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Title: H 2 O inside the fullerene C 60 : Inelastic neutron scattering spectrum from rigorous quantum calculations
We present a methodology that, for the first time, allows rigorous quantum calculation of the inelastic neutron scattering (INS) spectra of a triatomic molecule in a nanoscale cavity, in this case, H2O inside the fullerene C60. Both moieties are taken to be rigid. Our treatment incorporates the quantum six-dimensional translation–rotation (TR) wave functions of the encapsulated H2O, which serve as the spatial parts of the initial and final states of the INS transitions. As a result, the simulated INS spectra reflect the coupled TR dynamics of the nanoconfined guest molecule. They also exhibit the features arising from symmetry breaking observed for solid H2O@C60at low temperatures. Utilizing this methodology, we compute the INS spectra of H2O@C60for two incident neutron wavelengths and compare them with the corresponding experimental spectra. Good overall agreement is found, and the calculated spectra provide valuable additional insights.  more » « less
Award ID(s):
2054616 2054604
PAR ID:
10364402
Author(s) / Creator(s):
 ;  ;  
Publisher / Repository:
American Institute of Physics
Date Published:
Journal Name:
The Journal of Chemical Physics
Volume:
156
Issue:
12
ISSN:
0021-9606
Page Range / eLocation ID:
Article No. 124101
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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