Tantalum pentoxide: a new material platform for high-performance dielectric metasurface optics in the ultraviolet and visible region.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-01-22 DOI:10.1038/s41377-023-01330-z
Cheng Zhang, Lu Chen, Zhelin Lin, Junyeob Song, Danyan Wang, Moxin Li, Okan Koksal, Zi Wang, Grisha Spektor, David Carlson, Henri J Lezec, Wenqi Zhu, Scott Papp, Amit Agrawal
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Abstract

Dielectric metasurfaces, composed of planar arrays of subwavelength dielectric structures that collectively mimic the operation of conventional bulk optical elements, have revolutionized the field of optics by their potential in constructing high-efficiency and multi-functional optoelectronic systems on chip. The performance of a dielectric metasurface is largely determined by its constituent material, which is highly desired to have a high refractive index, low optical loss and wide bandgap, and at the same time, be fabrication friendly. Here, we present a new material platform based on tantalum pentoxide (Ta2O5) for implementing high-performance dielectric metasurface optics over the ultraviolet and visible spectral region. This wide-bandgap dielectric, exhibiting a high refractive index exceeding 2.1 and negligible extinction coefficient across a broad spectrum, can be easily deposited over large areas with good quality using straightforward physical vapor deposition, and patterned into high-aspect-ratio subwavelength nanostructures through commonly-available fluorine-gas-based reactive ion etching. We implement a series of high-efficiency ultraviolet and visible metasurfaces with representative light-field modulation functionalities including polarization-independent high-numerical-aperture lensing, spin-selective hologram projection, and vivid structural color generation, and the devices exhibit operational efficiencies up to 80%. Our work overcomes limitations faced by scalability of commonly-employed metasurface dielectrics and their operation into the visible and ultraviolet spectral range, and provides a novel route towards realization of high-performance, robust and foundry-manufacturable metasurface optics.

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五氧化钽:紫外线和可见光区域高性能介电元表面光学的新材料平台。
介电元表面由亚波长介电结构平面阵列组成,可共同模拟传统体光学元件的工作原理,在构建高效多功能片上光电系统方面具有巨大潜力,为光学领域带来了革命性的变化。介电元表面的性能很大程度上取决于其组成材料,人们非常希望它具有高折射率、低光学损耗和宽带隙,同时又便于制造。在此,我们提出了一种基于五氧化二钽(Ta2O5)的新材料平台,用于实现紫外和可见光谱区的高性能介电元表面光学器件。这种宽带隙电介质具有超过 2.1 的高折射率和在宽光谱范围内可忽略不计的消光系数,可通过简单的物理气相沉积法轻松实现大面积高质量沉积,并可通过常用的基于氟气的反应离子刻蚀法将其图案化为高光谱比的亚波长纳米结构。我们实现了一系列具有代表性光场调制功能的高效紫外线和可见光超表面,包括偏振无关的高数值孔径透镜、自旋选择性全息投影和生动的结构色彩生成,这些器件的运行效率高达 80%。我们的工作克服了常用超表面电介质的可扩展性及其在可见光和紫外光谱范围内运行所面临的限制,为实现高性能、坚固耐用和可代工制造的超表面光学器件提供了一条新的途径。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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