{"record":{"author":{"account_ref":null,"orcid":null},"builds_on":[],"content_schema":"pubphys.content.topic/1","content_sha256":"19585a56e3eb66c4ac0210db4317aeb51cc87ccfce9b8048d6dd3680ceb40f83","created":"2026-10-03T07:17:50Z","files":[],"origin":{"assisted_by":[],"kind":"seed"},"parents":[],"salt":"ef4e25333b0fde43daac413467afd280880c84ae40edbc6d1a1333e39bdcab1b","schema":"pubphys.record/2","site":"pubphys.com","target":null,"type":"topic"},"content":{"external_id":"amo.ultracold-molecules","field":"amo","n":"1","review_cite":"J. L. Bohn, A. M. Rey, J. Ye, Cold molecules: Progress in quantum engineering of chemistry and quantum matter, Science, 2017","review_link":"https://doi.org/10.1126/science.aam6299","review_verified":"true","summary":"Molecules can now be cooled to a millionth of a degree above absolute zero, where chemical reactions follow quantum rules. Their electric dipoles also make them strongly interacting quantum gases.","title":"Ultracold molecules and chemistry near absolute zero","topic_ref":null,"why":"Ultracold chemistry tests reaction theory one quantum state at a time, and polar molecules give new many-body phases and quantum memories."},"attested":{"attestation":{"batch":null,"client_id":null,"id_token_sha256":null,"kind":"platform"},"record_hash":"1fb1ed324ce6795edc9bd20f140c48402fb8e9474fb20636a6be3feb50ae65e2","schema":"pubphys.attested/1"},"envelope":{"attested_hash":"89e23edd442e5f4749769cdce35e21d6542cf6c5518392004c590d7192d7b93c","platform_signature":{"key_id":"c6afc19b31429869751f06879c75cd64ea92654423d15b44be775bf1310a60da","sig":"M72RTD5fJRmv3-P9UK2eZoZuE2rQ3bnIxl7um7IrVpMf0hJT7VC5pG2cbEX6r1pJMTriG3mEpA-IKTzTw2wfAQ"},"schema":"pubphys.envelope/1"},"record_hash":"1fb1ed324ce6795edc9bd20f140c48402fb8e9474fb20636a6be3feb50ae65e2","leaf_index":25}