한국어

A US research team has developed a new type of photonic memory computing device

493
2024-10-24 11:36:03
번역 보기

Recently, a research team from the University of California, Santa Barbara has successfully developed a new type of photonic memory computing device that integrates non reciprocal magneto-optical technology. This device achieves high-speed, high-energy efficiency, and ultra-high durability photon computing by utilizing the non reciprocal phase shift phenomenon. The research findings, titled "Integrated non recurrent magneto optics with ultra high endurance for photonic in memory computing," were published in Nature Photonics.

Photon computing has become one of the important directions for the future development of artificial intelligence and machine learning due to its advantages of high speed and low energy consumption. However, the current photon processing architecture faces challenges such as slow storage array update speed, high energy consumption, and insufficient durability. The non reciprocal magneto-optical technology proposed by the research team has successfully solved these bottlenecks by integrating cerium doped yttrium iron garnet with silicon micro ring resonators. By utilizing the non reciprocal phase shift properties of this material, researchers have demonstrated fast programming (1 nanosecond), low energy consumption (143 femjoules per bit), and excellent durability (programmable 2.4 billion cycles) of photonic memory cells.

 


Figure a. Schematic diagram of computing architecture and unit devices; d. Schematic diagram of memory unit.


The core of this technology is to encode optical weights through the non reciprocal phase shift effect generated by magneto-optical materials in micro ring resonators. Unlike existing photon weights based on thermal or plasmonic dispersion effects, non reciprocal magneto-optical weights not only improve programming speed, but also significantly enhance the device's fatigue resistance and multi-level storage capability. The research team also pointed out that the photon computing platform using this new architecture is expected to provide higher computational efficiency for matrix vector multiplication (MVM) in artificial intelligence.

The photon memory unit demonstrated in this study can update weights at a very high programming speed with high-speed response and low energy consumption, greatly reducing the overall energy burden of the system. Especially in applications such as deep learning that require large-scale computing, this technology can significantly reduce the computational bottleneck of traditional electrical architectures through non-volatile, multi bit storage, further promoting the development of future computing architectures towards more efficient and green directions.

Based on the future development prospects of this technology, researchers believe that by further optimizing the integration of materials, such as utilizing spin orbit torque or spin torque transfer effects, it is possible to achieve higher switching efficiency. In addition, with the advancement of single-chip integration technology between cerium doped yttrium iron garnet and silicon photonic devices, this technology has enormous potential for future applications in fields such as photon computing and magnetic storage.

Source: Opticsky

관련 추천
  • Tower Semiconductor is preparing to add laser integrated PIC for Scintil

    Grenoble stated that in the context of growing demand driven by artificial intelligence and 5G, "key" milestones have strengthened its supply chain.Scantil Photonics, a subsidiary of CEA Leti that focuses on silicon photonics, has stated that its integrated laser design is now being produced by Tower Semiconductor, a wafer foundry partner.This method describes this development as a "crucial step f...

    2024-02-29
    번역 보기
  • Overview of ultrafast laser micro nano manufacturing technology: material processing, surface/interface control, and device manufacturing

    Researchers from Tsinghua University have summarized the research on ultrafast laser micro nano manufacturing technology, including material processing, surface/interface control, and device manufacturing. The relevant review titled "A Review of Ultrafast Laser Micro/Nano Fabric: Material Processing, Surface/Interface Control, and Device Fabric" was published in Nano Research.Ultra fast laser proc...

    2024-08-06
    번역 보기
  • Construction of Advanced New Laser Research Centers in American Universities

    The ATLAS R&D center is expected to be completed by mid-2026!A powerful new laser research facility located on the Foothills campus of Colorado State University will begin construction this month. The facility is planned to be put into use in mid-2026 and is the result of 40 years of laser development research at Colorado State University. It is a collaboration with the Fusion Energy Science P...

    2024-10-30
    번역 보기
  • New progress in in-situ identification and quantitative research of methane carbon isotopes in the ocean

    Recently, Zhang Xin's research team from the Institute of Oceanography, Chinese Academy of Sciences, based on the in-situ laser Raman spectroscopy technology, made new progress in the in-situ recognition and quantification of methane carbon isotopes by using the significant differences in the Raman spectra of methane carbon isotopes (13CH4 and 12CH4). The relevant results were recently published i...

    2023-10-13
    번역 보기
  • Integra Optics launches groundbreaking XGS-PON and GPON combined OLT SFP+optical transceivers

    Infinite Electronics brand and innovative operator level global supplier of fiber optic components, Integra Optics, announced the launch of its latest innovative product, the XGS-PON and GPON combination OLT SFP+BiDi optical transceiver module. This module integrates the passive optical network OLT and GPON OLT optical modules of XG (S), promoting seamless network rate deployment within the optica...

    2024-04-11
    번역 보기