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三维自组织在纳米复合层系统中由超快激光脉冲。

Three-Dimensional Self-Organization in Nanocomposite Layered Systems by Ultrafast Laser Pulses.

机构信息

Univ Lyon, UJM-Saint-Etienne , CNRS, Institut d Optique Graduate School, Laboratoire Hubert Curien UMR 5516, F-42023 Saint-Etienne, France.

Laser Processing Group, Instituto de Optica , Serrano 121, 28006 Madrid, Spain.

出版信息

ACS Nano. 2017 May 23;11(5):5031-5040. doi: 10.1021/acsnano.7b01748. Epub 2017 May 9.

DOI:10.1021/acsnano.7b01748
PMID:28471649
Abstract

Controlling plasmonic systems with nanometer resolution in transparent films and their colors over large nonplanar areas is a key issue for spreading their use in various industrial fields. Using light to direct self-organization mechanisms provides high-speed and flexible processes to meet this challenge. Here, we describe a route for the laser-induced self-organization of metallic nanostructures in 3D. Going beyond the production of planar nanopatterns, we demonstrate that ultrafast laser-induced excitation combined with nonlinear feedback mechanisms in a nanocomposite thin film can lead to 3D self-organized nanostructured films. The process, which can be extended to complex layered composite systems, produces highly uniform large-area nanopatterns. We show that 3D self-organization originates from the simultaneous excitation of independent optical modes at different depths in the film and is activated by the plasmon-induced charge separation and thermally induced NP growth mechanisms. This laser color marking technique enables multiplexed optical image encoding and the generated nanostructured Ag NPs:TiO films offer great promise for applications in solar energy harvesting, photocatalysis, or photochromic devices.

摘要

在透明薄膜中以纳米分辨率控制等离子体系统及其在大非平面区域的颜色是将其在各种工业领域广泛应用的关键问题。利用光来引导自组织机制提供了高速和灵活的工艺来应对这一挑战。在这里,我们描述了一种在 3D 中激光诱导金属纳米结构自组织的方法。超越了平面纳米图案的制作,我们证明了超快激光激发与纳米复合材料薄膜中的非线性反馈机制相结合,可以导致 3D 自组织纳米结构薄膜。该过程可以扩展到复杂的分层复合系统,产生高度均匀的大面积纳米图案。我们表明,3D 自组织源于薄膜中不同深度处独立光学模式的同时激发,并由等离子体诱导的电荷分离和热诱导 NP 生长机制激活。这种激光彩色标记技术可以实现多路光学图像编码,所生成的纳米结构化 Ag NPs:TiO 薄膜在太阳能收集、光催化或光致变色器件等方面具有广阔的应用前景。

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