our algorithm with both numerical simulation and experiments, by focusing our attentions on wrapped quantitative phase maps of cells. The results indicate that this algorithm features fast, precise and reliable.
180.3170 Interference microscopy 120.5050 Phase measurement 
Chinese Optics Letters
2014, 12(7): 071801
Author Affiliations
Abstract
We successfully synthesize four kinds of ZnO nano/microcrystals including dumbbell microrods, nanoflakes, nanoplates, and microrods by a simple wet chemical method. Growth duration is found to play a crucial role in the morphologies of these ZnO nano/microcrystallites. In addition, growth conditions are system-atically studied as a function of precursor concentration and temperature. The structural and optical characteristics of the ZnO samples are further investigated by X-ray diffraction, scanning electron microscopy, and photoluminescence spectroscopy.
180.5810 Scanning microscopy 300.6470 Spectroscopy, semiconductors 
Chinese Optics Letters
2013, 11(10): 101801
Author Affiliations
Abstract
1 Department of Physics, University of Science and Technology of China, Hefei 230026
2 Department of Polymer Science and Engineering, University of Science and Technology of China, Hefei 230026
3 Laboratory of Optical Physics, Institute of Physics, Chinese Academy of Science, Beijing 100080
In this article, we reported near-field research on azobenzene polymer liquid crystal films using scanning near-field optical microscopy (SNOM). Optical writing and subsequently topographic reading of the patterns with subwavelength resolution were carried out in our experiments. Nanometer scale dots and lines were successfully fabricated on the films and the smallest dot diameter is about 120 nm. The width of the line fabricated is about 250 nm. This method is also a choice for nanolithography. The mechanism of the surface deformation on the polymer films was briefly analyzed from the viewpoint of gradient force in the optical near field. The intensity distribution of the electric field near the tip aperture was numerically simulated using finite-difference time-domain (FDTD) method and the numerical simulation results were consistent with the experimental results.
180.5810 scanning microscopy 100.6640 superresolution 220.4610 optical fabrication 
Chinese Optics Letters
2005, 3(2): 02107
Author Affiliations
Abstract
State Key Lab of Modern Optical Instrumentation, Zhejiang University, Hangzhou 310027
Cross-talk phenomenon in dual-labeled fluorescent microarray scanning is analyzed from cross-excitation and cross-emission. It is turned out that the spectral overlap of the fluorophores is crucial for cross-talk error, and this error can be corrected by an image subtraction method. The experiment was successfully applied to separate the Cy3 channel and the Cy5 channel in microarray scanning. The cross-talk error was reduced from more than 1% to about 0.1%.
170.6280 spectroscopy fluorescence and luminescence 180.2520 fluorescence microscopy 260.2510 fluorescence 
Chinese Optics Letters
2004, 2(3): 03162

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!