Tiếng Việt

Breaking the limits of optical imaging by processing trillions of frames per second

486
2024-04-08 15:40:00
Xem bản dịch

Pursuing higher speed is not just exclusive to athletes. Researchers can also achieve such feats through their findings. The research results of Professor Liang Jinyang and his team from the National Institute of Science (INRS) have recently been published in the journal Nature Communications.

The team located at the INRS É nergie Mat é riaux T é l é communications research center has developed a new type of ultrafast camera system that can capture up to 156.3 trillion frames per second with astonishing accuracy. For the first time, a single ultra fast demagnetization of two-dimensional optical imaging has been achieved. This new device called SCARF (Scanning Aperture Real Time Femtosecond Photography) can capture transient absorption in semiconductors and ultrafast demagnetization of metal alloys. This new method will help advance the knowledge frontier in a wide range of fields such as modern physics, biology, chemistry, materials science, and engineering.

Professor Liang is renowned as a pioneer in the field of ultrafast imaging. In 2018, as a major developer, he made significant breakthroughs in this field, laying the foundation for the development of SCARF.

So far, ultrafast camera systems mainly use a frame by frame sequential capture method. They will obtain data through brief and repeated measurements, and then combine all the content to create a movie that reconstructs the observed motion.

Professor Liang Jinyang said, "However, this method can only be applied to inert samples or phenomena that occur in exactly the same way every time. Fragile samples, let alone non repeatable or ultrafast phenomena, cannot be observed with this method."

"For example, phenomena such as femtosecond laser ablation, interaction between shock waves and live cells, and optical chaos cannot be studied in this way," explained Liang Jinyang.

The first tool developed by Professor Liang helped fill this gap. The T-CUP (trillion frames per second compressed ultrafast photography) system is based on passive femtosecond imaging and can capture billions (1013) of frames per second. This is an important first step towards ultrafast, single shot real-time imaging.

SCARF has overcome these challenges. Its imaging method can scan the static coding aperture ultra fast without cutting the ultra fast phenomenon. This can provide a full sequence encoding rate of up to 156.3 THz for each pixel on cameras with charge coupled devices (CCD). These results can be obtained in both reflection and transmission modes at adjustable frame rates and spatial scales in a single attempt.

SCARF makes it possible to observe unique phenomena that are ultrafast, non repeatable, or difficult to reproduce, such as shock wave mechanics in living cells or substances. These advances may be used to develop better drugs and medical methods.

More importantly, SCARF promises to bring very attractive economic byproducts. Axis Photonique and Few Cycle have collaborated with Professor Liang's team to produce a saleable version of their patent pending discovery. This is an excellent opportunity for Quebec to consolidate its enviable position as a leader in photonics.

Source: Laser Net

Đề xuất liên quan
  • Polarization polariton topology pointing towards a new type of laser

    Semi light, partially matter quasi particles, known as excitons polaritons, can easily bypass obstacles and condense into a single coherent state - both of which are characteristics of topological insulators. Researchers from the United States and China have developed a new technology to manufacture microcavities from chloride based halide perovskites. They expect this work to lead to a new type o...

    2024-05-30
    Xem bản dịch
  • University of Science and Technology of China Reveals High Precision Planarity Measurement of Cryogenic Arrays

    Professor Wang Jian, Deputy Chief Designer of the Low Temperature Array High Precision Planeness Survey Wide Area Sky Survey Telescope (WFST) announced by the University of Science and Technology of China, and teacher of the State Key Laboratory of Nuclear Detection and Nuclear Electronics, School of Physics, University of Science and Technology of China, is a research team of the Chinese Academy ...

    2023-08-14
    Xem bản dịch
  • XLight raises $40 million in financing to develop new EUV light sources

    xLight, a US startup aiming to commercialize particle accelerator driven free electron lasers (FELs) for use in semiconductor production, says it has raised $40 million in a series B round of venture funding.The Palo Alto, California, firm said that the support would enable it to develop a prototype next-generation light source capable of emitting at extreme ultraviolet (EUV) wavelengths that are ...

    07-23
    Xem bản dịch
  • NLIGHT announces the launch of two new laser technologies at The Battery Show North America

    Recently, nLIGHT, a leading company in the fields of fiber optics and semiconductor lasers, announced the launch of two new laser technologies at The Battery Show North America: WELDForm and Automatic Parameter Adjustment (APT), aimed at meeting the dynamic needs of advanced battery manufacturing customers. In order to provide high-quality laser welding technology to the rapidly growing electric...

    2024-10-15
    Xem bản dịch
  • China University of Science and Technology proposes composite cold field 3D printing technology for liquid crystal elastomers

    Recently, Associate Professor Li Mujun from the School of Engineering Sciences and the Institute of Humanoid Robotics at the University of Science and Technology of China, together with researchers such as Professor Zhang Shiwu, has made significant progress in the field of intelligent material 3D printing. The research team proposed composite cold field 3D printing technology and successfully pre...

    02-25
    Xem bản dịch