DIGITAL MICROFLUIDIC SYSTEMS FOR MANIPULATING DROPLETS
20190314820 ยท 2019-10-17
Assignee
Inventors
Cpc classification
G01N27/44769
PHYSICS
B01L3/502792
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/161
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A digital microfluidic system includes a substrate, a plurality of electrode sets provided on the substrate, wherein each of the electrode sets includes two co-planar interdigitated finger electrodes, and a driving circuit including an AC/DC voltage source and a controller. Each of the electrode sets is individually addressable by the driving circuit under control of the controller such that an AC/DC voltage generated by the AC/DC voltage source may be selectively provided to one or more of the electrode sets. Also, an anti-biofouling electrode for a digital microfluidic system includes an electrode layer, and a slippery liquid infused porous surface structure provided on the electrode layer.
Claims
1. A digital microfluidic system, comprising: a substrate; a plurality of electrode sets provided on the substrate, wherein each of the electrode sets includes two co-planar interdigitated finger electrodes; a driving circuit including a voltage source and a controller, where each of the electrode sets is individually addressable by the driving circuit under control of the controller such that a voltage generated by the voltage source may be selectively provided to one or more of the electrode sets.
2. The digital microfluidic system according to claim 1, wherein each electrode set includes a first electrode member having a plurality of first finger members and a second electrode member having a plurality of second finger members, wherein the first finger members and the second finger members are interdigitated.
3. The digital microfluidic system according to claim 1, wherein the plurality of electrode sets include a first electrode set and a second electrode set immediately adjacent to the first electrode set, wherein the first electrode set includes a plurality of first extending members and the second electrode set includes a plurality of second extending members, wherein the first extending members and the second extended members are interdigitated.
4. The digital microfluidic system according to claim 1, wherein the driving circuit includes a relay coupled to the voltage source and the controller, wherein the controller is structured and configured to control the relay so as to selectively provide the voltage to one or more of the electrode sets.
5. The digital microfluidic system according to claim 1, wherein the plurality of electrode sets comprise a reservoir electrode set structured to hold a fluid source and a plurality of additional electrode sets adjacent the reservoir electrode set, wherein the controller is structured and configured to control the driving circuit to cause a fluid droplet to be created from the fluid source on a target one of the additional electrode sets by causing the voltage to be simultaneously provided to the reservoir electrode set and each of the plurality of additional electrode sets and thereafter causing the voltage to no longer be provided to at least one of the additional electrode sets positioned between the reservoir electrode set and the target one of the additional electrode sets.
6. The digital microfluidic system according to claim 1, wherein the plurality of electrode sets include a first electrode set, a second electrode set and a third electrode set, wherein the controller is structured and configured to control the driving circuit to cause a first fluid droplet provided on the first electrode set to be split into at least a second fluid droplet provided on the second electrode set and a third fluid droplet provided on the third electrode set by causing the voltage to be simultaneously provided to a group of the electrode sets including at least the second electrode set and the third electrode set, and thereafter causing the voltage to no longer be provided to at least one of the electrode sets in the group of electrode sets that is positioned between the second electrode set in the third electrode set.
7. The digital microfluidic system according to claim 1, wherein the plurality of electrode sets include a first electrode set and a second electrode set, wherein the controller is structured and configured to control the driving circuit to cause a first fluid droplet provided on the first electrode set to be transported to the second electrode set by causing the voltage to be simultaneously provided to a group of the electrode sets including at least the second electrode set, and thereafter causing the voltage to no longer be provided to at least the first electrode set.
8. The digital microfluidic system according to claim 1, wherein the plurality of electrode sets include a first electrode set, a second electrode set and a third electrode set, wherein the controller is structured and configured to control the driving circuit to cause at least a first fluid droplet provided on the first electrode set and a second fluid droplet provided on the second electrode set to be merged and form at least part of a third fluid droplet provided on the third electrode set by causing the voltage to be simultaneously provided to a group of the electrode sets including at least the third electrode set, and thereafter causing the voltage to be provided to only the third electrode set.
9. A method of driving a number of fluid droplets in a digital microfluidic system that includes a plurality of electrode sets provided on a substrate, wherein each of the electrode sets includes two co-planar interdigitated finger electrodes, the method comprising: individually addressing one or more of the electrode sets; and selectively providing a voltage to the individually addressed one or more of the electrode sets.
10. The method according to claim 9, wherein the plurality of electrode sets comprise a reservoir electrode set structured to hold a fluid source and a plurality of additional electrode sets adjacent the reservoir electrode set, wherein the selectively providing the voltage comprises causing the voltage to be simultaneously provided to the reservoir electrode set and each of the plurality of additional electrode sets and thereafter causing the voltage to no longer be provided to at least one of the additional electrode sets positioned between the reservoir electrode set and a target one of the additional electrode sets, thereby causing a fluid droplet to be created from the fluid source on the target one of the additional electrode sets.
11. The method according to claim 9, wherein the plurality of electrode sets include a first electrode set, a second electrode set and a third electrode set, wherein the selectively providing the voltage comprises causing a first fluid droplet provided on the first electrode set to be split into at least a second fluid droplet provided on the second electrode set and a third fluid droplet provided on the third electrode set by causing the voltage to be simultaneously provided to a group of the electrode sets including at least the second electrode set and the third electrode set, and thereafter causing the voltage to no longer be provided to at least one of the electrode sets in the group of electrode sets that is positioned between the second electrode set in the third electrode set.
12. The method according to claim 9, wherein the plurality of electrode sets include a first electrode set and a second electrode set, wherein the selectively providing the voltage comprises causing a first fluid droplet provided on the first electrode set to be transported to the second electrode set by causing the voltage to be simultaneously provided to a group of the electrode sets including at least the second electrode set, and thereafter causing the voltage to no longer be provided to at least the first electrode set.
13. The method according to claim 9, wherein the plurality of electrode sets include a first electrode set, a second electrode set and a third electrode set, wherein the selectively providing the voltage comprises causing at least a first fluid droplet provided on the first electrode set and a second fluid droplet provided on the second electrode set to be merged and form at least part of a third fluid droplet provided on the third electrode set by causing the voltage to be simultaneously provided to a group of the electrode sets including at least the third electrode set, and thereafter causing the voltage to be provided to only the third electrode set.
14. An electrode for a digital microfluidic system, comprising: a conductive electrode layer; and a slippery liquid infused porous surface structure provided on the conductive electrode layer.
15. The electrode according to claim 14, wherein the slippery liquid infused porous surface structure includes a porous layer made of expanded polytetrafluoroethylene.
16. The electrode according to claim 14, wherein the slippery liquid infused porous surface structure includes a porous layer having a pore size of 200-500 nm.
17. The electrode according to claim 14, wherein the slippery liquid infused porous surface structure includes a lubricant liquid that comprises an oil.
18. The electrode according to claim 14, wherein the oil is a perfluoropolyether (PFPE) based oil.
19. The electrode according to claim 14, further comprising an epoxy resin layer provided between the conductive electrode layer and the slippery liquid infused porous surface structure.
20. A digital microfluidic system, comprising: a substrate; and a plurality of electrodes provided on the substrate, wherein each of the electrodes comprises an electrode according to claim 14.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0024] As used herein, the singular form of a, an, and the include plural references unless the context clearly dictates otherwise. As used herein, the statement that two or more parts or components are coupled shall mean that the parts are joined or operate together either directly or indirectly, i.e., through one or more intermediate parts or components, so long as a link occurs.
[0025] As used herein, directly coupled means that two elements are directly in contact with each other.
[0026] As used herein, the term number shall mean one or an integer greater than one (i.e., a plurality).
[0027] As used herein, the term controller shall mean a programmable analog and/or digital device (including an associated memory part or portion) that can store, retrieve, execute and process data (e.g., software routines and/or information used by such routines), including, without limitation, a field programmable gate array (FPGA), a complex programmable logic device (CPLD), a programmable system on a chip (PSOC), an application specific integrated circuit (ASIC), a microprocessor, a microcontroller, a programmable logic controller, or any other suitable processing device or apparatus. The memory portion can be any one or more of a variety of types of internal and/or external storage media such as, without limitation, RAM, ROM, EPROM(s), EEPROM(s), FLASH, and the like that provide a storage register, i.e., a non-transitory machine readable medium, for data and program code storage such as in the fashion of an internal storage area of a computer, and can be volatile memory or nonvolatile memory.
[0028] As used herein, the term slippery liquid infused porous surface structure shall mean a thin film structure having (i) a porous layer made of a material that includes a plurality of nanopores therein (which porous layer may be periodically ordered or random), and (ii) a lubricant liquid that is infused into the nanopores of the porous layer and/or held on the surface of the porous layer by capillarity. Non-limiting exemplary slippery liquid infused porous surface structures are described in U.S. Pat. Nos. 9,121,306, 9,121,307, and 9,353,646, each entitled Slippery Surfaces With High Pressure Stability, Optical Transparency, and Self-Healing Characteristics, the disclosures of which are incorporated herein by reference.
[0029] As used herein, the term nanopore shall mean a void having a maximum size parameter (e.g., characteristic diameter) that is less than 1000 nm.
[0030] As used herein, the term lubricant liquid shall mean a friction reducing liquid that is immiscible to aqueous and hydrocarbon liquids. For example, and without limitation, in one embodiment, the lubricant liquid as described herein may be a perfluorinated liquid. In another embodiment, the lubricant liquid as described herein may also be a non-volatile, chemically inert liquid, and may have a surface tension of 25 mN m.sup.1 or less, 20 mN m.sup.1 or less, or 18 mN m.sup.1 or less.
[0031] As used herein, the term provided on shall mean that a layer is provided directly on top of another layer or indirectly on top of another layer with one or more intervening layers in between.
[0032] Directional phrases used herein, such as, for example and without limitation, top, bottom, left, right, upper, lower, front, back, and derivatives thereof, relate to the orientation of the elements shown in the drawings and are not limiting upon the claims unless expressly recited therein.
[0033] The disclosed concept will now be described, for purposes of explanation, in connection with numerous specific details in order to provide a thorough understanding of the subject invention. It will be evident, however, that the present invention can be practiced without these specific details without departing from the spirit and scope of this innovation.
[0034] Four droplet operations, specifically creating, transporting, splitting and merging, are fundamental to digital microfluidics. These droplet operations correspond to the dispensing, pumping, volume controlling and mixing operations in counterpart continuous-flow microfluidics devices. While these droplet operations have been well demonstrated in digital microfluidics devices, all such devices were based on electrowetting (or electrowetting on dielectric, EWOD), which is generally effective with conductive fluids that are commonly squeezed between two plates.
[0035] Furthermore, it has been shown that dielectrowetting, which, as noted elsewhere herein, results from L-DEP, produces superspreading (significant change in contact angle) of fluid droplets and works for both conductive and non-conductive fluids. This dielectrowetting principle has not, however, been developed for the above fundamental droplet operations. As described in detail herein, the disclosed concept applies dielectrowetting to the four fundamental microfluidic droplet operations of creating, transporting, splitting and merging, to provide a system wherein both conductive and nonconductive fluid droplets on a single plate as well as between two plates can be automatically controlled.
[0036]
[0037]
[0038] In the illustrated embodiment, electrode sets 12 are of two different sizes. In particular, electrode set 12-1 is a reservoir for dispensing electrode set, and is larger than the remaining electrode sets 12-2 through 12-7, which are used for operating on individual fluid droplets created from the dispensing electrode set 12-1. In the example shown, electrode set 12-1 is 5.5 mm5.5 mm (30.25 mm.sup.2) and electrode sets 12-2 through 12-7 are each 2 mm2 mm (4 mm.sup.2). Also, both the width and spacing of electrode fingers is 50 m. In addition, as seen in
[0039] Referring again to
[0040] As noted above, digital microfluidic system 2 is structured and configured to be able to perform each of the four basic droplet operations that are fundamental to digital microfluidics, namely creating, transporting, splitting and merging. In particular, controller 24 is provided with a number of software and/or firmware routines that enable digital microfluidic system 2 to perform each of the 4 basic droplet operations as described herein. An exemplary implementation of each of those operations is described below.
[0041]
[0042]
[0043]
[0044] As described elsewhere herein, the exemplary dielectrowetting chip 4 configuration is an open environment on a single plate. It will be understood, however, that this is meant to be exemplary only, and that the disclosed concept as described herein may also be used to make a closed environment configuration including a top plate (not shown) positioned opposite the configuration shown in
[0045] Moreover, as noted elsewhere herein, biofouling is a problem commonly encountered by many current digital (droplet-based) microfluidic systems. Thus, according to a further aspect of the disclosed concept, an anti-biofouling mechanism for droplet manipulation in digital microfluidic systems is provided. Specifically, and as described in detail below, the disclosed concept includes a simple and versatile anti-biofouling droplet manipulation mechanism that may be provided on a single substrate using a slippery liquid infused porous surface structure integrated with a coplanar electrode array. This platform has been confirmed effective for both electrowetting-on-dielectric (EWOD) driving of conductive liquids (e.g., water and BSA protein solutions) and dielectrophoretic (DEP) driving of dielectric liquids (e.g., propylene carbonate and isopropyl alcohol or IPA) in an open environment. The slippery liquid infused porous surface structure described herein has been found to significantly reduce the biological adhesion because of the highly deformable nature of liquid. Biomolecules (e.g., proteins) can move easily on the slippery liquid infused porous surface structure. As a result, this property can help to overcome the burdensome biofouling problem that exists in digital microfluidics.
[0046]
[0047]
[0048] In the configuration just described, during use in a digital microfluidic system, slippery liquid infused porous surface structure 48 will separate biomolecules (e.g., proteins) from solid surfaces and eventually prevent biofouling due to the high mobility of liquid droplets 22. Anti-biofouling electrode 42 thus provides a significant improvement for digital microfluidics systems, and, as noted herein, may be used to drive both conductive liquids and dielectric liquids in such digital microfluidics systems.
[0049] In the exemplary embodiments just described in connection with
[0050] Moreover, in connection with a further alternative exemplary embodiment, the anti-biofouling aspects of the disclosed concept may be used in connection with the co-planar interdigitated finger electrodes 14A and 14B shown in
[0051] In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. The word comprising or including does not exclude the presence of elements or steps other than those listed in a claim. In a device claim enumerating several means, several of these means may be embodied by one and the same item of hardware. The word a or an preceding an element does not exclude the presence of a plurality of such elements. In any device claim enumerating several means, several of these means may be embodied by one and the same item of hardware. The mere fact that certain elements are recited in mutually different dependent claims does not indicate that these elements cannot be used in combination.
[0052] Although the invention has been described in detail for the purpose of illustration based on what is currently considered to be the most practical and preferred embodiments, it is to be understood that such detail is solely for that purpose and that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover modifications and equivalent arrangements that are within the spirit and scope of the appended claims. For example, it is to be understood that the present invention contemplates that, to the extent possible, one or more features of any embodiment can be combined with one or more features of any other embodiment.