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Phys. Rev. A 69, 042702 (2004) [12 pages]

General time-dependent formulation of quantum scattering theory

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Stuart C. Althorpe*
Department of Chemistry, University of Exeter, Stocker Road, Exeter EX4 4QD, United Kingdom

Received 15 November 2003; published 2 April 2004

We derive and explain the key ideas behind a time-dependent formulation of quantum scattering theory, applicable generally to systems with a finite-range scattering potential. The scattering is initiated and probed by plane wave packets, which are localized just outside the range of the potential. The asymptotic limits of conventional scattering theory (initiation in the remote past; detection in the remote future) are not taken. Instead, the differential cross section (DCS) is obtained by projecting the scattered wave packet onto the probe plane wave packets. The projection also yields a time-dependent version of the DCS. Cuts through the wave packet, just as it exits the scattering potential, yield time-dependent and time-independent angular distributions that give a close-up picture of the scattering which complements the DCS. We have previously applied the theory to interpret experimental cross sections of chemical reactions [ S. C. Althorpe, F. Fernández-Alonso, B. D. Bean, J. D. Ayers, A. E. Pomerantz, R. N. Zare and E. Wrede Nature (London) 416 67 (2002)]. This paper gives the derivation of the theory, and explains its relation to conventional scattering theory. For clarity, the derivation is restricted to spherical-particle scattering, though it may readily be extended to general multichannel systems. We illustrate the theory using a simple application to hard-sphere scattering.

© 2004 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.69.042702
DOI:
10.1103/PhysRevA.69.042702
PACS:
34.10.+x, 34.50.−s, 34.50.Lf, 34.80.−i

*Email address: s.c.althorpe@ex.ac.uk; URL: http:∕∕www.ex.ac.uk∕∼scalthor