research

Trapping effects on the vibration-inversion-rotation motions of an ammonia molecule encapsulated in C60_{60} fullerene molecule

Abstract

The infrared bar-spectrum of a single ammonia molecule encapsulated in nano-cage C60_{60} fullerene molecule is modelled using the site inclusion model successfully applied to analyze spectra of CO2_2 isotopologues isolated in rare gas matrix. Calculations show that NH3_3 can rotate freely on a sphere of radius 0.184 A˚\text{\AA} around the site centre of the nano-cage and spin freely about its C3_3 symmetry axis. In the static field inside the cage degenerate ν3\nu_3 and ν4\nu_4 vibrational modes are blue shifted and split. When dynamic coupling with translational motion is considered, the spectral signature of the ν2\nu_2 mode is modified with a higher hindering barrier (2451 cm1^{-1}), an effective reduced mass (6.569 g.mol1^{-1}) and a longer tunneling time (55594 ps) for the fundamental level compared to gas-phase values (2047 cm1^{-1}), (2.563 g.mol1^{-1}) and (20.85 ps). As a result this mode is red shifted. Moreover, simulation shows that the changes in the bar-spectrum of the latter mode can be used to probe the temperature of the surrounding media in which fullerene is observed

    Similar works

    Full text

    thumbnail-image

    Available Versions

    Last time updated on 19/12/2019
    Last time updated on 12/11/2016