Deutsch

Xi'an Institute of Optics and Fine Mechanics: New progress in large field two-photon scattering microscopy imaging technology

608
2025-04-15 14:47:18
Übersetzung anzeigen

Adaptive optics is a technique that improves imaging quality by correcting wavefront distortion. Interference focus sensing (IFS), as a new method proposed in the field of adaptive optics in recent years, has been proven to have significant effects in correcting complex aberrations in deep tissue imaging. This technology is based on measuring a single location within the sample to determine the calibration mode. This article proposes an image-based interferometric focal sensing method (IBIFS), which uses conjugate adaptive optics configuration and feedback information from image quality indicators to progressively estimate and correct the wavefront throughout the entire field of view. The sample conjugate configuration achieves synchronous correction of multiple points within the entire field of view by measuring each position point by point and correcting the mode. We conducted experimental verification of the method using fluorescent microspheres and mouse brain slices as samples on our independently built two-photon microscope system. The results indicate that compared with methods based on regions of interest, this method not only has a larger effective field of view, but also achieves more stable optimization effects.

Recently, the research team led by Dr. Yao Baoli from the National Key Laboratory of Ultrafast Optics Science and Technology at the Xi'an Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, made progress in the field of large field two-photon scattering microscopy imaging. The related research results were published in Nanophotonics.

The most common AO method in the field of two-photon microscopy imaging is the Zernike mode decomposition method, which has a good effect on compensating for weaker aberrations. However, due to the limitations of the optical memory effect range, phase correction is only effective for a small field of view.

In response to the above issues, the research team proposed a large field wavefront correction method for deep tissue microscopy imaging - image-based interferometric focal sensing wavefront correction method (Figure 1). This method utilizes full field image information evaluation parameters as inputs for the interferometric focus induction method, achieving more stable correction effects while exhibiting high stability and anti-interference characteristics.

 



Figure 1. Schematic diagram of image-based interferometric focus sensing (IBIFS) method


In the resonance scanning galvanometer two-photon excitation fluorescence microscopy imaging system, researchers first performed large field wavefront correction on the fluorescent ball sample under the scatterer (Figure 2). The experimental results showed that the ROI based method only had good correction effect on the field of view near the reference point B1, while the IBIFS method (MHF based) can adjust the correction phase by using the image information feedback of the entire field of view, which has the correction effect of the entire field of view.


Figure 2. Scattering correction experiment results of fluorescent ball samples


In the scattering correction experiment of mouse brain nerve slice samples, the experimental results (Figure 3) showed that the ROI based correction effect depends on the sample structure distribution in the reference area, with better local optimization effect and poorer global optimization effect. The total intensity enhancement factor of the image corrected by the IBIFS method is 37% higher than that based on small area signals, achieving more stable large field of view correction. This technology can be applied to high-speed resonance scanning two-photon microscopy, providing enhanced microscopy imaging tools for fields such as neuroscience and developmental biology.

 



Figure 3. Scattering correction experiment results of mouse brain slice samples


The research is supported by the National Natural Science Foundation of China's National Major Scientific Instrument Development Project, National Key R&D Program, and Shaanxi Province's Key Industrial Chain Project.
The first author of the paper is Yang Ruiwen, a doctoral student from Xi'an Institute of Optics and Fine Mechanics in 2021. The corresponding authors are Researcher Yao Baoli and Senior Experimenter Yang Yanlong. Xi'an Institute of Optics and Fine Mechanics is the first completion unit and the corresponding unit.

Source: opticsky

Ähnliche Empfehlungen
  • Femtosecond laser-induced plasticity of copper oxide nanowires

    It is reported that researchers from the University of Waterloo in Canada have reported a study on the plasticity of copper oxide nanowires induced by femtosecond laser. The related research was published in Applied Surface Science under the title "Femtosecond laser induced plasticity in CuO nanowires".Metal oxide nanowires are ideal materials for manufacturing nanodevices, especially strain senso...

    2024-07-15
    Übersetzung anzeigen
  • Romania Center launches the world's most powerful laser

    Are you ready? The signal is out! "In the control room of a research center in Romania, engineer Antonio Toma has activated the world's most powerful laser, which is expected to make revolutionary progress in various fields from the health sector to space. The laser located in the center near the Romanian capital Bucharest is operated by the French company Thales and utilizes the invention of Nobe...

    2024-04-01
    Übersetzung anzeigen
  • Leica Cine 1 laser TV with 4K display screen launched with a starting price of $8995

    Photography brand Leica has launched its first 4K movie and television. The Leica Cine 1 laser TV was announced a year later during the I FA 2022 period. This iconic photography brand is shifting some of its focus to projecting perfect images in our living room.featureThe Leica Cine 1 laser TV embodies Leica's philosophy in its camera design. Leica continues to provide precision optical engineerin...

    2023-10-19
    Übersetzung anzeigen
  • Manufacturing customized micro lenses with optical smooth surfaces using fuzzy tomography technology

    Additive manufacturing, also known as 3D printing, has completely changed many industries with its speed, flexibility, and unparalleled design freedom. However, previous attempts to manufacture high-quality optical components using additive manufacturing methods often encountered a series of obstacles. Now, researchers from the National Research Council of Canada have turned to fuzzy tomography (a...

    2024-05-30
    Übersetzung anzeigen
  • CO2 laser cutting machine for battery shell shaped parts: an innovative tool in energy technology manufacturing

    The development of new energy technology has made battery technology the engine for advancing clean energy. In battery manufacturing, the cutting of battery shell shaped parts is a crucial step. CO2 laser cutting machines have become an innovative tool for promoting the development of this field due to their high efficiency and precision. This article will delve into the important characteristics ...

    2023-12-25
    Übersetzung anzeigen