Reversible Fluxon Logic: Topological particles allow ballistic gates along 1D paths
Waltraut Wustmann, Kevin D. Osborn

TL;DR
This paper introduces a reversible logic gate technology using fluxons in Josephson Junctions, enabling near-lossless, energy-efficient digital operations through topological solitons in 1D paths, with potential for scalable quantum-compatible computing.
Contribution
It demonstrates a novel fluxon-based reversible logic gate design in LJJs, showing minimal energy loss and accurate modeling of fluxon scattering processes, advancing ballistic, energy-efficient computing.
Findings
Over 97% energy preservation after gate operations
Fluxons propagate and scatter deterministically with minimal energy loss
The reduced model accurately predicts fluxon scattering dynamics
Abstract
Digital computing currently uses irreversible logic gates whose energy dissipation is fundamentally limited. Reversible logic gates can provide an energy-efficient alternative since they can operate with reversible processes that have no dissipation, such as with scattering processes involving elastic particles. The presented logic uses fluxons, topological solitons in Long Josephson Junctions (LJJs), as inputs into and outputs from logic gates. An advantage of using LJJs for connections is that they restrict scattering to 1D paths, in contrast to previous ballistic logic which is based on 2D scattering. Furthermore, we find through simulation that there is almost no energy loss in the scattering of fluxons between LJJs of designed unpowered circuit gates. To switch bit states, the fluxons are made to change polarity during operations -- fluxons in an input LJJ freely propagate into the…
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