FLUIDIC DEVICES WITH AT LEAST ONE ACTIONNABLE FIBER
20180193833 ยท 2018-07-12
Inventors
- Bastien Venzac (le Kremlin-Bicetre, FR)
- Ayako Yamada (Paris, FR)
- Jean-Louis Viovy (Paris, FR)
- Stephanie Descroix (Paris, FR)
- Laurent MALAQUIN (Ayguesvives, FR)
Cpc classification
F16K2099/0073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01L3/502707
PERFORMING OPERATIONS; TRANSPORTING
F16K99/0011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2099/0084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01L3/502738
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0816
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a minifluidic device including a matrix, an elongated guiding duct embedded at least in part in the matrix, with at least one port to the outside of the matrix, a movable fiber at least partly contained in the guiding duct, and able to undergo within the guiding duct, and at least along some part of the fiber, at least one action selected among a sliding, or a deformation, or a rotation and at least one of the movable fiber or the guiding duct is elastic or is non linear along at least part of its length, or at least part of the matrix is elastic.
Claims
1. A minifluidic device comprising at least: a/ a matrix (4, 5, 36) b/ an elongated guiding duct (4, 6, 10, 14, 17a, 23, 38, 45, 59, 73b, 82, 88) embedded at least in part in said matrix (4, 5, 36), with at least one port (5, 9, 21, 54) to the outside of the matrix (4, 5, 36), c/ a movable fiber (2, 12, 17, 30, 39, 40, 56, 71, 73, 73a, 80, 86, 90, 93, 95a, 98, 100a, 100b, 100c, 104) at least partly contained in said guiding duct (4, 6, 10, 14, 17a, 23, 38, 45, 59, 73b, 82, 88), and able to undergo within said guiding duct (4, 6, 10, 14, 17a, 23, 38, 45, 59, 73b, 82, 88), and at least along some part of said fiber (2, 12, 17, 30, 39, 40, 56, 71, 73, 73a, 80, 86, 90, 93, 95a, 98, 100a, 100b, 100c, 104), at least one action selected among a sliding, or a deformation, or a rotation, wherein: at least one of the movable fiber (2, 12, 17, 30, 39, 40, 56, 71, 73, 73a, 80, 86, 90, 93, 95a, 98, 100a, 100b, 100c, 104) or the guiding duct (4, 6, 10, 14, 17a, 23, 38, 45, 59, 73b, 82, 88) is elastic or is non linear along at least part of its length, or at least part of the matrix (4, 5, 36) is elastic.
2. A minifluidic device according to claim 1, further comprising: d/ at least one zone in fluidic connection with said guiding duct (4, 6, 10, 14, 17a, 23, 38, 45, 59, 73b, 82, 88), said zone being selected from: a fluid drop area (22), a reservoir, or a chamber (11, 14, 16, 18, 55, 78, 84, 85, 89, 103, 107.
3. A minifluidic device according to claim 1, further comprising means (44, 75) for actuation of said movable fiber (42, 73a.
4. A minifluidic device according to claim 1, which comprises a multiplicity of guiding ducts (73b, 106) and a multiplicity of movable fibers (73, 73a) at least partly contained in said guiding ducts (73b, 106) and able to undergo within said guiding duct, and at least along some part of said fibers, at least one action selected among a sliding, or a deformation, or a rotation.
5. A minifluidic device according to claim 4, wherein at least some of said movable fibers (73, 73a, 100a, 100b, 100c) are mechanically related, and can be actuated together by a single manipulation means (75, 104).
6. A minifluidic device according to claim 1, wherein the movable fiber comprises at least one zone presenting fluid flow properties different from fluid flow properties in a different part of the fiber.
7. A minifluidic device according to claim 1, wherein at least one of the guiding duct (4, 6, 10, 14, 17a, 23, 38, 45, 59, 73b, 82, 88), the matrix (4, 5, 36) and the movable fiber (2, 12, 17, 30, 39, 40, 56, 71, 73, 73a, 80, 86, 90, 93, 95a, 98, 100a, 100b, 100c, 104) is flexible or semi-flexible.
8. A minifluidic device according to claim 1, wherein it further comprises at least one channel (37, 43, 52, 76, 102, 106) intersecting with the guiding duct (38, 45, 59, 73b), or at least one channel network in fluidic connection with the guiding duct.
9. A minifluidic device according to claim 1, wherein the actuation of said movable fiber (2, 12, 17, 30, 39, 40, 56, 71, 73, 73a, 80, 86, 90, 93, 95a, 98, 100a, 100b, 100c, 104) within a guiding duct modifies the fluidic connectivity, or at least one fluidic resistance, within a channel (37, 43, 52, 59, 77, 102) or within a channel network (106) of the device.
10. A minifluidic device according to claim 1, additionally comprising a textile component (1, 41) embedded in said matrix (5), and wherein the guiding duct (4, 6, 10, 38, 45) is entangled with said textile (1, 41) component.
11. A minifluidic device according to claim 1, wherein the path of the guiding duct (10, 38) is non-linear or is three-dimensional, or the guiding duct (109) is in fluidic connection with a non-linear or three dimensional channel or with a non-linear or three-dimensional channel network (106).
12. An instrument comprising a device according to claim 1, said instrument being any of, or any combination of, an analytical instrument, a medical instrument, a functional clothing, a wearable instrument, an implantable instrument, a monitoring instrument, a processing instrument.
13. A kit for preparing, connecting or using a minifluidic device or instrument, comprising, on the first hand, a minifluidic device comprising at least a/ a matrix (5), b/ an elongated guiding duct (6, 43, 45) embedded at least in part in said matrix, with at least one port to the outside of the matrix, c/ a movable fiber (2, 39, 40) at least partly contained in said guiding duct (6, 43, 45), and able to undergo within said guiding duct, and at least along some part of said fiber, at least one action selected among a sliding, or a deformation, or a rotation, wherein: at least one of the movable fiber (2, 39, 40) or the guiding duct (6, 43, 45) is elastic or is non linear along at least part of its length, or at least part of the matrix (5) is elastic, and on a second hand, at least one component selected among: a fluid (7, 22a, 48), a chemical product or a biological product, an additional physical component.
14. A method of initiating, or modifying, or controlling, or stopping fluid flow in a fluidic device according to claim 1, wherein said method comprises at least one of a pulling, a pushing, a deformation, or a rotation, at least along some part of the movable fiber.
15. A method for analyzing any of a biological, a physical or a chemical agent, or for monitoring a process, an environment, a living species, a condition of a patient or for producing a product, or for discovering or testing a drug or an active product, wherein said analysis, monitoring, production, discovery, or test, is performed using a device according to claim 1.
16. The device of claim 2, wherein said fluid drop area or reservoir or chamber is enclosed at least in part within said matrix or supported by said matrix.
17. The device of claim 3, further comprising means suitable to induce onto said movable fiber at least one of a pulling, a pushing, a deformation, or a rotation, at least along some part of said fiber.
18. The device of claim 6, wherein the zone is selected from a group consisting of: a hole, a via, a lumen, an indentation, a change in cross-section, a porous zone, a zone of material permeable to fluids, and a gel.
19. A minifluidic device according to claim 2, further comprising means (44, 75) for actuation of said movable fiber (42, 73a).
20. A minifluidic device according to claim 2, which comprises a multiplicity of guiding ducts (73b, 106) and a multiplicity of movable fibers (73, 73a) at least partly contained in said guiding ducts (73b, 106) and able to undergo within said guiding duct, and at least along some part of said fibers, at least one action selected among a sliding, or a deformation, or a rotation.
Description
FIGURES
[0778] It will be convenient to further describe the invention with respect to the accompanying figures which illustrate preferred embodiments of the three dimensional microfluidic system according to the present invention. Other embodiments of the invention are possible, and consequently, the particularity of the accompanying figures is not to be understood as superseding the generality of the preceding description of the invention.
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[0801] In the figures, a same object is designated with a same reference on distinct figures.
EXPERIMENTAL PART
Example 1
[0802] The first example, shown in
[0803] After completion of the weaving the fabric [1] is detached from the loom and immerged into a matrix precursor material [5]. The matrix precursor material wicks the support fibers [1.1, 1.2] prior to be hardened and its spatial extension is limited to the fabric [1], as shown in
[0804] The movable fiber [2] can then be moved within the matrix [5] and the embedded fabric [1], as shown in the
Example 2: Use of the Invention as an Integrated Pump
[0805] The device of
[0806] First, only one end of the movable fiber [2] is inserted into a silicone tubing [21]. The other end is partially inserted into the shed during the picking, and is thus protruding from the surface of the textile [1]. After the matrix [5] hardening, the movable fiber [2] protrudes from the matrix [5]. A drop of colored water [22a] is put on the fabric, at the place [22] where the movable fiber [2] exits the fabric, and this place defines a fluid drop area [22]. Then, the movable fiber [2] is pulled and partly removed, which makes the liquid enter into the guiding duct [23], i.e. a space created by the fiber [2], like a microsyringe would (see
[0807] For this example, the support fibers of the textile [1] are white cotton threads (n 7, Phildar, FR). The movable fiber [2] is a fluorocarbon monofilament fishing line (Varivas Super Tippet, 3X, Morris Co, JP) with a 200 m diameter. The matrix [5] used is a 10:1 (weight par weight) mix of polydimethylsiloxane (PDMS) base and its curing agent (Sylgard 184, Dow Corning, USA). The fabric [1] is immerged into a fresh mix of the base and the curing agent, then put under a vacuum belt for 1 hour, and then suspended in an oven at 65 C. for 5 h.
Example 3
[0808] The third example of the invention illustrates the possibility to create a guiding duct with a tortuous design, as shown in
Example 4
[0809] Example 4 illustrates the ability to use a hydrogel as matrix. For this example, the matrix is made of a 4% agarose gel, as shown in
[0810] When a drop of colored water [7] is introduced in the microchannel by a micropipette tip connected to a micropipette, the solution follows first the microchannel [29] as shown in
Example 5
Example 5Part a
[0811] First, movable fibers [30] are sewn into the central part [31] of a fabric [1] made with support fibers [32]. Holes [33] are punched in an adjacent part [34] of the fabric [1], as seen in
[0812] The fabric is then immersed into a matrix precursor material [36]. The matrix precursor material [36] wicks the support fibers [32] and its spatial extension is limited to the fabric [1]. The matrix precursor material [36] is hardened to a solid in a known manner.
[0813] To obtain a microchannel network [37] inside the matrix-impregnated fabric, the movable fibers [30] are retrieved from the fabric [1] as shown in
[0814] An embodiment of the microfluidic chip was made with this protocol. For this example, the fabric used [1] is a microfiber sheet. The movable fiber [30] is a fluorocarbon monofilament fishing line (Varivas Super Tippet, 3X, Morris Co, JP) with a 200 m diameter. The matrix precursor material used [36] is a 10:1 mix of polydimethylsiloxane (PDMS) base and curing reagent (Sylgard 184, Dow Corning, USA). The fabric [1] is immersed into a fresh mix of base and curing reagent, then put under a vacuum belt for 1 hour, and then suspended in an oven at 65 C. for 5 h. The microchannels created [37] are easily filled with a fluid by following the protocol of example 5 and the two crossing microchannel [37] and [38] which can acting as guiding ducts are connected together.
Example 5Part B
[0815] This example, depicted in
[0816] After embedment of the microfluidic chip with a matrix precursor material, here a PDMS matrix, and hardening of the matrix, the first movable fiber [39] is removed from the microfluidic chip, and colored water is introduced in the created channel [43], for instance by following the protocol presented in example 5, or thanks to an external pumping means. Four polyester threads [44] (Gtermann, 110 yds/vgs), which have wicking properties for water and aqueous solutions, are then passed in the loops of the 4 nylon fishing lines [42]. Pulling on these nylon fishing lines [42] allow the polyester thread to enter inside the channels [45] created by the removal of the 100 m nylon fishing lines. These channels [45] thus play the role of guiding ducts for the fishing lines [42] and the polyester threads [44] (
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Example 6
[0818] This example describes a microfluidic chip of the invention prepared without support fibers or textile. The first embodiment of the invention is shown in
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[0820] A movable fiber [56] made of fluorocarbon with a diameter of 86 m is inserted in the middle of the microchamber [51] along the two guiding ducts [59] on the obtained PDMS block, and further embedded in the block by using a needle [62], with its extremities piercing out from the block [57] (
Example 7
[0821] This example shows an application of the embodiment described in example 6. Here, the microfluidic chip is used to position neuronal cell bodies [13] on one side of the microchamber [11], and to guide axons into the other side, by using a micro-patterned substrate.
[0822] After completing a microfluidic chip as described in Example 6 (
Example 8
[0823] This example shows another technical solution to compartmentalize a microchannel, using another type of moving fiber.
[0824] Instead of using a conventional fiber, the movable fiber here is a thin bar of plastic [17], as shown in
Example 9
[0825] Movable fibers can be linked together in order to allow the opening or closing of several compartments with a single move. This example shows two technical solutions to this linking. On
Example 10
[0826] This example shows another functionality of the chip described in Example 6, using a movable fiber with non-uniform thickness along its length. The system can be used as a valve that can be opened and closed repeatedly. The movable fiber blocks or lets fluid pass from one side of a microchannel to the other, depending on the thickness of the fiber that separates the microchannel into two, by moving the fiber along its length.
[0827] A fluorocarbon movable fiber [80] used in this example has originally a homogenous diameter of 86 m, which is 6 m larger than the microchannel height. Some part [81] of its length are flattened to have a smaller thickness than the microchannel height by pinching with tweezers. First, the movable fiber [80] is positioned in the guiding duct [82] with its flattened parts [81] away from the intersection [83] with the microchamber. In this configuration, which corresponds to a closed state of the valve, the microchamber is initially separated into two compartments. One compartment [84] is filled with colored water and the other compartment [85] is filled with non-colored water. As shown in
Example 11
[0828] This example shows another technical solution to create a valve in a microchannel, using a movable fiber [86] with via [87], in the same configuration as Example 9.
[0829] The movable fiber here is a thin bar of plastic [86] with via [87], as shown in
Example 12
[0830] This example shows different movable fibers with a via.
Example 13
[0831]
Example 14
[0832] This example describes an exemplary embodiment of an integrated pump, operating thanks to three movable fibers [100a, 100b, 100c] of the invention, two of which [100a, 100b] are connected together, and a third one [100c] being actuated synchronously with the first two. The two linked movable fibers [100a, 100b] present via [101a, 101b], and the third movable fiber [100c] does not present a via. The pump operates as shown on
Example 15
[0833] This example shows an application of the invention. A microfluidic network including a multiplicity of microchannels [108] and a multiplicity of microchambers [107] is represented on