Laboratoire de Nanotechnologie et d'Instrumentation Optique, ICD, CNRS UMR 6281, Université de Technologie de Troyes, 12 Rue Marie Curie CS42060, 10004 Troyes Cedex, France.
Laboratoire de Physique Appliquée, Université Libanaise, Faculté des Sciences II, Fanar, Liban.
Sci Rep. 2016 Oct 4;6:33627. doi: 10.1038/srep33627.
We report on the realization of functional infrared light concentrators based on a thick layer of air-polymer metamaterial with controlled pore size gradients. The design features an optimum gradient index profile leading to light focusing in the Fresnel zone of the structures for two selected operating wavelength domains near 5.6 and 10.4 μm. The metamaterial which consists in a thick polymer containing air holes with diameters ranging from λ/20 to λ/8 is made using a 3D lithography technique based on the two-photon polymerization of a homemade photopolymer. Infrared imaging of the structures reveals a tight focusing for both structures with a maximum local intensity increase by a factor of 2.5 for a concentrator volume of 1.5 λ, slightly limited by the residual absorption of the selected polymer. Such porous and flat metamaterial structures offer interesting perspectives to increase infrared detector performance at the pixel level for imaging or sensing applications.
我们报告了基于具有受控孔径梯度的厚空气聚合物超材料实现功能红外光集中器。该设计的特点是具有最佳的梯度折射率分布,导致在结构的菲涅耳区中在两个选定的近 5.6μm 和 10.4μm 的工作波长域内实现光聚焦。超材料由含有空气孔的厚聚合物组成,其直径范围从λ/20 到 λ/8,使用基于自制光聚合物的双光子聚合的 3D 光刻技术制造。结构的红外成像显示出两种结构的紧密聚焦,对于集中器体积为 1.5λ 的情况,局部强度最大增加了 2.5 倍,略微受到所选聚合物的残余吸收的限制。这种多孔和平坦的超材料结构为提高成像或传感应用中像素级红外探测器的性能提供了有趣的前景。