AI Article Synopsis

  • - Recent developments in programmable photonics integrated circuits show promise for applications in deep neural networks, quantum computing, and FPGAs, but are hampered by slow tuning speeds and high power consumption of current phase shifters.
  • - The paper presents the memresonator, a new type of phase shifter made from a metal-oxide memristor integrated with a microring resonator, featuring impressive characteristics like 12-hour retention times and low switching energy.
  • - Fabricated on a heterogeneous III-V-on-Si platform, these memresonators support diverse optoelectronic devices and facilitate in-memory photonic computing, enhancing the scalability of integrated photonic processors.

Article Abstract

Recently, interest in programmable photonics integrated circuits has grown as a potential hardware framework for deep neural networks, quantum computing, and field programmable arrays (FPGAs). However, these circuits are constrained by the limited tuning speed and large power consumption of the phase shifters used. In this paper, we introduce the memresonator, a metal-oxide memristor heterogeneously integrated with a microring resonator, as a non-volatile silicon photonic phase shifter. These devices are capable of retention times of 12 hours, switching voltages lower than 5 V, and an endurance of 1000 switching cycles. Also, these memresonators have been switched using 300 ps long voltage pulses with a record low switching energy of 0.15 pJ. Furthermore, these memresonators are fabricated on a heterogeneous III-V-on-Si platform capable of integrating a rich family of active and passive optoelectronic devices directly on-chip to enable in-memory photonic computing and further advance the scalability of integrated photonic processors.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10791609PMC
http://dx.doi.org/10.1038/s41467-024-44773-7DOI Listing

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