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A Programmable Nanofabrication Method for Complex 3D Meta-Atom Array Based on Focused-Ion-Beam Stress-Induced Deformation Effect

机译:基于聚焦离子束应力诱发变形效应的复杂3D元原子阵列的可编程纳米加工方法

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摘要

Due to their unique electromagnetic properties, meta-atom arrays have always been a hotspot to realize all kinds of particular functions, and the research on meta-atom structure has extended from two-dimensions (2D) to three-dimensions (3D) in recent years. With the continuous pursuit of complex 3D meta-atom arrays, the increasing demand for more efficient and more precise nanofabrication methods has encountered challenges. To explore better fabrication methods, we presented a programmable nanofabrication method for a complex 3D meta-atom array based on focused-ion-beam stress-induced deformation (FIB-SID) effect and designed a distinctive nanostructure array composed of periodic 3D meta-atoms to demonstrate the presented method. After successful fabrication of the designed 3D meta-atom arrays, measurements were conducted to investigate the electric/magnetic field properties and infrared spectral characteristics using scanning cathodoluminescence (CL) microscopic imaging and Fourier transform infrared (FTIR) spectroscopy, which revealed a certain excitation mode induced by polarized incident IR light near 8 μm. Besides the programmability for complex 3D meta-atoms and wide applicability of materials, a more significant advantage of the method is that a large-scale array composed of complex 3D meta-atoms can be processed in a quasi-parallel way, which improves the processing efficiency and the consistency of unit cells dramatically.
机译:由于其独特的电磁特性,超原子阵列一直是实现各种特殊功能的热点,近来对超原子结构的研究已从二维(2D)扩展到三维(3D)。年份。随着对复杂3D超原子阵列的不断追求,对更高效,更精确的纳米加工方法的需求不断增长。为了探索更好的制造方法,我们提出了一种基于聚焦离子束应力诱发变形(FIB-SID)效应的复杂3D偏原子阵列的可编程纳米制造方法,并设计了由周期性3D偏原子组成的独特纳米结构阵列演示所提出的方法。成功制作出设计的3D偏原子阵列后,使用扫描阴极发光(CL)显微成像和傅里叶变换红外(FTIR)光谱进行测量以研究电/磁场特性和红外光谱特性,从而揭示了一定的激发模式偏振入射红外光在8μm附近引起的。除了对复杂的3D偏原子的可编程性和材料的广泛适用性之外,该方法的另一个显着优点是,可以以准并行方式处理由复杂的3D偏原子组成的大规模阵列,从而改善了处理能力。效率和单位电池的一致性显着。

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