546 research outputs found
Narrow Resonances in Effective Field Theory
We discuss the power counting for effective field theories with narrow
resonances near a two-body threshold. Close to threshold, the effective field
theory is perturbative and only one combination of coupling constants is
fine-tuned. In the vicinity of the resonance, a second, ``kinematic''
fine-tuning requires a nonperturbative resummation. We illustrate our results
in the case of nucleon-alpha scattering.Comment: 11 pages, revtex4, 3 ps figure
The Nucleon Anapole Form Factor in Chiral Perturbation Theory to Sub-leading Order
The anapole form factor of the nucleon is calculated in chiral perturbation
theory to sub-leading order. This is the lowest order in which the isovector
anapole form factor does not vanish. The anapole moment depends on counterterms
that reflect short-range dynamics, but the momentum dependence or the form
factor is determined by pion loops in terms of parameters that could in
principle be fixed from other processes. If these parameters are assumed to
have natural size, the sub-leading corrections do not exceed ~ 30% at momentum
Q ~ 300 MeV.Comment: 11 pages, 6 figures, epsf.sty, submitted to Phys. Lett
Effective Field Theory of Nucleon-Nucleon Scattering on Large Discrete Lattices
Nuclear effective field theory is applied to the effective range expansion of
S-wave nucleon-nucleon scattering on a discrete lattice. Lattice regularization
is demonstrated to yield the effective range expansion in the same way as in
the usual continuous open space. The relation between the effective range
parameters and the potential parameters is presented in the limit of a large
lattice.Comment: 24pages, 1 figur
Scattering in the Region in an Effective Field Theory
We develop a generalized version of heavy-baryon chiral perturbation theory
to describe pion-nucleon scattering in a kinematic domain that extends
continuously from threshold to the delta-isobar peak. The -wave phase shifts
are used to illustrate this framework. We also compare our approach with those
in the literature that concern the delta resonance.Comment: 46 pages, 17 figures, version to appear in Nucl. Phys.
Effective Field Theory and Time-Reversal Violation in Light Nuclei
Thanks to the unnaturally small value of the QCD vacuum angle , time-reversal () violation offers a window into physics beyond
the Standard Model (SM) of particle physics. We review the
effective-field-theory framework that establishes a clean connection between
-violating mechanisms, which can be represented by higher-dimensional
operators involving SM fields and symmetries, and hadronic interactions, which
allow for controlled calculations of low-energy observables involving strong
interactions. The chiral properties of -violating mechanisms leads to a
pattern that should be identifiable in measurements of the electric dipole
moments of the nucleon and light nuclei.Comment: 35 pages. Accepted for publication in Ann. Rev. Nucl. Part. Sci. 65
(2015
Compton Scattering on the Deuteron in Baryon Chiral Perturbation Theory
Compton scattering on the deuteron is studied in the framework of baryon
chiral perturbation theory to third order in small momenta, for photon energies
of order the pion mass. The scattering amplitude is a sum of one- and
two-nucleon mechanisms with no undetermined parameters. Our results are in good
agreement with existing experimental data, and a prediction is made for
higher-energy data being analyzed at SAL.Comment: 39 pages LaTeX, 19 figures (uses epsf
The anapole form factor of the nucleon
The anapole form factor of the nucleon is calculated in chiral perturbation
theory in leading order. To this order, the form factor originates from the
pion cloud, and is proportional to the non-derivative parity-violating
pion-nucleon coupling. The momentum dependence of the form factor - and in
particular, its radius - is completely determined by the pion mass.Comment: 9 pages, 2 eps figures included by epsf.sty, minor changes in note
adde
- âŠ