The state of helium inside the fullerene
The problem of the motion of a helium atom inside a fullerene molecule at ultralow temperatures is considered. The solution of the Schrödinger equation is obtained using special functions and numerical methods. The potential energy of interaction of a fullerene particle with a helium atom is calculated by integrating the modified Lennard-Jones potential over the idealized surface of a hollow nanoparticle. As a result of calculations, the regions of the most probable localization of an atomic particle in the n, m, kn state inside the C60 fullerene were found and visualized.
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Keywords
quantum rotator, fullerene, wave dynamics, Schrödinger equationAuthors
Name | Organization | |
Poteryaeva V.A. | National Research Tomsk State University | valentina.poteryaeva@gmail.com |
Bubenchikov M.A. | National Research Tomsk State University | m.bubenchikov@gtt.gazprom.ru |
Bubenchikov A.M. | National Research Tomsk State University | bubenchikov_am@mail.ru |
Potekaev A.I. | National Research Tomsk State University | potekaev@spti.tsu.ru |
Kaparulin D.S. | National Research Tomsk State University | dsc@phys.tsu.ru |
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