Institute of Micro-nano Photonics and Quantum Manipulation, School of Science, Nanjing University of Science and Technology, Nanjing, 210094, People's Republic of China.
National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Collaborative Innovation Center of Advanced Microstructures, Jiangsu Key Laboratory of Artificial Functional Materials, Nanjing University, Nanjing, 210093, People's Republic of China.
Nanotechnology. 2023 Apr 13;34(26). doi: 10.1088/1361-6528/acc8d9.
Metal nanogaps can confine electromagnetic field into extremely small volumes, exhibiting strong surface plasmon resonance effect. Therefore, metal nanogaps show great prospects in enhancing light-matter interaction. However, it is still challenging to fabricate large-scale (centimeter scale) nanogaps with precise control of gap size at nanoscale, limiting the practical applications of metal nanogaps. In this work, we proposed a facile and economic strategy to fabricate large-scale sub-10 nm Ag nanogaps by the combination of atomic layer deposition (ALD) and mechanical rolling. The plasmonic nanogaps can be formed in the compacted Ag film by the sacrificial AlOdeposited via ALD. The size of nanogaps are determined by the twice thickness of AlOwith nanometric control. Raman results show that SERS activity depends closely on the nanogap size, and 4 nm Ag nanogaps exhibit the best SERS activity. By combining with other porous metal substrates, various sub-10 nm metal nanogaps can be fabricated over large scale. Therefore, this strategy will have significant implications for the preparation of nanogaps and enhanced spectroscopy.
金属纳米间隙可以将电磁场限制在非常小的体积内,表现出很强的表面等离激元共振效应。因此,金属纳米间隙在增强光物质相互作用方面具有广阔的前景。然而,要制造具有纳米级精确间隙尺寸的大规模(厘米级)纳米间隙仍然具有挑战性,这限制了金属纳米间隙的实际应用。在这项工作中,我们提出了一种通过原子层沉积(ALD)和机械滚压相结合来制造大规模亚 10nmAg 纳米间隙的简便经济策略。通过 ALD 沉积的牺牲 AlO 可以在压实的 Ag 薄膜中形成等离子体纳米间隙。纳米间隙的尺寸由两次厚度的 AlO 决定,具有纳米级的控制。拉曼结果表明,SERS 活性与纳米间隙尺寸密切相关,4nmAg 纳米间隙表现出最佳的 SERS 活性。通过与其他多孔金属衬底结合,可以在较大范围内制造各种亚 10nm 的金属纳米间隙。因此,该策略将对纳米间隙和增强光谱的制备具有重要意义。