In this contribution we show applications of effective field theory (EFT) to few-particle systems trapped in a harmonic oscillator potential. The principles of EFT allows to construct interactions among the particles in a systematic and improvable manner. We first consider systems of two-component fermions and show excellent agreements with the exact solution at unitarity (for the two- and three-body problem) and results obtained by other methods (in the four-body case). We then consider trapped systems of three nucleons and extract neutron–deuteron phase shifts, and show that the quartet scattering length is in good agreement with experimental data. We also show the collapse of the system in the J π = 1/2+, T = 1/2 (triton) channel at Lea...
We consider low-energy nucleons at next-to-next-to-leading order in lattice chiral effective field t...
We explore the lattice spacing dependence in Nuclear Lattice Effective Field Theory for few-body sys...
We describe a procedure to systematically improve direct diagonalization results for few-particle sy...
We apply the general principles of effective field theories to the construction of effective interac...
We describe systems of two and three nucleons trapped in a harmonic-oscillator potential with intera...
A systematic description of low-energy observables in light nuclei is presented. The effective field...
A systematic description of low-energy observables in light nuclei is presented. The effective field...
Few- and many-fermion systems on the verge of stability, and consisting of strongly interacting part...
International audienceWe study universal bosonic few-body systems within the framework of effective ...
Effective theories are a controlled approach to making approximations in physics. We describe here w...
Particles interacting with sufficiently low energies have dynamics independent of the details of the...
The possibility to control short-ranged interactions of cold gases in optical tr...
The possibility to control short-ranged interactions of cold gases in optical traps by Feshbachreso...
The building blocks of atomic nuclei, protons and neutrons, interact via the strong force. The funda...
We consider the general two, three, and four neutron systems in a harmonic oscillator (HO) trap. By ...
We consider low-energy nucleons at next-to-next-to-leading order in lattice chiral effective field t...
We explore the lattice spacing dependence in Nuclear Lattice Effective Field Theory for few-body sys...
We describe a procedure to systematically improve direct diagonalization results for few-particle sy...
We apply the general principles of effective field theories to the construction of effective interac...
We describe systems of two and three nucleons trapped in a harmonic-oscillator potential with intera...
A systematic description of low-energy observables in light nuclei is presented. The effective field...
A systematic description of low-energy observables in light nuclei is presented. The effective field...
Few- and many-fermion systems on the verge of stability, and consisting of strongly interacting part...
International audienceWe study universal bosonic few-body systems within the framework of effective ...
Effective theories are a controlled approach to making approximations in physics. We describe here w...
Particles interacting with sufficiently low energies have dynamics independent of the details of the...
The possibility to control short-ranged interactions of cold gases in optical tr...
The possibility to control short-ranged interactions of cold gases in optical traps by Feshbachreso...
The building blocks of atomic nuclei, protons and neutrons, interact via the strong force. The funda...
We consider the general two, three, and four neutron systems in a harmonic oscillator (HO) trap. By ...
We consider low-energy nucleons at next-to-next-to-leading order in lattice chiral effective field t...
We explore the lattice spacing dependence in Nuclear Lattice Effective Field Theory for few-body sys...
We describe a procedure to systematically improve direct diagonalization results for few-particle sy...