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Pith Number

pith:ZZ4VKUBW

pith:2026:ZZ4VKUBWFTOU2NXHTXFTBP24EY
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Correlated Quantum Phenomena in Confined Two-Dimensional Hexagonal Crystals

Tapash Chakraborty, Wenchen Luoa, Xiang Liua, Zheng Taoa

Quantum confinement in graphene and TMD quantum dots discretizes spectra and amplifies Coulomb interactions to stabilize correlated states.

arxiv:2603.16677 v2 · 2026-03-17 · cond-mat.mes-hall

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Record completeness

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2 Internet Archive
3 Author claim open · sign in to claim
4 Citations open
5 Replications open
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Claims

C1strongest claim

Externally imposed confinement in graphene- and TMD-based quantum dots leads to discrete electronic and excitonic spectra, where interaction effects are strongly amplified.

C2weakest assumption

That confinement dominates over disorder, substrate effects, and other environmental factors in real fabricated devices.

C3one line summary

Quantum confinement in 2D hexagonal crystals like graphene and TMDs produces discrete electronic and excitonic spectra with strongly amplified interactions that enable correlated quantum states.

References

226 extracted · 226 resolved · 0 Pith anchors

[1] Tkachov, Topological Quantum Materials: Con- cepts, Models, and Phenomena, Jenny Stanford Pub- lishing, 2022 2022
[2] T. Chakraborty, F. Peeters, U. Sivan, Nano-Physics and Bio-Electronics: A New Odyssey, Elsevier, 2002. 15 Nanoelectronics Flexible Transistors Valleytronic Photodetectors Large-area Electronics Quantu 2002
[3] K. von Klitzing, T. Chakraborty, P . Kim, V . Madhavan, X. Dai, J. McIver, Y . Tokura, L. Savary, D. Smirnova, A. M. Rey, et al., 40 years of the quantum Hall e ffect, Nat. Rev. Phys. 2 (8) (2020) 397– 2020 · doi:10.1038/s42254-020-0209-1
[4] Chakraborty (Ed.), Encyclopedia of condensed matter physics (2nd Edition), Academic Press, Oxford, 2024 2024
[5] C. S. Gruber, M. Abdel-Hafiez, Interplay of electronic orders in topological quantum materials, ACS Mater. Au 5 (1) (2024) 72–87. doi:https://doi.org/10. 1021/acsmaterialsau.4c00114 2024

Formal links

2 machine-checked theorem links

Receipt and verification
First computed 2026-05-18T03:09:22.684243Z
Builder pith-number-builder-2026-05-17-v1
Signature Pith Ed25519 (pith-v1-2026-05) · public key
Schema pith-number/v1.0

Canonical hash

ce795550362cdd4d36e79dcb30bf5c263fb06d6ec99f700f5ef7da99f3181f08

Aliases

arxiv: 2603.16677 · arxiv_version: 2603.16677v2 · doi: 10.48550/arxiv.2603.16677 · pith_short_12: ZZ4VKUBWFTOU · pith_short_16: ZZ4VKUBWFTOU2NXH · pith_short_8: ZZ4VKUBW
Agent API
Verify this Pith Number yourself
curl -sH 'Accept: application/ld+json' https://pith.science/pith/ZZ4VKUBWFTOU2NXHTXFTBP24EY \
  | 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: ce795550362cdd4d36e79dcb30bf5c263fb06d6ec99f700f5ef7da99f3181f08
Canonical record JSON
{
  "metadata": {
    "abstract_canon_sha256": "776113a98d286d0d7b932e1a6fd724cd924b786bd2354bdbdccd9e525185dc6a",
    "cross_cats_sorted": [],
    "license": "http://arxiv.org/licenses/nonexclusive-distrib/1.0/",
    "primary_cat": "cond-mat.mes-hall",
    "submitted_at": "2026-03-17T15:41:53Z",
    "title_canon_sha256": "e74c8f6c8cd06582a2f2ec1fb3b282d6ef863fec908b9df73291441335054daf"
  },
  "schema_version": "1.0",
  "source": {
    "id": "2603.16677",
    "kind": "arxiv",
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  }
}