State-Specified Protonium Formation in Low-Energy Antiproton–Hydrogen-Atom Collisions
Author(s) -
XiaoMin Tong,
K. Hino,
Naoki Toshima
Publication year - 2006
Publication title -
physical review letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.688
H-Index - 673
eISSN - 1079-7114
pISSN - 0031-9007
DOI - 10.1103/physrevlett.97.243202
Subject(s) - physics , wave function , antiproton , scattering , hydrogen atom , function (biology) , atom (system on chip) , quantum mechanics , angular momentum , momentum (technical analysis) , energy (signal processing) , boundary value problem , scattering length , principal quantum number , collision , boundary (topology) , quantum number , quantum , proton , mathematical analysis , mathematics , computer science , finance , evolutionary biology , quantum dissipation , economics , group (periodic table) , biology , embedded system , computer security
We calculate state-specified protonium-formation cross sections in low-energy antiproton–hydrogen-atom collisions by solving the Chew-Goldberger–type integral equation directly instead of integrating the traditional differential scattering equation. Separating the incident wave from the total wave function, we calculate only the scattered outgoing wave propagated by the Green function. The scattering boundary condition is hence automatically satisfied without the tedious procedure of adjusting the wave function at the asymptotic region. The formed protonium atoms tend to be distributed in higher angular momentum [script-l] and higher principle quantum number n states as the collision energy increases. The present method has the advantage over the traditional ones in the sense that the required memory size and the computational time are much smaller, and accordingly the problem can be solved with higher accuracy
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