한국어

Developing nanocavities for enhancing nanoscale lasers and LEDs

198
2024-01-29 13:42:27
번역 보기

As humanity enters a new era of computing, new small tools are needed to enhance the interaction between photons and electrons, and integrate electrical and photon functions at the nanoscale. Researchers have created a novel III-V semiconductor nanocavity that can limit light below the so-called diffraction limit, which is an important step towards achieving this goal.

In the journal Optical Materials Letters, researchers have demonstrated that the modal volume of their new nanocavity is one order of magnitude lower than previously shown in III-V group materials. III-V group semiconductors have unique characteristics that make them suitable for optoelectronic devices.

The significant spatial limitation of light demonstrated in this work improves the interaction between light and matter, allowing for greater LED power, lower laser threshold, and higher single photon efficiency.

The study was conducted by scientists from the Nanophotonics Center at the Technical University of Denmark. Their goal is to study a new type of dielectric optical cavity that allows for deep subwavelength optical confinement by using the concept they call extreme dielectric confinement.

EDC cavities may generate extremely efficient computers, where deep subwavelength lasers and photodetectors are integrated into transistors to reduce energy consumption by improving the interaction between light and matter.

In current research, the EDC cavity in III-V semiconductor indium phosphide was initially constructed by researchers using an orderly mathematical technique that relaxed geometric constraints and optimized the topology. Then, they used dry etching and electron beam lithography to construct the structure.

"The characteristic size of EDC nanocavities is as small as a few nanometers, which is crucial for achieving extreme light concentrations, but they also have significant sensitivity to manufacturing changes. We attribute the successful implementation of cavities to the improved accuracy of the InP manufacturing platform, which is based on electron beam lithography followed by dry etching," Xiong added.

The second stage of topology optimization is based on the relatively small dielectric feature size achieved by researchers through improved manufacturing methods. After the last optimization cycle, the mode volume of the nanocavity is only 0.26 ³, Among them λ  Is the wavelength of light, and n is its refractive index.

This achievement is four times smaller than the diffraction limit volume of the commonly referred to nanocavity, which is equivalent to a lightbox with a side length of half the wavelength.

Researchers have pointed out that although silicon has recently produced cavities with similar characteristics, III-V group semiconductors have direct band to band transitions, while silicon does not. These transformations are necessary for utilizing Purcell enhancement provided by nanocavities.

Xiong concluded, "Prior to our work, it was uncertain whether III-V group semiconductors would achieve similar results as they did not benefit from advanced manufacturing technologies developed for the silicon electronics industry.".

Currently, researchers are attempting to further reduce pattern volume by improving manufacturing accuracy. In order to manufacture useful nanolasers or nanoLEDs, they also hope to use EDC cavities.

Source: Laser Net

관련 추천
  • Scientists have demonstrated a new way to make infrared light from quantum dots, and the experiments are still in the early stages

    Scientists at the University of Chicago have demonstrated a way to create infrared light using colloidal quantum dots. The researchers say this approach shows great promise; Although the experiment is still in its early stages, these quantum dots are already as efficient as existing conventional methods.These points could one day form the basis of infrared lasers, as well as small and inexpensive ...

    2023-09-08
    번역 보기
  • Solar cell laser processing deserves attention

    Laser processing is a relatively emerging non-contact processing method that utilizes the high energy of a beam of light to interact with materials and instantly vaporize or change their properties to achieve the expected manufacturing effect. It has gradually been promoted and applied in China in the past 20 years. Due to the different types, pulse widths, and wavelengths of laser generators, the...

    2023-10-31
    번역 보기
  • New Progress in Research on Three Lattice Photonic Crystal Surface Emission Lasers at Changchun Institute of Optics and Mechanics

    Recently, Tong Cunzhu, the research team of the Chinese President of Science, Chunguang Institute of Mechanical Mechanics, made important progress in the research field of photonic crystal surface emitting lasers (PCSEL), proposed a three lattice structure and achieved a low threshold 1550nm PCSEL. Relevant achievements were published in Light: Science and Application vol.13, 442024, and the famou...

    2024-03-15
    번역 보기
  • Ring Laser Accuracy: Unprecedented Daily Measurement and Mapping of Earth's Rotation

    Scientists at the Technical University of Munich have made significant progress in measuring the Earth's rotation with unprecedented accuracy. Now, the ring laser from the Wettzell Geodetic Observatory can be used to capture data at a quality level unmatched anywhere in the world. These measurements are crucial for determining the position of the Earth in space, assisting climate research, and imp...

    2023-11-14
    번역 보기
  • The semiconductor laser market is expected to reach $5.3 billion by 2029

    Nowadays, laser technology is widely used in various traditional and emerging fields, including optical communication, material processing, consumer equipment, automotive sensing and lighting, display technology, medical applications for treatment and diagnosis, as well as aerospace and defense.Especially in the semiconductor laser market, it is expected to grow from $3.1 billion in 2023 to $5.2 b...

    2024-12-03
    번역 보기