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非局域金属-电介质环境对物理和化学过程的影响。

The Influence of Nonlocal Metal-Dielectric Environments on Physical and Chemical Processes.

机构信息

Department of Chemistry and Center for Materials Research, Norfolk State University, 700 Park Avenue, Norfolk, Virginia 23504, United States.

Department of Physics and Center for Materials, Norfolk State University, 700 Park Avenue, Norfolk, Virginia 23504, United States.

出版信息

Acc Chem Res. 2023 Jun 6;56(11):1350-1357. doi: 10.1021/acs.accounts.2c00783. Epub 2023 May 31.

Abstract

ConspectusPlasmonic nanolayers and laminar metallic/dielectric multilayers were originally developed for optical cloaking applications and lensing applications that could potentially image objects whose size was below the diffraction limit. These assemblies were initially formed from gold or silver nanorods grown within an alumina mesh. However, more recently, assemblies with similar properties have also been prepared by sequential thin-layer deposition of alternating layers of gold and magnesium fluoride (MgF). These metal/dielectric composite materials enable control of the dielectric constant in the directions perpendicular to the layers and balance the real and imaginary dielectric constants of the assembly such that the speed and the amplitude of the waves traveling through the assembly are not attenuated.In this Account, we will also focus on a few of the applications ranging from surface wetting to fluorescence quenching to enhancement of photochemical reactions. First, we will share an introduction to processes used to create these materials, which are combinations of low refractive index metals and transparent higher index materials arranged in a scalable repeating fashion. Two fabrication methods were employed: an electrochemical deposition of Ag nanorods into an anodized alumina matrix which produced materials with an anisotropic negative refractive index material within the plane of the film and lamellar metal/dielectric layers in which the negative index perpendicular to the growth direction. These alternating layers of plasmonic metals and dielectric materials were ultimately chosen to prepare films for further testing, because of their relative ease of fabrication. We will continue with a discussion of a few of the applications of both of these nonlocal dielectric composite materials including more specialized plasmonic, composite, and hyperbolic metamaterials including fluorescence quenching, photochemical reactions, and surface wetting. In each of these applications, the unique response caused by the enhancement of the electric field and the interface between hyperbolic materials and plasmonic materials as they interact photophysically with their near neighbors is presented. In each of the applications, the enhanced electric field extends from the composite substrate layer to interact with its near neighbors and beyond. The presence of this extended interaction can be observed in the form of decreased emission lifetime, enhancement of photochemical reaction rates, and changes in the surface energies measured by contact angle goniometry. In this Account, all of these situations will be addressed. Finally, we will conclude with a summary and vision for the future as well as a discussion of the unique challenges and opportunities available as research active faculty at an HBCU.

摘要

等离子体纳米层和层状金属/电介质多层膜最初是为光学伪装应用和潜在的超分辨成像应用而开发的,这些应用可以对尺寸小于衍射极限的物体进行成像。这些组件最初是由在氧化铝网内生长的金或银纳米棒形成的。然而,最近,也通过交替沉积金和氟化镁(MgF)的薄层来制备具有类似性质的组件。这些金属/电介质复合材料能够控制垂直于层的介电常数,并平衡组件的实部和虚部介电常数,从而使穿过组件的波的速度和幅度不会衰减。

在本报告中,我们还将重点介绍一些应用,从表面润湿到荧光猝灭再到光化学反应的增强。首先,我们将介绍创建这些材料的过程,这些材料是低折射率金属和透明高折射率材料的组合,以可扩展的重复方式排列。使用了两种制造方法:在阳极氧化铝模板中电化学沉积 Ag 纳米棒,从而在薄膜平面内产生各向异性负折射率材料,并在垂直于生长方向的层状金属/电介质层中产生负折射率材料。这些等离子体金属和电介质材料的交替层最终被选择来制备进一步测试的薄膜,因为它们的制造相对容易。我们将继续讨论这两种非局部介电复合材料的一些应用,包括更专业的等离子体、复合材料和双曲超材料,包括荧光猝灭、光化学反应和表面润湿。在这些应用中的每一个中,都会呈现出由增强的电场和双曲材料与等离子体材料之间的界面引起的独特响应,因为它们与近邻光物理相互作用。在这些应用中的每一个中,增强的电场从复合衬底层延伸到与其近邻相互作用并超越。这种扩展相互作用的存在可以通过发射寿命的缩短、光化学反应速率的增强以及接触角测角法测量的表面能的变化来观察到。在本报告中,所有这些情况都将得到解决。最后,我们将以总结和对未来的展望以及作为 HBCU 的活跃研究人员所面临的独特挑战和机遇来结束。

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