论文标题
超临界领域的相对论等离子体物理
Relativistic Plasma Physics in Supercritical Fields
论文作者
论文摘要
自从2018年诺贝尔物理学奖认可的the骨脉搏放大发明以来,可用的激光强度持续增加。再加上我们对相对论血浆动力学动力学的进步,对激光 - 质量相互作用的研究正在进入一个新的制度,在这种情况下,相对论等离子体的物理学受到强场量子电动力学(QED)过程的强烈影响,包括硬光子发射和电子postron(包括硬光子发射和电子 - $ e^+$ - $ - $ - $ - $ - $ e^^^$ e^ - )配对。 This coupling of quantum emission processes and relativistic collective particle dynamics can result in dramatically new plasma physics phenomena, such as the generation of dense $e^+$-$e^-$ pair plasma from near vacuum, complete laser energy absorption by QED processes or the stopping of an ultrarelativistic electron beam, which could penetrate a cm of lead, by a hair's breadth of laser light.除了具有根本的兴趣外,至关重要的是,研究这种新的制度是了解下一代超高强度雷电器 - 摩托车实验及其由此产生的应用,例如高能量离子,电子,电子,正电子和光子源,用于基本物理学研究,医学放射治疗以及用于射线遗传学的基础物理学研究,医学放射治疗以及下一代射线照相射线射线射线射线射线类遗传学的安全和行业。
Since the invention of chirped pulse amplification, which was recognized by a Nobel prize in physics in 2018, there has been a continuing increase in available laser intensity. Combined with advances in our understanding of the kinetics of relativistic plasma, studies of laser-plasma interactions are entering a new regime where the physics of relativistic plasmas is strongly affected by strong-field quantum electrodynamics (QED) processes, including hard photon emission and electron-positron ($e^+$-$e^-$) pair production. This coupling of quantum emission processes and relativistic collective particle dynamics can result in dramatically new plasma physics phenomena, such as the generation of dense $e^+$-$e^-$ pair plasma from near vacuum, complete laser energy absorption by QED processes or the stopping of an ultrarelativistic electron beam, which could penetrate a cm of lead, by a hair's breadth of laser light. In addition to being of fundamental interest, it is crucial to study this new regime to understand the next generation of ultra-high intensity laser-matter experiments and their resulting applications, such as high energy ion, electron, positron, and photon sources for fundamental physics studies, medical radiotherapy, and next generation radiography for homeland security and industry.