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首页> 外文期刊>Nanoscale >Three-dimensional scanning near field optical microscopy (3D-SNOM) imaging of random arrays of copper nanoparticles: implications for plasmonic solar cell enhancement
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Three-dimensional scanning near field optical microscopy (3D-SNOM) imaging of random arrays of copper nanoparticles: implications for plasmonic solar cell enhancement

机译:三维扫描近场光学显微镜(3D-SNOM)铜纳米颗粒的随机阵列成像:对等离子太阳能电池增强的影响

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In order to investigate the suitability of random arrays of nanoparticles for plasmonic enhancement in the visible-near infrared range, we introduced three-dimensional scanning near-field optical microscopy (3D-SNOM) imaging as a useful technique to probe the intensity of near-field radiation scattered by random systems of nanoparticles at heights up to several hundred nm from their surface. We demonstrated our technique using random arrays of copper nanoparticles (Cu-NPs) at different particle diameter and concentration. Bright regions in the 3D-SNOM images, corresponding to constructive interference of forward-scattered plasmonic waves, were obtained at heights Delta z >= 220 nm from the surface for random arrays of Cu-NPs of similar to 60-100 nm in diameter. These heights are too large to use Cu-NPs in contact of the active layer for light harvesting in thin organic solar cells, which are typically no thicker than 200 nm. Using a 200 nm transparent spacer between the system of Cu-NPs and the solar cell active layer, we demonstrate that forward-scattered light can be conveyed in 200 nm thin film solar cells. This architecture increases the solar cell photoconversion efficiency by a factor of 3. Our 3D-SNOM technique is general enough to be suitable for a large number of other applications in nanoplasmonics.
机译:为了调查纳米颗粒随机阵列在可见的红外范围内的等离子增强的适用性,我们引入了三维扫描近场光学显微镜(3D-SNOM)成像,作为一种有用的技术,以探测近型强度的强度场辐射由纳米颗粒的随机系统散布在高度高达几百nm的高度。我们使用不同颗粒直径和浓度的铜纳米颗粒(CU-NP)随机阵列展示了我们的技术。 3D-SNOM图像中的明亮区域在高度Z> = 220 nm处获得了与直径60-100 nm的CU-NP的随机阵列,在高度Delta z> = 220 nm处获得了相当于前向裂纹等离子波的建设性干扰。这些高度太大,无法使用CU-NP接触活性层,以在薄的有机太阳能电池中进行光收集,通常不超过200 nm。使用CU-NPS和太阳能电池活性层之间的200 nm透明垫片,我们证明可以在200 nm薄膜太阳能电池中传输前散射光。该体系结构将太阳能电池光转换效率提高了3个。我们的3D-SNOM技术足够通用,足以适合纳米疟疾中的大量其他应用。

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