MICROFLUIDIC APPARATUS
20230110598 · 2023-04-13
Inventors
Cpc classification
B01L3/502792
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/161
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A microfluidic apparatus is provided for manipulating and sensing the droplets of fluid. The microfluidic apparatus includes an electrowetting on dielectric (EWOD) device and a sensing device. The EWOD device receives one or more droplets of fluid, and includes a plurality of electrode elements arranged in an array of rows and columns. The sensing device is disposed external or internal to the EWOD device and includes a plurality of optical sensors corresponding to the electrode elements of the EWOD device, respectively. Therefore, it is possible to reduce the cost and/or volume of the microfluidic apparatus.
Claims
1. A microfluidic apparatus comprising: an electrowetting on dielectric (EWOD) device, configured to receive one or more droplets, the EWOD device comprising a plurality of electrode elements arranged in an array of rows and columns; and a sensing device, disposed external to the EWOD device and comprising a plurality of optical sensors corresponding to the electrode elements of the EWOD device, respectively.
2. The microfluidic apparatus according to claim 1, wherein the sensing device is disposed above or under the EWOD device.
3. The microfluidic apparatus according to claim 1, wherein each of the optical sensors of the sensing device comprises a charge-coupled device or a CMOS device.
4. The microfluidic apparatus according to claim 1, wherein the optical sensors of the sensing device form a large-area sensor.
5. The microfluidic apparatus according to claim 1, wherein each of the optical sensors of the sensing device is an independent optical sensor.
6. The microfluidic apparatus according to claim 1, further comprising a light source disposed under or above the EWOD device.
7. The microfluidic apparatus according to claim 6, wherein the light source comprises an OLED layer.
8. The microfluidic apparatus according to claim 1, wherein each of the electrode elements comprises an electrode, a TFT layer coupled to the electrode, a dielectric layer covering the electrode and the TFT layer and a hydrophobic layer covering the dielectric layer.
9. The microfluidic apparatus according to claim 8, wherein the optical sensor is embedded with the TFT layer or is embedded with a TFT substrate under the TFT layer.
10. A microfluidic apparatus comprising: an electrowetting on dielectric (EWOD) device, configured to receive one or more droplets, the EWOD device comprising a plurality of electrode elements arranged in an array of rows and columns; and a sensing device, disposed internal to the EWOD device and comprising a plurality of optical sensors corresponding to the electrode elements of the EWOD device, respectively.
11. The microfluidic apparatus according to claim 10, wherein the sensing device is disposed in the electrode elements of the EWOD device.
12. The microfluidic apparatus according to claim 10, wherein each of the optical sensors of the sensing device comprises a charge-coupled device or a CMOS device.
13. The microfluidic apparatus according to claim 10, wherein the optical sensors of the sensing device form a large-area sensor.
14. The microfluidic apparatus according to claim 10, wherein each of the optical sensors of the sensing device is an in-cell or under-cell optical sensor.
15. The microfluidic apparatus according to claim 10, further comprising a light source disposed under or above the EWOD device.
16. The microfluidic apparatus according to claim 15, wherein the light source comprises an OLED layer.
17. The microfluidic apparatus according to claim 10, wherein each of the electrode elements comprises an electrode, a TFT layer coupled to the electrode, a dielectric layer covering the electrode and the TFT layer and a hydrophobic layer covering the dielectric layer.
18. The microfluidic apparatus according to claim 17, wherein the optical sensor is embedded with the TFT layer or is embedded with a TFT substrate under the TFT layer.
19. A sensing device for a microfluidic apparatus, the microfluidic apparatus comprising an electrowetting on dielectric (EWOD) device with a plurality of electrode elements, and the sensing device comprising a plurality of optical sensors which are arranged in an array of rows and columns and correspond the electrode elements of the EWOD device, respectively, wherein each of the optical sensors is configured to capture an image of a droplet on one of the electrode elements of the EWOD device.
20. The sensing device according to claim 19, wherein the optical sensors each comprise a charge-coupled device or a CMOS device, or the optical sensors form a large-area sensor.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
[0042] In the following description, numerous specific details are set forth to provide a thorough understanding of embodiments of the present disclosure. It will be apparent to person having ordinary skill in the art that the embodiments of the present disclosure may be practiced without those specific details. In other instances, well-known features, such as thin-film transistor (TFT), electrowetting-on-dielectric (EWOD), circuit design layouts, may be not described in detail so as to not unnecessarily obscure the embodiments of the present disclosure. Moreover, multiple features are described in the embodiments, but no limitation is made to an invention that requires all such technical features, and such technical features may be combined or replaced as appropriate. Furthermore, in the attached drawings, the same reference numerals are given to the same or similar components, and redundant description thereof may be omitted. It is to be appreciated that the components shown in the attached drawings may not necessarily be drawn to scale.
[0043] Please refer to
[0044] The EWOD device 10 may be an active matrix EWOD (AM-EWOD) device 10 that comprises a plurality of electrode elements 11 implemented in an active matrix array. That is, the electrode elements 11 are arranged in an array of rows and columns to form a matrix array. The droplets 2A may be moved from one of electrode elements 11 to the adjacent ones along the same row or column.
[0045] Each of the electrode elements 11 in the matrix array may be referred to as one basic pixel 11A to move a small droplet 2A. The adjacent basic pixels (i.e., cluster of pixels) 11A may form one large pixel 11B, for example, 1×2, 2×2 or 3×3 basic pixels 11A to form one large pixel 11B, so as to manipulate a large droplet 2A or manipulate several small droplets 2A together.
[0046] More specifically, as shown in
[0047] Please refer to
[0048] The dielectric layer 114 is formed on the planarization layer 113 (i.e., on the top surface of the planarization layer 113) to cover the electrode 111 and the TFT 112, and the hydrophobic layer 115 is formed on the dielectric layer 114 (i.e., on the top surface of the dielectric layer 114) to cover the dielectric layer 114. As the planarization layer 113 provides a planar top surface, the dielectric layer 114 and hydrophobic layer 115 may have uniform thickness to facilitate the manipulation of droplet 2A of fluid. The dielectric layer 114 may be made of SiNx or Al.sub.2O.sub.3, and the hydrophobic layer 115 may be made by CYTOP (amorphous fluoropolymer with optical transparency), CyteSi material, or other suitable materials.
[0049] It is noted that the planarization layers 113 in the respective electrode elements 11 may be integrally formed, the dielectric layers 114 in the respective electrode elements 11 may be integrally formed, and the hydrophobic layers 115 in the respective electrode elements 11 may be formed integrally as well.
[0050] Moreover, as illustrated in
[0051] Please refer to
[0052] Please refer back to
[0053] Please refer to
[0054] It is noted that the sensing device 20 may be detachable from the EWOD device 10, so as to maintain the sensing device 20 or replace the sensing device 20 with another one that is sensitive to different range of wavelengths (e.g., infrared light).
[0055] Please refer to
[0056] It is noted that all of the optical sensors 21 in the sensing device 20 may be normally actuated during the manipulation of droplets 2A by the EWOD device 10, so that no individual controlling or switching is needed for the optical sensors 21.
[0057] Each of the optical sensors 21 may comprise a charge-coupled device (CCD), a CMOS device or other suitable device/component that may record and convey the information of lights into electrical signals to form image. The optical sensors 21 may function as a two-dimensional (2D) camera array, such as an under-panel fingerprint camera commonly used in the smartphone. As shown in
[0058] Please refer to
[0059] Please refer to
[0060] Via the above embodiments, the microfluidic apparatus 1A utilizes the sensing device 20 which is relatively small and portable and is not expensive to some extent, instead of an expensive or huge camera, so that it is possible to reduce the cost and volume of the microfluidic apparatus 1A, thereby facilitating the development of LoC application/system.
[0061] Please now refer to
[0062] The lights from the light source 30 may be visible or invisible lights that embody specific wavelength in accordance with the droplets 2A, so as to excite a target constituent within the droplet 2A. The light source 30 may simply provide lights to ease the sensing/observation of the droplets 2A through the sensing device 20, with no intention/need to excite the target constituent or change the property of droplet 2A. It is noted that the light source 30 may be detachable from the EWOD device 10, so as to service the light source 30 or replace the light source 30 with another one that can emit lights with different range of wavelengths.
[0063] The microfluidic apparatus 1A with the built-in light source 30 further facilitates the development of LoC application/system, as there is no need to set up an external light source which might be large in physical size and obscure the observation of the droplet 2A.
[0064] It should be understood by those skilled in the art that various modifications, combinations, sub-combinations and alterations may occur depending on design requirements and other factors insofar as they are within the scope of the accompanying claims or the equivalents thereof.