Hydrogen bond nature in formamide (CYHNH2···XH; YO, S, Se, Te; XF, HO, NH2) complexes at their ground and low‐lying excited states. (16th January 2014)
- Record Type:
- Journal Article
- Title:
- Hydrogen bond nature in formamide (CYHNH2···XH; YO, S, Se, Te; XF, HO, NH2) complexes at their ground and low‐lying excited states. (16th January 2014)
- Main Title:
- Hydrogen bond nature in formamide (CYHNH2···XH; YO, S, Se, Te; XF, HO, NH2) complexes at their ground and low‐lying excited states
- Authors:
- Bedoura, Sultana
Xi, Hong‐Wei
Lim, Kok Hwa - Abstract:
- <abstract abstract-type="main"> <title> <x xml:space="preserve">Abstract</x> </title> <p>A theoretical study on the nature of hydrogen bond for formamide and its heavy complexes (CYHNH<sub>2</sub>···XH; YO, S, Se, Te; XF, HO, NH<sub>2</sub>) was performed on the basis of density functional theory and the quantum chemistry analysis. Except for the CYHNH<sub>2</sub>···NH<sub>3</sub> complexes, the substitution of O atom at formamide with less electronegative atoms (S, Se, and Te) is found to weaken the hydrogen bond (H‐bond). This substitution results in cyclic structure of hydrated and ammoniated formamide complexes by the formation of bifunctional H‐bonds (Y···H<sub>4</sub>X; X···H<sub>3</sub>C). Natural bond orbital analysis indicates that the H‐bond is weakened because of less <named-content content-type="chemicalTechnology" xlink:type="simple" xmlns:xlink="http://www.w3.org/1999/xlink">charge transfer</named-content> from a lone pair orbital of H‐bond acceptor to antibonding orbital of H‐bond donor. The quantum theory of atoms in molecules analysis reveals that the acyclic structure with single H‐bond stabilizes the complexes more than the cyclic structure formed by bifunctional H‐bonds. Natural energy decomposition analysis (NEDA) and block‐localized wavefunction energy decomposition (BLW‐ED) analyses show that the H‐bond stabilization energies of NEDA and BLW‐ED have good correlation with the dissociation energy of formamide complexes and <named-content<abstract abstract-type="main"> <title> <x xml:space="preserve">Abstract</x> </title> <p>A theoretical study on the nature of hydrogen bond for formamide and its heavy complexes (CYHNH<sub>2</sub>···XH; YO, S, Se, Te; XF, HO, NH<sub>2</sub>) was performed on the basis of density functional theory and the quantum chemistry analysis. Except for the CYHNH<sub>2</sub>···NH<sub>3</sub> complexes, the substitution of O atom at formamide with less electronegative atoms (S, Se, and Te) is found to weaken the hydrogen bond (H‐bond). This substitution results in cyclic structure of hydrated and ammoniated formamide complexes by the formation of bifunctional H‐bonds (Y···H<sub>4</sub>X; X···H<sub>3</sub>C). Natural bond orbital analysis indicates that the H‐bond is weakened because of less <named-content content-type="chemicalTechnology" xlink:type="simple" xmlns:xlink="http://www.w3.org/1999/xlink">charge transfer</named-content> from a lone pair orbital of H‐bond acceptor to antibonding orbital of H‐bond donor. The quantum theory of atoms in molecules analysis reveals that the acyclic structure with single H‐bond stabilizes the complexes more than the cyclic structure formed by bifunctional H‐bonds. Natural energy decomposition analysis (NEDA) and block‐localized wavefunction energy decomposition (BLW‐ED) analyses show that the H‐bond stabilization energies of NEDA and BLW‐ED have good correlation with the dissociation energy of formamide complexes and <named-content content-type="chemicalTechnology" xlink:type="simple" xmlns:xlink="http://www.w3.org/1999/xlink">charge transfer</named-content> from donor to acceptor atom play an important role in H‐bonding. We have also studied the low‐lying electronic excited states (T<sub>1</sub>, T<sub>2</sub>, and S<sub>1</sub>) for CYHNH<sub>2</sub>···H<sub>2</sub>O complexes to explore the nature of H‐bond on the basis of electronegativity and found that NEDA also establishes a good correlation with relative electronic energy (with respect to their ground state) and H‐bond strength at their excited states. Copyright © 2014 John Wiley &amp; Sons, Ltd.</p> </abstract> … (more)
- Is Part Of:
- Journal of physical organic chemistry. Volume 27:Number 3(2014:Mar.)
- Journal:
- Journal of physical organic chemistry
- Issue:
- Volume 27:Number 3(2014:Mar.)
- Issue Display:
- Volume 27, Issue 3 (2014)
- Year:
- 2014
- Volume:
- 27
- Issue:
- 3
- Issue Sort Value:
- 2014-0027-0003-0000
- Page Start:
- 226
- Page End:
- 236
- Publication Date:
- 2014-01-16
- Subjects:
- Chemistry, Physical organic -- Periodicals
547.1 - Journal URLs:
- http://onlinelibrary.wiley.com/ ↗
- DOI:
- 10.1002/poc.3270 ↗
- Languages:
- English
- ISSNs:
- 0894-3230
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5036.211000
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 3645.xml