论文标题

锑薄膜展示了可编程的光学非线性

Antimony thin films demonstrate programmable optical non-linearity

论文作者

Cheng, Zengguang, Milne, Tara, Salter, Patrick, Kim, Judy S., Humphrey, Samuel, Booth, Martin, Bhaskaran, Harish

论文摘要

使用纳米尺寸的金属来增强和操纵光结物的相互作用,用于一系列新兴的基于等离子间的纳米光子和光电应用应用,是等离子间1,2以外的研究领域的一个有趣但又没有得到高度探索的研究领域。更重要的是,尚未探索活性金属的概念,即可以进行光学非易失性过渡的金属。基于纳米结构的应用程序将对光学的现有和未来产生前所未有的影响,并在单个元素金属3-5中开发主动和非线性光学可调性。与合金相比,纯金属具有物质的简单性和均匀性。然而,尽管已经探讨了可行的电动材料,但尚未将单个元素金属视为可调的光学材料。在本文中,我们首次证明了两个金属(SB)是一种纯属金属,在两个可编程状态(作为纳米级薄膜)之间是可以区分的。然后,我们表明这些状态在室温下是稳定的,并且状态对应于金属的晶体和无定形阶段。从应用程序的角度来看,至关重要的是,我们演示了其光电调制功能以及使用单个子秒(PS)脉冲开关的速度。沉积单个金属的简单性预示着其在从高速活性超材料到光子神经形态计算的应用中的潜力,并打开了其在任何光电应用中使用的可能性,在任何光电应用中,具有主动可调状态的金属导体很重要。

The use of metals of nanometer dimensions to enhance and manipulate light-matter interactions for a range of emerging plasmonics-enabled nanophotonic and optoelectronic applications is an interesting, yet not highly explored area of research outside of plasmonics1,2. Even more importantly, the concept of an active metal, i.e. a metal that can undergo an optical non-volatile transition has not been explored. Nanostructure-based applications would have unprecedented impact on both the existing and future of optics with the development of active and nonlinear optical tunabilities in single elemental metals3-5. Compared to alloys, pure metals have the material simplicity and uniformity; however single elemental metals have not been viewed as tunable optical materials, although they have been explored as viable electrically switchable materials. In this paper we demonstrate for the first time that antimony (Sb), a pure metal, is optically distinguishable between two programmable states as nanoscale thin films. We then show that these states are stable at room temperature, and the states correspond to the crystalline and amorphous phases of the metal. Crucially from an application standpoint, we demonstrate both its optoelectronic modulation capabilities as well as speed of switching using single sub-picosecond (ps) pulses. The simplicity of depositing a single metal portends its potential for use in applications ranging from high speed active metamaterials to photonic neuromorphic computing, and opens up the possibility for its use in any optoelectronic application where metallic conductors with an actively tunable state is important.

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