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      Real weights, bound states and duality orbits

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          Abstract

          We show that the duality orbits of extremal black holes in supergravity theories with symmetric scalar manifolds can be derived by studying the stabilizing subalgebras of suitable representatives, realized as bound states of specific weight vectors of the corresponding representation of the duality symmetry group. The weight vectors always correspond to weights that are real, where the reality properties are derived from the Tits-Satake diagram that identifies the real form of the Lie algebra of the duality symmetry group. Both N=2 magic Maxwell-Einstein supergravities and the semisimple infinite sequences of N=2 and N=4 theories in D=4 and 5 are considered, and various results, obtained over the years in the literature using different methods, are retrieved. In particular, we show that the stratification of the orbits of these theories occurs because of very specific properties of the representations: in the case of the theory based on the real numbers, whose symmetry group is maximally non-compact and therefore all the weights are real, the stratification is due to the presence of weights of different length, while in the other cases it is due to the presence of complex weights.

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          The SO(8) supergravity

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            The geometry of N = 2 Maxwell-Einstein supergravity and Jordan algebras

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              Dyonic BPS saturated black holes of heterotic string on a six-torus

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                Author and article information

                Journal
                2015-01-27
                2015-11-13
                Article
                10.1142/S0217751X15502188
                1501.06895
                d36bb948-1458-401d-9fbd-4576139825f2

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

                History
                Custom metadata
                DFPD/2015/TH/1
                58 pages, 14 figures. v2: Sec. 6 added, typos fixed, Refs. reorganized. To appear in IJMPA
                hep-th

                High energy & Particle physics
                High energy & Particle physics

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