Full S matrix calculation via a single real-symmetric Lanczos recursion: The Lanczos artificial boundary inhomogeneity method


Autoria(s): Zhang, H.; Smith, S. C.
Data(s)

01/01/2004

Resumo

We present an efficient and robust method for the calculation of all S matrix elements (elastic, inelastic, and reactive) over an arbitrary energy range from a single real-symmetric Lanczos recursion. Our new method transforms the fundamental equations associated with Light's artificial boundary inhomogeneity approach [J. Chem. Phys. 102, 3262 (1995)] from the primary representation (original grid or basis representation of the Hamiltonian or its function) into a single tridiagonal Lanczos representation, thereby affording an iterative version of the original algorithm with greatly superior scaling properties. The method has important advantages over existing iterative quantum dynamical scattering methods: (a) the numerically intensive matrix propagation proceeds with real symmetric algebra, which is inherently more stable than its complex symmetric counterpart; (b) no complex absorbing potential or real damping operator is required, saving much of the exterior grid space which is commonly needed to support these operators and also removing the associated parameter dependence. Test calculations are presented for the collinear H+H-2 reaction, revealing excellent performance characteristics. (C) 2004 American Institute of Physics.

Identificador

http://espace.library.uq.edu.au/view/UQ:72275

Idioma(s)

eng

Publicador

American Institute of Physics

Palavras-Chave #Physics, Atomic, Molecular & Chemical #Subspace Filter Diagonalization #Reactive Scattering #Quantum #Dynamics #Elements #C1 #250603 Reaction Kinetics and Dynamics #780103 Chemical sciences
Tipo

Journal Article