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Engineering quadratic nonlinear photonic crystals for frequency conversion of lasers

机译:用于激光的变频器的工程二次非线性光子晶体

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摘要

Nonlinear frequency conversion offers an effective way to extend the laser wavelength range. Quadratic nonlinear photonic crystals (NPCs) are artificial materials composed of domain-inversion structures whose sign of nonlinear coefficients are modulated with desire to implement quasi-phase matching (QPM) required for nonlinear frequency conversion. These structures can offer various reciprocal lattice vectors (RLVs) to compensate the phase-mismatching during the quadratic nonlinear optical processes, including second-harmonic generation (SHG), sum-frequency generation and the cascaded third-harmonic generation (THG). The modulation pattern of the nonlinear coefficients is flexible, which can be one-dimensional or two-dimensional (2D), be periodic, quasi-periodic, aperiodic, chirped, or super-periodic. As a result, these NPCs offer very flexible QPM scheme to satisfy various nonlinear optics and laser frequency conversion problems via design of the modulation patterns and RLV spectra. In particular, we introduce the electric poling technique for fabricating QPM structures, a simple effective nonlinear coefficient model for efficiently and precisely evaluating the performance of QPM structures, the concept of super-QPM and super-periodically poled lithium niobate for finely tuning nonlinear optical interactions, the design of 2D ellipse QPM NPC structures enabling continuous tunability of SHG in a broad bandwidth by simply changing the transport direction of pump light, and chirped QPM structures that exhibit broadband RLVs and allow for simultaneous radiation of broadband SHG, THG, HHG and thus coherent white laser from a single crystal. All these technical, theoretical, and physical studies on QPMNPCs can help to gain a deeper insight on the mechanisms, approaches, and routes for flexibly controlling the interaction of lasers with various QPM NPCs for high-efficiency frequency conversion and creation of novel lasers.
机译:非线性频率转换提供了扩展激光波长范围的有效方法。二次非线性光子晶体(NPC)是由域反转结构组成的人造材料,其非线性系数的符号随着用于实现非线性频率转换所需的准相位匹配(QPM)的态度而调制。这些结构可以提供各种倒数晶格向量(RLV),以补偿二次非线性光学过程期间的相位失配,包括二次谐波产生(SHG),和频生成和级联的第三谐波生成(THG)。非线性系数的调制模式是柔性的,其可以是一维或二维(2D),是周期性的,准周期性,非周期性,啁啾或超周期性的。结果,这些NPC提供了非常灵活的QPM方案,以满足各种非线性光学和激光频率转换问题,通过调制模式和RLV光谱设计。特别地,我们介绍了用于制造QPM结构的电动抛光技术,这是一种简单的有效非线性系数模型,用于有效,精确地评估QPM结构的性能,超级QPM和超周期性极化锂铌酸盐的概念,用于精细调谐非线性光学相互作用,2D椭圆QPM NPC结构的设计通过简单地改变泵浦灯的传送方向,实现了宽带宽的SHG的连续可调性,并啁啾QPM结构,该结构表现出宽带RLV,允许同时辐射宽带SHG,THG,HHG,因此来自单晶的相干的白色激光。 QPMNPC的所有这些技术,理论和物理研究都有助于深入了解灵活地控制激光与各种QPM NPC相互作用的机制,方法和路线的洞察力,以实现高效的频率转换和创建新型激光器。

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