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    • 1. 发明授权
    • Apparatus for detecting nano particle having nano-gap electrode
    • 用于检测具有纳米间隙电极的纳米颗粒的装置
    • US08062596B2
    • 2011-11-22
    • US12810461
    • 2008-11-10
    • Wan Soo YunHyung Ju ParkCho Yeon Lee
    • Wan Soo YunHyung Ju ParkCho Yeon Lee
    • G01N7/00G01N21/00
    • G01N27/3278
    • The present invention relates to a nanoparticle sensor which is capable to identify an existence/nonexistence, a concentration, a size distribution and a component of the nanoparticles using an electrode pair having a separated distance of a nano-gap, in which the nanoparticle sensor includes a unit element configured with a plurality of unit electrodes electrically operated independently from each other and detects the nanoparticles based on the number of the unit electrodes electrically changed due to the nanoparticles captured into the nano-gap. The nanoparticle sensor of the present invention can detect the component, the size, the size distribution and the concentration of the nanoparticles by single measurement, have high reliability and regeneration while reducing a detection time by statistical method via a plurality of electrode pairs having the nano-gap, and detect even very low concentration of nanoparticles.
    • 本发明涉及一种纳米粒子传感器,其能够使用具有分离的纳米间隙的距离的电极对来识别纳米颗粒的存在/不存在,浓度,尺寸分布和组分,其中纳米颗粒传感器包括 单元元件,其配置有彼此独立地电操作的多个单元电极,并且基于由于捕获到纳米间隙中的纳米颗粒而电变化的单位电极的数量来检测纳米颗粒。 本发明的纳米颗粒传感器可以通过单次测量来检测纳米颗粒的组分,尺寸,尺寸分布和浓度,具有高的可靠性和再生能力,同时通过统计方法通过具有纳米尺度的多个电极对减少检测时间 并且检测到甚至非常低浓度的纳米颗粒。
    • 3. 发明申请
    • Apparatus for Detecting Nano Particle Having Nano-Gap Electrode
    • 用于检测具有纳米间隙电极的纳米颗粒的装置
    • US20100282605A1
    • 2010-11-11
    • US12810461
    • 2008-11-10
    • Wan Soo YunHyung Ju ParkCho Yeon Lee
    • Wan Soo YunHyung Ju ParkCho Yeon Lee
    • G01N27/00
    • G01N27/3278
    • The present invention relates to a nanoparticle sensor which is capable to identify an existence/nonexistence, a concentration, a size distribution and a component of the nanoparticles using an electrode pair having a separated distance of a nano-gap, in which the nanoparticle sensor includes a unit element configured with a plurality of unit electrodes electrically operated independently from each other and detects the nanoparticles based on the number of the unit electrodes electrically changed due to the nanoparticles captured into the nano-gap. The nanoparticle sensor of the present invention can detect the component, the size, the size distribution and the concentration of the nanoparticles by single measurement, have high reliability and regeneration while reducing a detection time by statistical method via a plurality of electrode pairs having the nano-gap, and detect even very low concentration of nanoparticles.
    • 本发明涉及一种纳米粒子传感器,其能够使用具有分离的纳米间隙的距离的电极对来识别纳米颗粒的存在/不存在,浓度,尺寸分布和组分,其中纳米颗粒传感器包括 单元元件,其配置有彼此独立地电操作的多个单元电极,并且基于由于捕获到纳米间隙中的纳米颗粒而电变化的单位电极的数量来检测纳米颗粒。 本发明的纳米颗粒传感器可以通过单次测量来检测纳米颗粒的组分,尺寸,尺寸分布和浓度,具有高的可靠性和再生能力,同时通过统计方法通过具有纳米尺度的多个电极对减少检测时间 并且检测到甚至非常低浓度的纳米颗粒。
    • 4. 发明授权
    • Nanomachined mechanical components using nanoplates, methods of fabricating the same and methods of manufacturing nanomachines
    • 使用纳米板的纳米机械部件,其制造方法和制造纳米机械的方法
    • US07557044B2
    • 2009-07-07
    • US11263476
    • 2005-10-31
    • Yong Ju YunChil Seong AhDong Han HaHyung Ju ParkWan Soo YunKwang Cheol LeeGwang Seo Park
    • Yong Ju YunChil Seong AhDong Han HaHyung Ju ParkWan Soo YunKwang Cheol LeeGwang Seo Park
    • H01L21/302
    • B81C99/0095B81B2201/035B81C2201/0143Y10S977/883Y10S977/888
    • Disclosed herein is a method of fabricating nano-components using nanoplates, including the steps of: printing a grid on a substrate using photolithography and Electron Beam Lithography; spraying an aqueous solution dispersed with nanoplates onto the grid portion to position the nanoplates on the substrate; depositing a protective film of a predetermined thickness on the substrate and the nanoplates positioned on the substrate; ion-etching the nanoplates deposited with the protective film by using a Focused Ion Beam (FIB) or Electron Beam Lithography; and eliminating the protective film remaining on the substrate using a protective film remover after the ion-etching of the nanoplates, and a method of manufacturing nanomachines or nanostructures by transporting such nano-components using a nano probe and assembling with other nano-components. The present invention makes it possible to fabricate the high-quality nano-components in a more simple and easier manner at a lower cost, as compared to other conventional methods. Further, the present invention provides a method of implementing nanomachines through combination of such nano-components and biomolecules, etc.
    • 本文公开了使用纳米板制造纳米组分的方法,包括以下步骤:使用光刻和电子束光刻在衬底上印刷栅格; 将分散有纳米板的水溶液喷射到栅格部分上以将纳米板定位在基底上; 在衬底和位于衬底上的纳米板上沉积预定厚度的保护膜; 通过使用聚焦离子束(FIB)或电子束光刻法离子蚀刻沉积有保护膜的纳米板; 并且在纳米板的离子蚀刻之后使用保护膜去除剂去除残留在基板上的保护膜,以及通过使用纳米探针传输这种纳米成分并与其他纳米成分组装来制造纳米机械或纳米结构的方法。 与其他常规方法相比,本发明可以以更简单和更容易的方式以更低的成本制造高质量的纳米组分。 此外,本发明提供了通过这些纳米组分和生物分子等的组合来实现纳米机器的方法。