Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states

Abstract We systematically study the mass spectrum and strong decays of the S-wave $${\bar{c}}{\bar{s}} q q$$ c ¯ s ¯ q q states in the compact tetraquark scenario with the quark model. The key ingredients of the model are the Coulomb, the linear confinement, and the hyperfine interactions. The hype...

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Main Authors: Guang-Juan Wang, Lu Meng, Li-Ye Xiao, Makoto Oka, Shi-Lin Zhu
Format: Article
Language:English
Published: SpringerOpen 2021-02-01
Series:European Physical Journal C: Particles and Fields
Online Access:https://doi.org/10.1140/epjc/s10052-021-08978-0
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spelling doaj-763a8287f8e44fc0b313dc76c2cb72be2021-03-11T12:43:08ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522021-02-0181211210.1140/epjc/s10052-021-08978-0Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q statesGuang-Juan Wang0Lu Meng1Li-Ye Xiao2Makoto Oka3Shi-Lin Zhu4Center of High Energy Physics, Peking UniversityCenter of High Energy Physics, Peking UniversitySchool of Mathematics and Physics, University of Science and Technology BeijingAdvanced Science Research Center, Japan Atomic Energy AgencySchool of Physics and State Key Laboratory of Nuclear Physics and Technology, Peking UniversityAbstract We systematically study the mass spectrum and strong decays of the S-wave $${\bar{c}}{\bar{s}} q q$$ c ¯ s ¯ q q states in the compact tetraquark scenario with the quark model. The key ingredients of the model are the Coulomb, the linear confinement, and the hyperfine interactions. The hyperfine potential leads to the mixing between different color configurations, and to the large mass splitting between the two ground states with $$I(J^P)=0(0^+)$$ I ( J P ) = 0 ( 0 + ) and $$I(J^P)=1(0^+)$$ I ( J P ) = 1 ( 0 + ) . We calculate their strong decay amplitudes into the $${\bar{D}}^{(*)}K^{(*)}$$ D ¯ ( ∗ ) K ( ∗ ) channels with the wave functions from the mass spectrum calculation and the quark-interchange method. We examine the interpretation of the recently observed $$X_0(2900)$$ X 0 ( 2900 ) as a tetraquark state. The mass and decay width of the $$I(J^P)=1(0^+)$$ I ( J P ) = 1 ( 0 + ) state are $$M=2941$$ M = 2941 MeV and $$\Gamma _X=26.6$$ Γ X = 26.6 MeV, respectively, which indicates that it might be a good candidate for $$X_0(2900)$$ X 0 ( 2900 ) . Meanwhile, we also obtain an isospin partner state $$I(J^P)=0(0^+)$$ I ( J P ) = 0 ( 0 + ) with $$M=2649$$ M = 2649 MeV and $$\Gamma _{X\rightarrow {\bar{D}} K}=48.1$$ Γ X → D ¯ K = 48.1 MeV, respectively. Future experimental search for X(2649) will be very helpful.https://doi.org/10.1140/epjc/s10052-021-08978-0
collection DOAJ
language English
format Article
sources DOAJ
author Guang-Juan Wang
Lu Meng
Li-Ye Xiao
Makoto Oka
Shi-Lin Zhu
spellingShingle Guang-Juan Wang
Lu Meng
Li-Ye Xiao
Makoto Oka
Shi-Lin Zhu
Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
European Physical Journal C: Particles and Fields
author_facet Guang-Juan Wang
Lu Meng
Li-Ye Xiao
Makoto Oka
Shi-Lin Zhu
author_sort Guang-Juan Wang
title Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
title_short Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
title_full Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
title_fullStr Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
title_full_unstemmed Mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
title_sort mass spectrum and strong decays of tetraquark $${\bar{c}}{\bar{s}} qq$$ c ¯ s ¯ q q states
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2021-02-01
description Abstract We systematically study the mass spectrum and strong decays of the S-wave $${\bar{c}}{\bar{s}} q q$$ c ¯ s ¯ q q states in the compact tetraquark scenario with the quark model. The key ingredients of the model are the Coulomb, the linear confinement, and the hyperfine interactions. The hyperfine potential leads to the mixing between different color configurations, and to the large mass splitting between the two ground states with $$I(J^P)=0(0^+)$$ I ( J P ) = 0 ( 0 + ) and $$I(J^P)=1(0^+)$$ I ( J P ) = 1 ( 0 + ) . We calculate their strong decay amplitudes into the $${\bar{D}}^{(*)}K^{(*)}$$ D ¯ ( ∗ ) K ( ∗ ) channels with the wave functions from the mass spectrum calculation and the quark-interchange method. We examine the interpretation of the recently observed $$X_0(2900)$$ X 0 ( 2900 ) as a tetraquark state. The mass and decay width of the $$I(J^P)=1(0^+)$$ I ( J P ) = 1 ( 0 + ) state are $$M=2941$$ M = 2941 MeV and $$\Gamma _X=26.6$$ Γ X = 26.6 MeV, respectively, which indicates that it might be a good candidate for $$X_0(2900)$$ X 0 ( 2900 ) . Meanwhile, we also obtain an isospin partner state $$I(J^P)=0(0^+)$$ I ( J P ) = 0 ( 0 + ) with $$M=2649$$ M = 2649 MeV and $$\Gamma _{X\rightarrow {\bar{D}} K}=48.1$$ Γ X → D ¯ K = 48.1 MeV, respectively. Future experimental search for X(2649) will be very helpful.
url https://doi.org/10.1140/epjc/s10052-021-08978-0
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