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Critical temperature of trapped interacting bosons from large-N based theories

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arxiv 1512.08446 v1 pith:2LZLE665 submitted 2015-12-28 cond-mat.quant-gas cond-mat.stat-mechquant-ph

Critical temperature of trapped interacting bosons from large-N based theories

classification cond-mat.quant-gas cond-mat.stat-mechquant-ph
keywords shifttheorydensitylarge-nleading-orderloaftheoriestrapped
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Ultracold atoms provide clues to an important many-body problem regarding the dependence of Bose-Einstein condensation (BEC) transition temperature $T_c$ on interactions. However, cold atoms are trapped in harmonic potentials and theoretical evaluations of the $T_c$ shift of trapped interacting Bose gases are challenging. While previous predictions of the leading-order shift have been confirmed, more recent experiments exhibit higher-order corrections beyond available mean-field theories. By implementing two large-N based theories with the local density approximation (LDA), we extract next-order corrections of the $T_c$ shift. The leading-order large-N theory produces results quantitatively different from the latest experimental data. The leading-order auxiliary field (LOAF) theory containing both normal and anomalous density fields captures the $T_c$ shift accurately in the weak interaction regime. However, the LOAF theory shows incompatible behavior with the LDA and forcing the LDA leads to density discontinuities in the trap profiles. We present a phenomenological model based on the LOAF theory, which repairs the incompatibility and provides a prediction of the $T_c$ shift in stronger interaction regime.

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