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基于工程有机层的电光空间光调制器。

Electro-optic spatial light modulator from an engineered organic layer.

作者信息

Benea-Chelmus Ileana-Cristina, Meretska Maryna L, Elder Delwin L, Tamagnone Michele, Dalton Larry R, Capasso Federico

机构信息

Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, USA.

Department of Chemistry, University of Washington, Seattle, WA, USA.

出版信息

Nat Commun. 2021 Oct 11;12(1):5928. doi: 10.1038/s41467-021-26035-y.

Abstract

Tailored nanostructures provide at-will control over the properties of light, with applications in imaging and spectroscopy. Active photonics can further open new avenues in remote monitoring, virtual or augmented reality and time-resolved sensing. Nanomaterials with χ nonlinearities achieve highest switching speeds. Current demonstrations typically require a trade-off: they either rely on traditional χ materials, which have low non-linearities, or on application-specific quantum well heterostructures that exhibit a high χ in a narrow band. Here, we show that a thin film of organic electro-optic molecules JRD1 in polymethylmethacrylate combines desired merits for active free-space optics: broadband record-high nonlinearity (10-100 times higher than traditional materials at wavelengths 1100-1600 nm), a custom-tailored nonlinear tensor at the nanoscale, and engineered optical and electronic responses. We demonstrate a tuning of optical resonances by Δλ = 11 nm at DC voltages and a modulation of the transmitted intensity up to 40%, at speeds up to 50 MHz. We realize 2 × 2 single- and 1 × 5 multi-color spatial light modulators. We demonstrate their potential for imaging and remote sensing. The compatibility with compact laser diodes, the achieved millimeter size and the low power consumption are further key features for laser ranging or reconfigurable optics.

摘要

定制的纳米结构可随意控制光的特性,在成像和光谱学中具有应用价值。有源光子学可进一步为远程监测、虚拟现实或增强现实以及时间分辨传感开辟新途径。具有χ非线性的纳米材料可实现最高的开关速度。目前的演示通常需要进行权衡:它们要么依赖于非线性较低的传统χ材料,要么依赖于在窄带中表现出高χ的特定应用量子阱异质结构。在此,我们表明,聚甲基丙烯酸甲酯中的有机电光分子JRD1薄膜结合了有源自由空间光学所需的优点:宽带创纪录的高非线性(在1100 - 1600 nm波长下比传统材料高10 - 100倍)、纳米尺度定制的非线性张量以及经过设计的光学和电子响应。我们展示了在直流电压下光学共振可通过Δλ = 11 nm进行调谐,以及在高达50 MHz的速度下透射强度调制高达40%。我们实现了2×2单通道和1×5多通道空间光调制器。我们展示了它们在成像和遥感方面的潜力。与紧凑型激光二极管的兼容性、实现的毫米尺寸以及低功耗是激光测距或可重构光学的进一步关键特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bf3/8505481/681a8a1944bb/41467_2021_26035_Fig1_HTML.jpg

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