Near-field Enhanced Optomechanical NAnoresonators – NEONA
Near-field Enhanced Optomechanical NAnoresonators – NEONA
批准号:
512904458
负责人:
Professor Dr.-Ing. Dirk Plettemeier
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
等离子体机械纳米谐振器中频率高达太赫兹范围的相干声振动是超小型和高度可集成的全光学RF信号发生器的重要特征。相关的本征介电性质的超快调制允许直接反馈到特性特征,例如局部表面等离子体共振及其高度显著的消光行为。迄今为止,由于以下几个原因,尚未实现将该特征有意义地集成到与现代硅光子学兼容的等离子体系统中:(i)在典型的自顶向下制造的纳米结构中,光学和机械损耗都相对较高。(ii)由于尺寸相关的影响,目前可实现的光谱调制深度受到限制。(iii)高频调制只可能在等离子体纳米结构,如贵金属纳米粒子具有足够小的尺寸,因此只适用于UV/维斯光谱范围。这项研究建议的重点是近场耦合双共振等离子体纳米谐振器进行优化的NIR光谱范围。这样,固有局域表面等离子体共振的相关光谱杂交实现了光谱和机械性质的灵活适应。与孤立的纳米结构相比,通过利用电磁粒子间近场耦合及其定向调制,将实现光谱特性的高频调制和显着增强。这种方法要求粒子间距离在~10 nm的范围内,这对于经典的自上而下的制造工艺是一个挑战。自下而上的方法在所需的精度方面更实用,并且在显著降低光学和机械损耗方面也更有利。出于这个原因,湿化学合成的单晶纳米颗粒的DNA折纸自组装将被应用。为了在集成纳米光子学中实现组装的纳米谐振器的有意义的使用,必须实现从湿相选择性定位的固定。为此,将开发一种薄膜系统,使形貌辅助表面固定。对于该项目,两个具有纳米结构设计和表征背景的团队(德累斯顿工业大学,RF和光子学工程主席)以及具有纳米结构和微电子制造专业知识的团队(切姆尼茨工业大学,光电系统)合作。结合经验,设想的全光增强调制行为以及实现光学超颖表面将被处理。通过对单个纳米结构以及复合材料的光谱和动态特性的全面分析,以及优化的制造工艺,实现了对新型高度集成光学纳米器件的理解的重要贡献。
英文摘要
Coherent acoustic vibrations in plasmomechanical nanoresonators with frequencies up to the terahertz range are an important feature in terms of ultra-small and highly integrable all-optical RF signal generators. The associated ultrafast modulation of intrinsic dielectric properties allows direct feedback to characteristic features such as localized surface plasmon resonances and their highly pronounced extinction behavior.A meaningful integration of this feature into plasmonic systems compatible with modern silicon photonics has not been realized to date for several reasons: (i) Both optical and mechanical losses are comparatively high in typically top-down fabricated nanostructures. (ii) The achievable depth of spectral modulation is currently limited due to size-related effects. (iii) High frequency modulation is only possible in plasmonic nanostructures such as noble metallic nanoparticles with sufficiently small sizes and is therefore only suitable for the UV / VIS spectral range.This research proposal focuses on near-field coupled double-resonant plasmomechanical nanoresonators to be optimized for the NIR spectral range. This way, the associated spectral hybridization of the intrinsic localized surface plasmon resonances realizes a flexible adaptation of spectral as well as mechanical properties. In contrast to isolated nanostructures, high-frequency modulation of the spectral properties combined with a significant enhancement will be realized by exploiting the electromagnetic interparticle near-field coupling and its directed modulation.This approach requires interparticle distances in the range of ~10 nm which is a challenge for classical top-down manufacturing processes. Bottom-up methods are more practical in terms of the required precision and also more advantageous in terms of significantly lower optical and mechanical losses. For this reason, DNA origami self-assembly of wet-chemically synthesized single-crystalline nanoparticles will be applied. To achieve a meaningful use of the assembled nanoresonators in integrated nanophotonics, a selectively positioned immobilization from the wet phase has to be realized. For this purpose, a thin-film system will be developed that enables topographically assisted surface immobilization.For this project, two groups with strong background in nanostructure design and characterization (TU Dresden, Chair for RF and Photonics Engineering) as well as with great expertise in nanostructure and microelectronic manufacturing (TU Chemnitz, Opto-electronic Systems) team up. Combining the experience, the envisioned all-optical enhanced modulation behavior as well as the realization of optical metasurfaces will be tackled. Supported by comprehensive analyses of the spectral and dynamic properties of the individual nanostructures as well as in the composite, and the optimized fabrication process, important contributions to the understanding of novel highly integrated optical nanodevices are achieved.
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