{
  "$schema": "https://themachinepress.com/schemas/story-v1.schema.json",
  "schema_version": "1.0.0",
  "document_type": "machine_press_story",
  "story": {
    "story_id": "mp-2026-09-24-014",
    "source_story_id": "tmp-story-voltage-plasmonic-cavity-decoherence",
    "edition_id": "mp-2026-09-24-morning-0077",
    "edition_url": "https://themachinepress.com/edition/2026-09-24",
    "position": 14,
    "story_type": "dispatch",
    "section": "research",
    "editorial_classification": "editorial",
    "headline": "Voltage Quieted Loss in a Single-Molecule Cavity",
    "slug": "voltage-quieted-loss-in-a-single-molecule-cavity",
    "dek": "A simulated metal junction used bias to form an exciton while suppressing its loss channels.",
    "summary": "A simulated metal junction used bias to form an exciton while suppressing its loss channels.",
    "body_text": "A theoretical study of scanning-tunneling-microscope break junctions identifies applied voltage as a way to form an interfacial exciton through resonant transport while reducing its coupling to metallic loss channels. The plasmonic cavity retains tight confinement as the available modes shift moderately with voltage. The result proposes electrically tunable single-molecule strong-coupling control; it is not a reported experimental device.",
    "why_it_matters": "A simulated metal junction used bias to form an exciton while suppressing its loss channels.",
    "limitations": [
      "The result proposes electrically tunable single-molecule strong-coupling control; it is not a reported experimental device."
    ],
    "importance": 8,
    "canonical_url": "https://themachinepress.com/story/mp-2026-09-24-014/voltage-quieted-loss-in-a-single-molecule-cavity",
    "json_url": "https://themachinepress.com/story/mp-2026-09-24-014.json",
    "first_published_at": "2026-09-24T09:00:00.000-04:00",
    "modified_at": "2026-09-24T09:00:00.000-04:00",
    "content_status": "new",
    "is_carryover": false,
    "carryover_reason": null,
    "key_claims": [
      {
        "claim_id": "claim-mp-2026-09-24-014-001",
        "text": "A simulated metal junction used bias to form an exciton while suppressing its loss channels.",
        "source_ids": [
          "source-2026-09-24-014"
        ],
        "qualification": "The result proposes electrically tunable single-molecule strong-coupling control; it is not a reported experimental device."
      }
    ],
    "source_ids": [
      "source-2026-09-24-014"
    ],
    "tags": [
      "plasmonic cavities",
      "single molecules",
      "decoherence"
    ],
    "image_url": null,
    "corrections": []
  },
  "sources": [
    {
      "source_id": "source-2026-09-24-014",
      "title": "arXiv preprint 2609.28287",
      "publisher": "arXiv",
      "url": "https://arxiv.org/abs/2609.28287",
      "canonical_url": "https://arxiv.org/abs/2609.28287",
      "source_type": "primary_research",
      "is_primary_source": true,
      "published_at": "2026-09-23T11:35:10.000-04:00",
      "accessed_at": "2026-09-24T08:17:17.000-04:00",
      "supports_claim_ids": [
        "claim-mp-2026-09-24-014-001"
      ]
    }
  ],
  "corrections": [],
  "publisher": {
    "name": "The Machine Press",
    "url": "https://themachinepress.com",
    "description": "A daily newspaper for the age of artificial intelligence."
  },
  "cite_this_report": {
    "title": "Voltage Quieted Loss in a Single-Molecule Cavity",
    "publisher": "The Machine Press",
    "published_at": "2026-09-24T09:00:00.000-04:00",
    "canonical_url": "https://themachinepress.com/story/mp-2026-09-24-014/voltage-quieted-loss-in-a-single-molecule-cavity"
  }
}
