K. Onda et al., INTERATOMIC POTENTIALS OF TRIPLET S-RYDBERG SERIES OF HGNE AND HGAR VAN-DER-WAALS DIMERS, The Journal of chemical physics, 101(9), 1994, pp. 7290-7299
The optical-optical double resonance (OODR) spectra of Rydberg (3) Sig
ma(+) states of Hg(n(3)S(1))Ne (n=8-10) and Hg(8(3)S(1))Ar were measur
ed by using A and B states as intermediate states in the OODR process.
The interatomic potentials of three states of HgNe and one state of H
gAr were determined over a wide range of interatomic distance, R=3-7 A
ngstrom, by the analysis of the vibrational structure of their OODR sp
ectra. It was found that the potential shape varies sensitively with n
and converges to that of the ion core, HgNe+. Dissociation energies (
D-e) of the Rydberg states for the n=8, 9, and 10 were derived to be 2
09(2), 284(2), and 309(2) cm(-1), respectively. Using the quantum defe
ct orbital [G. Simons, J. Chem. Phys. 60, 645 (1974)], which represent
s a hydrogenic radial wave function for a Rydberg state with a given q
uantum defect, was introduced to interpret the characteristic n depend
ence of the interatomic potential. It was shown that the interatomic p
otential for the Rydberg states can be expressed by the sum of the ion
core potential, V-ion(R), and the repulsive potential, V-ex(R), which
originates mainly from the exchange repulsion between the Rydberg ele
ctron and the attached rare gas atom. The interatomic potential for Hg
(8(3)S(1))Ar, whose dissociation energy [D-e=1602(4) cm(-1)] is much d
eeper than that of Hg(8(3)S(1))Ne, was also interpreted consistently b
y expressing the potential as V-ion(R) + V-ex(R).