论文标题

重型离子碰撞中BREIT轮毂过程的能量依赖性及其在核电半径半径测量中的应用

Energy Dependence of the Breit-Wheeler process in Heavy-Ion Collisions and its Application to Nuclear Charge Radius Measurements

论文作者

Wang, Xiaofeng, Brandenburg, James Daniel, Ruan, Lijuan, Shao, Fenglan, Xu, Zhangbu, Yang, Chi, Zha, Wangmei

论文摘要

在重离子碰撞中,横截面的碰撞能量依赖性和从BREIT轮胎过程中的电二元子弹的横向动量分布计算出最低的QED,并发现对核电电荷分布和超洛内兹振动库隆库布尔的核电分布和红外差异很敏感。在给定的实验运动学接受中,发现横截面会增加,而对横向动量($ \ sqrt {\ langle p_ {t}^{2}^{2} \ rangle} $)随着束能量的增加而减小。我们证明了Weizsacker-Williams光子的横向摩托部分成分是由于电荷源和电场成分在纵向方向上的有限程度所致。我们进一步阐明了Breit-wheeler工艺中产生的$ E^+E^ - $之间的核电电荷分布之间的联系,并提出了Breit-wheeler过程在相对性重型离子碰撞中的有效性的标准。遵循这种方法,我们证明了超偏见重型离子碰撞中BREIT轮毂过程的实验测量可用于定量约束核电荷半径。提取的参数表现出对影响参数依赖性的敏感性,可用于研究HADRONIC相互作用中的初始状态和最终状态效应。

The collision energy dependence of the cross section and the transverse momentum distribution of dielectrons from the Breit-Wheeler process in heavy-ion collisions are computed in the lowest-order QED and found to be sensitive to the nuclear charge distribution and the infrared-divergence of the ultra-Lorentz boosted Coulomb field. Within a given experimental kinematic acceptance, the cross section is found to increase while the pair transverse momentum ($\sqrt{\langle p_{T}^{2} \rangle}$) decreases with increasing beam energy. We demonstrate that the transverse-momentum component of Weizsacker-Williams photons is due to the finite extent of the charge source and electric field component in the longitudinal direction. We further clarify the connection between the nuclear charge distribution and the kinematics of produced $e^+e^-$ from the Breit-Wheeler process, and propose a criterion for the validity of the Breit-Wheeler process in relativistic heavy-ion collisions. Following this approach we demonstrate that the experimental measurements of the Breit-Wheeler process in ultra-relativistic heavy-ion collisions can be used to quantitatively constrain the nuclear charge radius. The extracted parameters show sensitivity to the impact parameter dependence, and can be used to study the initial-state and final-state effects in hadronic interactions.

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