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首页> 外文期刊>Physical review, D >Nonperturbative strange-quark sea from lattice QCD, light-front holography, and meson-baryon fluctuation models
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Nonperturbative strange-quark sea from lattice QCD, light-front holography, and meson-baryon fluctuation models

机译:晶格QCD,光前全息和介子重子涨落模型的非摄动奇夸克海

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We demonstrate that a nonzero strangeness contribution to the spacelike electromagnetic form factor of the nucleon is evidence for a strange-antistrange asymmetry in the nucleon’s light-front wave function, thus implying different nonperturbative contributions to the strange and antistrange quark distribution functions. A recent lattice QCD calculation of the nucleon strange quark form factor predicts that the strange quark distribution is more centralized in coordinate space than the antistrange quark distribution, and thus the strange quark distribution is more spread out in light-front momentum space. We show that the lattice prediction implies that the difference between the strange and antistrange parton distribution functions, s ( x ) ? s ˉ ( x ) , is negative at small- x and positive at large- x . We also evaluate the strange quark form factor and s ( x ) ? s ˉ ( x ) using a baryon-meson fluctuation model and a novel nonperturbative model based on light-front holographic QCD. This procedure leads to a Veneziano-like expression of the form factor, which depends exclusively on the twist of the hadron and the properties of the Regge trajectory of the vector meson which couples to the quark current in the hadron. The holographic structure of the model allows us to introduce unambiguously quark masses in the form factors and quark distributions preserving the hard scattering counting rule at large- Q 2 and the inclusive counting rule at large- x . Quark masses modify the Regge intercept which governs the small- x behavior of quark distributions, therefore modifying their small- x singular behavior. Both nonperturbative approaches provide descriptions of the strange-antistrange asymmetry and intrinsic strangeness in the nucleon consistent with the lattice QCD result.
机译:我们证明,对核子的像空一样的电磁形状因子的非零奇异贡献是核子的光前波函数中奇异-反距离不对称的证据,因此暗示了对奇异和反奇异夸克分布函数的不同非摄动贡献。最近对核子奇夸克形状因子的晶格QCD计算预测,奇异夸克分布在坐标空间中比反奇异夸克分布更集中,因此,奇夸克分布在光前动量空间中更分散。我们表明,晶格预测意味着奇怪的和反奇怪的parton分布函数s(x)? sˉ(x)在小x处为负,在大x处为正。我们还评估了奇怪的夸克形状因子和s(x)? sˉ(x)使用重子介子波动模型和基于光前全息QCD的新型非摄动模型。该过程导致形状因子的委内瑞拉式表达,这完全取决于强子的扭曲和矢量介子的Regge轨迹的特性,后者耦合到强子中的夸克电流。该模型的全息结构使我们能够在形状因子和夸克分布中明确引入夸克质量,从而在大Q 2时保留硬散射计数规则,在大x时包含包含计数规则。夸克质量修改了控制夸克分布的small-x行为的Regge截距,因此修改了它们的small-x奇异行为。两种非摄动方法都提供了与晶格QCD结果一致的核子中奇异-反距离不对称和内在奇异的描述。

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