8 research outputs found

    Feasibility studies for the measurement of time-like proton electromagnetic form factors from pÂŻ p→ ÎŒ+ÎŒ- at P ÂŻ ANDA at FAIR

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    This paper reports on Monte Carlo simulation results for future measurements of the moduli of time-like proton electromagnetic form factors, | GE| and | GM| , using the pÂŻ p→ ÎŒ+ÎŒ- reaction at P ÂŻ ANDA (FAIR). The electromagnetic form factors are fundamental quantities parameterizing the electric and magnetic structure of hadrons. This work estimates the statistical and total accuracy with which the form factors can be measured at P ÂŻ ANDA , using an analysis of simulated data within the PandaRoot software framework. The most crucial background channel is pÂŻ p→ π+π-, due to the very similar behavior of muons and pions in the detector. The suppression factors are evaluated for this and all other relevant background channels at different values of antiproton beam momentum. The signal/background separation is based on a multivariate analysis, using the Boosted Decision Trees method. An expected background subtraction is included in this study, based on realistic angular distributions of the background contribution. Systematic uncertainties are considered and the relative total uncertainties of the form factor measurements are presented

    The potential of Λ\Lambda and Ξ−\Xi^- studies with PANDA at FAIR

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    International audienceThe antiproton experiment PANDA at FAIR is designed to bring hadron physics to a new level in terms of scope, precision and accuracy. In this work, its unique capability for studies of hyperons is outlined. We discuss ground-state hyperons as diagnostic tools to study non-perturbative aspects of the strong interaction, and fundamental symmetries. New simulation studies have been carried out for two benchmark hyperon-antihyperon production channels: pˉp→ΛˉΛ{\bar{p}}p \rightarrow {\bar{\varLambda }}\varLambda and pˉp→Ξˉ+Ξ−{\bar{p}}p \rightarrow {\bar{\varXi }}^+\varXi ^-. The results, presented in detail in this paper, show that hyperon-antihyperon pairs from these reactions can be exclusively reconstructed with high efficiency and very low background contamination. In addition, the polarisation and spin correlations have been studied, exploiting the weak, self-analysing decay of hyperons and antihyperons. Two independent approaches to the finite efficiency have been applied and evaluated: one standard multidimensional efficiency correction approach, and one efficiency independent approach. The applicability of the latter was thoroughly evaluated for all channels, beam momenta and observables. The standard method yields good results in all cases, and shows that spin observables can be studied with high precision and accuracy already in the first phase of data taking with PANDA

    Study of Excited Ξ\Xi Baryons with the PANDA Detector

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    The study of baryon excitation spectra provides insight into the inner structure of baryons. So far, most of the world-wide efforts have been directed towards N∗N^* and Δ\Delta spectroscopy. Nevertheless, the study of the double and triple strange baryon spectrum provides independent information to the N∗N^* and Δ\Delta spectra. The future antiproton experiment PANDA will provide direct access to final states containing a ΞˉΞ\bar{\Xi}\Xi pair, for which production cross sections up to ÎŒ\mub are expected in pˉp\bar{p}p reactions. With a luminosity of L=1031 cm−2s−1L=10^{31}\,cm^{-2}s^{-1} in the first phase of the experiment, the expected cross sections correspond to a production rate of ∌106\sim 10^6 events//day. With a nearly 4π4\pi detector acceptance, PANDA will thus be a hyperon factory. In this study, reactions of the type pˉp→Ξˉ+Ξ∗−\bar{p}p\rightarrow \bar{\Xi}^+ \Xi^{*-} as well as pˉp→Ξˉ∗+Ξ−\bar{p}p\rightarrow \bar{\Xi}^{*+} \Xi^{-} with various decay modes are investigated. For the exclusive reconstruction of the signal events a full decay tree fit is used, resulting in reconstruction efficiencies between 3 %3\,\% and 5 %5\,\%. This allows high statistics data to be collected within a few weeks of data taking

    Study of excited Ξ baryons with the P¯ ANDA detector

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    The study of baryon excitation spectra provides insight into the inner structure of baryons. So far, most of the world-wide efforts have been directed towards N∗ and Δ spectroscopy. Nevertheless, the study of the double and triple strange baryon spectrum provides independent information to the N∗ and Δ spectra. The future antiproton experiment PÂŻANDA will provide direct access to final states containing a Ξ¯ Ξ pair, for which production cross sections up to ÎŒb are expected in pÂŻp reactions. With a luminosity of L= 10 31 cm- 2 s- 1 in the first phase of the experiment, the expected cross sections correspond to a production rate of ∌106events/day. With a nearly 4 π detector acceptance, PÂŻANDA will thus be a hyperon factory. In this study, reactions of the type pÂŻp → Ξ¯ +Ξ∗ - as well as pÂŻp → Ξ¯ ∗ +Ξ- with various decay modes are investigated. For the exclusive reconstruction of the signal events a full decay tree fit is used, resulting in reconstruction efficiencies between 3 and 5%. This allows high statistics data to be collected within a few weeks of data taking

    The potential of Λ and Ξ- studies with PANDA at FAIR

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    The antiproton experiment PANDA at FAIR is designed to bring hadron physics to a new level in terms of scope, precision and accuracy. In this work, its unique capability for studies of hyperons is outlined. We discuss ground-state hyperons as diagnostic tools to study non-perturbative aspects of the strong interaction, and fundamental symmetries. New simulation studies have been carried out for two benchmark hyperon-antihyperon production channels: p¯ p→ Λ¯ Λ and p¯ p→ Ξ¯ +Ξ-. The results, presented in detail in this paper, show that hyperon-antihyperon pairs from these reactions can be exclusively reconstructed with high efficiency and very low background contamination. In addition, the polarisation and spin correlations have been studied, exploiting the weak, self-analysing decay of hyperons and antihyperons. Two independent approaches to the finite efficiency have been applied and evaluated: one standard multidimensional efficiency correction approach, and one efficiency independent approach. The applicability of the latter was thoroughly evaluated for all channels, beam momenta and observables. The standard method yields good results in all cases, and shows that spin observables can be studied with high precision and accuracy already in the first phase of data taking with PANDA

    Feasibility studies for the measurement of time-like proton electromagnetic form factors from pˉp→Ό+Ό−\bar{p}p \rightarrow \mu ^+\mu ^- at P‟ANDA\overline{\text {P}}\text {ANDA} at FAIR

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    International audienceThis paper reports on Monte Carlo simulation results for future measurements of the moduli of time-like proton electromagnetic form factors, ∣GE∣|G_{E}| and ∣GM∣|G_{M}|, using the pˉp→Ό+Ό−\bar{p} p \rightarrow \mu ^{+} \mu ^{-} reaction at P‟ANDA\overline{\text {P}}\text {ANDA} (FAIR). The electromagnetic form factors are fundamental quantities parameterizing the electric and magnetic structure of hadrons. This work estimates the statistical and total accuracy with which the form factors can be measured at P‟ANDA\overline{\text {P}}\text {ANDA}, using an analysis of simulated data within the PandaRoot software framework. The most crucial background channel is pˉp→π+π−\bar{p} p \rightarrow \pi ^{+} \pi ^{-}, due to the very similar behavior of muons and pions in the detector. The suppression factors are evaluated for this and all other relevant background channels at different values of antiproton beam momentum. The signal/background separation is based on a multivariate analysis, using the Boosted Decision Trees method. An expected background subtraction is included in this study, based on realistic angular distributions of the background contribution. Systematic uncertainties are considered and the relative total uncertainties of the form factor measurements are presented

    Multi-messenger Observations of a Binary Neutron Star Merger

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    International audienceOn 2017 August 17 a binary neutron star coalescence candidate (later designated GW170817) with merger time 12:41:04 UTC was observed through gravitational waves by the Advanced LIGO and Advanced Virgo detectors. The Fermi Gamma-ray Burst Monitor independently detected a gamma-ray burst (GRB 170817A) with a time delay of ∌1.7 s\sim 1.7\,{\rm{s}} with respect to the merger time. From the gravitational-wave signal, the source was initially localized to a sky region of 31 deg(2) at a luminosity distance of 40−8+8{40}_{-8}^{+8} Mpc and with component masses consistent with neutron stars. The component masses were later measured to be in the range 0.86 to 2.26  M⊙\,{M}_{\odot }. An extensive observing campaign was launched across the electromagnetic spectrum leading to the discovery of a bright optical transient (SSS17a, now with the IAU identification of AT 2017gfo) in NGC 4993 (at ∌40 Mpc\sim 40\,{\rm{Mpc}}) less than 11 hours after the merger by the One-Meter, Two Hemisphere (1M2H) team using the 1 m Swope Telescope. The optical transient was independently detected by multiple teams within an hour. Subsequent observations targeted the object and its environment. Early ultraviolet observations revealed a blue transient that faded within 48 hours. Optical and infrared observations showed a redward evolution over ∌10 days. Following early non-detections, X-ray and radio emission were discovered at the transient’s position ∌9\sim 9 and ∌16\sim 16 days, respectively, after the merger. Both the X-ray and radio emission likely arise from a physical process that is distinct from the one that generates the UV/optical/near-infrared emission. No ultra-high-energy gamma-rays and no neutrino candidates consistent with the source were found in follow-up searches. These observations support the hypothesis that GW170817 was produced by the merger of two neutron stars in NGC 4993 followed by a short gamma-ray burst (GRB 170817A) and a kilonova/macronova powered by the radioactive decay of r-process nuclei synthesized in the ejecta
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