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      Effects of Non-Commutativity on Light-Hydrogen-Like Atoms and Proton Radius

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          Abstract

          We study the corrections induced by the theory of non-commutativity, in both space-space and space-time versions, on the spectrum of hydrogen-like atoms. For this, we use the relativistic theory of two-particle systems to take into account the effects of the reduced mass, and we use perturbation methods to study the effects of non-commutativity.We apply our study to the muon hydrogen with the aim to solve the puzzle of proton radius [R. Pohl et al., Nature 466, 213 (2010) and A. Antognini et al., Science 339, 417 (2013)]. The shifts in the spectrum are found more noticeable in muon H (muH) than in electron H (eH) because the corrections depend on the mass to the third power; This explains the discrepancy between muH and eH results. In space-space non-commutativity, the parameter required to resolve the puzzle Theta(ss) (0.35GeV)-2, exceeds the limit obtained for this parameter from various studies on eH Lamb shift. For space-time non-commutativity, the value Theta(st) (14.3GeV)-2 has been obtained and it is in agreement with the limit determined by Lamb shift spectroscopy in eH. We have also found that this value fills the gap between theory and experiment in the case of muD and improves the agreement between theoretical and experimental values in the case of hydrogen-deuterium isotope shift.

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          Noncommutative Field Theory

          We review the generalization of field theory to space-time with noncommuting coordinates, starting with the basics and covering most of the active directions of research. Such theories are now known to emerge from limits of M theory and string theory, and to describe quantum Hall states. In the last few years they have been studied intensively, and many qualitatively new phenomena have been discovered, both on the classical and quantum level. To appear in Reviews of Modern Physics.
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            CODATA Recommended Values of the Fundamental Physical Constants: 2010

            This paper gives the 2010 self-consistent set of values of the basic constants and conversion factors of physics and chemistry recommended by the Committee on Data for Science and Technology (CODATA) for international use. The 2010 adjustment takes into account the data considered in the 2006 adjustment as well as the data that became available from 1 January 2007, after the closing date of that adjustment, until 31 December 2010, the closing date of the new adjustment. Further, it describes in detail the adjustment of the values of the constants, including the selection of the final set of input data based on the results of least-squares analyses. The 2010 set replaces the previously recommended 2006 CODATA set and may also be found on the World Wide Web at physics.nist.gov/constants.
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              Hydrogen Atom Spectrum and the Lamb Shift in Noncommutative QED

              We have calculated the energy levels of the hydrogen atom and as well the Lamb shift within the noncommutative quantum electrodynamics theory. The results show deviations from the usual QED both on the classical and on the quantum levels. On both levels, the deviations depend on the parameter of space/space noncommutativity.
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                Author and article information

                Journal
                15 May 2013
                2013-10-31
                Article
                10.1142/S0217751X1350139X
                1305.3508
                e1139349-cda9-4cd1-8900-fa83563432ac

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
                Custom metadata
                83C65, 81V45, 81Q05
                Int. J. Mod. Phys. A 28, 1350139 (2013)
                17 Pages, No Figures. To appear in International Journal of Modern Physics A
                hep-ph

                High energy & Particle physics
                High energy & Particle physics

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