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Max Teubner

Publications and source records attributed to Max Teubner.

3 recordsLinked to original sources

Transition probabilities of a string oscillator subject to impulsive collisions with a heavy mass point.

Impulsive linear collisions between a string oscillator (a one-dimensional particle in a box) and a mass point are studied quantum mechanically. In the limit of a very heavy mass point (which corresponds classically to many collisions during a single encounter) the transition probabilities are determined exactly. The result permits a discussion of the mixed quantum-classical regime where the collider becomes almost classical while the oscillator remains quantum mechanical. While the average transition probabilities P(m-->n) are well reproduced by the Ehrenfest mean-field approximation, the prediction for the superimposed high-frequency resonance structure is qualitatively wrong for a genuine quantum oscillator. Only if the oscillator is also almost classical and if (m-n)2 square root(mu) << m, where mu is the mass ratio collider/oscillator, this structure is correctly predicted by the Ehrenfest approximation.

Chemistry, Physical↗

Asymptotics of distorted-wave matrix elements for strongly singular potentials.

A simple and asymptotically exact relation is derived for the ratio of the quantum matrix element to its classical counterpart in the limit of large energy E' . The method is based on an idea from Landau and works for a large class of potentials including the Lennard-Jones and the exponential potential. The result should be of interest in problems where large energy transfer is involved. Examples are the high-frequency wings of collisionally broadened spectra, or vibrational energy transfer of high-frequency oscillators.

Journal Article↗

Correlation functions in classical gases at high frequency.

A general procedure is outlined to determine the exact asymptotic form of spectra in classical gases at high frequency. Examples are the force-force correlation or the velocity autocorrelation function of a tagged particle. For purely repulsive potentials of the form Ar(-n), the asymptotic spectra are proportional to omega(sigma)exp[-(omegatau)(nu)]. Exponent nu and time constant tau depend only on the interparticle potential, while exponent sigma depends in addition on the correlation studied. The analysis makes use of the fact that the high-frequency spectra are dominated by high-energy binary collisions. It is argued that for arbitrary potentials the spectra decay slower than exp(-constxomega(2/3)) and that the results are also relevant for dense fluids. The frequency range is estimated where quantum effects become important.

Journal Article↗