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Nanoscale Engineering of Optical nonlinearity Based on a Metal Nitride/Oxide Heterostructure

机译:基于金属氮化物/氧化异质结构的光学非线性纳米级工程

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The abilities to modulate linear and nonlinear optical response of materials in the nanoscale are of central importance in the design and fabrication of photonic devices for applications like optical modulators. Here, based on a simple transition metal oxide/nitride (TiO2/TiN) system, we show that it is possible to tune the optical properties by controlling the nanoscale architecture. Through controlled oxidation of the plasmonic TiN nanoparticle surfaces, we observe a continuous change of linear and nonlinear optical (NLO) properties with the increase of the thickness of the oxide layer in the TiN/TiO2 heterogeneous architecture. The NLO response is manifested by the strong saturable absorption with a structurally tunable negative NLO absorption coefficient. The variation in the NLO absorption coefficient by up to 7-fold can be connected to the relative change in the volume fraction of the metallic core and the dielectric shell. We demonstrate further that the optimized TiN-TiO2 heterostructures can be used to drive an optical switch for pulse laser generation in the 1.5 mu m wavelength region. Our results delineate a topochemical process for optimization of the NLO properties of common plasmonic materials for photonic applications based on simple materials chemistry.
机译:在光调制器等光子器件的设计和制造中,在纳米尺度上调制材料的线性和非线性光学响应的能力至关重要。在这里,基于一个简单的过渡金属氧化物/氮化物(TiO2/TiN)系统,我们展示了通过控制纳米结构来调节光学性质的可能性。通过对等离激元TiN纳米颗粒表面的控制氧化,我们观察到随着TiN/TiO2异质结构中氧化层厚度的增加,线性和非线性光学(NLO)性质的持续变化。非线性光学响应表现为强饱和吸收,结构可调的负非线性光学吸收系数。NLO吸收系数的变化高达7倍,这与金属芯和电介质壳的体积分数的相对变化有关。我们进一步证明,优化后的TiN-TiO2异质结构可用于驱动光开关,在1.5μm波长范围内产生脉冲激光。我们的结果描绘了一个基于简单材料化学的拓扑化学过程,用于优化用于光子应用的普通等离子体材料的NLO特性。

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