MICROFLUIDIC CHIP, MICROFLUIDIC DEVICE, ASSOCIATED USES AND METHODS
20180333721 · 2018-11-22
Inventors
- Luis José FERNÁNDEZ LEDESMA (ZARAGOZA, ES)
- Rosa Maria MONGE PRIETO (ZARAGOZA, ES)
- Jose Luis CALAVIA CALVO (ZARAGOZA, ES)
- Jorge SANTOLARIA MAZO (ZARAGOZA, ES)
- Javier ORÚS PONTAQUE (ZARAGOZA, ES)
- Carlos PERIBÀÑEZ SUBRIRÓN (ZARAGOZA, ES)
- José Manuel RODRIGUEZ FORTÚN (ZARAGOZA, ES)
- Ignacio Ochoa Garrido (Madrid, ES)
Cpc classification
B01L2200/12
PERFORMING OPERATIONS; TRANSPORTING
F16K99/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01L3/502707
PERFORMING OPERATIONS; TRANSPORTING
B32B37/16
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502738
PERFORMING OPERATIONS; TRANSPORTING
B32B38/0008
PERFORMING OPERATIONS; TRANSPORTING
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
B32B37/182
PERFORMING OPERATIONS; TRANSPORTING
F16K2099/0084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
F16K99/0048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01L2400/0638
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
B32B38/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a chip equipped with a plurality of compact microfluidic valves with multiple inlets and outlets, actuated by means of a flexible membrane system. The chip preferably comprises a deformable sealing layer made of at least one flexible, elastic, and insulating material; a structure formed by a succession of one or several microstructured layers, wherein said structure comprises one or several micro-chambers, one or several microfluidic channels, and one or several fluidic inlets and outlets; and wherein said structure is installed on a base substrate. The invention likewise relates to a microfluidic device that comprises the aforementioned chip, to a method for the fabrication of the chip, and to the uses associated with the chip and the microfluidic device.
Claims
1. A method for the fabrication of a microfluidic chip of the type that comprises: a deformable sealing layer (1), wherein said layer comprises a flexible, elastic, and insulating material; a structure formed by an arrangement of one or several micro-structured layers (3), wherein said structure comprises: one or several micro-chambers (2) one or several microfluidic channels (4) for the circulation of fluid to and from the micro-chambers (2), and; one or several fluidic inlets (5) and outlets (6); and a base substrate (7) on which the structure of the micro-structured layer or layers (3) is arranged: said method characterized in that it comprises the following steps: application of a plasma cleaning treatment to the micro-structured layer or layers (3) and to the deformable sealing layer (1); application of material that includes a compound that comprises amine (NH2) and hydroxyl (OH) free radicals to the structure of micro-structured layers (3) and to the deformable sealing layer (1); arrangement of the deformable sealing layer (1) on the structure of micro-structured layers (3); application of pressure and temperature to the structure of micro-structured layers (3) and to the deformable sealing layer (1), for the purpose of sealing said layers (1,3).
2. The method according to claim 1, wherein the sealing temperature is regulated in a range between 70 and 100 C. and the sealing pressure is applied in a range between 0.1 and 5 bar, during a sealing time of between 5 and 45 minutes.
3. The method according to claim 1, wherein the material applied to the structure of micro-structured layers (3) and to the deformable sealing layer (1) comprises APTES.
4. The method according to claim 1, wherein the cleaning plasma is oxygen and/or nitrogen plasma.
5. The method according to claim 1, wherein the base substrate (7) is made by means of machining, deposition, or stratification.
6. The method according to claim 1, wherein one or more of the micro-structured layers (3) comprises SU-8,PMMA, COC, COP, PC and/or thermoplastic material.
7. The method according to claim 1, wherein the base substrate (7) comprises SU-8, PMMA, COC, COP, PC and/or thermoplastic material,
8. The method according to claim 1, wherein the deformable sealing layer (1) comprises elastomeric material, silicone, or PDMS.
7. A microfluidic chip of the type that comprises: a deformable sealing layer (1), with said layer comprising a flexible, elastic, and insulating material; a structure formed of one or several micro-structured layers (3), which comprises: one or several micro-chambers (2), one or several microfluidic channels (4) for the circulation of fluid to or from the micro-chambers, and one or several fluidic inlets (5) and outlets (6); and a base sub rate (7) on which the structure of the micro-structured layers (3) is arranged; said chip characterize in that it is fabricated by means of a method according to any of the preceding claims.
10. A microfluidic device that comprises a chip according to claim 9, and that additionally comprises: one or several closing pins (10) arranged for the application thereof to the deformable sealing layer (1) of the chip; one or several actuators (11) configured to apply the closing pins 10) to the deformable sealing layer (1) of the chip; a first housing sub-structure (12) for the chip; a second housing sub-structure (13) for the closing pins (10) and the actuators (11); a connection (14) of the first sub-structure (12) and the second sub-structure (13); a closure (15) of the first sub-structure (12) and the second sub-structure (13).
11. The microfluidic device according to claim 10, wherein the actuators (11) are cantilevered piezoelectric actuators.
12. The device according to claim 10, which comprises connection elements (16) between the actuators (11) and the closing pins (10), configured to give said closing pins (10) actuation capabilities in both directions.
13. The device according to claim 10, wherein the connection (14) is a hinge or guide pin type, and/or wherein the closure (15) is a clip, elastic connection, holder clip, bracket, or screw type.
14. The device according to claim 10, wherein the first housing sub-structure (12) for the chip, or part of the same, comprises a disposable encapsulation.
15. A use of a chip according to claim 9 for the implementation of microfluidic valve systems or of microfluidic pump systems.
16. A use of a device according to claim 10 for the implementation of microfluidic valve systems or of microfluidic pump systems.
Description
DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION OF THE INVENTION
[0058] As described in preceding paragraphs, one object of the present invention relates to a microfluidic chip especially intended for the study and culturing of cell samples, to which end it comprises means for housing said samples, as well as a plurality of microfluidic channels for the circulation of fluids (for example, for the feeding of the housed samples). In this sense, the microfluidic chip of the invention comprises a principal structure formed by a succession of one or several micro-structured layers (3) arranged on a base substrate (7). The structure of the micro-structured layer or layers (3) makes up a network of micro-chambers (2) and microfluidic channels (4), as well as fluidic inlets (5) and outlets (6), through which both the live cells to be studied and the fluids that will circulate through the microfluidic circuit can be introduced. The base substrate (7) may be manufactured by means of machining, deposition, or stratification.
[0059] The plurality of microstructured layers that make up the structure of the chip may be made of different materials, although preferably, it will be fabricated by means of deposition of SU-8, PMMA, COC, COP, PC and/or a similar thermoplastic material.
[0060] By means of an additional process, the structure of the chip may be covered by a deformable sealing layer (1) of flexible, elastic, and insulating material, such as elastomeric materials, silicone, or PDMS, being, for example, thin (tenths of a micrometer) transparent silicone, for the purpose of creating micro-chambers (2) on hollow zones on the surface of the chip, and to allow these zones to be observed through a microscope.
[0061] To secure the deformable sealing layer to the structure of micro-structured layers (3) that comprise SU-8, PMMA, COC, COP, PC and/or a similar thermoplastic material, the following steps are preferably carried out as part of the fabrication method for said chip: [0062] Each one of the elements is initially subjected to a cleaning treatment with oxygen and/or nitrogen plasma. [0063] Later, each one of the elements is subjected to fixing of APTES (3-Aminopropyl triethoxysilane) material. For example, said fixing can be done by means of a bath in a solution of 15% APTES for 1-30 minutes. [0064] Lastly, both elements, the structure of micro-structured layers (3) and the deformable sealing layer (1), are sealed by means of regulation of temperature (preferably, in a range between 70 C. and 100 C.) and/or pressure (preferably, in a range between 0.1 and 5 bar), with a sealing time of between 5 and 45 minutes.
[0065] With respect to the functional design of the chip, the arrangement of housings and channels (4) of the structure of micro-structured layers (3) and of the deformable sealing layer (1) is such that when said layer is pressed from the exterior, it limits the space of the housings, and blocks one or more microfluidic channels, acting as a valve for the flow of fluid.
[0066] Preferably, the chip of the invention comprises a plurality of housings with their corresponding valves, which can be actuated by means of the deformation of the deformable sealing layer (1) (for example, the layer of silicone).
[0067] As shown schematically in
[0068] The inlets and outlets of the chip will be connected with the conduits (8), through which fluid will enter or exit (illustrated in
[0069] Another aspect of the invention relates to a microfluidic device that comprises a chip according to any of the embodiments described herein, and a means of actuating its valves, preferably independently for each one. Said actuation means preferably comprises a closing pin and an actuator for each valve to be operated. Given the small size of the chip of the invention in comparison with the valve chips of the state of the art, the space between each one of the valves conditions the type of actuation that can be applied, because it makes the installation of direct actuators (in other words, actuators located directly on the micro-chambers and the deformable sealing layer) practically impossible. Another conditioning factor for the installation of the actuators is the force required to close the device, which depends directly on the pressure of the fluid on the membrane and the surface area of the membrane (typically between 5 and 40 mbar).
[0070] Therefore, for the implementation of the microfluidic device of the invention equipped with microfluidic chips with multiple inlets and outlets, and which is based on the miniaturization capacity of the technology for the fabrication of chips for the use thereof as a passive and disposable element, preferably actuators (in combination with actuation points, known as closing pins) based on smart materials, and more specifically, piezoelectric actuators, will be used.
[0071] The design of the proposed device therefore makes use of a microfluidic chip according to the present invention, including a deformable sealing layer (for example, made of silicone) acting as a membrane and micro-chambers separated and isolated from the exterior that can be deformed by means of points or closing pins (10) (for example, metal pins), making it possible to alternate between the open and closed positions (
[0072] Preferably, as shown in
[0077] In different possible embodiments of the invention, the housing sub-structures may be made of plastic materials, for example, injected thermoplastic, such as polyamide (PA) or acrylonitrile butadiene styrene (ABS), or with injected or machined aluminum in the regions that are not in contact with electrical elements.
[0078] To ensure watertightness during the use of the device, the closures (15) of the first sub-structure (12) and second sub-structure (13) may be provided, for example, by the use of a closure screw (
[0079] Since the device has non-forced opening, if the necessary pressure in the device is too low, opening may not occur, because the device is unable to overcome the remaining resistance when the actuators (11) are withdrawn. To avoid this, an alternative design or complement is considered, which consists of several connection elements (16) between the actuators (11) and the heads of the pins (10) (
[0080] Lastly, in addition to the use of the invention for cell culturing in microfluidic circuits, the alternative use of the chip and the microfluidic device described as a microfluidic pump is also considered, by means of designing a specific chip and the programming of the actuators in the device control, which allows it to function in a similar manner to a peristaltic pump. Another possible use of the invention comprises the combination of applications as pump and valve set, using different chambers on the same chip for different functions as a valve or peristaltic pump.