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A Noncovalent Binding Strategy to Capture Noble Gases, Hydrogen and Nitrogen

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dc.contributor.author Suresh, C H
dc.contributor.author Neetha Mohan
dc.contributor.author Della, T D
dc.date.accessioned 2018-06-01T07:06:53Z
dc.date.available 2018-06-01T07:06:53Z
dc.date.issued 2018-06-05
dc.identifier.citation Journal of Computational Chemistry, 39(15):901-908 en_US
dc.identifier.uri http://10.10.100.66:8080/xmlui/handle/123456789/3074
dc.description.abstract A molecular design strategy to develop receptor systems for the entrapment of noble gases, H2 and N2 is described using M06L-D3/6-31111G(d,p)//M06L/6-31111G(d,p) DFT method. These receptors made with two-, three-, four- and fivefluorinated benzene cores, linked with methelene units viz. RI, RII, RIII and RIV as well as the corresponding non-fluorinated hydrocarbons viz. RIH, RIIH, RIIIH and RIVH show a steady and significant increase in binding energy (Eint) with increase in the number of aromatic rings in the receptor. A stabilizing “cage effect” is observed in the cyclophane type receptors RIV and RIVH which is 26–48% of total Eint for all except the larger sized Kr, Xe and N2 complexes. Eint of RIV. . .He, RIV. . .Ne, RIV. . .Ar, RIV. . .Kr, RIV. . .H2 and RIV. . .N2 is 4.89, 7.03, 6.49, 6.19, 8.57 and 8.17 kcal/mol, respectively which is 5- to9-fold higher than that of hexafluorobenzene. Similarly, compared to benzene, multiple fold increase in Eint is observed for RIVH receptors with noble gases, H2 and N2. Fluorination of the aromatic core has no significant impact on Eint ( 60.5 kcal/mol) for most of the systems with a notable exception of the cage receptor RIV for N2 where fluorination improves Eint by 1.61 kcal/mol. The Eint of the cage receptors may be projected as one of the highest interaction energy ranges reported for noble gases, H2 and N2 for a neutral carbon framework. Synthesis of such systems is promising in the study of molecules in confined environment. en_US
dc.language.iso en en_US
dc.publisher Wiley en_US
dc.subject aromatic receptors en_US
dc.subject cage effect en_US
dc.subject DFT calculations en_US
dc.subject noncovalent binding en_US
dc.title A Noncovalent Binding Strategy to Capture Noble Gases, Hydrogen and Nitrogen en_US
dc.type Article en_US


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    Journal Articles authored by NIIST researchers published in 2018

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