Laser printing of Au nanoparticles with sub-micron resolution for the fabrication of monochromatic reflectors on stretchable substrates

Laser printing of Au nanoparticles with sub-micron resolution for the fabrication of monochromatic reflectors on stretchable substrates
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激光打印亚微米分辨率的金纳米粒子,用于在可拉伸基材上制造单色反射器

DOI:
10.1016/j.optlastec.2020.106660
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发表时间:
2021
影响因子:
5
通讯作者:
I. Zergioti
I. Zergioti
中科院分区:
物理与天体物理2区
文献类型:
--
作者:
F. Zacharatos;M. Duderstadt;E. Almpanis;L.Patsiouras;K. Kurselis;D. Tsoukalas;C. Reinhardt;N. Papanikolaou;B.N. Chichkov;I. Zergioti

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激光诱导向前和向后转移(LIFT 和 LIBT)已作为直接纳米和微米制造技术出现,允许对具有灵活和可拉伸形状因素的各种材料进行数字和可控打印。通过采用包含直接印刷方法和传统纳米制造技术最佳特征的组合方案,可以在实现非常具有挑战性的金属/聚合物界面方面取得进一步的进展。这项工作展示了 LIFT 和 LIBT 与电子束和纳米压印光刻技术的结合,用于制造窄带强反射表面,该表面由嵌入聚二甲基硅氧烷基底中的高度有序的金纳米颗粒方形阵列组成。转移的纳米颗粒直径范围为 150 至 300 nm,阵列间距约为 500 nm,可在光谱的可见光范围内实现共振。对所得阵列进行光学表征,并借助有限元模拟解释所获得的光谱。尖锐共振出现在 730 nm 附近,并且由于周期性晶格中的光衍射而与晶格诱导模式相关。报告的结果强调了 LIFT 和 LIBT 在新型光子和光电应用中实现薄型、可拉伸和透明组件的能力。
Laser Induced Forward and Backward Transfer (LIFT and LIBT) have emerged as direct nano- and micro-fabrication technologies allowing the digital and controllable printing of a large variety of materials for components with flexible and stretchable form factors. Further advancements on the achievement of very challenging metal/ polymer interfaces can be enabled by employing combinational schemes comprising the best features of direct printing methods and conventional nano-fabrication technologies. This work is a demonstration of the combination of LIFT and LIBT with e-beam and nano-imprint lithography for the fabrication of a narrowband, strongly reflecting surface comprising highly ordered square arrays of Au nanoparticles embedded within Polydimethylsiloxane substrates. The transferred nanoparticle diameters range from 150 to 300 nm and the array pitch is in the order of 500 nm, enabling resonance within the visible range of the spectrum. The resulting arrays are characterized optically and the obtained spectra are explained with the help of finite element simulations. Excellent agreement between characterization and simulation is shown for the sharp resonance, which appears around 730 nm and is associated with lattice induced modes owing to diffraction of light in the periodic lattice. The reported results highlight the capability of LIFT and LIBT for the implementation of thin, stretchable and transparent components for novel photonic and optoelectronic applications.
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