PaperPanorama

Nuclear Theory·nucl-th

Wednesday·April 29, 2020

8 papers3 primary·5 cross-listed

  1. 04

    Intrinsic Transverse Momentum and Evolution in Weighted Spin Asymmetries

    Jian-Wei Qiu🇺🇸 · Ted C. Rogers🇺🇸 · Bowen Wang🇨🇳

    The transverse momentum dependent (TMD) and collinear higher twist theoretical factorization frameworks are the most frequently used approaches to describing spin dependent hard cross sections weighted by and integrated over transverse momentum. Of particular interest is the contribution from small transverse momentum associated with the target bound state. In phenomenological applications, this contribution is often investigated using transverse momentum weighted integrals that sharply regulate the large transverse momentum contribution, for example with Gaussian parametrizations. Since the result is a kind of hybrid of TMD and collinear (inclusive) treatments, it is important to establish if and how the formalisms are related in applications to weighted integral observables. The suppression of a large transverse momentum tail, for example, can potentially affect the type of evolution that is applicable. We find that a naive version of a widely used identity relating the -weighted and integrated Sivers TMD function to a renormalized twist-3 function has strongly ambiguous ultraviolet contributions, and that corrections to it are not necessarily perturbatively suppressed. We discuss the implications for applications, arguing in particular that the relevant evolution for transverse momentum weighted and integrated cross sections with sharp effective large transverse momentum cutoffs is of the TMD form rather than the standard renormalization group evolution of collinear correlation functions.

    hep-phnucl-thPRD(2020)·17 citations
  2. 06

    The newly observed structure and its mode nonstrange partners

    Wei Liang🇨🇳 · Qi-Fang Lü🇨🇳

    Inspired by the newly observed structure, we investigate its strong decay behaviors under various assignments within the model. Compared with the mass and total decay width, our results suggest that the can be regarded as the lowest mode excitation in family. Then, the strong decays of mode nonstrange partners for the are calculated. It is found that the and states are relatively narrow, and mainly decay into the and final states, respectively. These two states have good potentials to be observed in future experiments, which may help us to distinguish the three-quark model and diquark model.

    hep-phhep-exnucl-thEPJC(2020)·13 citations
  3. 07

    Enhanced dynamics in fusion of neutron-rich oxygen nuclei at above-barrier energies

    S. Hudan · R.T. deSouza · A.S. Umar · Z. Lin · C.J. Horowitz

    Above-barrier fusion cross-sections for an isotopic chain of oxygen isotopes with A=16-19 incident on a C target are presented. Experimental data are compared with both static and dynamical microscopic calculations. These calculations are unable to explain the 37\% increase in the average above-barrier fusion cross-section observed for O as compared to -stable oxygen isotopes. This result suggests that for neutron-rich nuclei existing time-dependent Hartree-Fock calculations underpredict the role of dynamics at near-barrier energies. High-quality measurement of above-barrier fusion for an isotopic chain of increasingly neutron-rich nuclei provides an effective means to probe this fusion dynamics.

    nucl-exnucl-thPRC(2020)·13 citations
  4. 08

    Program to calculate coefficients of transformations between three-particle hyperspherical harmonics

    Victor D. Efros

    A program to calculate the three-particle hyperspherical brackets is presented. Test results are listed and it is seen that the program is well applicable up to very high values of the hypermomentum and orbital momenta. The listed runs show that it is also very fast. Applications of the brackets to calculating interaction matrix elements and constructing hyperspherical bases for identical particles are described. Comparisons are done with the programs published previously.

    physics.comp-phnucl-thphysics.atom-phComput.Phys.Commun.(2020)·2 citations

Affiliations

first authorsco-authorsvia INSPIRE