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公开(公告)号:EP4127660B1
公开(公告)日:2024-10-02
申请号:EP21717331.9
申请日:2021-03-25
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公开(公告)号:EP4373968A1
公开(公告)日:2024-05-29
申请号:EP22846601.7
申请日:2022-07-21
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公开(公告)号:EP4381279A1
公开(公告)日:2024-06-12
申请号:EP21777388.6
申请日:2021-08-05
发明人: GRIESZ, Paul , STEBNISKI, Michael
IPC分类号: G01N21/01 , G01N21/64 , G01N27/447 , G01N21/03
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公开(公告)号:EP4378584A2
公开(公告)日:2024-06-05
申请号:EP24157678.4
申请日:2011-02-18
IPC分类号: B01L3/00
CPC分类号: B01L3/502707 , B01L2300/065420130101 , B01L2300/16820130101 , G01N21/648 , B82Y20/00 , G01N21/6454 , G01N33/54373 , G02B6/1226 , G01N21/0303 , G01N21/05 , G01N2021/034620130101 , Y10T436/143333 , G01N21/6428 , G01N21/253 , C12Q1/6869
摘要: An analytical assembly within a unified device structure for integration into an analytical system. The analytical assembly is scalable and includes a plurality of analytical devices, each of which includes a reaction cell, an optical sensor, and at least one optical element positioned in optical communication with both the reaction cell and the sensor and which delivers optical signals from the cell to the sensor. Additional elements are optionally integrated into the analytical assembly. Methods for forming and operating the analytical system are also disclosed.
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公开(公告)号:EP4060325B1
公开(公告)日:2024-08-21
申请号:EP22155501.4
申请日:2010-12-03
IPC分类号: G01N21/13 , G01N21/64 , G01N21/05 , G01N21/25 , G01N21/69 , G01N21/03 , G01N21/76 , B29C48/154 , B29C48/25 , B29C48/34 , B29C70/50 , B29C70/52 , B29C70/68 , B29C70/74 , B29C70/78 , B29C70/86 , B01L7/00 , G01F23/02
CPC分类号: G01N21/69 , G01N21/76 , G01N21/0303 , G01F23/02 , G01F23/292 , G01N2021/034620130101 , B01L3/5027 , B01L3/502723 , G01N21/03 , B01L3/502746 , B01L3/502784 , B01L7/00 , B01L9/527 , B01L2200/02520130101 , B01L2200/0420130101 , B01L2200/060520130101 , B01L2200/068420130101 , B01L2200/068920130101 , B01L2200/1220130101 , B01L2200/14120130101 , B01L2200/14720130101 , B01L2200/1620130101 , B01L2300/02120130101 , B01L2300/02420130101 , B01L2300/02720130101 , B01L2300/04420130101 , B01L2300/064520130101 , B01L2300/065420130101 , B01L2300/080920130101 , B01L2300/087420130101 , B01L2300/087720130101 , B01L2300/088720130101 , B01L2300/12620130101 , B01L2300/16120130101 , B01L2400/048720130101 , B01L2400/067220130101 , B01L2400/068320130101 , B01L2400/068820130101 , G01N21/05 , Y10T137/0396 , Y10T137/8593 , G01N21/13 , G01N21/6452 , G01N21/253 , B01L3/502715 , B29C48/02 , B29C48/154 , B29C48/266 , B29C48/34 , B29C48/79 , B29C48/86 , B29C48/875 , B29C70/504 , B29C70/521 , B29C70/526 , B29C70/682 , B29C70/747 , B29C70/78 , B29C70/86
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公开(公告)号:EP4222476B1
公开(公告)日:2024-07-17
申请号:EP21786226.7
申请日:2021-10-01
IPC分类号: G01N15/01 , G01N15/0205 , G01N15/14 , G01N15/1434 , G01N15/1429 , G01N15/1404 , G01N21/05 , G01N21/17 , G01N21/45 , G01N21/03 , G01N15/10
CPC分类号: G01N21/45 , G01N2021/172920130101 , G01N21/1717 , G01N2021/05820130101 , G01N21/05 , G01N2021/034620130101 , G01N2015/145420130101 , G01N15/1434 , G01N15/1459 , G01N2015/100620130101 , G01N2015/14220130101 , G01N15/1484 , G01N2015/149320130101 , G01N2015/149520130101 , G01N2015/149720130101 , G01N15/0205 , G01N15/1429 , G01N15/01
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公开(公告)号:EP3928867B1
公开(公告)日:2024-07-17
申请号:EP21192582.1
申请日:2011-10-20
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公开(公告)号:EP4389281A3
公开(公告)日:2024-10-02
申请号:EP23213622.6
申请日:2023-12-01
发明人: VENKATARAYALU, Suresh , SHAFAI, Moin , FENG, Chen , BECK, Scott , HINSON, Donald , PHAM, Thuy-Doan
CPC分类号: G01N2021/034620130101 , B01L3/5027 , B01L3/502707 , G01N2021/771620130101 , G01N2021/776320130101 , G02B6/132 , B01L3/502715 , B01L3/50 , G01N35/085 , F04B43/12 , F04B11/00 , F04B11/0033
摘要: Methods, apparatuses, and systems associated with a sample testing device are provided. A method for fabricating a waveguide device includes forming a stress reducing pattern on a thermal silicon dioxide layer, wherein the stress reducing pattern comprises a plurality of polygon pattern units; and forming a silicon nitride film on the stress reducing pattern. A parallel flow multichannel pathogen sensing system includes a multichannel peristaltic pump comprising a plurality of pump flow channel tubes, wherein a buffer solution flows through the plurality of pump flow channel tubes, an injection valve array comprising a plurality of injection valves, and a sensing channel connection port connected to a sensing channel input port on a waveguide fluidics assembly. The waveguide fluidics assembly comprises a parallel flow micro-fluidic cover defining a plurality of sensing channel input ports.
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