Ultralow voltage, High-speed, and Energy-efficient Cryogenic Electro-Optic Modulator
Paolo Pintus, Anshuman Singh, Weiqiang Xie, Leonardo Ranzani, and Martin V. Gustafsson, Minh A. Tran, Chao Xiang, Jonathan Peters, and John E. Bowers, Moe Soltani

TL;DR
This paper presents a cryogenic electro-optic modulator with ultra-low voltage, high speed, and energy efficiency, enabling scalable optical interconnects for quantum and classical cryogenic systems.
Contribution
It introduces a novel InP-on-Silicon ring resonator modulator operating at 4 K with record low voltage and energy consumption, advancing cryogenic photonic integration.
Findings
Peak-to-peak voltage ~10 mV at 4 K
Data rate in gigabits/sec range
Energy consumption of ~10.4 aJ/bit
Abstract
Photonic integrated circuits (PICs) at cryogenic temperatures enable a wide range of applications in scalable classical and quantum systems for computing and sensing. A promising application of cryogenic PICs is to provide optical interconnects by up-converting signals from electrical to optical domain, allowing massive data-transfer from 4 K superconducting (SC) electronics to room temperature environment. Such a solution is central to overcome the major bottleneck in the scalability of cryogenic systems, which currently rely on bulky copper cables that suffer from limited bandwidth, large heat load, and do not show any scalability path. A key element for realizing a cryogenic-to-room temperature optical interconnect is a high-speed electro-optic (EO) modulator operating at 4 K with operation voltage at mV scale, compatible with SC electronics. Although several cryogenic EO modulators…
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Taxonomy
TopicsPhotonic and Optical Devices · Optical Network Technologies · Advanced Fiber Laser Technologies
