Direct laser-written aperiodic photonic volume elements for complex light shaping with high efficiency: inverse design and fabrication

Nicolas Barr'e, R. Shivaraman, S. Moser, P. Salter, M. Schmidt, M. Booth, A. Jesacher
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Abstract

Abstract. Light plays a central role in many applications. The key to unlocking its versatility lies in shaping it into the most appropriate form for the task at hand. Specifically tailored refractive index modifications, directly manufactured inside glass using a short pulsed laser, enable an almost arbitrary control of the light flow. However, the stringent requirements for quantitative knowledge of these modifications, as well as for fabrication precision, have so far prevented the fabrication of light-efficient aperiodic photonic volume elements (APVEs). Here, we present a powerful approach to the design and manufacturing of light-efficient APVEs. We optimize application-specific three-dimensional arrangements of hundreds of thousands of microscopic voxels and manufacture them using femtosecond direct laser writing inside millimeter-sized glass volumes. We experimentally achieve unprecedented diffraction efficiencies up to 80%, which is enabled by precise voxel characterization and adaptive optics during fabrication. We demonstrate APVEs with various functionalities, including a spatial mode converter and combined intensity shaping and wavelength multiplexing. Our elements can be freely designed and are efficient, compact, and robust. Our approach is not limited to borosilicate glass but is potentially extendable to other substrates, including birefringent and nonlinear materials, giving a preview of even broader functionalities, including polarization modulation and dynamic elements.
用于高效率复杂光整形的激光直接书写非周期光子体元件:逆向设计与制造
摘要光在许多应用中起着核心作用。开启其多功能性的关键在于将其塑造成最适合手头任务的形式。专门定制的折射率修改,直接制造玻璃内部使用短脉冲激光,使光流的几乎任意控制。然而,对这些修饰的定量知识以及制造精度的严格要求,迄今为止阻碍了光效非周期光子体积元件(apve)的制造。在这里,我们提出了一种设计和制造高效光效apve的有效方法。我们优化了数十万微观体素的特定应用三维排列,并在毫米大小的玻璃体积内使用飞秒直接激光书写来制造它们。我们通过实验实现了前所未有的高达80%的衍射效率,这是通过精确的体素表征和自适应光学在制造过程中实现的。我们演示了具有各种功能的apve,包括空间模式转换器和组合强度整形和波长复用。我们的元件可以自由设计,高效、紧凑、坚固。我们的方法不仅限于硼硅酸盐玻璃,而且有可能扩展到其他基板,包括双折射和非线性材料,从而预览更广泛的功能,包括偏振调制和动态元件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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