{"database":"biostudies-literature","file_versions":[],"scores":null,"additional":{"submitter":["Peng X"],"funding":["Ministry of Education - Singapore (MOE)","Ministry of Education - Singapore"],"pagination":["5895"],"full_dataset_link":["https://www.ebi.ac.uk/biostudies/studies/S-EPMC8501084"],"repository":["biostudies-literature"],"omics_type":["Unknown"],"volume":["12(1)"],"pubmed_abstract":["Creating atomically precise quantum architectures with high digital fidelity and desired quantum states is an important goal in a new era of quantum technology. The strategy of creating these quantum nanostructures mainly relies on atom-by-atom, molecule-by-molecule manipulation or molecular assembly through non-covalent interactions, which thus lack sufficient chemical robustness required for on-chip quantum device operation at elevated temperature. Here, we report a bottom-up synthesis of covalently linked organic quantum corrals (OQCs) with atomic precision to induce the formation of topology-controlled quantum resonance states, arising from a collective interference of scattered electron waves inside the quantum nanocavities. Individual OQCs host a series of atomic orbital-like resonan"],"journal":["Nature communications"],"pubmed_title":["Visualizing designer quantum states in stable macrocycle quantum corrals."],"pmcid":["PMC8501084"],"funding_grant_id":["R-143-000-B58-114","MOE2019-T2-2-044"],"pubmed_authors":["Peng X","Wu J","Mahalingam H","Jelinek P","Chi C","Su J","Dong S","Mutombo P","Telychko M","Ng PW","Rodin A","Lu J","Song S","Lyu P"],"additional_accession":[]},"is_claimable":false,"name":"Visualizing designer quantum states in stable macrocycle quantum corrals.","description":"Creating atomically precise quantum architectures with high digital fidelity and desired quantum states is an important goal in a new era of quantum technology. The strategy of creating these quantum nanostructures mainly relies on atom-by-atom, molecule-by-molecule manipulation or molecular assembly through non-covalent interactions, which thus lack sufficient chemical robustness required for on-chip quantum device operation at elevated temperature. Here, we report a bottom-up synthesis of covalently linked organic quantum corrals (OQCs) with atomic precision to induce the formation of topology-controlled quantum resonance states, arising from a collective interference of scattered electron waves inside the quantum nanocavities. Individual OQCs host a series of atomic orbital-like resonan","dates":{"release":"2021-01-01T00:00:00Z","publication":"2021 Oct","modification":"2025-04-22T07:56:00.217Z","creation":"2025-04-05T22:19:57.095Z"},"accession":"S-EPMC8501084","cross_references":{"pubmed":["34625542"],"doi":["10.1038/s41467-021-26198-8"]}}