加速度
激光器
拉盖尔多项式
质子
物理
光学
量子力学
作者
Wenpeng Wang,Xin-Yue Sun,Fengyu Sun,Zhengxing Lv,K. Glize,Zhiyong Shi,Yi Xu,Zongxin Zhang,Fenxiang Wu,Jiabing Hu,Jiayi Qian,Jiacheng Zhu,Xiaoyan Liang,Yuxin Leng,Ruxin Li Ruxin Li,Zhizhan Xu
出处
期刊:Cornell University - arXiv
日期:2025-01-22
标识
DOI:10.48550/arxiv.2501.12683
摘要
High-energy, high-flux collimated proton beams with high repetition rates are critical for applications such as proton therapy, proton radiography, high-energy-density matter generation, and compact particle accelerators. However, achieving proton beam collimation has typically relied on complex and expensive target fabrication or precise control of auxiliary laser pulses, which poses significant limitations for high-repetition applications. Here, we demonstrate an all-optical method for collimated proton acceleration using a single femtosecond Laguerre-Gaussian (LG) laser with an intensity exceeding 1020 W/cm2 irradiating a simple planar target. Compared to conventional Gaussian laser-driven schemes, the maximum proton energy is enhanced by 60% (reaching 35 MeV) and beam divergence is much reduced. Particle-in-cell simulations reveal that a plasma jet is initially focused by the hollow electric sheath field of the LG laser, and then electrons in the jet are further collimated by self-generated magnetic fields. This process amplifies the charge-separation electric field between electrons and ions, leading to increased proton energy in the longitudinal direction and improved collimation in the transverse direction. This single-LG-laser-driven collimation mechanism offers a promising pathway for high-repetition, high-quality proton beam generation, with broad potential applications including proton therapy and fast ignition in inertial confinement fusion.
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