Probing pion valence quark distribution with beam-charge asymmetry of pion-induced J/ψ production

IF 4.3 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Wen-Chen Chang , Marco Meyer-Conde , Jen-Chieh Peng , Stephane Platchkov , Takahiro Sawada
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引用次数: 0

Abstract

We consider the beam-charge asymmetry of the J/ψ production cross sections in π- versus π+-induced reactions on proton or nuclear targets. We show that the J/ψ production cross section difference between π and π+ beams impinging on a proton target has a positive sign with a magnitude proportional to the product of pion's valence quark distribution, Vπ, and proton's up and down valence quark distribution difference, uVdV. The existing J/ψ production data for π+p and π++p at 39.5 and 200 GeV/c are consistent with the expected positive beam-charge asymmetry. The magnitude of the asymmetry is compared with calculations performed within two theoretical frameworks, the Color Evaporation Model (CEM) and the Non-Relativistic QCD (NRQCD) formalism. We also examine the beam-charge dependence for pion-induced J/ψ production cross sections measured on the neutron-rich platinum target, and find good agreement between the data and theory for both the negative sign and the magnitude of the beam-charge asymmetry. The comparison between data and theoretical calculations for both proton and platinum targets suggests that the beam-charge asymmetry in pion-induced J/ψ production is a viable method of accessing the valence quark distribution of the pion.
利用介子诱导J/ψ产生的束荷不对称探测介子价夸克分布
我们考虑了质子或核靶上π−-与π+诱导反应中J/ψ产生截面的束荷不对称性。我们证明了π -和π+光束撞击质子靶的J/ψ产生截面差具有正号,其大小与介子的价夸克分布Vπ和质子的价夸克上下分布差uV - dV的乘积成正比。现有的π−+p和π++p在39.5和200 GeV/c下的J/ψ产生数据与预期的正束荷不对称性一致。不对称的大小与在两个理论框架下进行的计算进行了比较,颜色蒸发模型(CEM)和非相对论性QCD (NRQCD)形式主义。我们还研究了在富中子铂靶上测量的介子诱导的J/ψ产生截面的束流电荷依赖关系,并发现束流电荷不对称的负号和大小在数据和理论之间都有很好的一致性。质子靶和铂靶的数据与理论计算结果的比较表明,介子诱导的J/ψ产生中的束荷不对称性是一种获取介子价夸克分布的可行方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physics Letters B
Physics Letters B 物理-物理:综合
CiteScore
9.10
自引率
6.80%
发文量
647
审稿时长
3 months
期刊介绍: Physics Letters B ensures the rapid publication of important new results in particle physics, nuclear physics and cosmology. Specialized editors are responsible for contributions in experimental nuclear physics, theoretical nuclear physics, experimental high-energy physics, theoretical high-energy physics, and astrophysics.
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