We present details of the derivation of local chiral effective field theory interactions to next-to-next-to-leading order and show results for nucleon-nucleon phase shifts and deuteron properties for these potentials. We then perform systematic auxiliary-field diffusion Monte Carlo calculations for neutron matter based on the developed local chiral potentials at different orders. This includes studies of the effects of the spectral-function regularization and of the local regulators. For all orders, we compare the quantum Monte Carlo results with perturbative many-body calculations and find excellent agreement for low cutoffs
The nuclear force is a residual interaction between bound states of quarks and gluons. The most fund...
We report accurate quantum Monte Carlo calculations of nuclei up to A=16 based on local chiral two- ...
The strong force is a vital contribution to both, nucleon-nucleon interactions as well as complicate...
The neutron-matter equation of state connects several physical systems over a wide density range, fr...
Chiral Effective Field Theory (EFT) two- and three-nucleon forces are now widely employed. Since the...
Quantum Monte Carlo methods have recently been employed to study properties of nuclei and infinite m...
The strong force is a vital contribution to both, nucleon-nucleon interactions as well as complicate...
Local chiral effective field theory interactions have recently been developed and used in the contex...
The neutron-matter equation of state connects several physical systems over a wide density range, f...
Interactions from chiral effective field theory have been successfully employed in a broad range of ...
During the past three decades, it has been demonstrated that chiral effective field theory (EFT) rep...
We discuss lattice simulations of the ground state of dilute neutron matter at next-to-leading order...
Chiral effective field theory is a framework to derive systematic nuclear interactions. It is based ...
I discuss our recent work on Green’s function Monte Carlo (GFMC) calculations of light nuclei using ...
We study nuclear and neutron matter by combining chiral effective field theory with non-perturbative...
The nuclear force is a residual interaction between bound states of quarks and gluons. The most fund...
We report accurate quantum Monte Carlo calculations of nuclei up to A=16 based on local chiral two- ...
The strong force is a vital contribution to both, nucleon-nucleon interactions as well as complicate...
The neutron-matter equation of state connects several physical systems over a wide density range, fr...
Chiral Effective Field Theory (EFT) two- and three-nucleon forces are now widely employed. Since the...
Quantum Monte Carlo methods have recently been employed to study properties of nuclei and infinite m...
The strong force is a vital contribution to both, nucleon-nucleon interactions as well as complicate...
Local chiral effective field theory interactions have recently been developed and used in the contex...
The neutron-matter equation of state connects several physical systems over a wide density range, f...
Interactions from chiral effective field theory have been successfully employed in a broad range of ...
During the past three decades, it has been demonstrated that chiral effective field theory (EFT) rep...
We discuss lattice simulations of the ground state of dilute neutron matter at next-to-leading order...
Chiral effective field theory is a framework to derive systematic nuclear interactions. It is based ...
I discuss our recent work on Green’s function Monte Carlo (GFMC) calculations of light nuclei using ...
We study nuclear and neutron matter by combining chiral effective field theory with non-perturbative...
The nuclear force is a residual interaction between bound states of quarks and gluons. The most fund...
We report accurate quantum Monte Carlo calculations of nuclei up to A=16 based on local chiral two- ...
The strong force is a vital contribution to both, nucleon-nucleon interactions as well as complicate...