output
20022013
most citedHeavy quarkonium: progress, puzzles, and opportunities

1.8k citations

Showing 2010 · nucl-thShow all

6 papers · 2 filters

nucl-th2010587 cited

Improved nuclear matter calculations from chiral low-momentum interactions

K. Hebeler, S. K. Bogner, R. J. Furnstahl +2

We present new nuclear matter calculations based on low-momentum interactions derived from chiral effective field theory potentials. The current calculations use an improved treatm…

nucl-th2010109 cited

Evolving Nuclear Many-Body Forces with the Similarity Renormalization Group

E. D. Jurgenson, P. Navratil, R. J. Furnstahl

In recent years, the Similarity Renormalization Group has provided a powerful and versatile means to soften interactions for ab initio nuclear calculations. The substantial contrib…

nucl-th2010501 cited

200 A GeV Au+Au collisions serve a nearly perfect quark-gluon liquid

Huichao Song, Steffen A. Bass, Ulrich W. Heinz +2

The specific shear viscosity (eta/s)_QGP of a Quark-Gluon-Plasma (QGP) at temperatures T_c < T < 2T_c is extracted from the centrality dependence of the eccentricity-scaled ellipti…

nucl-th2010150 cited

Systematic parameter study of hadron spectra and elliptic flow from viscous hydrodynamic simulations of Au+Au collisions at sqrt(s_NN) = 200 GeV

Chun Shen, Ulrich W. Heinz, Pasi Huovinen +1

Using the (2+1)-dimensional viscous hydrodynamic code VISH2+1, we present systematic studies of the dependence of pion and proton transverse momentum spectra and their elliptic flo…

nucl-th201085 cited

Microscopically-based energy density functionals for nuclei using the density matrix expansion: Implementation and pre-optimization

M. Stoitsov, M. Kortelainen, S. K. Bogner +4

In a recent series of papers, Gebremariam, Bogner, and Duguet derived a microscopically based nuclear energy density functional by applying the Density Matrix Expansion (DME) to th…

nucl-th201068 cited

Operator Evolution via the Similarity Renormalization Group I: The Deuteron

E. R. Anderson, S. K. Bogner, R. J. Furnstahl +1

Similarity Renormalization Group (SRG) flow equations can be used to unitarily soften nuclear Hamiltonians by decoupling high-energy intermediate state contributions to low-energy…