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Integrated electro-optic digital-to-analog link for efficient computing and arbitrary waveform generation
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The rapid growth in artificial intelligence and modern communication systems demands innovative solutions for increased computational power and advanced signaling capabilities. Integrated photonics, leveraging the analog nature of electromagnetic waves at the chip scale, offers a promising complement to approaches based on digital electronics. To fully unlock their potential as analog processors, establishing a common technological base between conventional digital electronic systems and analog photonics is imperative to building next-generation computing and communications hardware. However, the absence of an efficient interface has critically challenged comprehensive demonstrations of analog advantage thus far, with the scalability, speed, and energy consumption as primary bottlenecks. Here, we address this challenge and demonstrate a general electro-optic digital-to-analog link (EO-DiAL) enabled by foundry-based lithium niobate nanophotonics. Using purely digital inputs, we achieve on-demand generation of (i) optical and (ii) electronic waveforms at information rates up to 186 Gbit/s. The former addresses the digital-to-analog electro-optic conversion challenge in photonic computing, showcasing high-fidelity MNIST encoding while consuming 0.058 pJ/bit. The latter enables a pulse-shaping-free microwave arbitrary waveform generation method with ultrabroadband tunable delay and gain. Our results pave the way for efficient and compact digital-to-analog conversion paradigms enabled by integrated photonics and underscore the transformative impact analog photonic hardware may have on various applications, such as computing, optical interconnects, and high-speed ranging.
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Cited by 3 Pith papers
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Strong-coupling and high-bandwidth cavity electro-optic modulation for advanced pulse-comb synthesis
A general Hamiltonian framework for strong-coupling, high-bandwidth cavity electro-optic modulation predicts higher-order multi-pulse and detuning-robust comb dynamics, and enables machine-learning-designed flat combs.
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Universal dynamics and microwave control of programmable cavity electro-optic frequency combs
Resonant electro-optic combs on lithium niobate exhibit modulation-depth-dependent multi-pulse states and can be spectrally shaped with multi-harmonic microwave drives.
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High-efficiency and broadband coherent optical comb generation in integrated X-cut lithium niobate microresonators
A new microresonator design generates efficient, flat, low-threshold normal-dispersion light combs on X-cut lithium niobate, plus a novel combined Kerr-Raman comb state spanning 33 THz.
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