Effective renormalized multi-body interactions of harmonically confined ultracold neutral bosons
P.R. Johnson, D. Blume, X. Y. Yin, W.F. Flynn, and E. Tiesinga

TL;DR
This paper derives and validates the effective multi-body interactions for ultracold bosons in a harmonic trap, highlighting the importance of finite-range effects and energy-dependent pseudopotentials for accurate modeling.
Contribution
The paper provides a third-order calculation of effective 2-, 3-, and 4-body interactions, including finite-range corrections, validated by numerical simulations for realistic potentials.
Findings
Effective 3- and 4-body interactions are quantified with high precision.
Finite-range effects are significant and must be included for realistic models.
Energy-dependent pseudopotentials accurately capture finite-range physics.
Abstract
We calculate the renormalized effective 2-, 3-, and 4-body interactions for N neutral ultracold bosons in the ground state of an isotropic harmonic trap, assuming 2-body interactions modeled with the combination of a zero-range and energy-dependent pseudopotential. We work to third-order in the scattering length a defined at zero collision energy, which is necessary to obtain both the leading-order effective 4-body interaction and consistently include finite-range corrections for realistic 2-body interactions. The leading-order, effective 3- and 4-body interaction energies are U3 = -(0.85576...)(a/l)^2 + 2.7921(1)(a/l)^3 + O[(a/l)^4] and U4 = +(2.43317...)(a/l)^3 + O[(a\l)^4], where w and l are the harmonic oscillator frequency and length, respectively, and energies are in units of hbar*w. The one-standard deviation error 0.0001 for the third-order coefficient in U3 is due to numerical…
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