Ihre E-Mail wurde erfolgreich gesendet. Bitte prüfen Sie Ihren Maileingang.

Leider ist ein Fehler beim E-Mail-Versand aufgetreten. Bitte versuchen Sie es erneut.

Vorgang fortführen?

Exportieren
  • 1
    Online-Ressource
    Online-Ressource
    Royal Society of Chemistry (RSC) ; 2023
    In:  Inorganic Chemistry Frontiers Vol. 10, No. 17 ( 2023), p. 5026-5034
    In: Inorganic Chemistry Frontiers, Royal Society of Chemistry (RSC), Vol. 10, No. 17 ( 2023), p. 5026-5034
    Kurzfassung: Crown-ether-based molecular rotors, as a significant branch of artificial molecular machines, have garnered substantial attention since the announcement of the 2016 Nobel Prize in Chemistry. However, their optical and electric properties deteriorate generally with increasing temperature due to dynamic molecular motion, which poses a significant hindrance to their widespread commercial application. Herein, under the guidance of precise molecular modification strategies, a molecular rotator, [(Me 2 N(CH 2 ) 2 NH 3 )(18-crown-6)]ClO 4 ([( N , N -dimethylethylenediammonium)(18-crown-6)]ClO 4 ), is successfully constructed. Intriguingly, the thermally activated dynamic motions of the molecular rotator lead to an infrequent polar-to-polar ( Pca 2 1 -to- Cmc 2 1 ) phase transition, accompanied by a significant enhancement in the electric and optical properties. Notably, in its high-temperature phase, the second harmonic generation (SHG) intensity even surpasses that of potassium dihydrogen phosphate (KDP), while the piezoelectric coefficient d 33 (∼20 pC N −1 ) outperforms the majority of reported analogs. This phenomenon is comprehensively investigated through crystallographic physics theory and simulation calculations. Furthermore, the energy harvesting device was successfully prepared to validate its piezoelectricity, and one ‘SEU’-shaped light-emitting diode (LED) was successfully lit by harvesting mechanical energy. This work conducts a systematic experiment, in-depth theoretical analysis and first-principles calculation, thus paving the way for designing and constructing further artificial molecular machines with exceptional performance.
    Materialart: Online-Ressource
    ISSN: 2052-1553
    Sprache: Englisch
    Verlag: Royal Society of Chemistry (RSC)
    Publikationsdatum: 2023
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
    BibTip Andere fanden auch interessant ...
Schließen ⊗
Diese Webseite nutzt Cookies und das Analyse-Tool Matomo. Weitere Informationen finden Sie auf den KOBV Seiten zum Datenschutz