Gao Zhi, Wildenborg Aaron, Kocoj Conrad A, Liu Eric, Sheofsky Caden, Rawashdeh Abdelsalam, Qu Hongwei, Guo Peijun, Suh Jae Yong, Yang Ankun
Department of Mechanical Engineering, Oakland University, Rochester, Michigan 48309, United States.
Department of Physics, Michigan Technological University, Houghton, Michigan 49931, United States.
Nano Lett. 2023 Aug 9;23(15):7150-7156. doi: 10.1021/acs.nanolett.3c02054. Epub 2023 Jul 21.
Alkali metals have low optical losses in the visible to near-infrared (NIR) compared with noble metals. However, their high reactivity prohibits the exploration of their optical properties. Recently sodium (Na) has been experimentally demonstrated as a low-loss plasmonic material. Here we report on a thermo-assisted nanoscale embossing (TANE) technique for fabricating plasmonic nanostructures from pure potassium (K) and NaK liquid alloys. We show high-quality-factor resonances from K as narrow as 15 nm in the NIR, which we attribute to the high material quality and low optical loss. We further demonstrate liquid Na-K plasmonics by exploiting the Na-K eutectic phase diagram. Our study expands the material library for alkali metal plasmonics and liquid plasmonics, potentially enabling a range of new material platforms for active metamaterials and photonic devices.
与贵金属相比,碱金属在可见光到近红外(NIR)波段具有较低的光学损耗。然而,它们的高反应活性阻碍了对其光学性质的探索。最近,钠(Na)已通过实验证明是一种低损耗的等离子体材料。在此,我们报道了一种热辅助纳米压印(TANE)技术,用于从纯钾(K)和钠钾液态合金制备等离子体纳米结构。我们展示了钾在近红外波段窄至15纳米的高品质因数共振,这归因于高材料质量和低光学损耗。我们还通过利用钠钾共晶相图进一步展示了液态钠钾等离子体。我们的研究扩展了碱金属等离子体和液态等离子体的材料库,有可能为有源超材料和光子器件带来一系列新的材料平台。