Crossing into a mirror world: particles turn to wisps of fog, and the magnetic monopole paradox dissolves
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Crossing into a mirror world: particles turn to wisps of fog, and the magnetic monopole paradox dissolves

07/08/2026 Ghent University

In Goethe’s ballad Erlkönig, immortalized in Schubert’s fevered 1815 setting, a dying boyriding through the night sees a spectral king beckoning from the darkness. His father calms him: “Mein Sohn, es ist ein Nebelstreif” — my son, it is only a wisp of fog. In the poem, the father’s reassurance proves tragically wrong. In the quantum world, however, his words acquire an uncanny new meaning.

For four decades, physicists have been haunted by their own apparition: a particle that scatters off a magnetic monopole and seems to vanish from the theory entirely, its outgoing
state missing from the books. A team of physicists from Ghent University, the University of Cambridge and the University of Oxford now shows, in a paper published in Nature Physics,
where such particles go. Throwing quantum wavepackets at a so-called “duality defect” — an interface stitching together two quantum worlds that are secretly descriptions of the same
physics — they find that the particle is never reflected: it always passes through, with one hundred percent probability, and re-emerges as precisely what the father promised. A wisp
of fog: faint, smeared out, trailing an invisible thread of quantum mist back to the mirror’s edge.
“The particle goes through every time – it has no choice, because the defect is topological: it can be moved around freely, so there is nothing for the particle to bounce off,” says Frank
Verstraete, professor at Ghent University and Leigh Trapnell Professor of Quantum Physics at Cambridge. “But what comes out on the other side is no longer an ordinary particle. It is
a nonlocal object — a particle attached to an invisible string that stretches all the way back to the defect.”

An answer to the monopole paradox
The result gives a down-to-earth resolution of a famous puzzle from high-energy physics. In the 1980s, calculations by Curtis Callan and Valery Rubakov showed that when an electrically
charged particle scatters off a magnetic monopole, the outgoing particle seems to be missing from the theory altogether — as if it had nowhere to go. Recent work in quantum field
theory1 has argued that the outgoing states exist but are hidden in exotic, “twisted” sectors of the theory.

The new paper realizes exactly this mechanism in a chain of quantum spins, a system one can put on a computer today and, in the near future, on a quantum simulator: the defect
implements the celebrated Kramers–Wannier duality, the transformation that maps order to disorder. The wavepacket sails through the defect and emerges as precisely such a twisted,
string-like excitation. What was an abstract field-theory argument becomes a movie one can watch. [Simulation videos available as press assets: https://github.com/dartsushi/
Video_scattering]

Entanglement as the hidden quantum space
The result grows out of two decades of work by Verstraete and collaborators: describing quantum matter not through particles, but through the structure of its entanglement, using
the mathematical framework of tensor networks.

In this language, a duality defect is represented by a “matrix product operator”—a onedimensional strip of entangled tensors. Such an operator carries a “virtual” bond space,
normally regarded as mathematical bookkeeping. Here that space becomes physical: it is the defect’s own internal quantum state space. Its size measures the number of internal degrees
of freedom available to the defect.

“The defect carries a hidden quantum space, and that space dictates both the perfect transmission and the particle’s new identity,” says first author Atsushi Ueda.

“Dualities are strange symmetries: you cannot apply them particle by particle, only to the whole system at once,” explains Laurens Lootens of the University of Cambridge, whose
earlier work helped establish the mathematical framework used in the new result.

"For years, non-invertible symmetries and duality defects have been studied as beautiful but abstract structures," adds Paul Fendley, professor at the University of Oxford. "This work
gives them an operational meaning: throw something at one, and see what comes out."

Outlook
Because the model is a simple spin chain, the perfect transmission and the particle-to-string conversion are within reach of today’s quantum simulation platforms such as cold atoms,
trapped ions and superconducting processors. The authors anticipate that such experiments would provide the first direct observation of a particle changing its identity by crossing a
topological interface.

Goethe’s ballad ends in the dark: the father reaches the courtyard, and the child in his arms is gone. The quantum world returns the verdict the poem denied him: Es ist ein Nebelstreif.

Ueda, A., Vander Linden, V., De Vos, B. et al. Perfect particle transmission through duality defects. Nat. Phys. (2026). https://doi.org/10.1038/s41567-026-03390-5
Attached files
  • A quantum wavepacket (left) approaches a duality defect, an interface between two mirror worlds. It passes through with certainty, re-emerging as a Nebelstreif: a wisp of fog trailing an invisible thread back to the boundary. Credit: Atsushi Ueda / Ghent University (CC BY 4.0).
07/08/2026 Ghent University
Regions: Europe, Belgium
Keywords: Science, Energy, Physics

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