Português

Shanghai Institute of Optics and Fine Mechanics has made progress in composite material based picosecond mirrors

477
2024-07-12 11:43:41
Ver tradução

Recently, the High Power Laser Element Technology and Engineering Department of the Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, has made progress in the research of composite based picosecond mirrors. The related research results were published in Optics and Laser Technology under the title of "Hybrid Material Based Mirror Coatings for Picosed Laser Applications".

Picosecond pulse lasers are often used for fundamental research in high-energy density physics. As a key component of picosecond laser systems, the laser damage threshold of mirrors directly affects the output energy of picosecond laser systems. Traditional picosecond laser mirrors use hafnium oxide and silicon oxide as high and low refractive index materials, respectively. In recent years, composite materials including nanostacks and mixtures have received widespread attention in improving the laser damage threshold of thin film components. The study of composite picosecond mirrors and their laser damage characteristics under different pulse widths of laser irradiation has certain practical application value.

Researchers have prepared four types of composite materials using electron beam evaporation technology, including hafnium oxide/aluminum oxide nanostack, hafnium oxide/silicon oxide nanostack, hafnium oxide aluminum oxide mixture, and hafnium oxide silicon oxide mixture. Compared with a single hafnium oxide material, composite materials can suppress crystallization and reduce surface roughness. Four types of reflective mirrors with working wavelengths at 1053 nm were prepared using the above-mentioned composite materials and silicon oxide materials as high and low refractive index materials. The damage test results of the mirror under different pulse widths (0.5 ps, 1 ps, 3 ps, and 8 ps) of laser irradiation show that compared with the picosecond mirror using hafnium oxide as the high refractive index material, the picosecond mirror using composite materials as the high refractive index material exhibits a higher laser damage threshold. Within the laser pulse range studied in this article, the initial laser damage mechanism of the reflector begins to change around 3 ps. This achievement is of great significance for improving the performance of optical thin film components such as picosecond laser reflectors.

Figure 1. AFM micrographs and RMS roughness of different mirrors, (b) laser-induced damage probability distribution (8 ps, 1053 nm)

Figure 2. Probability distribution of laser-induced damage with different pulse widths (a) 0.5 ps, (b) 1 ps, and (c) 3 ps; (d) The variation of laser damage threshold with laser pulse width

Note:
M-H refers to a picosecond mirror made of hafnium oxide, a high refractive index material;
M-N1 refers to a picosecond mirror with a high refractive index material of hafnium oxide/aluminum oxide nanostack;
M-N2 refers to a picosecond mirror with a high refractive index material of hafnium oxide/silicon oxide nanostack;
M-M1 refers to a picosecond mirror with a high refractive index material of hafnium oxide alumina mixture;
M-M2 refers to a picosecond mirror with a high refractive index material of hafnium oxide silicon oxide mixture.

Source: Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences

Recomendações relacionadas
  • Amazon's Kuiper Program Successfully Tested Satellite Space Laser

    SpaceX and its billionaire CEO Elon Musk may finally have reason to look back in the satellite internet competition. On Thursday, Amazon revealed that it had successfully used a space laser technology called "Optical Intersatellite Link" to transmit connections between two Kuiper Program satellites in low Earth orbit, located 621 miles apart, at a speed of 100 gigabits per second. This is approxim...

    2023-12-18
    Ver tradução
  • Scientists at Peking University invent ultra-thin optical crystals for next-generation laser technology

    BEIJING, Dec. 19 (Xinhua) -- A team of Chinese researchers used a novel theory to invent a new type of ultrathin optical crystal with high energy efficiency, laying the foundation for next-generation laser technology.This photo taken on Dec. 15, 2023 shows a Twist Boron Nitride (TBN) crystal placed on a piece of fused silica in Peking University, Beijing, capital of China. A team of Chinese rese...

    2023-12-20
    Ver tradução
  • Preparation of all silicon dielectric metasurface by femtosecond laser modification combined with wet etching, achieving ideal compatibility with complementary metal oxide semiconductor technology

    The fully dielectric element surface has the characteristics of low material loss and strong field localization, making it very suitable for manipulating electromagnetic waves at the nanoscale. Especially the surface of all silicon dielectric elements can achieve ideal compatibility with complementary metal oxide semiconductor technology, making it an ideal choice for large-scale monolithic integr...

    2023-10-23
    Ver tradução
  • Trumpf's annual sales decreased by 17% compared to the previous year to 4.3 billion euros

    High-tech and industrial laser company Trumpf has reported rather negative preliminary trading figures for the fiscal year (FY) 2024-2025, with CEO Nicola Leibinger-Kammüller stating that “the lowest point has been reached.”The Ditzingen, Germany-based company stated that it had ended the latest fiscal year “as expected – with a decline in sales and order intake.” According to preliminary calcul...

    07-25
    Ver tradução
  • Ultra fast laser tracking the "ballistic" motion of electrons in graphene

    Figure 1. The setup of Hui Zhao and his team at the University of Kansas Ultra Fast Laser Laboratory.A team of researchers from the University of Kansas's ultrafast laser laboratory recently managed to capture real-time ballistic transmission of electrons in graphene, which could lead to faster, more powerful, and more energy-efficient electronic devices in the future.The motion of electrons is of...

    2024-01-09
    Ver tradução