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首页> 外文期刊>ACS nano >One-shot deep-UV pulsed-laser-induced photomodification of hollow metal nanoparticles for high-density data storage on flexible substrates
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One-shot deep-UV pulsed-laser-induced photomodification of hollow metal nanoparticles for high-density data storage on flexible substrates

机译:一次深紫外脉冲激光诱导的中空金属纳米粒子的光改性,用于在柔性基板上进行高密度数据存储

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In this paper, we report a new optical data storage method: photomodification of hollow gold nanoparticle (HGN) monolayers induced by one-shot deep-ultraviolet (DUV) KrF laser recording. As far as we are aware, this study is the first to apply HGNs in optical data storage and also the first to use a recording light source for the metal nanoparticles (NPs) that is not a surface plasmon resonance (SPR) wavelength. The short wavelength of the recording DUV laser improved the optical resolution dramatically. We prepared HGNs exhibiting two absorbance regions: an SPR peak in the near-infrared (NIR) region and an intrinsic material extinction in the DUV region. A single pulse from a KrF laser heated the HGNs and transformed them from hollow structures to smaller solid spheres. This change in morphology for the HGNs was accompanied by a significant blue shift of the SPR peak. Employing this approach, we demonstrated its patterning ability with a resolving power of a half-micrometer (using a phase mask) and developed a readout method (using a blue-ray laser microscope). Moreover, we prepared large-area, uniform patterns of monolayer HGNs on various substrates (glass slides, silicon wafers, flexible plates). If this spectral recording technique could be applied onto thin flexible tapes, the recorded data density would increase significantly relative to that of current rigid discs (e.g., compact discs).
机译:在本文中,我们报告了一种新的光学数据存储方法:通过一次深紫外(DUV)KrF激光记录诱导的空心金纳米粒子(HGN)单层的光改性。据我们所知,这项研究是第一个在光学数据存储中应用HGNs的方法,也是第一个将记录光源用于不是表面等离振子共振(SPR)波长的金属纳米颗粒(NP)的研究。记录DUV激光器的短波长极大地提高了光学分辨率。我们制备了具有两个吸收区域的HGN:在近红外(NIR)区域中的SPR峰和在DUV区域中的固有材料消光。来自KrF激光器的单个脉冲加热了HGN,并将其从空心结构转变为较小的实心球。 HGNs的这种形态变化伴随有SPR峰的明显蓝移。使用这种方法,我们用半微米的分辨力(使用相位掩模)展示了其图案形成能力,并开发了一种读出方法(使用蓝光激光显微镜)。此外,我们在各种基板(载玻片,硅片,柔性板)上准备了大面积,均匀的单层HGN图案。如果该频谱记录技术可以应用于薄的柔性带上,则记录的数据密度将相对于当前的刚性盘(例如,压缩盘)显着增加。

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