Complex-scaling generalized pseudospectral method for quasienergy resonance states in two-center systems: Application to the Floquet study of charge resonance enhanced multiphoton ionization of molecular ions in intense low-frequency laser fields
Author(s) -
Xi Chu,
ShihI Chu
Publication year - 2000
Publication title -
physical review a
Language(s) - English
Resource type - Journals
eISSN - 1094-1622
pISSN - 1050-2947
DOI - 10.1103/physreva.63.013414
Subject(s) - physics , floquet theory , ionization , atomic physics , hamiltonian (control theory) , resonance (particle physics) , excited state , prolate spheroidal coordinates , ion , quantum mechanics , mathematical optimization , orthogonal coordinates , mathematics , nonlinear system
We present a complex-scaling generalized pseudospectral method for accurate and efficient treatment of resonance states in two-center molecular systems, involving optimal nonuniform grid discretization of the Hamiltonian in prolate spheroidal coordinates. The procedure is applied to the first converged non-Hermitian Floquet study of multiphoton ionization of molecular ions in intense low-frequency ~1064 nm! laser fields. We explore the underlying mechanism responsible for the ionization enhancement of H2 1 at some critical inter- nuclear distances. Several features of the complex quasienergy states are observed. A detailed analysis of the nature and dynamical behavior of these quasienergy states reveals that the ionization enhancement is mainly due to the effect of charge-resonance-enhanced multiphoton resonances of the 1 s g and 1s u states with excited electronic states at some particular internuclear distances. These ''critical'' distances depend on the details of molecular electronic structure and the laser frequency and intensity used in the study.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom