COMPLEMENTARITY IN GENERIC OPEN QUANTUM SYSTEMS

Author:

BANERJEE SUBHASHISH12,SRIKANTH R.23

Affiliation:

1. Chennai Mathematical Institute, Padur PO, Siruseri 603103, India

2. Raman Research Institute, Sadashiva Nagar, Bangalore 560 080, India

3. Poornaprajna Institute of Scientific Research, Sadashiva Nagar, Bangalore 560 080, India

Abstract

We develop a unified, information theoretic interpretation of the number-phase complementarity that is applicable both to finite-dimensional (atomic) and infinite-dimensional (oscillator) systems, with number treated as a discrete Hermitian observable and phase as a continuous positive operator valued measure (POVM). The relevant uncertainty principle is obtained as a lower bound on entropy excess, X, the difference between the entropy of one variable, typically the number, and the knowledge of its complementary variable, typically the phase, where knowledge of a variable is defined as its relative entropy with respect to the uniform distribution. In the case of finite-dimensional systems, a weighting of phase knowledge by a factor μ (> 1) is necessary in order to make the bound tight, essentially on account of the POVM nature of phase as defined here. Numerical and analytical evidence suggests that μ tends to 1 as the system dimension becomes infinite. We study the effect of non-dissipative and dissipative noise on these complementary variables for an oscillator as well as atomic systems.

Publisher

World Scientific Pub Co Pte Lt

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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