We estimate the masses of the 1(--) heavy four-quark and molecule states by combining exponential Laplace (LSR) and finite energy (FESR) sum rules known perturbatively to lowest order (LO) in alpha(s) but including non-perturbative terms up to the complete dimension-six condensate contributions. This approach allows to fix more precisely the value of the QCD continuum threshold (often taken ad hoc) at which the optimal result is extracted. We use double ratio of sum rules (DRSR) for determining the SU(3) breakings terms. We also study the effects of the heavy quark mass definitions on these LO results. The SU(3) mass-splittings of about (50-110) MeV and the ones of about (250-300) MeV between the lowest ground states and their 1st radial ex...
We use the QCD sum rules to evaluate the mass of a possible scalar mesonic state that couples to a m...
QCD Laplace sum rules are used to calculate heavy quarkonium (charmonium and bottomonium) hybrid mas...
In this work, we use the Born-Oppenheimer approximation, where the potential between atoms can be ap...
AbstractWe estimate the masses of the 1−− heavy four-quark and molecule states by combining exponent...
International audienceWe present new compact integrated expressions of SU3 breaking corrections to Q...
International audienceWe review our results in Refs. [R. Albuquerque, S. Narison, D. Rabetiarivony a...
International audienceAlerted by the recent LHCb discovery of exotic hadrons in the range (6.2 6.9) ...
International audienceWe present improved estimates of the couplings, masses and mass ratios of the ...
14 pages, 9 figuresWe use QCD spectral sum rules to test the nature of the meson X(3872), assumed to...
International audienceWe use QCD spectral sum rules (QSSR) and the factorization properties of molec...
International audienceWe present improved estimates of the couplings, masses and mass ratios of the ...
International audienceWe present systematic and improved estimates of the masses and couplings of th...
International audienceWe review our results on $Z_{c}$-like states[1] which we complete with the one...
We use QCD sum rules to test the nature of the recently observed mesons Y(4260), Y(4350) and Y(4660)...
We discuss the possible existence of the fully-heavy tetraquarks. We calculate the ground-state ener...
We use the QCD sum rules to evaluate the mass of a possible scalar mesonic state that couples to a m...
QCD Laplace sum rules are used to calculate heavy quarkonium (charmonium and bottomonium) hybrid mas...
In this work, we use the Born-Oppenheimer approximation, where the potential between atoms can be ap...
AbstractWe estimate the masses of the 1−− heavy four-quark and molecule states by combining exponent...
International audienceWe present new compact integrated expressions of SU3 breaking corrections to Q...
International audienceWe review our results in Refs. [R. Albuquerque, S. Narison, D. Rabetiarivony a...
International audienceAlerted by the recent LHCb discovery of exotic hadrons in the range (6.2 6.9) ...
International audienceWe present improved estimates of the couplings, masses and mass ratios of the ...
14 pages, 9 figuresWe use QCD spectral sum rules to test the nature of the meson X(3872), assumed to...
International audienceWe use QCD spectral sum rules (QSSR) and the factorization properties of molec...
International audienceWe present improved estimates of the couplings, masses and mass ratios of the ...
International audienceWe present systematic and improved estimates of the masses and couplings of th...
International audienceWe review our results on $Z_{c}$-like states[1] which we complete with the one...
We use QCD sum rules to test the nature of the recently observed mesons Y(4260), Y(4350) and Y(4660)...
We discuss the possible existence of the fully-heavy tetraquarks. We calculate the ground-state ener...
We use the QCD sum rules to evaluate the mass of a possible scalar mesonic state that couples to a m...
QCD Laplace sum rules are used to calculate heavy quarkonium (charmonium and bottomonium) hybrid mas...
In this work, we use the Born-Oppenheimer approximation, where the potential between atoms can be ap...