Abeywickrema U, Banerjee P P, Banerjee N T
Appl Opt. 2015 Apr 1;54(10):2857-65. doi: 10.1364/AO.54.002857.
The use of a low-power laser beam to characterize self-phase modulation (SPM) and bubble formation during thermal blooming (TB), as well as manipulation of the bubbles, is reported. First, a low-power 633 nm laser beam is used to characterize the induced refractive index profile during SPM of a focused 514 nm pump beam in absorbing liquid media, e.g., a solution of red dye in isopropyl alcohol. The induced phase change is also characterized using digital holography via the 633 nm source as the probe and reference. During TB at higher pump powers, bubble formation occurs in the liquid. Using a modified setup, which minimizes the effects of gravity, buoyancy, and convection, stable bubbles are generated. These are characterized using in-line digital holography with the 633 nm probe beam. It is shown that the bubble size depends on exposure time of the pump and that the bubble can be steered by moving a focused low-power laser beam. Finally, possible applications of these thermally generated bubbles are discussed.
本文报道了利用低功率激光束来表征热晕效应(TB)过程中的自相位调制(SPM)和气泡形成,以及对气泡的操控。首先,使用低功率633 nm激光束来表征聚焦的514 nm泵浦光束在吸收性液体介质(如异丙醇中的红色染料溶液)的自相位调制过程中所诱导的折射率分布。通过数字全息术,以633 nm光源作为探测光和参考光,对诱导的相位变化进行表征。在更高泵浦功率下的热晕效应过程中,液体中会形成气泡。使用一种经过改进的装置,该装置可将重力、浮力和对流的影响降至最低,从而产生稳定的气泡。使用633 nm探测光束的同轴数字全息术对这些气泡进行表征。结果表明,气泡尺寸取决于泵浦的曝光时间,并且可以通过移动聚焦的低功率激光束来操控气泡。最后,讨论了这些热生成气泡的可能应用。