Ελληνικά

Light Adv. Manuf. | Laser Direct Writing Assists Perovskite Optoelectronic Applications

119
2024-03-25 13:55:14
Δείτε τη μετάφραση

Introduction
Metal halide perovskites have excellent optoelectronic properties and have become the undisputed "star" materials in the semiconductor field, attracting great attention from both academia and industry. With a large amount of research investment, the application of perovskite covers various optical and optoelectronic fields such as single photon sources, micro nano lasers, photodetectors, optical logic gates, optical communication, waveguides, nonlinear optics, etc. Therefore, building and integrating photonic devices with different functions based on a single perovskite chip is very promising.

The development of micro nano processing technology is a crucial step in integrating various optoelectronic devices onto a single chip to meet the requirements of advanced integrated optics, and will play a crucial role in the development of next-generation information technology.
Laser direct writing (DLW) is an efficient, non-contact, maskless micro/nano processing technology that couples the laser beam with a microscope to reduce the size of the output spot and achieve high-resolution micro/nano processing. According to the manufacturing mechanism and material threshold response, the optimal resolution of DLW is usually between a few to hundreds of nanometers. Meanwhile, DLW can flexibly manufacture any micro/nanostructure on the same substrate, and can also use spatial light modulators to change the focused laser field into a specific shape or generate multiple focal points simultaneously, thus meeting the needs of large-scale manufacturing.

Recently, Associate Professor Gan Zhixing from Nanjing Normal University, in collaboration with Professor Jia Baohua and Researcher Wen Xiaoming from Royal Melbourne Institute of Technology, published a review paper on "Direct laser writing on halide perovskites: from mechanisms to applications" in Light: Advanced Manufacturing. The paper reviewed the latest progress of DLW in the field of perovskite semiconductors, revealed the interaction mechanism between light and perovskite during laser direct writing, and introduced the application of DLW processed micro nano structured perovskite in optoelectronic devices. Finally, the future prospects and challenges of this technology were summarized.

Figure 1: Mechanism and application of interaction between laser and perovskite

The interaction mechanism between laser and perovskite
Laser has unique advantages such as high precision, non-contact, easy operation, and no mask, making it an excellent tool for operating, manufacturing, and processing micro and nanostructures on semiconductors. The specific interaction mechanism between laser and perovskite can be divided into various phenomena such as laser ablation, laser induced crystallization, laser induced ion migration, laser induced phase separation, laser induced photoreaction, and other laser induced transformations. These different mechanisms of action represent different changes in perovskite crystals. For example, laser induced crystallization is the nucleation and crystallization process of perovskite precursors, while laser induced phase separation is the process of separating mixed perovskite phases into two different phases, both of which contain rich physical phenomena. The implementation of the entire micro nano machining process is influenced by DLW parameters, such as wavelength, pulse/continuous wave, action time, power, and repetition frequency. The selection of these parameters provides a flexible and powerful tool for precise control of the microstructure of perovskite.

Optoelectronic applications of micro nano structured perovskites manufactured by DLW
The perovskite material processed by DLW has a wide range of applications in fields such as solar cells, light-emitting diodes, photodetectors, lasers, and planar lenses, exhibiting superior performance. At the same time, due to the unique ionic properties of perovskites, they exhibit phenomena such as ion migration, phase separation, and photochromism under continuous laser action, thereby expanding their applications in multi-color displays, optical information encryption, and storage.

Challenges and Prospects
Compared with traditional semiconductor manufacturing techniques, DLW technology greatly improves manufacturing efficiency due to its simple operation process and high-throughput characteristics, and is expected to produce high-resolution complex micro/nanostructures on a large scale. The combination of cheaper and more flexible controllable lasers with the superior optoelectronic performance of perovskite semiconductors will bring enormous potential for the preparation of micro nano structured perovskite optoelectronic devices. At present, relevant research is still in its early stages and some key technical bottlenecks need to be addressed. It is expected that in the near future, when these bottlenecks are overcome, significant progress will be made in related basic research and industry.

Source: Sohu

Σχετικές προτάσεις
  • Rapid and convenient preparation of small-sized metal nanoparticles using microchip lasers

    Liquid pulse laser ablation is a reliable and versatile technique for producing metal nanoparticles in solution. Its advantages include no reducing agent, simple operation, high purity, no need for purification steps, and environmental processing conditions, making it the preferred method for traditional metal NP preparation.The widespread adoption of PLAL in scientific and industrial research has...

    2024-01-30
    Δείτε τη μετάφραση
  • Laser fusion breakthrough brings greater energy explosion

    Recently, scientists from the National Ignition Facility at Lawrence Livermore National Laboratory in California produced a burst of energy by bombarding hydrogen pellets with 192 laser beams, briefly reproducing the fusion process that powers the sun. This is a repeat of an experiment in December last year, but this time the scientists generated more energy, with a gain almost double that of the ...

    2023-09-26
    Δείτε τη μετάφραση
  • A Large Angle Color Holographic 3D Display System Based on Color LCD Grating

    Holographic display technology provides the ultimate solution for true 3D display, with enormous potential in augmented reality and virtual reality. However, the color and viewing angle of holographic 3D displays mainly depend on the wavelength of the laser and the pixel size of the current spatial light modulator. The inevitable color difference and narrow viewing angle in conventional systems se...

    2024-01-24
    Δείτε τη μετάφραση
  • The green and blue laser diode series provides higher beam quality

    Rutronik has expanded its optoelectronic product portfolio by introducing green and blue laser diodes packaged in metal cans TO38 and TO56 using AM OSRAM. They leave a deep impression with improved beam quality and stricter electro-optic tolerances. The power level of the laser diode ranges from 10mW to 100mW. Diodes such as PLT3 520FB and PLT5 450GB are now available on the market.The flexibility...

    2024-01-31
    Δείτε τη μετάφραση
  • TriLite has partnered with AMS OSram to develop AR smart glasses displays

    TriLite has announced a technical collaboration with ams OSRAM, a global leader in smart sensors and transmitters. Ams Osram will supply its sub-assembled RGB laser diode to "light up" TriLite's Trixel® 3 laser beam scanner (LBS), the world's smallest AR smart glasses projection display.The award-winning Trixel® 3 LBS offers breakthrough compactness and light weight, as well as a bright an...

    2023-09-06
    Δείτε τη μετάφραση