Department of Physical Sciences, Indian Institute of Science Education and Research Mohali, Sector-81, Manauli 140306, India.
Sci Rep. 2017 Feb 15;7:42554. doi: 10.1038/srep42554.
Precision measurement on momentum transfer between light and fluid interface has many implications including resolving the intriguing nature of photons momentum in a medium. For example, the existence of Abraham pressure of light under specific experimental configuration and the predictions of Chau-Amperian formalism of optical momentum for TE and TM polarizations remain untested. Here, we quantitatively and cleanly measure nanomehanical dynamics of water surface excited by radiation pressure of a laser beam. We systematically scanned wide range of experimental parameters including long exposure times, angle of incidence, spot size and laser polarization, and used two independent pump-probe techniques to validate a nano- bump on the water surface under all the tested conditions, in quantitative agreement with the Minkowski's momentum of light. With careful experiments, we demonstrate advantages and limitations of nanometer resolved optical probing techniques and narrow down actual manifestation of optical momentum in a medium.
光与流体界面之间动量传递的精密测量具有许多意义,包括解决光子在介质中动量的有趣性质。例如,在特定实验配置下光的 Abraham 压力的存在以及对于 TE 和 TM 偏振的 Chau-Amperian 光学动量公式的预测仍然未经检验。在这里,我们定量且干净地测量了由激光束的辐射压力激发的水面的纳米力学动力学。我们系统地扫描了包括长曝光时间、入射角、光斑大小和激光偏振等广泛的实验参数,并使用两种独立的泵浦-探测技术在所有测试条件下验证了水面上的纳米凸起,与光的 Minkowski 动量定量一致。通过仔细的实验,我们展示了纳米分辨光学探测技术的优势和局限性,并缩小了介质中光学动量的实际表现。