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Eugene Ya. Sherman

Publications and source records attributed to Eugene Ya. Sherman.

2 recordsLinked to original sources

Smooth time-dependent control of dipolar Bose-Einstein condensates

We consider protocols for control of dipolar Bose-Einstein condensates where the critical role is played by the long-range anisotropic interatomic magnetic dipole-dipole interaction. The phase diagram of such a condensate has been explored theoretically and experimentally with certain values of the interatomic scattering length corresponding to superfluid and supersolid phases, where supersolidity appears as a modulation in the ground state density. Preparation of this modulated ground state is challenging, since excitations appear as a result of a finite-time evolution required to produce qualitative changes in the wavefunction density. To solve this problem we consider the time-dependent control of a dipolar Bose-Einstein condensate using shortcuts to adiabaticity techniques, concentrating on design of the time-dependent scattering length, a parameter of the system easily tunable by contemporary experiments. The first technique is the variational approach based on the Euler-Lagrange equations for a separable ansatz describing the evolution of the superfluid state. Secondly, we study the transition from superfluid to supersolid using a direct optimization protocol. We discuss the fidelity of the developed protocols in terms of the evolution time.

cond-mat.quant-gas↗

Spin-flip transitions induced by time-dependent electric fields in surfaces with strong spin-orbit interaction

We present a comprehensive theoretical investigation of the light absorption rate at the Pb/Ge(111) surface with strong spin-orbit coupling. Our calculations show that electron spin-flip transitions cause as much as 6% of the total light absorption, representing one order of magnitude enhancement over Rashba-like systems. Thus, it is demonstrated that a substantial part of the light irradiating this nominally non-magnetic surface is attenuated in spin flip processes. Remarkably, the spin-flip transition probability is structured in well defined hot spots within the Brillouin zone where the electron spin experiences a sudden 90 degree rotation. This mechanism offers the possibility of an experimental approach to the spin-orbit phenomena by optical means.

cond-mat.mes-hall↗