Ballistic reversible gates matched to bit storage: Plans for an efficient CNOT gate using fluxons
Kevin D. Osborn, Waltraut Wustmann

TL;DR
This paper proposes a new reversible fluxon logic (RFL) framework using superconducting fluxons in Josephson junctions, enabling efficient, clocked CNOT gates for quantum and classical computing with minimal energy loss.
Contribution
It introduces a novel RFL approach utilizing fluxons in LJJs, demonstrating fundamental reversible gates and a plan for a clocked CNOT gate with potential high efficiency.
Findings
Fluxon-based gates enable energy-efficient reversible logic.
The proposed CNOT gate uses store and launch mechanisms for synchronization.
Reversible gates like IDSN are practical primitives for quantum computing.
Abstract
New computing technologies are being sought near the end of CMOS transistor scaling, meanwhile superconducting digital, i.e., single-flux quantum (SFQ), logic allows incredibly efficient gates which are relevant to the impending transition. In this work we present a proposed reversible logic, including gate simulations and schematics under the name of Reversible Fluxon Logic (RFL). In the widest sense it is related to SFQ-logic, however it relies on (some approximately) reversible gate dynamics and promises higher efficiency than conventional SFQ which is logically irreversible. Our gates use fluxons, a type of SFQ which has topological-particle characteristics in an undamped Long Josephson junction (LJJ). The collective dynamics of the component Josephson junctions (JJs) enable ballistic fluxon motion within LJJs as well as good energy preservation of the fluxon for JJ-circuit gates.…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
