MICROFLUIDIC DEVICE
20200333299 ยท 2020-10-22
Inventors
Cpc classification
B01L2200/0631
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/082
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502753
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0864
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0867
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0475
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0487
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/069
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0816
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A microfluidic device for analysing a specimen comprises a loading area for loading the specimen of interest and an analytical column. The loading area is connected on two sides to a first duct and a second duct respectively, both integrated in the microfluidic device. The microfluidic device comprises a first integrated input connected to the first duct to take the specimen into the loading area, a first integrated output connected to the second duct to discharge the rest of the specimen, once it has flown through the loading area, and a second integrated output downstream the analytical column. The first integrated output is arranged for during a first loading period of time being in circuit connected to the first integrated input so as to load the sample into the loading zone of the device while preventing loss of specimen during loading of the sample into the analytical column.
Claims
1. A microfluidic device for analysing a specimen, the microfluidic device comprising a loading area for loading the specimen of interest and an analytical column the loading area being connected on two sides to a first duct and a second duct respectively, both integrated in the microfluidic device, and the microfluidic device further comprising: a first integrated input connected to the first duct to take the specimen into the loading area; a first integrated output connected to the second duct to discharge the rest of the specimen, once it has flown through the loading area; a second integrated output downstream the analytical column; wherein the first integrated output is arranged for during a first loading period of time being in circuit connected to the first integrated input so as to load the sample into the loading zone of the device while preventing loss of specimen during loading of the sample into the loading zone.
2. The microfluidic device according to claim 1, wherein the device furthermore is arranged for during a second period of time, having the first integrated output being connected to a blind stop and having the first integrated input being connected in circuit to the second integrated output so as to drive the sample from the loading area into the analytical column thus preventing loss of specimen via the first integrated output during the analytical separation of the sample in the analytical column.
3. The microfluidic device according to claim 1, wherein the loading area comprises one or more channels and wherein the analytical column comprises a plurality of channels.
4. The microfluidic device according to claim 1, wherein the plurality of channels of the analytical column are channels oriented substantially parallel to each other.
5. The microfluidic device according to claim 3, wherein the one or more channels of the loading area are a plurality of channels being oriented substantially parallel to each other.
6. The microfluidic device according to claim 1, wherein one or more of the channels of the loading area has a larger width than the channels of the analytical column.
7. The microfluidic according to claim 1, wherein the second integrated output being connected to a spray tip.
8. The microfluidic device according to claim 1, wherein the device is configured to elute a separated phase to a detector or an analytical column and the device is connectable to a pump to be able to pump the separated phase to the detector or the analytical column.
9. The microfluidic device according to claim 1, wherein a linear flow velocity in the system is controllable by a pump system.
10. The microfluidic device according to claim 1, wherein a linear flow velocity is controllable by a pump system and by taking into account the intrinsic fluid characteristics of the device.
11. The microfluidic device according to claim 1, the device comprising a pump system, the pump system comprising pump for loading the specimen via the first integrated input and an analytical pump for pumping the phase to the analytical column.
12. The microfluidic device according to claim 1, wherein the device is arranged for providing a flow rate during loading in the loading zone at least 2 times the flow rate during the analytical separation cycle.
13. The microfluidic device according to claim 1, wherein the device is arranged for receiving the loading zone at a flow rate in the range 0.1 l to 1000 l/min.
14. The microfluidic device according to claim 1, wherein external connections to inputs and outputs are implemented by at least one six-way valve.
15. The microfluidic device according to claim 1, wherein external connections to the inputs and outputs are implemented using at least a valve with more than 6 ports.
16. The microfluidic device according to claim 1, wherein external connection to inputs and outputs are implemented by at least one ten-way valve.
17. The microfluidic device according to claim 1, wherein the device comprises a waste collector for collecting the specimen rest discharged via the first integrated output.
18. A chromatography system, wherein the system comprises a microfluidic device according to claim 1.
19. A method for operating a microfluidic device for separating a phase in a specimen according to claim 1, the method comprising: loading the specimen into the loading area; discharge the rest of the specimen, once it has flown through the loading area, while preventing loss of specimen during loading of the sample into the analytical column; guiding the specimen of interest to the analytical column of the device so as to load the sample into the analytical column of the device.
20. A method according to claim 19, the method comprising controlling of a pump system so as to vary the flow velocity between a velocity during loading in the loading area and a velocity during said loading into the analytical column.
Description
SHORT DESCRIPTION OF THE FIGURES
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[0086] The figures are only schematic and not restrictive. The dimensions of some components may be exaggerated and are not represented to scale in the figures for illustrative purposes. Reference numbers used in the claims cannot be interpreted to restrict the scope of protection. In the various figures, the same reference numbers refer to the same or analogous elements.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0087] The present invention will be described in respect of specific embodiments and with reference to certain drawings, however the invention will not be restricted thereto but will only be limited by the claims.
[0088] Reference throughout this specification to one embodiment or an embodiment means that a specific feature, structure or characteristic described in connection with the embodiment has been included in at least one embodiment of the present invention. So, occurrence of the expressions in one embodiment or in an embodiment in various locations throughout this specification do not necessarily all need to refer to the same embodiment all the time, but may do so. Furthermore, the specific features, structures or characteristics may be combined in any suitable manner as would be clear to a person skilled in the art on the basis of this publication, in one or several embodiments.
[0089] Similarly, it should be appreciated that in the description of sample embodiments of the invention, various features of the invention are sometimes grouped together in one single embodiment, figure or description thereof intended to streamline the publication and to help the understanding of one or several of the various inventive aspects. This method of publication should therefore not be interpreted as a reflection of an intention that the invention requires more features than explicitly mentioned in each claim. Rather, as the following claims reflect, inventive aspects lie in fewer than all features of one single previously disclosed embodiment. So, the claims following the detailed description have been explicitly included in this detailed description, with every independent claim being a separate embodiment of the invention.
[0090] Furthermore, while some embodiments described herein contain some, but not other, features included in other embodiments, combinations of features from various embodiments are intended to be within the scope of the invention, and form these various embodiments as would be understood by the person skilled in the art. For example, in the following claims, any of the embodiments described may be used in any combination.
[0091] Furthermore, the terms first, second, third and the like in the description and in the claims are used to distinguish similar elements and are not necessarily used for describing an order, nor in time, nor in space, nor in ranking nor in any other manner. It should be understood that the terms used in this way are interchangeable in appropriate circumstances and that the embodiments of the invention described are suitable to work in a different order than described or indicated here.
[0092] Furthermore, the terms top, bottom, above, in front of and the like used in the description and the claims are used for description purposes and not necessarily to describe relative positions. It should be understood that the terms used as such are interchangeable in given circumstances and that the embodiments of the invention described herein are also suitable for functioning according to different orientations than described or indicated here.
[0093] It should be noted that the term comprises, as used in the claims, should not be interpreted as being restricted to the items described thereafter; this term does not exclude any other elements or steps. It may be interpreted as specifying the presence of the features, values, steps or components indicated which are referred to but does not exclude the presence or addition of one or several other features, values, steps or components, or groups thereof. So, the extent of the expression a device comprising items A and B should not be restricted to devices consisting of components A and B only. It means that in respect of the present invention, A and B are the only relevant components of the device.
[0094] In the description provided here, a large number of specific details are disclosed. It may therefore be understood that embodiments of the invention may be embodied without these specific details. In other cases, well-known methods, structures and techniques are not shown in detail in order to keep this description clear.
[0095] Where in the present invention, reference is made to integrated duct, integrated input or integrated output, reference is made to a heterogeneous built-in duct, built-in input or built-in output in a monolithic microfluidic carrier, for example chip, on which the device is provided. Where in the present invention reference is made to a pump, reference is not only made to a hydraulic pump, but alternatively an array of pumps may be used such as for example pressure-driven pumps, peristaltic pumps, electro-osmotic pumps, piezoelectric pumps, injection pumps, etc.
[0096] Where in the present invention, reference is made to separating a phase, reference may also be made to capturing a phase or purifying a phase or splitting a specimen into two or more phases.
[0097] Where in the present invention, reference is made to eluting a phase, reference may also be made to mobilising a phase, usually to remove it from the device.
[0098] The present invention relates to a microfluidic device for separating liquid phases. Reference may also be made to such a microfluidic device as a microfluidic trapping column. Separating of phases may be very advantageously used in the framework of liquid chromatography, although the invention is not restricted by this. According to embodiments of the present invention, a microfluidic device is described comprising a microfluidic trapping area for capturing the phase of interest. Hereby, it is an advantage of embodiments that a solution is provided whereby no valves need to be introduced at chip level, but that a simple solution is provided to provide a compact device for separating stages wherein no detrimental effects occur caused by dead volume in the system. Furthermore, with this simple solution, all functionality is still obtained for separating and subsequently eluting the phase.
[0099] In embodiments of the present invention, the microfluidic trapping area is on two sides, for example sides opposite each other, connected to a first duct and a second duct respectively, both integrated into the microfluidic device. The microfluidic device further comprises a first integrated input connected to the first duct, to take the specimen into the trapping area in which the phase of interest will be separated. It also comprises the first integrated output connected to the second duct, to discharge the rest of the specimen, after it has passed through the microfluidic trapping area and the phase of interest has immobilised.
[0100] The microfluidic device also comprises a second integrated output connected to a selected duct selected from the first duct or the second duct, to elute the separated phase from the device via this output, and a second integrated input connected to the first duct or the second duct that is not the selected duct, to connect to a pump to be able to pump the separated phase out of the device.
[0101] In addition, the microfluidic device also comprises a third integrated input, also connected to the selected duct via a connection located between the connection of the second integrated output on the selected duct and the microfluidic trapping area and via which the liquid flow during separating of the phase and eluting of the phase may be controlled.
[0102] As will be shown, the column for separating and eluting may be based on a unidirectional flow direction or on a bidirectional flow direction, i.e. whereby different (opposing) flow directions are used when separating the phase and eluting the separated phase.
[0103] Further characteristics and advantages of embodiments of the present invention will be described with reference to the figures. It should be noted here that the invention is not restricted to the specific embodiments shown in these figures or described in the examples, but is only limited by the claims.
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[0105] Furthermore, microfluidic device 100 from
[0106] Microfluidic device 100 from
[0107] So the liquid flow may be controlled via third integrated input I3 during separating of the phase and injecting of the phase.
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[0110] Microfluidic device 100 from
[0111] Microfluidic devices 100 from
[0112] As an example, microfluidic device 100 from
[0113] As a further illustration, not restricting embodiments hereto, schematic representations of microfluidic devices according to specific implementations of exemplary embodiments are shown in the following figures. Examples are given whereby use is made of external six-way valves and/or ten-way valves. It should be noted that these are just some examples, whereby these external valves may of course be implemented differently, whereby a six-way valve may for example be replaced by two correctly configured three-way valves.
[0114] In a first explicit implementation, a microfluidic device is shown which makes use of two six-port valves and one ten-port valve.
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[0116] The embodiment described in
[0117] Once the specimen is loaded into injection loop 240, the first, second and third multi-port valves will be adjusted, manually or automatically, so that the specimen may be taken to inside trapping area 110 and the phase of interest may be separated.
[0118] The embodiment described in
[0119] Now the phase is separated, this phase must typically be taken out of the device, for example to a detector or an analytical column. For this, liquid will be injected into the trapping area, the separated phase will be mobilised and passed to the detector or analytical column.
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[0123] In a second aspect, the present invention also relates to a chromatography system comprising a device as described in the first aspect and an analytical column connected to the device and via which a specific phase from the specimen may be injected into the analytical column. Further components of the chromatography system may be as in chromatography systems known in the state of the art. Characteristics and advantages of the current chromatography system correspond with the characteristics and advantages provided in the description of embodiments of the microfluidic device from the first aspect.
[0124] In a third aspect, the present invention also relates to the use of a microfluidic device according to one of the embodiments from the first aspect as a stationary phase in a chromatography procedure.
[0125] In a fourth aspect, the present invention relates to a method for operating a microfluidic device for separating a phase in a specimen. The microfluidic device corresponds thereby with a microfluidic device as described in embodiments from the first aspect. The method comprises trapping of a phase in the microfluidic trapping area by input via the first integrated input and an output via the first integrated output, whereby a counter-pressure is provided in the channel onto which the second integrated output (U2) is coupled to prevent eluting of the specimen. The method also comprises eluting of the separated phase by pumping via the second integrated input and to the second integrated output whereby loss of the separated phase via the first integrated input or the first integrated output is prevented by closing the first integrated input or the first integrated output in a circuit using the third integrated input. The method may also comprise controlling of a pump system connected to at least two inputs so that the device in operating mode is flowed through bidirectionally. The speeds of the flow in the various flow directions may also be controlled. Further method steps may correspond with the functionality of the various characteristics of the device as described in the first aspect.
[0126] In one aspect, the present invention relates to a microfluidic device for analysing a specimen, the microfluidic device comprising a loading area for loading the specimen of interest And an analytical column, whereby the loading area is connected on two sides to a first duct and a second duct respectively, both integrated in the microfluidic device, and whereby the microfluidic device further comprises a first integrated input connected to the first duct to take the specimen into the loading area, comprises a first integrated output connected to the second duct to discharge the rest of the specimen, once it has flown through the loading area has a second integrated output connected downstream the analytical column of the device characterised in that the first integrated output is arranged for during a first loading period of time being in circuit connected to the first integrated input so as to load the sample into the loading zone of the device while preventing loss of specimen during loading of the sample into the loading zone. It is an advantage of embodiments of the present invention that the loading cycle can be kept short. For example, the system can be provided with a limited number of channels in a loading zone which can be used for loading with a high flow rate.
[0127] The speed at which loading In the loading zone can be performed is between 0.1 and 1000 l/min.
[0128] It is an advantage of at least some embodiments that when eluting to a detector or to an analytical column from a loading zone, the specimen does no longer need to pass a valve.
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[0137] Alternatively to positioning the T-piece at the end of the analytical column, as shown in
[0138] The preceding description gives details of certain embodiments of the invention. It will, however, be clear that no matter how detailed the above turns out to be in text, the invention may be applied in many ways. It should be noted that the use of certain terminology when describing certain characteristics or aspects of the invention should not be interpreted as implying that the terminology herein is defined again to be restricted to specific characteristics or aspects of the invention to which this terminology is coupled.