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Highly nonlinear sub-micron silicon nitride trench waveguide coated with gold nanoparticles

机译:纳米金包覆的高度非线性的亚微米氮化硅沟槽波导

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We demonstrate the fabrication of a highly nonlinear sub-micron silicon nitride trench waveguide coated with gold nanoparticles for plasmonic enhancement. The average enhancement effect is evaluated by measuring the spectral broadening effect caused by self-phase-modulation. The nonlinear refractive index n_2 was measured to be 7.0917×10~(-19) m~2/W for a waveguide whose W_(open) is 5 μm. Several waveguides at different locations on one wafer were measured in order to take the randomness of the nanoparticle distribution into consideration. The largest enhancement is measured to be as high as 10 times. Fabrication of this waveguide started with a MEMS grade photomask. By using conventional optical lithography, the wide linewidth was transferred to a <100> wafer. Then the wafer was etched anisotropically by potassium hydroxide (KOH) to engrave trapezoidal trenches with an angle of 54.7°. Side wall roughness was mitigated by KOH etching and thermal oxidation that was used to generate a buffer layer for silicon nitride waveguide. The guiding material silicon nitride was then deposited by low pressure chemical vapor deposition. The waveguide was then patterned with a chemical template, with 20 nm gold particles being chemically attached to the functionalized poly(methyl methacrylate) domains. Since the particles attached only to the PMMA domains, they were confined to localized regions, therefore forcing the nanoparticles into clusters of various numbers and geometries. Experiments reveal that the waveguide has negligible nonlinear absorption loss, and its nonlinear refractive index can be greatly enhanced by gold nano clusters. The silicon nitride trench waveguide has large nonlinear refractive index, rendering itself promising for nonlinear applications.
机译:我们演示了涂覆有金纳米粒子的等离子体增强的高度非线性亚微米氮化硅沟槽波导的制造。通过测量由自相位调制引起的光谱展宽效果来评估平均增强效果。对于W_(open)为5μm的波导,非线性折射率n_2经测量为7.0917×10〜(-19)m〜2 / W。测量了一个晶片上不同位置的几个波导,以考虑纳米颗粒分布的随机性。最大的增强被测量为高达10倍。该波导的制造始于MEMS级光掩模。通过使用常规的光刻技术,将宽线宽转移到<100>晶圆上。然后,用氢氧化钾(KOH)各向异性蚀刻晶片,以54.7°的角度雕刻梯形沟槽。侧壁粗糙度通过KOH蚀刻和热氧化得到缓解,KOH蚀刻和热氧化用于生成氮化硅波导的缓冲层。然后通过低压化学气相沉积来沉积引导材料氮化硅。然后用化学模板对波导进行构图,将20 nm金颗粒化学附着到功能化的聚(甲基丙烯酸甲酯)域上。由于颗粒仅附着在PMMA域上,因此它们被限制在局部区域,因此迫使纳米颗粒成为各种数量和几何形状的簇。实验表明,该波导具有很小的非线性吸收损耗,其金纳米簇可以大大提高其非线性折射率。氮化硅沟槽波导具有大的非线性折射率,使其本身有望用于非线性应用。

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