Salamin Yousef I
Max-Planck-Institut für Kernphysik, Saupfercheckweg 1, 69117, Heidelberg, Germany.
Department of Physics and Materials Science and Engineering Research Institute, American University of Sharjah, POB, 26666, Sharjah, United Arab Emirates.
Sci Rep. 2018 Jul 27;8(1):11362. doi: 10.1038/s41598-018-29694-y.
Considerable theoretical and experimental work has lately been focused on waves localized in time and space. In optics, waves of that nature are often referred to as light bullets. The most fascinating feature of light bullets is their propagation without appreciable distortion by diffraction or dispersion. Here, analytic expressions for the fields of an ultra-short, tightly-focused and arbitrary-order Bessel pulse are derived and discussed. Propagation in an under-dense plasma, responding linearly to the fields of the pulse, is assumed throughout. The derivation stems from wave equations satisfied by the vector and scalar potentials, themselves following from the appropriate Maxwell equations and linked by the Lorentz gauge. It is demonstrated that the fields represent well a pulse of axial extension, L, and waist radius at focus, w, both of the order of the central wavelength λ. As an example, to lowest approximation, the pulse of order l = 2 is shown to propagate undistorted for many centimeters, in vacuum as well as in the plasma. As such, the pulse behaves like a "light bullet" and is termed a "Bessel-Bessel bullet of arbitrary order". The field expressions will help to better understand light bullets and open up avenues for their utility in potential applications.
近来,大量的理论和实验工作都聚焦于在时间和空间上局域化的波。在光学领域,这种性质的波通常被称为光子弹。光子弹最引人入胜的特性是它们在传播过程中不会因衍射或色散而产生明显的畸变。在此,我们推导并讨论了超短、紧聚焦且任意阶贝塞尔脉冲场的解析表达式。假设整个过程中是在欠稠密等离子体中传播,该等离子体对脉冲场呈线性响应。推导过程源于矢量势和标量势所满足的波动方程,而这些势本身又由适当的麦克斯韦方程组得出,并通过洛伦兹规范相联系。结果表明,这些场很好地描述了一个轴向扩展为L、聚焦处腰半径为w的脉冲,L和w的量级均为中心波长λ。例如,在最低近似下,l = 2阶的脉冲在真空中以及等离子体中都能无畸变地传播数厘米。因此,该脉冲表现得像一个“光子弹”,并被称为“任意阶贝塞尔 - 贝塞尔子弹”。场表达式将有助于更好地理解光子弹,并为其在潜在应用中的实用化开辟途径。