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原子工程梯度可调谐固态超材料。

Atomic-engineered gradient tunable solid-state metamaterials.

作者信息

Yan Zhiyuan, Handoko Albertus Denny, Wu Weikang, Yang Chuchu, Wang Hao, Yilmaz Meltem, Zhang Zhiyong, Cheng Libo, Cheng Xinbin, Ho Ghim Wei, Feng Bin, Shibata Naoya, Zhao Rong, Yang Joel K W, Chong Chong Tow, Ikuhara Yuichi, Qiu Cheng-Wei

机构信息

Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117583, Singapore.

Institute of Materials Research and Engineering, Agency for Science, Technology and Research, Singapore 138634, Singapore.

出版信息

Proc Natl Acad Sci U S A. 2024 Sep 24;121(39):e2408974121. doi: 10.1073/pnas.2408974121. Epub 2024 Sep 18.

Abstract

Metamaterial has been captivated a popular notion, offering photonic functionalities beyond the capabilities of natural materials. Its desirable functionality primarily relies on well-controlled conditions such as structural resonance, dispersion, geometry, filling fraction, external actuation, etc. However, its fundamental building blocks-meta-atoms-still rely on naturally occurring substances. Here, we propose and validate the concept of gradient and reversible atomic-engineered metamaterials (GRAM), which represents a platform for continuously tunable solid metaphotonics by atomic manipulation. GRAM consists of an atomic heterogenous interface of amorphous host and noble metals at the bottom, and the top interface was designed to facilitate the reversible movement of foreign atoms. Continuous and reversible changes in GRAM's refractive index and atomic structures are observed in the presence of a thermal field. We achieve multiple optical states of GRAM at varying temperature and time and demonstrate GRAM-based tunable nanophotonic devices in the visible spectrum. Further, high-efficiency and programmable laser raster-scanning patterns can be locally controlled by adjusting power and speed, without any mask-assisted or complex nanofabrication. Our approach casts a distinct, multilevel, and reversible postfabrication recipe to modify a solid material's properties at the atomic scale, opening avenues for optical materials engineering, information storage, display, and encryption, as well as advanced thermal optics and photonics.

摘要

超材料已经成为一个热门概念,它能提供超越天然材料能力的光子功能。其理想功能主要依赖于结构共振、色散、几何形状、填充率、外部驱动等精心控制的条件。然而,其基本构建单元——超原子——仍然依赖于天然存在的物质。在此,我们提出并验证了梯度和可逆原子工程超材料(GRAM)的概念,它代表了一个通过原子操纵实现连续可调谐固体超光子学的平台。GRAM由底部非晶态主体与贵金属的原子异质界面组成,顶部界面设计用于促进外来原子的可逆移动。在热场存在的情况下,观察到GRAM的折射率和原子结构发生连续且可逆的变化。我们在不同温度和时间下实现了GRAM的多种光学状态,并展示了基于GRAM的可见光谱可调谐纳米光子器件。此外,通过调整功率和速度,可以局部控制高效且可编程的激光光栅扫描图案,无需任何掩膜辅助或复杂的纳米制造。我们的方法为在原子尺度上修改固体材料的性质提供了一种独特、多层次且可逆的后制造方法,为光学材料工程、信息存储、显示和加密以及先进的热光学和光子学开辟了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/00bb/11441542/fb1c15a09f9d/pnas.2408974121fig01.jpg

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