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采用基于激光的方法,实现无配体的等离子体金纳米粒子在氧化锌纳米线上的附着,从而制造出一种具有高性能的宽带光电探测器。

Ligand-free attachment of plasmonic Au nanoparticles on ZnO nanowire to make a high-performance broadband photodetector using a laser-based method.

机构信息

Department of Condensed Matter Physics and Material Sciences, Unit for Nanoscience, S. N. Bose National Centre for Basic Sciences, Block-JD, Sector-3, Salt-Lake, Kolkata 700 106, India.

出版信息

Nanotechnology. 2017 Jul 21;28(29):295703. doi: 10.1088/1361-6528/aa7535. Epub 2017 Jun 28.

DOI:10.1088/1361-6528/aa7535
PMID:28656902
Abstract

We report a new strategy for ligand-free attachment of plasmonic Au nanoparticles on the surface of a ZnO nanowire to make high-performance broadband photodetectors using a pulsed laser ablation technique in a liquid medium. The photoresponse of the ZnO-based photodetector is enhanced and the photodetection limit is broadened from UV to visible, which can be controlled by varying the concentration of Au nanoparticles attached to the ZnO surface. This Au nanoparticle concentration can be tuned by varying the number of laser pulses used in the ablation process. We found that the responsivity of the detector is 10 mA W for [Formula: see text] and increases to as much as 0.4 A W for λ ≤ 400 nm for the maximum Au concentration. The enhanced responsivity was found to be linked to increased absorption over a broad spectral range arising from direct and indirect plasmonic processes due to Au nanoparticle attachment, and the enhanced absorption also leads to a large increment in photocurrent generation. We also found that the attachment of Au nanoparticles makes the relaxation of the photocurrent (persistence) considerably faster in both the UV and visible regions of the spectrum and that the persistence directly depends on the concentration of Au nanoparticles attached to the ZnO nanowire. This single-step pulsed laser ablation-based nanoparticle attachment process can be further used to make other plasmonic nanoparticle-decorated nanowire devices.

摘要

我们报告了一种新的策略,即在液相中使用脉冲激光烧蚀技术,在 ZnO 纳米线表面实现无配体的等离子体 Au 纳米粒子附着,从而制造高性能宽带光电探测器。基于 ZnO 的光电探测器的光响应得到增强,并且光探测极限从紫外拓宽到可见,这可以通过改变附着在 ZnO 表面的 Au 纳米粒子的浓度来控制。通过改变烧蚀过程中使用的激光脉冲数,可以调整 Au 纳米粒子的浓度。我们发现,对于[Formula: see text],探测器的响应率为 10 mA W,而对于最大 Au 浓度,λ ≤ 400 nm 的响应率增加到高达 0.4 A W。增强的响应率与由于 Au 纳米粒子附着而导致的直接和间接等离子体过程引起的宽光谱范围内的吸收增加有关,并且增强的吸收也导致光电流产生的大幅增加。我们还发现,Au 纳米粒子的附着使得光电流的弛豫(持续时间)在光谱的紫外和可见区域都大大加快,并且持续时间直接取决于附着在 ZnO 纳米线上的 Au 纳米粒子的浓度。这种基于单步脉冲激光烧蚀的纳米粒子附着过程可进一步用于制造其他等离子体纳米粒子修饰的纳米线器件。

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