State-by-state assignment of the bending spectrum of acetylene at 15 000 cm(-1): A case study of quantum-classical correspondence

Citation
Mp. Jacobson et al., State-by-state assignment of the bending spectrum of acetylene at 15 000 cm(-1): A case study of quantum-classical correspondence, J CHEM PHYS, 111(2), 1999, pp. 600-618
Citations number
43
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF CHEMICAL PHYSICS
ISSN journal
00219606 → ACNP
Volume
111
Issue
2
Year of publication
1999
Pages
600 - 618
Database
ISI
SICI code
0021-9606(19990708)111:2<600:SAOTBS>2.0.ZU;2-8
Abstract
Techniques of quantum, semiclassical, and nonlinear classical mechanics are employed to investigate the bending dynamics of acetylene, as represented by a recently reported effective Hamiltonian [J. Chem. Phys. 109, 121 (1998 )], with particular emphasis on the dynamics near 15 000 cm(-1) of internal energy. At this energy, the classical mechanics associated with the bendin g system is profoundly different from that at low energy, where normal mode motions (trans and cis bend) dominate. Specifically, at 15 000 cm(-1), cla ssical chaos coexists with stable classical motions that are unrelated to t he normal mode motions; these high-energy stable bending motions include th ose that we call "local bend" (one hydrogen bending) and "counter-rotation" (the two hydrogens undergoing circular motion at opposite ends of the mole cule), as well as more complicated motions which can be considered hybrids of the local bend and counter-rotation motions. The vast majority of the be nding quantum eigenstates near 15 000 cm(-1) have nodal coordinates which c oincide with the stable periodic orbits, and thus can be assigned semiclass ical quantum numbers representing the number of nodes along the stable clas sical motions. (C) 1999 American Institute of Physics. [S0021-9606(99)00825 -9].