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Origin of nonlinear contribution to the shift of the critical temperature in atomic Bose-Einstein condensates

Abstract

We discuss a possible origin of the experimentally observed nonlinear contribution to the shift ΔTc=TcTc0\Delta T_{c}=T_c-T_{c}^{0} of the critical temperature TcT_{c} in an atomic Bose-Einstein condensate (BEC) with respect to the critical temperature Tc0T_{c}^{0} of an ideal gas. We found that accounting for a nonlinear (quadratic) Zeeman effect (with applied magnetic field closely matching a Feshbach resonance field B0B_0) in the mean-field approximation results in a rather significant renormalization of the field-free nonlinear contribution b2b_{2}, namely ΔTc/Tc0b2(a/λT)2\Delta T_{c}/T_{c}^{0}\simeq b_{2}^{\ast }(a/\lambda _{T})^{2} (where aa is the s-wave scattering length, λT\lambda _{T} is the thermal wavelength at Tc0T_{c}^{0}) with b2=γ2b2b_{2}^{\ast }=\gamma ^{2}b_{2} and γ=γ(B0)\gamma =\gamma (B_0). In particular, we predict b242.3b_{2}^{\ast }\simeq 42.3 for the B0403GB_{0}\simeq 403G resonance observed in the  39K\ ^{39}K BEC.Comment: Accepted for publication in JETP Letter

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