ExplorerQuantum ComputingQuantum Physics
Research PaperResearchia:202604.22053

Photonic Chirality for Braiding and Readout of Non-Abelian Anyons

Netzer Moriya

Abstract

We propose a cavity-based scheme that uses photonic chirality to control braiding and read out non-Abelian anyons in a fractional quantum Hall platform. Counter-propagating cavity modes interfere with a classical reference tone to create a rotating pinning landscape whose direction is set by photon circulation, so that opposite photonic branches drive opposite anyon loops. This realizes a branch-conditioned braid operation and maps the resulting braid response onto cavity intermode coherence. We...

Submitted: April 22, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

We propose a cavity-based scheme that uses photonic chirality to control braiding and read out non-Abelian anyons in a fractional quantum Hall platform. Counter-propagating cavity modes interfere with a classical reference tone to create a rotating pinning landscape whose direction is set by photon circulation, so that opposite photonic branches drive opposite anyon loops. This realizes a branch-conditioned braid operation and maps the resulting braid response onto cavity intermode coherence. We derive the rotating pinning term and the readout relation at the effective-theory level, identify an operating window set by subgap driving, adiabatic transport, localization, and cavity coherence, and provide phenomenological diagnostics of transport locking. In the minimal four-anyon Ising realization, the leading signal reduces to a calibrated phase; more generally, the same readout structure becomes state dependent when the relative braid operator is non-scalar. The scheme provides a cavity route to braid-sensitive readout of non-Abelian anyons without relying on fragile electronic interference fringes.


Source: arXiv:2604.19456v1 - http://arxiv.org/abs/2604.19456v1 PDF: https://arxiv.org/pdf/2604.19456v1 Original Link: http://arxiv.org/abs/2604.19456v1

Please sign in to join the discussion.

No comments yet. Be the first to share your thoughts!

Access Paper
View Source PDF
Submission Info
Date:
Apr 22, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
0
Bookmark