论文标题
对齐晶体的经典极限附近的辐射反应
Radiation Reaction near the Classical Limit in Aligned Crystals
论文作者
论文摘要
加速的带电粒子发射电磁辐射。如果驱动力足够强大,则辐射能与粒子的动能和发射辐射(辐射反应)的反作用相当,会显着改变粒子的动力学。当考虑到辐射反应的效果时,已提出了Landau-Lifshitz(LL)方程作为经典方程,以描述强电磁场中带电粒子的动力学。迄今为止,验证LL方程的实验问题是实现足够强的磁场以使辐射反应很重要,而没有突出的量子效应。尽管如此,在这里,我们通过测量在$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)平面频道频道方案和40 GEV和80 GEV电子的$(80 GEV电子)附近的$(110)$ $ $ $ \ lang lang lang lang lang lang lang的$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)$(110)的单晶的定量实验测试。实验光谱与基于运动量较小的量子校正的LL方程的预测非常吻合,并且在电子的情况下,旋转和减少的辐射发射以及更精细的量子机械模型。我们的实验清楚地表明,洛伦兹力是在经典极限内作为颗粒上的唯一力量,因为它在描述强力电磁场中高能电荷颗粒的动力学时没有辐射能量损失,就像在对齐的单晶中一样。
An accelerated charged particle emits electromagnetic radiation. If the driving force is sufficiently strong, the radiated energy becomes comparable to the kinetic energy of the particle and the back-action of the emitted radiation (radiation reaction) significantly alters the dynamics of the particle. The Landau-Lifshitz (LL) equation has been proposed as the classical equation to describe the dynamics of a charged particle in a strong electromagnetic field when the effects of radiation reaction are taken into account. Hitherto, the experimental problem in validating the LL equation has been to achieve sufficiently strong fields for radiation reaction to be important without quantum effects being prominent. Notwithstanding, here we provide a quantitative experimental test of the LL equation by measuring the emission spectrum for a wide range of settings for 50 GeV positrons crossing aligned silicon single crystals near the $(110)$ planar channeling regime as well as 40 GeV and 80 GeV electrons traversing aligned diamond single crystals near the $\langle100\rangle$ axial channeling regime. The experimental spectra are in remarkable agreement with predictions based on the LL equation of motion with small quantum corrections for recoil and, in case of electrons, spin and reduced radiation emission, as well as with a more elaborate quantum mechanical model. Our experiment clearly shows the inadequacy of the Lorentz force as the sole agent of force on the particles in the classical limit, due to its absence of radiative energy loss in describing the dynamics of high-energy charged particles in strong electromagnetic fields like those in aligned single crystals.