English

Innovating Photonics: Lithium Tantalate Provides Power for the Next Generation of Optoelectronic Circuits

664
2024-05-14 14:05:19
See translation

The new photonic integrated circuit technology based on lithium tantalate has improved cost efficiency and scalability, making significant progress in the fields of optical communication and computing.

The rapid development of photonic integrated circuits (PICs) has revolutionized optical communication and computing systems, combining multiple optical devices and functions on a single chip.

For decades, silicon-based PICs have dominated the field due to their cost-effectiveness and integration with existing semiconductor manufacturing technologies, despite their limitations in electro-optic modulation bandwidth. Nevertheless, silicon optical transceiver chips on insulators have been successfully commercialized, driving information flow through millions of glass fibers in modern data centers.

Emerging lithium niobate platform
Recently, the lithium niobate wafer platform on insulators has become a high-quality material for photonic integrated electro-optic modulators due to its strong Pockels coefficient, which is crucial for high-speed optical modulation. However, high costs and complex production requirements have hindered the wider adoption of lithium niobate, limiting its commercial integration.

Lithium tantalate (LiTaO 3) is a close relative of lithium niobate and has the potential to overcome these obstacles. It has similar excellent electro-optical quality, but has advantages in scalability and cost compared to lithium niobate, as it has been widely used in 5G RF filters in the telecommunications industry.

Now, scientists led by Professor Tobias J. Kippenberg from the Federal Institute of Technology in Lausanne and Professor Ou Xin from the Shanghai Institute of Microsystems and Information Technology (SIMIT) have created a new type of PIC platform based on lithium tantalate. PIC utilizes the inherent advantages of materials to make high-quality PIC more economically feasible, thereby changing the field. This breakthrough was published in the May 8th issue of Nature magazine.

Innovation in manufacturing technology
Researchers have developed a lithium tantalate wafer bonding method that is compatible with silicon on insulator production lines. Then, they covered the thin film lithium tantalate chip with diamond-like carbon and continued to etch the optical waveguide, modulator, and ultra-high quality factor microresonator.

Etching is achieved by combining deep ultraviolet (DUV) lithography with dry etching technology, which was originally developed for lithium niobate and then carefully adjusted to etch harder and more inert lithium tantalate. This adjustment involves optimizing etching parameters to minimize optical losses, which is a key factor in achieving high-performance photonic circuits.

Achievements and Future Prospects
Through this method, the team was able to manufacture efficient lithium tantalate PIC with an optical loss rate of only 5.6 dB/m at telecommunication wavelengths. Another highlight is the electro-optic Mach Zehnder modulator (MZM), which is a widely used device in high-speed fiber optic communication today. The half wave voltage length product of lithium tantalate MZM is 1.9 V cm, and the electro-optic bandwidth reaches 40 GHz.

"While maintaining efficient electro-optical performance, we have also generated soliton micro combs on this platform," said Chengli Wang, the first author of the study. "These soliton micro combs have a large number of coherent frequencies, making them particularly suitable for applications such as parallel coherent lidar and photon computing when combined with electro-optical modulation functions."

The birefringence (dependence of refractive index on optical polarization and propagation direction) of lithium tantalate PIC is reduced, enabling dense circuit configurations and ensuring broad operational capabilities in all telecommunications frequency bands. This work paves the way for the scalable, cost-effective manufacturing of advanced optoelectronic PICs.

Source: Laser Net

Related Recommendations
  • Graphene terahertz absorber and graded plasma metamaterials

    Optical metamaterials are an effective way to utilize their superior photon capture capabilities. Therefore, perfect absorbers can be achieved through nanoscale resonant plasmas and metamaterial structures.Metamaterial perfect absorbers (MPAs) are typically composed of periodic subwavelength metals (such as plasma superabsorbers) or dielectric resonance units. Compared with static passive physical...

    2024-05-20
    See translation
  • Nanchang University has made progress in intelligent photoacoustic tomography imaging

    Photoacoustic tomography (PAT) is a novel hybrid medical imaging technique that enables precise imaging of biological tissue structures at different spatial scales. It has been widely used in various fields, including brain imaging, cancer detection, and cardiovascular disease diagnosis. However, due to limitations in data acquisition conditions, photoacoustic tomography systems typically can only...

    2024-08-13
    See translation
  • Researchers have made breakthrough discoveries in the field of nanophotonics

    Researchers have made breakthrough discoveries in the field of nanophotonics. They have successfully developed a locked mode ultrafast laser using lithium niobium, a material known for its excellent optical properties. This breakthrough opens up new possibilities for revolutionary applications, including telecommunications, data storage, and ultra fast imaging.A mode-locked laser is a type of lase...

    2023-11-20
    See translation
  • Enlightra and DESY Hamburg developed an improved and scalable comb laser

    Laser technology startup Enlightra collaborates with DESY Hamburg to develop and design more stable and efficient comb lasers. This work demonstrates a microresonator with programmable synthetic reflection, providing tailored injection feedback for driving lasers. This technology has significantly improved compared to traditional self injection locking technology and can be produced using standard...

    2024-01-26
    See translation
  • Fiber laser array for single pixel imaging is expected to achieve remote detection

    Single pixel imaging (SPI) is a novel computational imaging technique that has been widely studied in recent years. This technology only uses single pixel detectors without spatial resolution to obtain spatial information of targets.It has unique advantages and compensates for the shortcomings of traditional imaging technologies based on array detectors, such as relatively immature or expensive ar...

    2024-05-15
    See translation