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  • Lischka, Hans  (2)
  • Biologie  (2)
  • 1
    In: Photochemistry and Photobiology, Wiley, Vol. 93, No. 6 ( 2017-11), p. 1356-1367
    Kurzfassung: Semiclassical ab initio simulations of the absorption spectra of neutral and anionic p ‐hydroxybenzylidene‐2,3‐dimethylimidazolinone ( p ‐ HBDI ), a model chromophore of green fluorescent protein ( GFP ) and of a positively charged neutral (N+)‐ HBDI chromophore model, were performed in gas phase with the resolution‐of‐identity algebraic diagrammatic construction through second‐order ( RI ‐ ADC (2)) method. The calculated absorption spectra in gas phase are composed of one band centered at 3.51 eV ( HBDI ), 2.50 eV ( HBDI − ) and 3.02 eV ((N+)‐ HBDI ) owing to the absorption of the first 1 ππ * transition. Band maxima are redshifted by ~0.1 eV with respect to the corresponding vertical energies. The COSMO ‐ RI ‐ ADC (2) calculations of the first vertical excitation energy of HBDI , HBDI − and (N+)‐ HBDI forms in polar solution including microsolvation simulate the observed solvent redshift for neutral HBDI and the solvent blueshift of the HBDI − and (N+)‐ HBDI forms. The state‐specific solvation approach applied to TDDFT calculations reproduced the experimental solvent shifts for the three HBDI forms, demonstrating a more accurate theoretical description as compared to the linear‐response TDDFT approach.
    Materialart: Online-Ressource
    ISSN: 0031-8655 , 1751-1097
    URL: Issue
    RVK:
    Sprache: Englisch
    Verlag: Wiley
    Publikationsdatum: 2017
    ZDB Id: 2048860-9
    SSG: 12
    Standort Signatur Einschränkungen Verfügbarkeit
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  • 2
    Online-Ressource
    Online-Ressource
    Proceedings of the National Academy of Sciences ; 2010
    In:  Proceedings of the National Academy of Sciences Vol. 107, No. 50 ( 2010-12-14), p. 21453-21458
    In: Proceedings of the National Academy of Sciences, Proceedings of the National Academy of Sciences, Vol. 107, No. 50 ( 2010-12-14), p. 21453-21458
    Kurzfassung: A comprehensive effort in photodynamical ab initio simulations of the ultrafast deactivation pathways for all five nucleobases adenine, guanine, cytosine, thymine, and uracil is reported. These simulations are based on a complete nonadiabatic surface-hopping approach using extended multiconfigurational wave functions. Even though all five nucleobases share the basic internal conversion mechanisms, the calculations show a distinct grouping into purine and pyrimidine bases as concerns the complexity of the photodynamics. The purine bases adenine and guanine represent the most simple photodeactivation mechanism with the dynamics leading along a diabatic ππ* path directly and without barrier to the conical intersection seam with the ground state. In the case of the pyrimidine bases, the dynamics starts off in much flatter regions of the ππ* energy surface due to coupling of several states. This fact prohibits a clear formation of a single reaction path. Thus, the photodynamics of the pyrimidine bases is much richer and includes also nπ* states with varying importance, depending on the actual nucleobase considered. Trapping in local minima may occur and, therefore, the deactivation time to the ground state is also much longer in these cases. Implications of these findings are discussed ( i ) for identifying structural possibilities where singlet/triplet transitions can occur because of sufficient retention time during the singlet dynamics and ( ii ) concerning the flexibility of finding other deactivation pathways in substituted pyrimidines serving as candidates for alternative nucleobases.
    Materialart: Online-Ressource
    ISSN: 0027-8424 , 1091-6490
    RVK:
    RVK:
    Sprache: Englisch
    Verlag: Proceedings of the National Academy of Sciences
    Publikationsdatum: 2010
    ZDB Id: 209104-5
    ZDB Id: 1461794-8
    SSG: 11
    SSG: 12
    Standort Signatur Einschränkungen Verfügbarkeit
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