Proton transfer in the complex H3N HCl catalyzed by encapsulation into a C60 Cage

Fang Ma, Zhi Ru Li, Hong Liang Xu, Zong Jun Li, Di Wu, Ze Sheng Li, Feng Long Gu

Research output: Contribution to journalArticlepeer-review

15 Citations (Scopus)

Abstract

We report proton transfer in the complex H3N HCi to form the ion pair NH4+Cl-, which is favored inside the C60 cage according to quantum chemical calculations. The results show that the NH4+Cl-@C60 is stable with an interaction energy of-2.78 kcal mol-1. Compared with the complex H3N HCl without proton transfer, it is found that the C60 cage plays the role of a catalyst for proton transfer. In NH4 +Cl-@C60 a negative charge area in the C 60 cage is near the cation NH4+ whereas a positive charge area is near the anion Cl-. Also, a confinement effect of the C60 cage is noticed, as the endohedral structure of. NH4+Cl- is more compact than the structure of NH4+Cl- in the gas-phase complex. These findings indicate that the catalysis by the C60 cage comes from two effects: 1) electrostatic inducement between the C60 cage and endohedral molecules and 2) the confinement effect that compresses endohedral molecular structures inside the C60 cage. In the infrared spectrum, it is found that the confinement effect of the cage can cause large blue shifts of the N-H stretching vibrations in NH4+Cl -@C60 compared with those in the NH4 +Cl-H2O complex.

Original languageEnglish
Pages (from-to)1112-1116
Number of pages5
JournalChemPhysChem
Volume10
Issue number7
DOIs
Publication statusPublished - 11 May 2009
Externally publishedYes

Keywords

  • Cage compounds
  • Calculations
  • Density functional
  • Fullerenes
  • IR spectroscopy
  • Proton transfer

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