会员体验
专利管家(专利管理)
工作空间(专利管理)
风险监控(情报监控)
数据分析(专利分析)
侵权分析(诉讼无效)
联系我们
交流群
官方交流:
QQ群: 891211   
微信请扫码    >>>
现在联系顾问~
热词
    • 1. 发明申请
    • SURFACE PLASMON RESONANCE SENSOR USING BEAM PROFILE ELLIPSOMETRY
    • 表面等离子体共振传感器的光束轮廓椭圆测量法
    • WO2010062150A2
    • 2010-06-03
    • PCT/KR2009/007084
    • 2009-11-30
    • KOREA RESEARCH INSTITUTE OF STANDARDS AND SCIENCECHO, Hyun MoCHO, Yong JaiCHEGAL, Won
    • CHO, Hyun MoCHO, Yong JaiCHEGAL, Won
    • G01N21/55G01N21/25G01N21/00
    • G01N21/553G01N2021/212
    • Provided is a multi-channel surface plasmon resonance sensor using beam profile ellipsometry; and, more particularly, to a high sensitive measuring technology, which is coupled with a vertical illumination type focused-beam ellipsometer using a multi-incident angle measurement method, and a surface plasmon resonance (SPR) sensing part deposited with a metal thin film. The multi-channel surface plasmon resonance sensor includes a vertical illumination type focused-beam ellipsometer, in which light is polarized; a surface plasmon resonance (SPR) sensing part which is provided at the objective lens part of the focused-beam ellipsometer so as to generate SPR according to an angle change of the polarized light; and a flow unit which supplies a buffer solution containing a bio material binding to or dissociation from the metal thin film generating surface plasmon, wherein the SPR and the ellipsometric phase change by change in an angle and a wavelength are simultaneously detected.
    • 提供了一种使用光束轮廓椭圆光度法的多通道表面等离子体共振传感器; 更具体地涉及与使用多入射角度测量方法的垂直照明型聚焦光束椭偏仪和沉积有金属薄膜的表面等离子体共振(SPR)感测部件耦合的高灵敏度测量技术。 多通道表面等离子体共振传感器包括垂直照明型聚焦光椭圆偏振仪,其中光被偏振; 表面等离子体共振(SPR)感测部分,其设置在聚焦光椭圆偏振仪的物镜部分处,以根据偏振光的角度变化产生SPR; 以及流动单元,所述流动单元供应包含与产生金属薄膜的表面等离子体激元结合或解离的生物材料的缓冲溶液,其中通过角度和波长的变化来同时检测SPR和椭偏相位。
    • 6. 发明申请
    • METHOD AND SYSTEM FOR MOLECULAR INTERACTION ANALYSIS
    • 用于分子相互作用分析的方法和系统
    • WO2005029077A1
    • 2005-03-31
    • PCT/SE2004/001356
    • 2004-09-22
    • BIACORE ABANDERSSON, KarlBORG, PeterÖNELL, Annica
    • ANDERSSON, KarlBORG, PeterÖNELL, Annica
    • G01N33/543
    • G01N21/272G01N21/05G01N21/21G01N21/45G01N21/553G01N21/648G01N21/658G01N21/7703G01N2021/0346G01N2021/212G01N2021/458G06F19/702
    • The invention relates to a computer-implemented method for determining at least one kinetic parameter for the interaction of an analyte in solution with an immobilized ligand from a data set comprising a plurality of different binding curves, each of which represents the progress of the interaction of the analyte with the ligand with tune, comprising the steps of: a) performing at least one fit of the whole data set or subsets thereof to a predetermined kinetic model for the interaction; b) based on the result of the fit or fats performed in step a), identifying and excluding binding curves of unacceptable quality; c) performing a final fit to the remaining data set; and d) obtaining therefrom the kinetic parameter or parameters. The invention also relates to an analytical system for carrying out the method, as well as a computer program, computer program product and computer system for performing the method.
    • 本发明涉及一种计算机实现的方法,用于确定溶液中的分析物与固定的配体与包含多个不同结合曲线的数据集的相互作用的至少一个动力学参数,每个动力学参数表示相互作用的进展 具有调谐配体的分析物包括以下步骤:a)将整个数据集或其子集的至少一个拟合执行到用于相互作用的预定动力学模型; b)基于步骤a)中进行的适合或脂肪的结果,鉴定和排除不可接受的质量的结合曲线; c)对剩余的数据集执行最后拟合; 和d)从其获得动力学参数或参数。 本发明还涉及一种用于执行该方法的分析系统,以及用于执行该方法的计算机程序,计算机程序产品和计算机系统。
    • 7. 发明申请
    • ANALYTICAL METHOD AND APPARATUS
    • 分析方法和装置
    • WO98034098A1
    • 1998-08-06
    • PCT/SE1998/000196
    • 1998-02-03
    • G01N33/543G01B11/06G01N21/27G01N21/55
    • G01B11/0625G01N21/552G01N21/553G01N2021/212G01N2021/215
    • A method of examining thin layer structures on a surface for differences in respect of optical thickness, which method comprises the steps of: irradiating the surface with light so that the light is internally or externally reflected at the surface; imaging the reflected light on a first two-dimensional detector; sequentially or continuously scanning the incident angle and/or wavelength of the light over an angular and/or wavelength range; measuring the intensities of light reflected from different parts of the surface and impinging on different parts of the detector, and determining from the detected light intensities at the different light incident angles and/or wavelengths an optical thickness image of the thin layer structures on the surface. According to the invention, part of the light reflected at said surface is detected on a second detector to determine the incident angle or wavelength of the polarized light irradiating the surface.
    • 一种检查表面上薄层结构相对于光学厚度差异的方法,该方法包括以下步骤:用光照射表面,使得光在表面内部或外部反射; 对第一二维检测器上的反射光进行成像; 在角度和/或波长范围内顺序地或连续地扫描光的入射角和/或波长; 测量从表面的不同部分反射并撞击检测器的不同部分的光的强度,并且根据检测到的不同光入射角和/或波长处的光强度确定表面上的薄层结构的光学厚度图像 。 根据本发明,在第二检测器上检测在所述表面反射的光的一部分,以确定照射表面的偏振光的入射角或波长。
    • 8. 发明申请
    • MULTI-CHANNEL SURFACE PLASMON RESONANCE SENSOR USING BEAM PROFILE ELLIPSOMETRY
    • 多通道表面等离子体共振传感器采用光束轮廓椭圆测量
    • WO2010062149A3
    • 2010-09-10
    • PCT/KR2009007083
    • 2009-11-30
    • KOREA RES INST OF STANDARDSCHO HYUN MOCHO YONG JAICHEGAL WON
    • CHO HYUN MOCHO YONG JAICHEGAL WON
    • G01N21/21G01N21/55
    • G01N21/553G01N2021/212
    • Provided is a multi-channel surface plasmon resonance sensor using beam profile ellipsometry; and, more particularly, to a high sensitive measuring technology, which is coupled with a vertical illumination type focused-beam ellipsometer using a multi-incident angle measurement method, and a surface plasmon resonance (SPR) sensing part deposited with a metal thin film. The multi-channel surface plasmon resonance sensor includes a vertical illumination type focused-beam ellipsometer in which light is polarized; a surface plasmon resonance (SPR) sensing part which is provided at the objective lens part of the focused-beam ellipsometer; and a multi-channel flow unit which supplies a buffer solution containing a bio material binding to or dissociation from a metal thin film generating surface plasmon.
    • 提供了一种使用光束轮廓椭圆光度法的多通道表面等离子体共振传感器; 更具体地涉及与使用多入射角度测量方法的垂直照明型聚焦光束椭偏仪和沉积有金属薄膜的表面等离子体共振(SPR)感测部件耦合的高灵敏度测量技术。 多通道表面等离子体共振传感器包括其中光被极化的垂直照明型聚焦光椭圆偏振仪; 表面等离子体共振(SPR)感测部分,其设置在聚焦光椭圆偏振仪的物镜部分处; 以及多通道流动单​​元,其提供包含与产生金属薄膜的表面等离子体激元结合或解离的生物材料的缓冲溶液。