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Nanoscale π-conjugated ladders
Meißner, Stefanie A., Eder, Theresa, Keller, Tristan J., Hofmeister, David A., Spicher, Sebastian, Jester, Stefan-S., Vogelsang, Jan
, Grimme, Stefan, Lupton, John M.
und Höger, Sigurd
(2021)
Nanoscale π-conjugated ladders.
Nature communications 12, S. 6614.
Veröffentlichungsdatum dieses Volltextes: 23 Dez 2021 05:47
Artikel
DOI zum Zitieren dieses Dokuments: 10.5283/epub.51254
Zusammenfassung
Increasing the rigidity of a macromolecule while maintaining solubility is challenging. Here, the authors demonstrate covalent connection of two rigid-rod polymer chains with stiff connectors, leading to rigid ladder structures with well-defined conjugated rails. It is challenging to increase the rigidity of a macromolecule while maintaining solubility. Established strategies rely on templating ...
Increasing the rigidity of a macromolecule while maintaining solubility is challenging. Here, the authors demonstrate covalent connection of two rigid-rod polymer chains with stiff connectors, leading to rigid ladder structures with well-defined conjugated rails. It is challenging to increase the rigidity of a macromolecule while maintaining solubility. Established strategies rely on templating by dendrons, or by encapsulation in macrocycles, and exploit supramolecular arrangements with limited robustness. Covalently bonded structures have entailed intramolecular coupling of units to resemble the structure of an alternating tread ladder with rungs composed of a covalent bond. We introduce a versatile concept of rigidification in which two rigid-rod polymer chains are repeatedly covalently associated along their contour by stiff molecular connectors. This approach yields almost perfect ladder structures with two well-defined pi-conjugated rails and discretely spaced nanoscale rungs, easily visualized by scanning tunnelling microscopy. The enhancement of molecular rigidity is confirmed by the fluorescence depolarization dynamics and complemented by molecular-dynamics simulations. The covalent templating of the rods leads to self-rigidification that gives rise to intramolecular electronic coupling, enhancing excitonic coherence. The molecules are characterized by unprecedented excitonic mobility, giving rise to excitonic interactions on length scales exceeding 100 nm. Such interactions lead to deterministic single-photon emission from these giant rigid macromolecules, with potential implications for energy conversion in optoelectronic devices.
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Details
| Dokumentenart | Artikel | ||||
| Titel eines Journals oder einer Zeitschrift | Nature communications | ||||
| Verlag: | Nature | ||||
|---|---|---|---|---|---|
| Ort der Veröffentlichung: | BERLIN | ||||
| Band: | 12 | ||||
| Seitenbereich: | S. 6614 | ||||
| Datum | 16 November 2021 | ||||
| Institutionen | Physik > Institut für Experimentelle und Angewandte Physik > Lehrstuhl Professor Lupton > Arbeitsgruppe John Lupton | ||||
| Projekte |
Gefördert von:
Deutsche Forschungsgemeinschaft (DFG)
(314695032)
Gefördert von:
Deutsche Forschungsgemeinschaft (DFG)
(455731873)
| ||||
| Identifikationsnummer |
| ||||
| Stichwörter / Keywords | EXCITON LOCALIZATION; ENERGY-TRANSFER; POLYMER-CHAINS; CHROMOPHORES; STATE | ||||
| Dewey-Dezimal-Klassifikation | 500 Naturwissenschaften und Mathematik > 530 Physik 500 Naturwissenschaften und Mathematik > 540 Chemie | ||||
| Status | Veröffentlicht | ||||
| Begutachtet | Ja, diese Version wurde begutachtet | ||||
| An der Universität Regensburg entstanden | Zum Teil | ||||
| URN der UB Regensburg | urn:nbn:de:bvb:355-epub-512546 | ||||
| Dokumenten-ID | 51254 |
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