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pith:Y3U6KHLM

pith:2026:Y3U6KHLMJ224O3X5WSX2Q7ZUT2
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Spin and orbital mixing of edge states in a quantum Hall system proximitized by a superconductor

M. P. Nowak, S. Maji

Andreev reflection mixes quantum Hall edge modes at higher filling factors in a proximitized system.

arxiv:2605.18411 v1 · 2026-05-18 · cond-mat.mes-hall · cond-mat.supr-con

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Claims

C1strongest claim

We demonstrate that the Andreev reflection process induces a mixing of the quantum Hall edge modes at higher filling factors, a phenomenon strictly prohibited in clean, purely electronic systems.

C2weakest assumption

The numerical model assumes an ideal clean interface and proximitization without disorder or interface scattering that could suppress or alter the reported mode mixing in actual fabricated devices.

C3one line summary

Numerical BdG simulations show Andreev-induced mixing of quantum Hall edge modes prohibited in clean electronic systems, spin orthogonality under Zeeman splitting, and complex mixing under Rashba SOC with in-plane field, plus symmetry-protected degeneracies in transmission.

References

43 extracted · 43 resolved · 0 Pith anchors

[1] We set the magnetic fieldBz = 0.343T and now varyingµ drives us through differentνvalues
[2] Fig- ure 5(a) shows the conductance map obtained for a fixed perpendicular magnetic fieldB z = 0.912T, but with a varied magnitude of the in-plane field oriented in the x-direction
[3] 8(b) and 9(b), we observe striking symmetry 2020
[4] R. S. K. Mong, D. J. Clarke, J. Alicea, N. H. Lindner, P. Fendley, C. Nayak, Y. Oreg, A. Stern, E. Berg, K. Sht- engel, and M. P. A. Fisher, Universal topological quan- tum computation from a supercon 2014
[5] F. Amet, C. T. Ke, I. V. Borzenets, J. Wang, K. Watan- abe, T. Taniguchi, R. S. Deacon, M. Yamamoto, Y. Bomze, S. Tarucha, and G. Finkelstein, Supercurrent in the quantum hall regime, Science352, 966 2016
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First computed 2026-05-20T00:05:59.421117Z
Builder pith-number-builder-2026-05-17-v1
Signature Pith Ed25519 (pith-v1-2026-05) · public key
Schema pith-number/v1.0

Canonical hash

c6e9e51d6c4eb5c76efdb4afa87f349eafe2a3b908e30011818b0ac5a7ca2c16

Aliases

arxiv: 2605.18411 · arxiv_version: 2605.18411v1 · doi: 10.48550/arxiv.2605.18411 · pith_short_12: Y3U6KHLMJ224 · pith_short_16: Y3U6KHLMJ224O3X5 · pith_short_8: Y3U6KHLM
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curl -sH 'Accept: application/ld+json' https://pith.science/pith/Y3U6KHLMJ224O3X5WSX2Q7ZUT2 \
  | jq -c '.canonical_record' \
  | python3 -c "import sys,json,hashlib; b=json.dumps(json.loads(sys.stdin.read()), sort_keys=True, separators=(',',':'), ensure_ascii=False).encode(); print(hashlib.sha256(b).hexdigest())"
# expect: c6e9e51d6c4eb5c76efdb4afa87f349eafe2a3b908e30011818b0ac5a7ca2c16
Canonical record JSON
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    "license": "http://creativecommons.org/licenses/by/4.0/",
    "primary_cat": "cond-mat.mes-hall",
    "submitted_at": "2026-05-18T13:49:56Z",
    "title_canon_sha256": "2445b02598ce2a309d19b5da53f30097ea15ddf060bfe41ad39fceecc8bf478b"
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