COLOR FORMING COMPOSITION
    1.
    发明申请
    COLOR FORMING COMPOSITION 审中-公开
    颜色成色组成

    公开(公告)号:WO2007046926A1

    公开(公告)日:2007-04-26

    申请号:PCT/US2006/029861

    申请日:2006-07-31

    Inventor: DAY, Michael J.

    CPC classification number: B41M5/323 B41M5/3275 B41M5/333 B41M5/3372

    Abstract: The present disclosure discloses a color former phase. According to one exemplary embodiment discussed herein, an exemplary color former phase includes at least one color former, a radiation absorber, and an acrylic resin, in which the color former, the radiation absorber, and the acrylic resin form an amorphous solid.

    Abstract translation: 本公开公开了一种着色剂相。 根据本文所讨论的一个示例性实施方案,示例性着色剂相包括至少一种成色剂,辐射吸收剂和丙烯酸树脂,其中成色剂,辐射吸收剂和丙烯酸树脂形成无定形固体。

    COATING FOR OPTICAL RECORDING
    4.
    发明申请
    COATING FOR OPTICAL RECORDING 审中-公开
    涂料进行光学记录

    公开(公告)号:WO2008076642A1

    公开(公告)日:2008-06-26

    申请号:PCT/US2007/086485

    申请日:2007-12-05

    CPC classification number: G11B7/26 C09D7/41 C09D11/037 G11B23/40 Y10T428/21

    Abstract: A coating composition (20) for optical recording includes a uniform dispersion of polymer particles (30) in a liquid (40), a quantity of dye particles (50) uniformly dispersed in the liquid, the dye particles being soluble in the polymer but substantially insoluble in the liquid, and a quantity of radiation absorber material adapted to absorb radiation (60) at a wavelength of a laser for optical recording of an image (70).

    Abstract translation: 用于光学记录的涂料组合物(20)包括聚合物颗粒(30)在液体(40)中的均匀分散体,一定量分散在液体中的染料颗粒(50),染料颗粒可溶于聚合物,但基本上 不溶于液体的量的辐射吸收材料和适于吸收波长为激光波长的辐射(60)的辐射吸收材料用于光学记录图像(70)。

    DETECTING PASSAGE OF A PARTICLE INTO A TARGET LOCATION

    公开(公告)号:WO2021257069A1

    公开(公告)日:2021-12-23

    申请号:PCT/US2020/038156

    申请日:2020-06-17

    Abstract: A method of detecting passage of a particle into a target location includes receiving a sample on a die including a microfluidic chamber, the microfluidic chamber including a microfluidic path coupling a reservoir to a foyer, and moving the sample from the reservoir to the foyer by firing a nozzle fluidically coupled to the foyer. The method further includes detecting passage of a particle of the sample from the reservoir to the foyer via a first sensor disposed within the microfluidic path, and detecting passage of the particle into the target location via a second sensor disposed between the first sensor and the nozzle. The method includes recording in a dispense map, an indication of whether the target location includes a single particle or multiple particles based on signals measured by the first sensor and the second sensor.

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