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Quantum many-body dynamics of the Einstein-de Haas effect

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arxiv 1802.01638 v2 pith:WGFXU7IL submitted 2018-02-05 cond-mat.mes-hall cond-mat.str-el

Quantum many-body dynamics of the Einstein-de Haas effect

classification cond-mat.mes-hall cond-mat.str-el
keywords angularmomentumquantumtransfereffecthaaslevelmany-body
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In 1915, Einstein and de Haas and Barnett demonstrated that changing the magnetization of a magnetic material results in mechanical rotation, and vice versa. At the microscopic level, this effect governs the transfer between electron spin and orbital angular momentum, and lattice degrees of freedom, understanding which is key for molecular magnets, nano-magneto-mechanics, spintronics, and ultrafast magnetism. Until now, the timescales of electron-to-lattice angular momentum transfer remain unclear, since modeling this process on a microscopic level requires addition of an infinite amount of quantum angular momenta. We show that this problem can be solved by reformulating it in terms of the recently discovered angulon quasiparticles, which results in a rotationally invariant quantum many-body theory. In particular, we demonstrate that non-perturbative effects take place even if the electron--phonon coupling is weak and give rise to angular momentum transfer on femtosecond timescales.

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