Programmable superconducting neuron with intrinsic in-memory computation and dual-timescale plasticity for ultra-efficient neuromorphic computing

Fuente: arXiv
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Main Authors: Wang, Muen, Yang, Shucheng, Lin, Yuxiang, Gao, Yuntian, Zhang, Xue, Gao, Xiaoping, Niu, Minghui, Liu, Huanli, Wan, Yikang, Peng, Wei, Ren, Jie
Format: Preprint
Published: 2026
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author Wang, Muen
Yang, Shucheng
Lin, Yuxiang
Gao, Yuntian
Zhang, Xue
Gao, Xiaoping
Niu, Minghui
Liu, Huanli
Wan, Yikang
Peng, Wei
Ren, Jie
author_facet Wang, Muen
Yang, Shucheng
Lin, Yuxiang
Gao, Yuntian
Zhang, Xue
Gao, Xiaoping
Niu, Minghui
Liu, Huanli
Wan, Yikang
Peng, Wei
Ren, Jie
contents The escalating energy demands of artificial intelligence pose a critical challenge to conventional computing. Leveraging the efficiency of event-driven, in-memory neuromorphic architectures into the superconducting circuits with ultra-high speed and low power dissipation advantages offers a promising solution to energy-efficient computing. However, the potential of such a solution has yet to be realized, owning to the absence of a fundamental superconducting unit that unifies programmability, local memory, and multi-timescale plasticity. Here, we introduce a programmable Josephson-junction-based leaky integrate-and-fire (LIF) neuron that features intrinsic static memory and precise programmability by encoding somatic and synaptic parameters directly in the bias current. This neuron is also capable of dual-timescale plasticity: picosecond-scale short-term modulation of spike transmission and long-term weight retention exceeding 10,000 seconds, facilitating both rapid temporal adaptation and robust weight storage. It can operate up to 45 GHz with femtojoule-level energy dissipation per spike, and supports 10 somatic threshold levels and 20 synaptic states. Furthermore, we demonstrate a crossbar-based spiking neural network (SNN) utilizing this neuron, which achieves outstanding performance across multiple tasks. By fusing computation, memory and plasticity into a single superconducting unit, our work paves the way for the next generation of ultrafast, energy-efficient neuromorphic computing.
format Preprint
id arxiv_https___arxiv_org_abs_2603_04966
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Programmable superconducting neuron with intrinsic in-memory computation and dual-timescale plasticity for ultra-efficient neuromorphic computing
Wang, Muen
Yang, Shucheng
Lin, Yuxiang
Gao, Yuntian
Zhang, Xue
Gao, Xiaoping
Niu, Minghui
Liu, Huanli
Wan, Yikang
Peng, Wei
Ren, Jie
Emerging Technologies
The escalating energy demands of artificial intelligence pose a critical challenge to conventional computing. Leveraging the efficiency of event-driven, in-memory neuromorphic architectures into the superconducting circuits with ultra-high speed and low power dissipation advantages offers a promising solution to energy-efficient computing. However, the potential of such a solution has yet to be realized, owning to the absence of a fundamental superconducting unit that unifies programmability, local memory, and multi-timescale plasticity. Here, we introduce a programmable Josephson-junction-based leaky integrate-and-fire (LIF) neuron that features intrinsic static memory and precise programmability by encoding somatic and synaptic parameters directly in the bias current. This neuron is also capable of dual-timescale plasticity: picosecond-scale short-term modulation of spike transmission and long-term weight retention exceeding 10,000 seconds, facilitating both rapid temporal adaptation and robust weight storage. It can operate up to 45 GHz with femtojoule-level energy dissipation per spike, and supports 10 somatic threshold levels and 20 synaptic states. Furthermore, we demonstrate a crossbar-based spiking neural network (SNN) utilizing this neuron, which achieves outstanding performance across multiple tasks. By fusing computation, memory and plasticity into a single superconducting unit, our work paves the way for the next generation of ultrafast, energy-efficient neuromorphic computing.
title Programmable superconducting neuron with intrinsic in-memory computation and dual-timescale plasticity for ultra-efficient neuromorphic computing
topic Emerging Technologies
url https://arxiv.org/abs/2603.04966