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Title: Statistical Theory of the Energy Levels of Complex Systems. I

Journal Article · · Journal of Mathematical Physics
DOI:https://doi.org/10.1063/1.1703773· OSTI ID:4801180

New kinds of statistical ensemble are defined, representing a mathematical idealization of the notion of all physical systems with equal probability.'' Three such ensembles are studied in detail, based mathematically upon the orthogonal, unitary, and symplectic groups. The orthogonal ensernble is relevant in most practical circumstances, the unitary ensemble applies only when time-reversal invariance is violated, and the symplectic ensemble applies only to odd-spin systems without rotational symmetry. The probability-distributions for the energy levels are calculated. Repulsion between neighboring levels is strongest in the symplectic ensemble and weakest in the orthogonal ensemble. An exact mathematical correspondence is found between these eigenvalue distributions and the statistscal mechanics of a one-dimensional classical Coulomb gas at three different temperatures. An unproved conjecture is put forward, expressing the thermodynamic variables of the Coulomb gas in closed analytic form as functions of temperature. By means of general group-theoretical argu- ,;-ments, the conjecture is proved for the three temperatures . which are directly relevant to the eigenvalue distribution problem. The electrostatic analog is exploited in order to deduce precise statements concerning the entropy, or degree of irregularity, of the eigenvalue distributions. (auth)

Research Organization:
Inst. for Advanced Study, Princeton, N.J.
Sponsoring Organization:
USDOE
NSA Number:
NSA-16-012473
OSTI ID:
4801180
Journal Information:
Journal of Mathematical Physics, Vol. 3, Issue 1; Other Information: Orig. Receipt Date: 31-DEC-62; ISSN 0022-2488
Publisher:
American Institute of Physics (AIP)
Country of Publication:
Country unknown/Code not available
Language:
English

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