Assembly of flat on structured glass layers
09573803 ยท 2017-02-21
Assignee
Inventors
- Antoine Gaston Denis Bisson (Montigny Lencoup, FR)
- Thierry Luc Alain Dannoux (Avon, FR)
- Anne Paris (Thomery, FR)
Cpc classification
B81C1/00119
PERFORMING OPERATIONS; TRANSPORTING
B01J19/0093
PERFORMING OPERATIONS; TRANSPORTING
B81B2201/058
PERFORMING OPERATIONS; TRANSPORTING
B81C2201/019
PERFORMING OPERATIONS; TRANSPORTING
B01J2219/00783
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A microfluidic device (100) made from glass, ceramic or vitroceramic, comprises an upper layer (122), a lower layer (124) and an intermediate layer (114), the intermediate layer (114) comprising an upper face (114b) and a lower face (114a), the lower face (114a) comprising a first open structured surface defining a first microfluidic channel (126) and the upper face (114b) comprising a second open structured surface defining a second microfluidic channel (112); the lower surface of the intermediate layer (114) cooperating with a first planar layer closing the first microchannel (126); the upper face (114b) of the intermediate layer (114) cooperating with a second planar layer (130), closing the second microfluidic channel (112) in a sealed manner, and the second planar layer constituting an intermediate layer (130) which cooperates, on its face opposite the intermediate layer (114), with another layer (122) comprising on its inner face (122a) a structured surface defining a third microfluidic channel (128).
Claims
1. Microfluidic device (100) made from glass, ceramic or vitroceramic, provided with at least one microfluidic processing channel defining at least one microfluidic processing chamber (112), the device comprising at least one upper layer (122), at least one lower layer (124) and at least one intermediate layer (114), wherein the intermediate layer (114) comprises an upper face (114b) and a lower face (114a), and wherein the intermediate layer (114) comprises on its lower face (114a) a first open structured surface in the form of a first network of protuberances (119) defining a first microfluidic channel (126) and on its upper face (114b), a second open structured surface in the form of a second network of protuberances (120) defining a second microfluidic channel (112); the lower surface of the intermediate layer (114) cooperating with a first essentially planar sheet shaped layer (124) made from glass, ceramic or vitroceramic, closing the first microchannel (126) in a sealed manner; the upper face (114b) of the intermediate layer (114) cooperating with a second essentially planar sheet shaped layer (130), also made from glass, ceramic or vitroceramic, closing the second microfluidic channel (112) in a sealed manner, and wherein the second essentially planar sheet shaped layer constitutes an intermediate layer (130) which cooperates, on its face opposite to the intermediate layer (114), with another layer (122) comprising on its inner face (122a) a structured surface in the form of a network of protuberances (123) defining a third microfluidic channel (128).
2. Microfluidic device according to claim 1, in which the microfluidic device (100) is formed from a stack of layers, the stack comprising, in alternating order, an essentially planar sheet shaped layer (124; 130) and an intermediate layer (114; 122), the intermediate layer having either one or two faces (114a, 114b, 122a) having an open structured surface in the form of a network of protuberances (119, 120, 123) defining a microchannel, (126, 112, 128).
3. Microfluidic device according to claim 1, wherein the microfluidic device comprises microfluidic inlets (such as 140) and microfluidic outlets communicating fluidly with the microfluidic channels (such as 126; 112; 128), the microfluidic inlets and outlets, being arranged substantially opposite on the upper face (122) and the lower face (124) of the microfluidic device (100).
4. Microfluidic device according to claim 1, wherein the composition of the glass, ceramic or vitroceramic structure and the composition of the essentially planar sheet shaped layer are essentially identical.
5. Microfluidic device according to claim 1, in which the device comprises fluid inlets and fluid outlets, and wherein the device comprises a stop and orifice system to produce the alignment of the intermediate layers and the essentially planar layers.
6. Microfluidic device according to claim 5, wherein the fluid inlets and outlets are provided with sealing means (142).
7. Microfluidic device according to claim 1, wherein the intermediate layer and each essentially planar sheet shaped layer (124; 130) are tightly sealed together with a glass, ceramic or vitroceramic sealing frit deposited at least on the essentially planar sheet shaped layer.
8. Microfluidic device according to claim 7, wherein the glass, ceramic or vitroceramic sealing frit (150, 152) is deposited only on the essentially planar sheet shaped layer (124; 130).
9. Microfluidic device according to claim 1, wherein the second microfluidic channel (112) is structured and arranged as a chemical reaction channel, and wherein at least one from the first (126) and the third (128) microfluidic channels is structured and arranged as heat exchange fluid channel.
Description
DESCRIPTION OF THE FIGURES
(1)
(2)
(3) According to the embodiment shown, above the intermediate layer comprising the open structure for defining the processing microchannel, an upper layer is disposed comprising, on its lower face, protuberances having a height suitable for defining another channel also provided for the passage of the heat exchange fluid, in order to supplement the temperature control in the processing channel, on either side of the processing channel.
(4) The structure in
(5)
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(11) The upper face 22 of the microfluidic device 10; and the lower face 24 of the microfluidic device 10 are formed by essentially planar layers and close the protuberances of the channels 12, 26, 28 for allowing the passage either of a reaction fluid, or of a heat exchange fluid for controlling the temperature in the processing chamber defined by the microfluidic processing channel 12.
(12) According to the prior art, this entire microfluidic device 10 is made from glass, vitroceramic or ceramic. The bonding between the various parts of the microfluidic structure is obtained by means of a glass, ceramic or vitroceramic sealing frit which has an adapted softening or melting point to provide a safe and reliable seal between the various parts.
(13) It is understandable that in the embodiment of the prior art shown in
(14)
(15) The processing chamber defined by the microfluidic channel 112 is closed by a new layer that is also an essentially planar sheet shaped intermediate layer 130. In the embodiment shown, the lower face 114a of the intermediate layer 114 also comprises protuberances 119, here for example having a lower height, and which define a microchannel 126 for a heat exchange microfluid for controlling the temperature in the processing chamber 112.
(16) According to the embodiment shown in
(17) It may be observed that the structure in
(18) It is understandable that this structure according to this disclosure clearly serves to obtain the technical advantages previously stated in the introductory part of the present description.
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(20)
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(23) This sealing frit composition must have good durability or chemical resistance in itself, and must not create any durable weakness during the interdiffusion with the glass, ceramic or vitroceramic material of the structure. It must also have a compatibility in terms of thermal expansion coefficient to the glass, ceramic or vitroceramic structure to avoid tension after the sealing. This compatibility must be good, especially below the glass transition temperature of the seal used. The softening point of the frit composition is advantageously at least 50 C. lower than the softening point of the glass structure to avoid any significant deformation of the microfluidic channels during the sealing cycle.
(24) It is understandable that thanks to this disclosure, the structure of the prior art as shown in
(25) Furthermore, the upper layer 122 comprises a lower surface 122a which here comprises protuberances 123 defining the heat exchange microfluid flow channel 128, these protuberances 123 also resting on an essentially planar face consisting of the essentially planar sheet 130.
(26) In these conditions, the procedure for fabricating the microfluidic structure of the microfluidic device according to this disclosure 100 is simplified, made more efficient, and the assembly procedure may be much faster while remaining safe and reliable and ensuring a perfect seal, and even improving the service life of the structure and improving its resistance to chemical agents.
(27) An exemplary embodiment of a structure according to this disclosure provides for fabricating the intermediate layer 114 of glass, ceramic or vitroceramic comprising open protuberances 119, 120 having a size provided to constitute microchannels 112 on each side of its faces 114a, 114b, thus typically having a height of 0.5 to 2 mm and a spacing of 2 to 4 mm, using a graphite mould machine to produce the negative form of the desired glass structure, as is well known to a person skilled in the art and in particular from the prior patent of the applicant EP 1 964 817. This casting procedure is typically carried out at a viscosity in the range of 10.sup.5-10.sup.6 Poises for 0.5 to 2 hours.
(28) The same procedure is followed for the upper layer 122 comprising protuberances 123.
(29) The intermediate layer 130 and the lower layer 124 are made in the form of essentially planar sheets having the same glass, ceramic or vitroceramic composition.
(30) As a glass, ceramic or vitroceramic composition, to manufacture said layers, compositions of glass of aluminosilicate family with vitrous transition temperature close to 800 C. (viscosity of 10.sup.13.6 Poises) can be used.
(31) As a sealing frit, use can be made of a glass, ceramic or vitroceramic of borosilicate family with vitrous transition temperature close to 500 C. having a coefficient of thermal expansion close to that of the substrate layers (difference of dilation coefficient lower than 10.sup.6/ C.).
(32) The sealing procedure can thus be carried out at a temperature close of the softening point of the glass frit, namely 850-900 C., for a period of about 2 hours.
(33) It is therefore understood that this disclosure serves to solve all the technical problems previously described, simply, reliably, and is usable on the industrial scale.
(34) The methods of use and/or the devices disclosed herein are generally useful in performing any process that involves mixing, separation, extraction, crystallization, precipitation, or otherwise processing fluids or mixtures of fluids, including multiphase mixtures of fluidsand including fluids or mixtures of fluids including multiphase mixtures of fluids that also contain solidswithin a microstructure. The processing may include a physical process, a chemical reaction defined as a process that results in the interconversion of organic, inorganic, or both organic and inorganic species, a biochemical process, or any other form of processing. The following non-limiting list of reactions may be performed with the disclosed methods and/or devices: oxidation; reduction; substitution; elimination; addition; ligand exchange; metal exchange; and ion exchange. More specifically, reactions of any of the following non-limiting list may be performed with the disclosed methods and/or devices: polymerisation; alkylation; dealkylation; nitration; peroxidation; sulfoxidation; epoxidation; ammoxidation; hydrogenation; dehydrogenation; organometallic reactions; precious metal chemistry/homogeneous catalyst reactions; carbonylation; thiocarbonylation; alkoxylation; halogenation; dehydrohalogenation; dehalogenation; hydroformylation; carboxylation; decarboxylation; amination; arylation; peptide coupling; aldol condensation; cyclocondensation; dehydrocyclization; esterification; amidation; heterocyclic synthesis; dehydration; alcoholysis; hydrolysis; ammonolysis; etherification; enzymatic synthesis; ketalization; saponification; isomerisation; quaternization; formylation; phase transfer reactions; silylations; nitrile synthesis; phosphorylation; ozonolysis; azide chemistry; metathesis; hydrosilylation; coupling reactions; and enzymatic reactions.
(35) The embodiments shown in the