首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Large area controllable hexagonal close-packed single-crystalline metal nanocrystal arrays with localized surface plasmon resonance response
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Large area controllable hexagonal close-packed single-crystalline metal nanocrystal arrays with localized surface plasmon resonance response

机译:具有局部表面等离子体共振响应的大面积可控六角形密堆积单晶金属纳米晶体阵列

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摘要

We demonstrated large-area, high density, hexagonal close-packed, single crystalline metal (Au, Ag) nanocrystal arrays with controllable crystal sizes of tens of nanometers, center-to-center spacing and uniform size distribution by colloidal lithography and the surface energy driven dewetting process. Larger than 30 x 40 μm~2 single superlattice domain metal nanocrystal arrays were formed on Si and can be transferred to flexible substrates, illustrating the versatility to realize metal nanocrystal arrays on various substrates. The large-area hexagonal close-packed metal (Au, Ag) nanocrystal arrays with various sizes and center-to-center spacings were prepared and manipulated by regulation of the thickness of metals and the size of colloidal spheres. Appropriate surface treatments and the metal deposition method were shown to be critical for obtaining metal nanocrystal arrays with uniform size and reduced crystal size. Localized surface plasmon resonance (LSPR) responses of these nanocrystal arrays were systematically measured and exhibited high consistency with simulation based on Mie theory, implying that the high controllability of the LSPR wavelength can be achieved by these methods. The process provides an inexpensive and easy route to fabricate a large-scale close-packed single crystalline metal nanocrystal array with controllable sizes compared to the e-beam lithography method for precise regulation of the LSPR wavelength and light scattering cross-sections. It exhibits excellent versatility and controllability to fabricate large-scale metal nanocrystal arrays with various sizes, compositions, morphologies and structures on different substrates. Single crystallinity and long-range order of metal nanocrystal arrays can be achieved to enhance LSPR performance and benefit directional propagation, which can lead to significant applications in surface-enhanced Raman scattering (SERS) based biosensors, nanoantennas and other plasmonic optoelectronics.
机译:我们展示了大面积,高密度,六方密排的单晶金属(Au,Ag)纳米晶体阵列,其胶体光刻技术和表面能可控制的晶体大小为几十纳米,中心距和间距均匀驱动的去湿过程。大于30 x 40μm〜2的单超晶格域金属纳米晶体阵列形成在Si上,并且可以转移到柔性基板上,说明了在各种基板上实现金属纳米晶体阵列的多功能性。通过调节金属的厚度和胶体球的尺寸来制备和操纵具有各种尺寸和中心到中心间距的大面积六角形密堆积金属(Au,Ag)纳米晶体阵列。适当的表面处理和金属沉积方法对于获得具有均匀尺寸和减小的晶体尺寸的金属纳米晶体阵列至关重要。系统地测量了这些纳米晶体阵列的局部表面等离子体共振(LSPR)响应,并且与基于Mie理论的模拟显示出高度一致性,这表明通过这些方法可以实现对LSPR波长的高度可控性。与用于精确调节LSPR波长和光散射截面的电子束光刻方法相比,该方法提供了一种廉价且容易的途径来制造具有可控制尺寸的大规模密排单晶金属纳米晶体阵列。它具有出色的多功能性和可控制性,可以在不同的基板上制造具有各种尺寸,成分,形态和结构的大规模金属纳米晶体阵列。可以实现金属纳米晶体阵列的单晶度和远距离有序性,以增强LSPR性能并有益于定向传播,这可以导致在基于表面增强拉曼散射(SERS)的生物传感器,纳米天线和其他等离子体光电器件中的重要应用。

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