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    • 1. 发明授权
    • Optical coupling device and method
    • 光耦合装置及方法
    • US07842242B2
    • 2010-11-30
    • US10555818
    • 2004-04-01
    • Stefan DickopfThomas PerschkeMladen NedicKristina Schmidt
    • Stefan DickopfThomas PerschkeMladen NedicKristina Schmidt
    • G01N21/00G02B6/26G01N21/55
    • G01N21/05G01N21/0303G01N21/553G01N2021/0346G01N2021/0389G01N2021/0396G01N2021/058G02B5/00
    • A device for optically coupling a first optical element to a second optical element comprises a first optical element with a first radiation penetration surface; a second optical element with a second radiation penetration surface located across from the first radiation penetration surface; and a chamber delimited by the first and second radiation penetration surfaces and a circumferentially closed side wall which connects the first and second radiation penetration surfaces. The circumferentially closed side wall defines a first sector in the first radiation penetration surface and a second sector in the second radiation penetration surface, the area of the first sector being smaller than the area of the first radiation penetration surface, and the area of the second sector being smaller than the area of the second radiation penetration surface. The device further comprises a feeding conduit to the chamber for delivering index-adjusting liquid; and a discharge conduit from the chamber for evacuating index-adjusting liquid or gas from the chamber.
    • 用于将第一光学元件光学耦合到第二光学元件的装置包括具有第一辐射穿透表面的第一光学元件; 第二光学元件,具有位于第一辐射穿透表面的第二辐射穿透表面; 以及由第一和第二辐射穿透表面限定的室和连接第一和第二辐射穿透表面的周向封闭的侧壁。 周向封闭的侧壁限定了第一辐射穿透表面中的第一扇区和第二辐射穿透表面中的第二扇区,第一扇区的面积小于第一辐射穿透表面的面积,第二扇区的面积 扇区小于第二辐射穿透表面的面积。 该装置还包括一个用于输送折射率调节液体的输送管道, 以及来自所述室的排出管道,用于从所述室排出折射率调节液体或气体。
    • 2. 发明授权
    • SPR sensor and SPR sensor array
    • SPR传感器和SPR传感器阵列
    • US06795192B2
    • 2004-09-21
    • US10223010
    • 2002-08-19
    • Stefan DickopfKristina SchmidtDirk Vetter
    • Stefan DickopfKristina SchmidtDirk Vetter
    • G01N2155
    • G01N21/253G01N21/553
    • The invention relates to an an SPR surface plasmon resonance spectroscopy sensor for parallel measurement of a plurality of samples, comprising a body (1a) having several SPR sensor areas (2) for guiding radiation in order to carry out SPR measurements and which are coated with a material which is suitable for SPR in such a way that each SPR sensor area (2) can be exclusively associated with a single sample. The radiation conducting body (1a) forms a unit with the SPR sensor areas (2), whereby the path of the rays guided by the SPR sensor areas (2) can also extend through the radiation conducting body (1a).
    • 本发明涉及一种用于多个样本的并行测量的SPR表面等离子体共振光谱传感器,包括具有多个SPR传感器区域(2)的主体(1a),用于引导辐射以进行SPR测量并且涂覆有 适合于SPR的材料,使得每个SPR传感器区域(2)可以与单个样品完全相关联。 辐射导电体(1a)与SPR传感器区域(2)形成一个单元,由此由SPR传感器区域(2)引导的射线的路径也可以延伸穿过辐射导电体(1a)。
    • 3. 发明授权
    • Set-up of measuring instruments for the parallel readout of SPR sensors
    • US06441906B2
    • 2002-08-27
    • US09859677
    • 2001-05-18
    • Stefan DickopfKristina SchmidtDirk Vetter
    • Stefan DickopfKristina SchmidtDirk Vetter
    • G01N2155
    • G01N21/253G01N21/553
    • The invention relates to a set-up of measuring instruments for the parallel readout of SPR sensors. The aim of the invention is to provide a measuring arrangement for the parallel readout of a plurality of SPR sensors, wherein the readout process should be terminated within an integration period of less than 30 minutes. To this end, a wavelength-selective component (5) and an optical imaging system (L2, L3) are arranged downstream of a light source (3). Said optical imaging system (L2, L3) is in such a manner that at a first wavelength it guarantees a parallel illumination of the light entrance sides of the waveguides (13) which are provided with SPR-compatible sensor zones, and that the light emerging from the individual light waveguides (13) may simultaneously be imaged onto a CCD chip (20) via an optical system (L4) in such a way that the light emerging from each individual light waveguide (13) is respectively detectable by several adjacent CCD pixels of the CCD chip (20), and from these pixel areas a respective light intensity value is calculable by means of image processing software, and, after data storage of an intensity value, a set wave length and coordinate in the waveguide array (10), an adjustment of the wavelength-selective assembly (5) to a second, arbitrarily providable, further light wavelength is performable by means of a computer (30) via a control line (31).
    • 6. 发明申请
    • Optical Coupling Device and Method
    • 光耦合装置及方法
    • US20070248300A1
    • 2007-10-25
    • US10555818
    • 2004-04-01
    • Stefan DickopfThomas PerschkeMladen NedicKristina Schmidt
    • Stefan DickopfThomas PerschkeMladen NedicKristina Schmidt
    • G01N21/00
    • G01N21/05G01N21/0303G01N21/553G01N2021/0346G01N2021/0389G01N2021/0396G01N2021/058G02B5/00
    • A device for optically coupling a first optical element to a second optical element comprises a first optical element with a first radiation penetration surface; a second optical element with a second radiation penetration surface located across from the first radiation penetration surface; and a chamber delimited by the first and second radiation penetration surfaces and a circumferentially closed side wall which connects the first and second radiation penetration surfaces. The circumferentially closed side wall defines a first sector in the first radiation penetration surface and a second sector in the second radiation penetration surface, the area of the first sector being smaller than the area of the first radiation penetration surface, and the area of the second sector being smaller than the area of the second radiation penetration surface. The device further comprises a feeding conduit to the chamber for delivering index-adjusting liquid; and a discharge conduit from the chamber for evacuating index-adjusting liquid or gas from the chamber.
    • 用于将第一光学元件光学耦合到第二光学元件的装置包括具有第一辐射穿透表面的第一光学元件; 第二光学元件,具有位于第一辐射穿透表面的第二辐射穿透表面; 以及由第一和第二辐射穿透表面限定的室和连接第一和第二辐射穿透表面的周向封闭的侧壁。 周向封闭的侧壁限定了第一辐射穿透表面中的第一扇区和第二辐射穿透表面中的第二扇区,第一扇区的面积小于第一辐射穿透表面的面积,第二扇区的面积 扇区小于第二辐射穿透表面的面积。 该装置还包括一个用于输送折射率调节液体的输送管道, 以及来自所述室的排出管道,用于从所述室排出折射率调节液体或气体。
    • 8. 发明申请
    • Method for the selection and identification of peptide or protein molecules by means of phage display
    • 通过噬菌体展示法选择和鉴定肽或蛋白质分子的方法
    • US20050014135A1
    • 2005-01-20
    • US10855668
    • 2004-05-27
    • Oliver HillHolger OttlebenStefan DickopfKlaus Burkert
    • Oliver HillHolger OttlebenStefan DickopfKlaus Burkert
    • B01L3/00G01N21/55C12Q1/70
    • G01N21/553B01L3/5085B82Y30/00
    • The invention relates to a method for the selection and identification of at least on representative (interaction partner) from a plurality of peptide or protein molecules, which can specifically interact with at least one representative from a plurality of target molecules, forming a bond. The inventive method comprises the following steps: (a) a virus system consisting of a plurality of viruses, wherein each virus respectively presents at least on representative from the plurality of peptide or protein molecules on the surface thereof, is brought into contact with the plurality of target molecules (ligands) which are immobilized on the surface of a solid phase carrier such that they are position addressable in a two-dimensional grade; (b) unbound viruses removed from the surface thereof; and (c) the interaction partner is identified by detection and determination of the position of the bond between the immobilized ligand and the interaction partner presented by the virus with the aid of a marker-free detection method. The described method makes it possible to concentrate viruses presenting interaction partners by means of an optionally cyclic repetition of selection. Optionally, selected interaction partners are recombinantly expressed after identification of the coding nucleotide sequence.
    • 本发明涉及一种用于从多个肽或蛋白质分子中选择和鉴定至少一个代表性(相互作用配偶体)的方法,其可与多个靶分子的至少一个代表特异性相互作用,形成键。 本发明的方法包括以下步骤:(a)由多种病毒组成的病毒系统,其中每个病毒分别至少表现出其表面上的多个肽或蛋白质分子的代表,与多个病毒接触 的固定在固相载体的表面上的靶分子(配体),使得它们位于二维等级的位置; (b)从其表面去除未结合的病毒; 和(c)通过利用无标记检测方法的检测和确定固定的配体与病毒所呈现的相互作用配偶之间的键的位置来鉴定相互作用配偶体。 所描述的方法使得可以通过可选地循环重复的选择来浓缩呈现相互作用伴侣的病毒。 任选地,在识别编码核苷酸序列后重组表达所选择的相互作用伴侣。
    • 9. 发明授权
    • SPR sensor system
    • SPR传感器系统
    • US06752963B2
    • 2004-06-22
    • US09789015
    • 2001-02-21
    • Stefan DickopfKristina SchmidtDirk VetterKlaus Burkert
    • Stefan DickopfKristina SchmidtDirk VetterKlaus Burkert
    • G01N2155
    • G01N21/253G01N21/553
    • The invention relates to an SPR sensor array comprising a plurality of SPR sensor surface areas (120) arranged on a substrate (10, 20) in a two-dimensional matrix located in a plane to which the SPR sensor surface areas (120) are parallel and whereby radiation capable of exciting surface plasmons in the SPR sensor surface areas (120) under specific physical conditions can be guided through the substrate (10, 20) to be reflected from the SPR sensor surface areas, as well as separating means (110) for separating each SPR sensor surface area (120) from its neighboring SPR sensor surface area (120), wherein the separating means (110) and SPR sensor surface areas (120) are provided such that at least outside of surface plasmon resonance occurring in the SPR sensor surface areas (120) the radiation (40) guided through the substrate (10, 20) is reflected in the region of the separating means to a different degree than in the region of the SPR sensor surface areas (120) to create a contrast between the separating means (110) and the SPR sensor surface areas (120) at least outside of surface plasmon resonance occurring in the SPR sensor surface areas (120) in the radiation reflected by the SPR sensor surface areas (120) and the separating means (110).
    • 本发明涉及一种SPR传感器阵列,其包括布置在位于SPR传感器表面区域(120)平行的平面中的二维矩阵中的衬底(10,20)上的多个SPR传感器表面区域(120) 并且由此能够在特定物理条件下激发SPR传感器表面区域(120)中的表面等离子体激元的辐射能够被引导穿过衬底(10,20)以从SPR传感器表面区域反射,以及分离装置(110) 用于将每个SPR传感器表面区域(120)与其相邻的SPR传感器表面区域(120)分离,其中分离装置(110)和SPR传感器表面区域(120)被设置成使得至少在表面等离子体共振 引导穿过衬底(10,20)的辐射(40)的SPR传感器表面区域(120)在分离装置的区域中被反射到与SPR传感器表面区域(120)的区域不同的程度,以产生 对比是 在由SPR传感器表面区域(120)和分离装置(120)反射的辐射中至少在出现在SPR传感器表面区域(120)中的表面等离子体共振之外的分离装置(110)和SPR传感器表面区域(120) (110)。