论文标题

优化金属味的出色性,并开发分层的薄膜金属。

Optimizing achromaticity in metalenses, and development of a layered thin-film metalens

论文作者

Hooper, Calvin M., Bohndiek, Sarah E., Williams, Calum

论文摘要

金属镜是旨在复制常规折射镜片或镜头阵列的行为的超薄光学设备,利用纳米级谐振结构重新导入了入射光。这些通常由纳米级介电柱等离散的元原子组成。与传统的多元素折射率相关的可观焦点经常与单层金属设计一起尝试,事实证明,通过有限的折射率和总晶状体厚度,这很难实现。最近的一项研究(F.Presutti和F.Monticone,2020年)对此进行了正式化,对金属施加了光学延迟线的限制,从而导致了对聚焦系统的积分性的普遍权衡。在这项工作中,我们(1)理论上探索了金属设计中的出色性,(2)提出了薄膜多层设计,以替代大型数值孔径(NA)具有分配金属的离散元原子方法。结果表明,波前调制也可以通过频谱变化的传输幅度来实现,而不是纯粹与相位剖面匹配。实际上,即使使用有界的折射率,在给定光谱范围内的完美出色操作也可以通过其他地方的不完美操作来抵消,从而导致NA受到最小的一般光谱特征的限制。这些考虑因素导致了广义的相匹配优化常规,并模拟了薄膜金属,使用分层TiO2/mgf2,总厚度低于1μm(20层),聚焦于6个同时波长(350-740 nm,δλ〜65 nm)。反射光的显着比例(> 40%的光谱平均)集中在中度NA(〜0.35)。随着光涂层的成熟度,共形薄膜方法从其离散的纳米级元原子等效物中降低了制造的复杂性。

Metalenses are ultrathin optical devices designed to replicate behavior of conventional refractive lenses, or lens arrays, utilizing nanoscale resonant structures to redirect incident light. These are often comprised of discrete meta-atoms such as nanoscale dielectric pillars. Achromatic focusing - associated with traditional multi-element refractive counterparts - is frequently attempted with single-layer metalens designs, which has proven difficult to achieve with bounded refractive indices and total lens thickness. A recent study (F.Presutti and F.Monticone, 2020) formalized this, applying optical delay-line limitations to metalenses, resulting in a generalized trade-off in achromaticity for focusing systems. In this work, we (1) theoretically explore achromaticity in metalens design, and (2) propose a thin-film multilayer design as an alternative to the discrete meta-atom approach for large numerical aperture (NA) achromatic metalenses. It is shown that wavefront modulation can also be achieved with spectrally-varying transmission magnitudes, rather than purely matching a phase profile. In fact, even with a bounded refractive index, perfect achromatic operation over a given spectral range can be offset by imperfect operation elsewhere, resulting in a NA limited by the smallest general spectral feature controlled. These considerations lead to a generalized phase-matching optimization routine, and a thin-film metalens is simulated, utilizing layered TiO2/MgF2 with total thicknesses under 1 μm (20 layers), focusing across 6 simultaneous wavelengths (350-740 nm, Δλ~65 nm). A significant proportion (>40% spectral average) of the reflected light is focused for moderate NA (~0.35). With the maturity of the optical coating industry, the conformal thin-film approach reduces manufacturing complexity from its discrete nanoscale meta-atom equivalents.

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