首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Loss-favored ultrasensitive refractive index sensor based on directional scattering from a single all-dielectric nanosphere
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Loss-favored ultrasensitive refractive index sensor based on directional scattering from a single all-dielectric nanosphere

机译:基于单介电纳米圈的方向散射的损失 - 有利的超细折射率传感器

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摘要

Losses are generally undesired in most nanophotonic devices except for some applications such as photothermal conversion because high losses can result in reduced resonance quality. A lot of efforts have thus been made to achieve high-quality resonances for refractive index (RI) sensing applications. Here, we propose and demonstrate a new and counterintuitive sensing mechanism that leverages a single high-loss nanosphere as an effective optical RI sensor. We recognize that the scattering intensity of a high-loss all-dielectric nanosphere is more sensitive to the environmental RI variations than a low-loss one, which provides a unique means to put loss into advantages for RI sensing. Furthermore, directional scattering arises in a high-index (high-n) nanosphere leading to alternately dominant scattering in the forward and backward direction. At a certain wavelength (denoted as lambda(FB)) equal scattering intensity is achieved for both directions and the spectral value of lambda(FB) is highly sensitive to the environmental RI change. With this sensing mechanism, scattering intensity changes of all-dielectric nanospheres can be converted into wavelength shifts. Theoretically, the sensitivity of an individual Te nanosphere (150 nm) reaches 919 nm per RIU, surpassing the performance of Si and Ge nanospheres with the same size. With nanosecond laser ablation in liquid method, we mass-produced high-loss Te nanoparticles and experimentally demonstrated a RI sensitivity of 484 nm per RIU in the visible range on a single-particle level. This work provides an alternative platform for highly sensitive RI sensing using individual all-dielectric nanospheres.
机译:除了一些应用诸如光热转换之类的应用之外,损失通常是不希望的,因为高损耗可能导致谐振质量降低。因此,已经进行了许多努力来实现用于折射率(RI)感测应用的高质量共振。在这里,我们提出并展示了一种新的和逆行的传感机制,可利用单个高损耗纳米作为有效的光学RI传感器。我们认识到,高损耗全电介质纳米的散射强度比低损耗更具更敏感的变化更敏感,这提供了一种独特的方法,使损失成为RI感测的优点。此外,方向散射在高折射率(高N)纳米球中产生,导向在前向和向后方向上交替地散射散射。在某个波长(表示为Lambda(FB))的情况下,对于两个方向实现相等的散射强度,并且Lambda(FB)的光谱值对环境RI变化非常敏感。利用这种感测机理,可以将全介电纳米球的散射强度变化转换成波长偏移。从理论上讲,单个TE纳米球(150nm)的敏感性每RIU达到919nm,超过具有相同尺寸的Si和Ge纳米球的性能。在液体方法中纳秒激光消融,我们大规模生产的高损失Te纳米粒子,并在单粒子水平上通过实验证明了每RiU的484nm的RI敏感性。这项工作为使用各个介电纳米球提供了一种用于高敏感的RI感测的替代平台。

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    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

    Sun Yat Sen Univ Sch Mat Sci &

    Engn Nanotechnol Res Ctr State Key Lab Optoelect Mat &

    Technol Guangzhou 510275 Guangdong Peoples R China;

    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

    Sun Yat Sen Univ Sch Mat Sci &

    Engn Nanotechnol Res Ctr State Key Lab Optoelect Mat &

    Technol Guangzhou 510275 Guangdong Peoples R China;

    Jinan Univ Inst Photon Technol Guangdong Prov Key Lab Opt Fiber Sensing &

    Commun Guangzhou 511443 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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