论文标题
通过与高密度电子束将多折线激光共同关联,可以实现hedp的研究机会
On Seminal HEDP Research Opportunities Enabled by Colocating Multi-Petawatt Laser with High-Density Electron Beams
论文作者
论文摘要
科学界目前正在目睹一场昂贵且在全球范围内的竞赛,以达到最高的光强度。在接下来的十年内,这项工作有望在实验室框架中通过重点关注100 pw,近红外激光器,在实验室框架中达到近10美元^{24} \,\ mathrm {w}/\ mathrm {cm^2} $。这项工作背后的主要推动力是可以通过量子电动力学(QED)级联[Edwin Cartlidge,“光奇妙”,Science 359,382(2018)来研究强场真空故障分解和随附的电子峰值血浆。 Whereas Europe is focusing on all-optical 10 PW-class laser facilities (e.g., Apollon and ELI), China is already planning on co-locating a 100 PW laser system with a 25 keV superconducting XFEL and thus implicitly also a high-quality electron beam [Station of Extreme Light (SEL) at the Shanghai Superintense-Ultrafast Lasers Facility (SULF)].这份白皮书阐明了通过与多PW光学激光脉冲相撞密集的多GEV电子束来促进的开创性科学机会。这样的多光束设施将通过产生具有前所未有的密度和温度的电子峰值等离子体来实现极端HEDP环境的实验探索,在这种情况下,强场量子和集体等离子体效应之间的相互作用变得果断。
The scientific community is currently witnessing an expensive and worldwide race to achieve the highest possible light intensity. Within the next decade this effort is expected to reach nearly $10^{24}\,\mathrm{W}/\mathrm{cm^2}$ in the lab frame by focusing of 100 PW, near-infrared lasers. A major driving force behind this effort is the possibility to study strong-field vacuum breakdown and an accompanying electron-positron pair plasma via a quantum electrodynamic (QED) cascade [Edwin Cartlidge, "The light fantastic", Science 359, 382 (2018)]. Whereas Europe is focusing on all-optical 10 PW-class laser facilities (e.g., Apollon and ELI), China is already planning on co-locating a 100 PW laser system with a 25 keV superconducting XFEL and thus implicitly also a high-quality electron beam [Station of Extreme Light (SEL) at the Shanghai Superintense-Ultrafast Lasers Facility (SULF)]. This white paper elucidates the seminal scientific opportunities facilitated by colliding dense, multi-GeV electron beams with multi-PW optical laser pulses. Such a multi-beam facility would enable the experimental exploration of extreme HEDP environments by generating electron-positron pair plasmas with unprecedented densities and temperatures, where the interplay between strong-field quantum and collective plasma effects becomes decisive.