한국어

Progress in the study of ultrafast electron dynamics using short light pulses

127
2024-01-08 14:53:56
번역 보기

When electrons move in molecules or semiconductors, their time scale is unimaginably short. The Swedish German team, including Dr. Jan Vogelsang from the University of Oldenburg, has made significant progress in these ultrafast processes: researchers are able to track the dynamics of electrons released on the surface of zinc oxide crystals using laser pulses with nanoscale spatial resolution and previously unattainable temporal resolution.

The relevant paper is titled "Time Resolved Photoemission Electron Microscope on a ZnO Surface Using an Extreme Ultraviolet Attention Pulse Pair" and published in Advanced Physics Research.

Through these experiments, the research team has demonstrated the applicability of this method, which can be used to better understand the electronic behavior of electrons in nanomaterials and new solar cells. Researchers from Lund University in Sweden, including Professor Anne L'Huillier, one of the three Nobel laureates in physics last year, also participated in this study.

Here, this work demonstrates the use of spatial and energy resolved photoelectrons to perform attosecond interferometric measurements on zinc oxide (ZnO) surfaces. The combination of optical emission electron microscopy and near-infrared pump extreme ultraviolet probe laser spectroscopy resolved the instantaneous phase of the infrared field with high spatial resolution. The research results indicate that zinc oxide nuclear energy with low binding energy is very suitable for spatially resolved attosecond interferometry measurement experiments. A significant phase shift of the attosecond beat frequency signal was observed across the entire laser focus, attributed to the wavefront difference between the surface pump field and the probe field.

Figure 1: Characterization of the experimental setup.

In the experiment, the research team combined a special electron microscope, a light emission electron microscope (PEEM), with attosecond physics techniques. Scientists use extremely short duration light pulses to excite electrons and record their subsequent behavior. This process is very similar to the process of capturing rapid motion with a flash in photography.

As reported by the research group, similar experiments have yet to achieve the time accuracy required to track electronic motion. The motion speed of these tiny elementary particles is much faster than that of larger and heavier atomic nuclei. However, in this study, scientists combined the highly demanding techniques of light emission electron microscopy and attosecond microscopy without affecting spatial or temporal resolution.

Figure 2: Spectral results of zinc oxide surface.
Vogelsang said, "Now we can finally use attosecond pulses to study in detail the interaction between light and matter at the atomic level and in nanostructures.".

One factor contributing to this progress is the use of a light source that can generate a large number of attosecond pulse flashes per second - in this case, this light source can generate 200000 light pulses per second. Each flash releases an average of one electron from the surface of the crystal, allowing researchers to study their behavior without affecting each other. The more pulses generated per second, the easier it is to extract small measurement signals from the dataset.

Figure 3: Spatial resolved attosecond interferometry measurement of zinc oxide surface.

The experiment of this study was conducted in Anne L'Huillier's laboratory at Lund University in Sweden, which is one of the few research laboratories in the world with the necessary technical equipment for such experiments.

A similar experimental laboratory is currently being established at the University of Oldenburg. In the future, the two teams plan to continue conducting research to explore the behavior of electrons in various materials and nanostructures.

This work provides a clear approach for high spatial resolution attosecond interferometry measurements in the field of atomic scale surfaces, and opens the way for a detailed understanding of the interaction between nanoscale light and matter.

Source: Sohu

관련 추천
  • 20W High Power Fiber Optic Frequency Comb with 10 to 19 Power Outside Ring Frequency Stability

    High power optical frequency combs play a crucial role in nonlinear precision spectroscopy, extreme ultraviolet optical frequency comb generation, nuclear atomic clock research, and other fields. Fiber optic femtosecond lasers are the preferred solution for achieving high power optical frequency combs due to their simple structure, stable performance, and easy amplification. However, due to the un...

    2023-10-20
    번역 보기
  • Transforming solid-state single photon sources using multifunctional metalenses

    Quantum photonics is one of the important research directions in the quantum field, which utilizes the unique properties of light at the quantum level. The core of this field is the deterministic single photon source, which sequentially emits individual photons through spontaneous emission and is the cornerstone of quantum communication, computing, and secure encryption. However, under environment...

    2024-02-26
    번역 보기
  • Infinira launches an optical solution for 1.6 Tbps ICE-D data centers

    Infinira, an expert in optical network solutions, announced the launch of a high-speed data center optical transmission module based on single-chip indium phosphide (InP) photonic integrated circuit (PIC) technology. The company claims that the module will connect at a speed of 1.6 terabits per second (Tb/s), while reducing the cost and power consumption per bit.Yingfeilang stated that its data ce...

    2024-03-18
    번역 보기
  • IPG Photonics has unveiled a new dual-beam laser with single-mode core power at the Novi Battery Show in Michigan

    IPG Photonics Corporation, a global leader in fiber laser technology, will highlight new and innovative laser solutions at the Battery Show from September 12 to 14, 2023 in Novi, Michigan, USA.The IPG booth will include industry-leading fiber laser sources and automated laser systems for electric vehicle battery welding applications.New laser technology pushes the limits of battery welding speedTo...

    2023-09-12
    번역 보기
  • New type of femtosecond laser: used for broadband terahertz generation and nonlinear wafer detection

    Recently, HüBNER Photonics, the leading manufacturer of high-performance lasers, has launched the latest member of the VALO femtosecond series - VALO Tidal. This laser not only represents a major leap in the fields of imaging, detection, and analysis, but also demonstrates the infinite possibilities of laser technology with its outstanding performance.The VALO Tidal femtosecond laser typically sho...

    2024-06-26
    번역 보기