Density Functional Theory of doped superfluid liquid helium and nanodroplets
arXiv:1708.02652 · doi:10.1080/0144235X.2017.1351672
Abstract
During the last decade, density function theory (DFT) in its static and dynamic time dependent forms, has emerged as a powerful tool to describe the structure and dynamics of doped liquid helium and droplets. In this review, we summarize the activity carried out in this field within the DFT framework since the publication of the previous review article on this subject [M. Barranco et al., J. Low Temp. Phys. 142, 1 (2006)]. Furthermore, a comprehensive presentation of the actual implementations of helium DFT is given, which have not been discussed in the individual articles or are scattered in the existing literature. This is an Accepted Manuscript of an article published on August 2, 2017 by Taylor & Francis Group in Int. Rev. Phys. Chem. 36, 621 (2017), available online: http://dx.doi.org/10.1080/0144235X.2017.1351672
113 pages, 42 figures
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Cited by in corpus (18)
- Vortex properties in the extended supersolid phase of dipolar Bose-Einstein condensates
- Vorticity and quantum turbulence in the merging of superfluid Helium nanodroplets
- Two-dimensional miscible-immiscible supersolid and droplet crystal state in a homonuclear dipolar bosonic mixture
- Vortices in quantum droplets of heteronuclear Bose mixtures
- High-resolution two-dimensional electronic spectroscopy reveals homogeneous line profiles in isolated nanoparticles
- Self-bound vortex lattice in a rapidly rotating quantum droplet
- First observation of bright solitons in bulk superfluid He-4
- Breakup of quantum liquid filaments into droplets
- Photoinduced molecule formation of spatially separated atoms on helium nanodroplets
- Induced supersolidity in a Dy-Er mixture
- A simple model for high rotational excitations of molecules in a superfluid
- A quantum Monte Carlo based density functional for Dysprosium dipolar system
- Nanoscopic jets and filaments of superfluid He-4 at zero temperature: a DFT study
- Universal Properties of Anisotropic Dipolar Bosons in Two Dimensions
- Prediction for two spatially modulated superfluids: He on fluorographene and on hexagonal BN
- Ab-initio Quantum Monte Carlo study of ultracold atomic mixtures
- Merging of superfluid Helium nanodroplets with vortices
- Environment-limited transfer of angular momentum in Bose liquids