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Active glass-polymer superlattice structure for photonic integration

机译:有源玻璃-聚合物超晶格结构,用于光子集成

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We propose an all-laser processing approach allowing controlled growth of organicinorganic superlattice structures of rare-earth ion doped tellurium-oxide-based glass and optically transparent polydimethyl siloxane (PDMS) polymer; the purpose of which is to illustrate the structural and thermal compatibility of chemically dissimilar materials at the nanometer scale. Superlattice films with interlayer thicknesses as low as 2 nm were grown using pulsed laser deposition (PLD) at low temperatures (100°C). Planar waveguides were successfully patterned by femtosecond-laser micro-machining for light propagation and efficient Er ~(3+)-ion amplified spontaneous emission (ASE). The proposed approach to achieve polymerglass integration will allow the fabrication of efficient and durable polymer optical amplifiers and lossless photonic devices. The all-laser processing approach, discussed further in this paper, permits the growth of films of a multitude of chemically complex and dissimilar materials for a range of optical, thermal, mechanical and biological functions, which otherwise are impossible to integrate via conventional materials processing techniques.
机译:我们提出了一种全激光处理方法,该方法可以控制稀土离子掺杂的氧化碲基玻璃和光学透明的聚二甲基硅氧烷(PDMS)聚合物的有机无机超晶格结构的生长;目的是说明纳米级化学异种材料的结构和热相容性。使用脉冲激光沉积(PLD)在低温(100°C)下生长层间厚度低至2 nm的超晶格薄膜。飞秒激光微加工技术成功地对平面波导进行了构图,以实现光传播和有效的Er〜(3+)离子放大自发辐射(ASE)。所提出的实现聚合物玻璃集成的方法将允许制造高效且耐用的聚合物光放大器和无损光子器件。本文将进一步讨论的全激光加工方法允许生长多种化学复杂和不同材料的薄膜,以实现一系列光学,热,机械和生物学功能,否则这些材料无法通过常规材料加工进行整合技术。

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