ub.xmlui.mirage2.page-structure.muninLogoub.xmlui.mirage2.page-structure.openResearchArchiveLogo
    • EnglishEnglish
    • norsknorsk
  • Velg spraaknorsk 
    • EnglishEnglish
    • norsknorsk
  • Administrasjon/UB
Vis innførsel 
  •   Hjem
  • Fakultet for naturvitenskap og teknologi
  • Institutt for kjemi
  • Artikler, rapporter og annet (kjemi)
  • Vis innførsel
  •   Hjem
  • Fakultet for naturvitenskap og teknologi
  • Institutt for kjemi
  • Artikler, rapporter og annet (kjemi)
  • Vis innførsel
JavaScript is disabled for your browser. Some features of this site may not work without it.

Open-ended response theory with polarizable embedding: multiphoton absorption in biomolecular systems

Permanent lenke
https://hdl.handle.net/10037/10211
DOI
https://doi.org/10.1039/C6CP05297E
Thumbnail
Åpne
article.pdf (2.538Mb)
(PDF)
Dato
2016-09-19
Type
Journal article
Tidsskriftartikkel
Peer reviewed

Forfatter
Steindal, Arnfinn Hykkerud; Beerepoot, Maarten; Ringholm, Magnus; List, Nanna Holmgaard; Ruud, Kenneth; Kongsted, Jacob; Olsen, Jógvan Magnus Haugaard
Sammendrag
We present the theory and implementation of an open-ended framework for electric response properties at the level of Hartree–Fock and Kohn–Sham density functional theory that includes effects from the molecular environment modeled by the polarizable embedding (PE) model. With this new state-of-the-art multiscale functionality, electric response properties to any order can be calculated for molecules embedded in polarizable atomistic molecular environments ranging from solvents to complex heterogeneous macromolecules such as proteins. In addition, environmental effects on multiphoton absorption (MPA) properties can be studied by evaluating single residues of the response functions. The PE approach includes mutual polarization effects between the quantum and classical parts of the system through induced dipoles that are determined self-consistently with respect to the electronic density. The applicability of our approach is demonstrated by calculating MPA strengths up to four-photon absorption for the green fluorescent protein. We show how the size of the quantum region, as well as the treatment of the border between the quantum and classical regions, is crucial in order to obtain reliable MPA predictions.
Beskrivelse
This article is licensed under a Creative Commons Attribution 3.0 Unported Licence.
DOI: 10.1039/C6CP05297E
Forlag
Royal Society of Chemistry
Sitering
Physical Chemistry, Chemical Physics - PCCP 2016, 18(40):28339-28352
Metadata
Vis full innførsel
Samlinger
  • Artikler, rapporter og annet (kjemi) [565]

Bla

Bla i hele MuninEnheter og samlingerForfatterlisteTittelDatoBla i denne samlingenForfatterlisteTittelDato
Logg inn

Statistikk

Antall visninger
UiT

Munin bygger på DSpace

UiT Norges Arktiske Universitet
Universitetsbiblioteket
uit.no/ub - munin@ub.uit.no

Tilgjengelighetserklæring