{"record_type":"pith_number_record","schema_url":"https://pith.science/schemas/pith-number/v1.json","pith_number":"pith:2024:7SDL7HIZU62OPL2MQQE2EHBBZV","short_pith_number":"pith:7SDL7HIZ","schema_version":"1.0","canonical_sha256":"fc86bf9d19a7b4e7af4c8409a21c21cd6e70e2f9e8b4511ec460196f9559bbbf","source":{"kind":"arxiv","id":"2409.11834","version":2},"attestation_state":"computed","paper":{"title":"Unconventional gate-induced superconductivity in transition-metal dichalcogenides","license":"http://creativecommons.org/licenses/by/4.0/","headline":"","cross_cats":[],"primary_cat":"cond-mat.supr-con","authors_text":"Alberto F. Morpurgo, Ivar Martin, Marco Gibertini, Thibault Sohier","submitted_at":"2024-09-18T09:35:47Z","abstract_excerpt":"Superconductivity in few-layer semiconducting transition metal dichalcogenides (TMDs) can be induced by field-effect doping through ionic-liquid gating. While several experimental observations have been collected over the years, a fully-consistent theoretical picture is still missing. Here we develop a realistic framework that combines the predictive power of first-principles simulations with the versatility and insight of Bardeen-Cooper-Schrieffer gap equations to rationalize such experiments. The multi-valley nature of semiconducting TMDs is taken into account, together with the doping- and "},"verification_status":{"content_addressed":true,"pith_receipt":true,"author_attested":false,"weak_author_claims":0,"strong_author_claims":0,"externally_anchored":false,"storage_verified":false,"citation_signatures":0,"replication_records":0,"graph_snapshot":true,"references_resolved":false,"formal_links_present":false},"canonical_record":{"source":{"id":"2409.11834","kind":"arxiv","version":2},"metadata":{"license":"http://creativecommons.org/licenses/by/4.0/","primary_cat":"cond-mat.supr-con","submitted_at":"2024-09-18T09:35:47Z","cross_cats_sorted":[],"title_canon_sha256":"3ce87787ca8c934e5524542ea6d452674c8c24467b71bb2e26e5c4f1ac71c10d","abstract_canon_sha256":"32d1a4009272bf9f6a1fa7217d3f226a74df7dedbe73a5ec8987c31d30c27966"},"schema_version":"1.0"},"receipt":{"kind":"pith_receipt","key_id":"pith-v1-2026-05","algorithm":"ed25519","signed_at":"2026-07-05T09:10:04.881119Z","signature_b64":"U8i7JC3HNapY3afY7ePuiAIKdqTJBg/+PNiXsyf6YcrVa4OXDy4YUWsSx3MjTHwgWPGmp2quYYqAJUjR5ShjAw==","signed_message":"canonical_sha256_bytes","builder_version":"pith-number-builder-2026-05-17-v1","receipt_version":"0.3","canonical_sha256":"fc86bf9d19a7b4e7af4c8409a21c21cd6e70e2f9e8b4511ec460196f9559bbbf","last_reissued_at":"2026-07-05T09:10:04.880651Z","signature_status":"signed_v1","first_computed_at":"2026-07-05T09:10:04.880651Z","public_key_fingerprint":"8d4b5ee74e4693bcd1df2446408b0d54"},"graph_snapshot":{"paper":{"title":"Unconventional gate-induced superconductivity in transition-metal dichalcogenides","license":"http://creativecommons.org/licenses/by/4.0/","headline":"","cross_cats":[],"primary_cat":"cond-mat.supr-con","authors_text":"Alberto F. Morpurgo, Ivar Martin, Marco Gibertini, Thibault Sohier","submitted_at":"2024-09-18T09:35:47Z","abstract_excerpt":"Superconductivity in few-layer semiconducting transition metal dichalcogenides (TMDs) can be induced by field-effect doping through ionic-liquid gating. While several experimental observations have been collected over the years, a fully-consistent theoretical picture is still missing. Here we develop a realistic framework that combines the predictive power of first-principles simulations with the versatility and insight of Bardeen-Cooper-Schrieffer gap equations to rationalize such experiments. The multi-valley nature of semiconducting TMDs is taken into account, together with the doping- and "},"claims":{"count":0,"items":[],"snapshot_sha256":"258153158e38e3291e3d48162225fcdb2d5a3ed65a07baac614ab91432fd4f57"},"source":{"id":"2409.11834","kind":"arxiv","version":2},"verdict":{"id":null,"model_set":{},"created_at":null,"strongest_claim":"","one_line_summary":"","pipeline_version":null,"weakest_assumption":"","pith_extraction_headline":""},"integrity":{"clean":true,"summary":{"advisory":0,"critical":0,"by_detector":{},"informational":0},"endpoint":"/pith/2409.11834/integrity.json","findings":[],"available":true,"detectors_run":[],"snapshot_sha256":"c28c3603d3b5d939e8dc4c7e95fa8dfce3d595e45f758748cecf8e644a296938"},"references":{"count":0,"sample":[],"resolved_work":0,"snapshot_sha256":"258153158e38e3291e3d48162225fcdb2d5a3ed65a07baac614ab91432fd4f57","internal_anchors":0},"formal_canon":{"evidence_count":0,"snapshot_sha256":"258153158e38e3291e3d48162225fcdb2d5a3ed65a07baac614ab91432fd4f57"},"author_claims":{"count":0,"strong_count":0,"snapshot_sha256":"258153158e38e3291e3d48162225fcdb2d5a3ed65a07baac614ab91432fd4f57"},"builder_version":"pith-number-builder-2026-05-17-v1"},"aliases":[{"alias_kind":"arxiv","alias_value":"2409.11834","created_at":"2026-07-05T09:10:04.880710+00:00"},{"alias_kind":"arxiv_version","alias_value":"2409.11834v2","created_at":"2026-07-05T09:10:04.880710+00:00"},{"alias_kind":"doi","alias_value":"10.48550/arxiv.2409.11834","created_at":"2026-07-05T09:10:04.880710+00:00"},{"alias_kind":"pith_short_12","alias_value":"7SDL7HIZU62O","created_at":"2026-07-05T09:10:04.880710+00:00"},{"alias_kind":"pith_short_16","alias_value":"7SDL7HIZU62OPL2M","created_at":"2026-07-05T09:10:04.880710+00:00"},{"alias_kind":"pith_short_8","alias_value":"7SDL7HIZ","created_at":"2026-07-05T09:10:04.880710+00:00"}],"events":[],"event_summary":{},"paper_claims":[],"inbound_citations":{"count":1,"internal_anchor_count":1,"sample":[{"citing_arxiv_id":"2412.02822","citing_title":"Understanding the origin of superconducting dome in electron-doped MoS$_2$ monolayer","ref_index":83,"is_internal_anchor":true}]},"formal_canon":{"evidence_count":0,"sample":[],"anchors":[]},"links":{"html":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV","json":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV.json","graph_json":"https://pith.science/api/pith-number/7SDL7HIZU62OPL2MQQE2EHBBZV/graph.json","events_json":"https://pith.science/api/pith-number/7SDL7HIZU62OPL2MQQE2EHBBZV/events.json","paper":"https://pith.science/paper/7SDL7HIZ"},"agent_actions":{"view_html":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV","download_json":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV.json","view_paper":"https://pith.science/paper/7SDL7HIZ","resolve_alias":"https://pith.science/api/pith-number/resolve?arxiv=2409.11834&json=true","fetch_graph":"https://pith.science/api/pith-number/7SDL7HIZU62OPL2MQQE2EHBBZV/graph.json","fetch_events":"https://pith.science/api/pith-number/7SDL7HIZU62OPL2MQQE2EHBBZV/events.json","actions":{"anchor_timestamp":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV/action/timestamp_anchor","attest_storage":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV/action/storage_attestation","attest_author":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV/action/author_attestation","sign_citation":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV/action/citation_signature","submit_replication":"https://pith.science/pith/7SDL7HIZU62OPL2MQQE2EHBBZV/action/replication_record"}},"created_at":"2026-07-05T09:10:04.880710+00:00","updated_at":"2026-07-05T09:10:04.880710+00:00"}