한국어

The research team has solved decades long challenges in the field of microscopy

145
2024-04-27 14:34:15
번역 보기

When observing biological samples under a microscope, if the medium in which the objective lens is located is different from the sample, the light beam will be interfered with. For example, when observing a water sample with a lens surrounded by air, the light bends more strongly in the air around the lens than in water.

This interference can cause the measured sample depth to be smaller than the actual depth. Therefore, the sample appears to have flattened.
"This problem has a long history, and since the 1980s, some theories have been proposed to determine a correction coefficient for determining depth. However, all of these theories assume that this coefficient is constant and independent of sample depth. Associate Professor Jacob Hoogenboom of Delft University of Technology explained that although later Nobel laureate Stefan Hell pointed out in the 1990s that this proportion may be related to depth, this situation still occurred.".

Sergey Loginov, a former postdoctoral fellow at Delft University of Technology, has now demonstrated through calculations and mathematical models that samples do exhibit stronger flattening near the lens than away from it. Doctoral student Daan Boltje and postdoctoral researcher Ernest van der Wee subsequently confirmed in the laboratory that the correction factor is related to depth.

This research result is published in the journal Optica.
The last author, Ernest Van der Wee, said, "We have compiled the results into a network tool and software that is provided with the article. With these tools, anyone can determine precise correction factors for their experiments.".

Researcher Daan Boltje said, "Thanks in part to our computational tools, we can now very accurately cut out proteins and their surrounding environment from biological systems, and determine their structure using an electron microscope. This type of microscopic examination is very complex, time-consuming, and incredibly expensive. Therefore, ensuring that the correct structure is observed is crucial."

Researcher Daan Boltje said, "With our more precise depth measurements, we only need to spend less time and money on samples that miss biological targets. Ultimately, we can study more relevant proteins and biological structures. Determining the precise structure of proteins in biological systems is crucial for understanding and ultimately preventing abnormalities and diseases."“

In the provided network tools, you can fill in the relevant details of the experiment, such as refractive index, aperture angle of the objective lens, and wavelength of the light used. Then, the tool will display a depth related scaling factor curve. You can also export this data for your own use. In addition, you can also combine the results with the results of existing theories to draw.

Source: Physicist Organization Network

관련 추천
  • Dutch satellite instruments have achieved milestone achievements in transmitting laser data to Earth

    TNO wrote that this is the first time Dutch technology has been used to send data from a satellite to a ground station press release on Earth. This technology uses invisible laser signals to achieve faster and safer data flow compared to ubiquitous communication radio frequencies.Kees Buijsrogge, Director of TNO Space, said, "This critical milestone marks a significant achievement for the Netherla...

    2024-01-25
    번역 보기
  • Laser technology reveals hidden gases in complex mixtures

    Laser Network reported on January 11th that modern equipment has been fine tuned to detect highly specific gases, including trace gases found in the atmosphere, gases present in combustion exhaust emissions, and gases used in technology plasma applications.They achieve this by calculating the percentage of light at a certain wavelength that is absorbed or attenuated by the sample. This way, the co...

    2024-01-11
    번역 보기
  • Launching the world's strongest laser at a cost of 320 million euros

    Beijing, April 1st (Reporter Liu Xia) - The world's most powerful laser has been activated recently. On March 31st, the Physicist Organization Network reported that the system can enable laser pulses to reach a peak of 10 terawatts (1 terawatt=100 terawatts=1015 watts) within 1 femtosecond (1000 trillions of a second), which is expected to promote revolutionary progress in multiple fi...

    2024-04-03
    번역 보기
  • Progress made by the Precision Measurement Institute in Thorium Ion Trapping Research

    Recently, the Cold Molecular Ion Research Group of the Institute of Precision Measurement has made significant progress in the loading, trapping, and recognition of thorium ions. The related research results have been published as cover and selected articles in the international physics journal Journal of Applied Physics, titled "Loading and identifying variable charged thorium ions in a linear io...

    2024-06-21
    번역 보기
  • Diamond Light Source and NPL reach a new five-year agreement

    Recently, two leading UK scientific institutions, Diamond Light Source and National Physical Laboratory (NPL), have reached a new five-year agreement to promote joint collaborative efforts.The agreement was approved by signing a Memorandum of Understanding (MoU), which will bring these two institutions together.Diamond Light Source is a national synchrotron facility in the UK known for generating ...

    2024-04-25
    번역 보기