Italiano

RTX Raytheon Company will develop ultra wide bandgap semiconductors for ultraviolet lasers

214
2024-09-30 14:11:00
Vedi traduzione

The UWBGS program will develop and optimize ultra wide bandgap materials and manufacturing processes for the next revolution in the semiconductor electronics field.

US military researchers need to develop new integrated circuit substrates, device layers, junctions, and low resistance electrical contacts for the new generation of ultra wide bandgap semiconductors. They found a solution from RTX company.

On September 13, 2024, personnel from the Defense Advanced Research Projects Agency (DARPA) located in Arlington, Virginia, announced a $5.3 million contract with the RTX Raytheon division in Arlington, Virginia, for the Ultra Wide Bandgap Semiconductor (UWBGS) project.

The UWBGS project will focus on developing and optimizing ultra wide bandgap materials and manufacturing processes to embrace the next revolution in the semiconductor electronics field. Ultra wide bandgap technology represents a new type of semiconductor that can be used for future RF and high-power electronics, deep ultraviolet electro-optic, quantum electronics, and system applications that must operate in harsh environments.

UWBGS will lay the foundation for producible and reliable high-performance ultra bandgap devices for various defense and commercial applications, such as high-power RF switches; High power density RF amplifier; High power RF protection device; High voltage switch; High temperature electronic devices; And deep ultraviolet lasers and light-emitting diodes.

This project will address some key technical challenges, such as achieving high-quality ultra wide bandgap materials, customizing the electrical properties of ultra wide bandgap materials, creating homogeneous and heterogeneous structures with abrupt junctions and low defect density, and ultra-low resistance electrical contacts. UWBGS will produce device testing structures to quantify improvements in these areas. To achieve the goal, the plan will fully utilize the latest developments in ultra wide bandgap materials.

Experts from the DARPA Microsystems Technology Office are focusing on two types of ultra wide bandgap devices: low defect density substrates with diameters greater than 100 millimeters; A device layer with high doping efficiency, mutated homojunctions and heterojunctions, low junction defect density, and ultra-low resistance electrical contacts.

DARPA researchers have stated that ultra wide bandgap materials such as aluminum nitride, cubic boron nitride, and diamond have the potential to revolutionize the application of semiconductor electronic devices, such as high-power RF switches and limiters, high-power density RF amplifiers for radar and communication systems, high-voltage switches for power electronics, high-temperature electronic devices and sensors for extreme environments, deep ultraviolet light emitting diodes (LEDs), and lasers.

However, the poor quality of ultra wide bandgap materials today limits their performance, and scientists must overcome multiple technical challenges to make this technology a success.

During the three-year UWBGS program, Raytheon engineers will focus on improving the material quality of device layers and junctions, as well as enhancing the electrical quality of metal contacts.

To this end, Raytheon Company will focus on three areas: large-area ultra wide bandgap substrates; Doping agents for ultra wide and wide forbidden homojunctions and heterojunctions; And a mixture of ultra-low resistance electrical contacts and ultra wide width forbidden materials.

Source: Yangtze River Delta Laser Alliance

Raccomandazioni correlate
  • Progress in research on neodymium doped strontium aluminate lanthanum magnesium laser crystals by Shanghai Optics and Machinery Institute

    Recently, the Advanced Laser and Optoelectronic Functional Materials Department of the Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, has made progress in the research of Nd: ASL (Sr0.7Nd0.05La0.25Mg0.3Al22.7O19) laser crystals, and the related achievements were published in Infrared Physics&Technology under the title of "Tunable laser operations on Nd doped cont...

    2024-04-17
    Vedi traduzione
  • Researchers treated MXene electrodes with lasers to improve lithium-ion battery performance

    Researchers at King Abdullah University of Science and Technology (KAUST) in Saudi Arabia have found that laser scribing or creating nanodots on battery electrodes can improve their storage capacity and stability. The method can be applied to an alternative electrode material called MXene.Lithium-ion batteries have multiple drawbacks in a wide range of applications, and researchers around ...

    2023-08-04
    Vedi traduzione
  • The NIRPS alliance is driven by laser frequency comb technology to advance research on exoplanets

    The Near Infrared Red Planet Search Alliance, jointly managed by the Department of Astronomy at the University of Geneva and the University of Montreal, has received cutting-edge advances in CSEM laser frequency comb technology.The laser frequency comb is a precise and stable light source designed to help the NIRPS alliance unravel the mysteries of distant planets, including the possibility of sea...

    2023-12-13
    Vedi traduzione
  • Shenzhen Guangfeng Technology may cooperate with well-known German enterprises

    Recently, Shenzhen Guangfeng Technology Co., Ltd. once again disclosed a development fixed-point notice. Unlike other fixed-point notices received this year, this fixed-point notice points to the optical components of the vehicle's dynamic color pixel lights. According to company disclosure, Guangfeng Technology recently received a development notice from a leading international brand car compan...

    2024-11-18
    Vedi traduzione
  • Nanchang University research progresses in acoustic resolution photoacoustic microimaging enhancement

    As a promising imaging modality that combines the high spatial resolution of optical imaging and the deep tissue penetration ability of ultrasound imaging, photoacoustic microscopy (PAM) has attracted a lot of attention in the field of biomedical research, and has a wide range of applications in many fields, such as tumor detection, dermatology, and vascular morphology assessment. Depending on the...

    2024-09-18
    Vedi traduzione