PIPETTE TIP FOR AN AUTOMATED PIPETTING DEVICE
20190143317 ยท 2019-05-16
Assignee
Inventors
Cpc classification
B01L3/0275
PERFORMING OPERATIONS; TRANSPORTING
B01L9/54
PERFORMING OPERATIONS; TRANSPORTING
B01L9/543
PERFORMING OPERATIONS; TRANSPORTING
B25J9/1664
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/021
PERFORMING OPERATIONS; TRANSPORTING
G01F22/00
PHYSICS
B01L3/021
PERFORMING OPERATIONS; TRANSPORTING
B01L3/54
PERFORMING OPERATIONS; TRANSPORTING
G01N35/00732
PHYSICS
G01N35/1011
PHYSICS
B01L2400/0487
PERFORMING OPERATIONS; TRANSPORTING
G01N2035/00811
PHYSICS
B01L2200/143
PERFORMING OPERATIONS; TRANSPORTING
International classification
G01N35/00
PHYSICS
G01N35/10
PHYSICS
Abstract
The invention concerns pipette tips for connecting to a pipette tube of a pipetting device are used for taking up and discharging fluids. The pipette tip is in the shape of an elongated tube forming a pipette body that has an opening at one end and is designed for connecting to the pipette tube at the other end. The pipette tip has a first electrode as a volume measuring electrode of a measuring capacitor and a second electrode as an immersion detector electrode. The first electrode is located on an outer surface of the pipette body or is embedded in the pipette body, and the second electrode is located at least partially on an inner surface of the pipette body.
Claims
1. Pipette tip (1) for connection to a pipette tube (2) of a pipetting device (3), wherein the pipette tip (1) is formed as an elongated tube forming a pipette body (4) having at one first end thereof an opening (5) for aspirating and/or dispensing liquids and being adapted at the other end thereof for connection to the pipette tube (2), wherein the pipette tip (1) has a first electrode (7) as volume measuring electrode of a measuring capacitor, and a second electrode (10) as immersion detection electrode, wherein the first electrode (7) is disposed on an outer surface of the pipette body (4) or is embedded in the pipette body (4), and the second electrode (10) is disposed at least partially on an inner surface of the pipette body (4).
2. Pipette tip (1) according to claim 1, wherein the first electrode (7) and second electrode (10) are electrically conductive, and the second electrode at least partially galvanically contacts the liquid at the inner surface of the pipette body.
3. Pipette tip (1) according to claim 1, wherein the pipette body (4) comprises an electrically non-conductive material, in particular a non-conductive plastic, such as for example non-conductive polypropylene, which acts in particular at least as a part of a dielectric of the measuring capacitor.
4. Pipette tip (1) according to claim 1, wherein the second electrode (10) is arranged substantially outside the relevant measuring capacitor.
5. Pipette tip (1) according to claim 1, wherein the first electrode comprises at least two first partial electrodes (7T1, 7T2) and the second electrode comprises at least two second partial electrodes (10T1, 10T2), wherein the first partial electrodes (7T1, 7T2) are arranged opposite to each other and the second partial electrodes (10T1, 10T2) are arranged opposite to each other.
6. Pipette tip (1) according to claim 1, wherein the first electrode (7) is formed elongated, in particular strip-shaped, and extends axially along the pipette tip (1), and surrounds in particular in an angular range between 20 and 270, preferably in an angular range of 40.
7. Pipette tip (1) according to claim 1, wherein the first electrode (7) is formed elongated, in particular strip-shaped, extends axially along the pipette tip (7) and is of different width in sections, wherein the first electrode (7) in particular has a stepped width profile in the axial direction, and the width of the first electrode (7) is smallest at the first end, for example, and the width increases stepwise in the axial direction.
8. Pipette tip (1) according to claim 1, wherein the first electrode (7) does not extend to the opening (5) at the first end and in particular is spaced from this opening (5) in a range from 3 mm to 6 mm, preferably in a range from 4 mm to 6 mm, particularly preferably 5 mm.
9. Pipette tip (1) according to claim 1, wherein the second electrode (10) is formed substantially strip-shaped and extends axially along the tube, and in particular surrounds up to three quarters of the inner circumference of the pipette tip (1), further in particular surrounds half the inner circumference of the pipette tip (1).
10. Pipette tip (1) according to claim 1, wherein the second electrode (10) contacts the liquid in the pipette body (4) at substantially predetermined contact points (20) along the axial direction of the pipette body (4), wherein the contact points (20) are arranged with respect to one another in an angular range between 90 and 270, preferably 180.
11. Pipette tip (1) according to claim 1, wherein the second electrode (10) extends to the opening (5) at the first end or the opening is at least partially formed by the second electrode.
12. Pipette tip (1) according to claim 1, wherein the pipette tip (1) is a disposable pipette tip which is intended in particular for single use.
13. Pipetting device (3), comprising at least one pipette tube (2), a pressure-generating means and a measuring unit (11), wherein the pipette tube (2), at its one first end, is formed for the fluid-tight connection of a pipette tip (1) according to claim 1, and is connected at its other end to the pressure-generating means.
14. Pipetting device (3) according to claim 13, wherein, in a region for connecting the pipette tip (1), a first electrical contact (18) is provided for establishing an electrical connection to a first electrode (7) as volume measuring electrode, which is provided on an outer surface of the pipette body (4) or is embedded in the pipette body (4).
15. Pipetting device (3) according to claim 14, wherein the liquid is disposed in a sample container (19) which is electrically conductively or capacitively coupled to a conductive worktable surface (17) which is connected to ground.
16. Pipetting device (3) according to claim 15, wherein the first electrical contact (7) is connected to the measuring unit (11) via an electrical conductor and the second electrical contact (10) is connected to the measuring unit (11) via the liquid and a capacitive coupling of the liquid to the worktable surface (17).
17. Pipetting device (3) according to claim 15, wherein the measuring unit (11) is adapted to determine a volume of a sample liquid (6) contained in the pipette tip (1) depending on a measured capacitance of a measuring capacitor formed by the first electrode (7) and at least a part of a sample liquid (6) receivable in the pipette tip (1) as a counter electrode, and further adapted to detect an immersion of the pipette tip (1) into the sample liquid (6) by means of the second electrode (10).
18. Pipetting device (3) according to claim 13, further comprising a detection unit (12) for detecting whether the pipette tip (1) is connected to the first end of the pipette tube (2) and/or for detecting a characteristic feature of the pipette tip (1) based on a measurement of a further capacitance, wherein the further capacitance is dependent on one or more of the following characteristics: a material of which the pipette tip (1) is made; a geometry of the pipette tip (1), in particular a shape of the pipette tip (1), further in particular a diameter and/or a length of the pipette tip (1); a coating (8) of the pipette tip (1), in particular a material of which the coating (8) of the pipette tip (1) is made, further in particular an expansion or thickness of the coating (8) of the pipette tip (1); a material of which the first and/or second electrode (7, 10) is made; a geometry of the first and/or second electrode (7, 10).
19. Method for determining a volume of a sample liquid (6) in a pipette tip (1) according to claim 1, wherein the method comprises the steps of: measuring a capacitance of a measuring capacitor comprising a first electrode (7) which is provided on an outer surface of the pipette body (4) or is embedded in the pipette body (4), and a counter electrode formed by at least a portion of a sample liquid (6) contained in the pipette tip (1); determining the volume of the sample liquid (6) in the pipette tip (1) as a function of the measured capacitance.
20. Method according to claim 19, further comprising the step of: detecting an immersion of the pipette tip (1) in the sample liquid (6) by means of a second electrode (10) as immersion detection electrode, wherein the second electrode is at least partially provided on an inner surface of the pipette body.
21. Method for detecting a pipette tip (1) according to claim 1 on a pipetting device (3) having a pipette tube (2) formed at one first end thereof for releasably receiving a pipette tip (1) for aspirating or dispensing a liquid (6) and operatively connected at the other end thereof to a pressure-generating means, wherein the method comprises measuring a capacitance depending on at least more of the following characteristics: a material of which the pipette tip (1) is made; a geometry of the pipette tip (1), in particular a shape of the pipette tip (1), further in particular a diameter and/or a length of the pipette tip (1); a coating (8) of the pipette tip (1), in particular a material of which the coating (8) of the pipette tip (1) is made, further in particular an expansion or thickness of the coating (8) of the pipette tip (1); a material of which the first and/or second electrode (7, 10) is made; a geometry of the first and/or second electrode (7, 10).
22. Method for manufacturing a pipette tip (1) according to claim 1, comprising: forming the pipette tip (1) as an elongated tube, forming a pipette body (4), from a first material, forming a first electrode (7) of a second material at the pipette tip (1) on an outer surface of the pipette body (4) or embedded in the pipette body (4), forming a second electrode (10) of a third material on the pipette tip (1) at least partially on an inner surface of the pipette body (4).
23. Method according to claim 22, wherein the steps of forming are carried out by means of a multi-component injection molding process, in particular the same multi-component injection molding process, simultaneously with the forming of the pipette tip (1) and the first and/or second electrode (7, 10).
24. Usage of a pipette tip (1) according to claim 1 for determining a volume of a sample liquid (6) contained in the pipette tip (1) by means of the first electrode (7) as a volume measuring electrode on the pipette tip (1), wherein the first electrode (7) is provided on an outer surface of the pipette body (4) or is embedded in the pipette body (4).
25. Usage of the pipette tip (1) according to claim 1 for detecting an immersion of the pipette tip (1) in the sample liquid (6) by means of the second electrode (10) as an immersion detection electrode on the pipette tip (1), wherein the second electrode (10) at least partially contacts the inner surface of the pipette body (4).
26. A set of pipette tips (1) according to claim 1, comprising at least two types of pipette tips (1), wherein said at least two types differ in that, when using the method for recognizing a pipette tip (1), a capacitance of a first type of pipette tips (1) is in a first range and the capacitance of a second type of pipette tips (1) is in a second range, wherein the first and second ranges are non-overlapping, and wherein the at least two types of pipette tips (1) differ in particular by one of the following features: volumetric capacity; tip opening size/diameter for aspirating and dispensing a liquid; with or without filter in order to prevent contaminations of the pipette tube (2) when aspirating a sample liquid (6), and in particular a type of the filter; purity category; intended use; volume measurement function; sealing capacity of a connection of the pipette tips (1) to the pipette tube (2), and wherein in particular the external geometry of the at least two types of pipette tips (1) may be identical.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0066] Non-limiting embodiment examples of the present invention are explained in more detail below using figures, wherein:
[0067]
[0068]
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078]
[0079]
[0080]
[0081]
[0082]
[0083]
[0084]
[0085] In the figures, same reference numerals represent same elements.
DETAILED DESCRIPTION OF THE INVENTION
[0086]
[0087] The elongated tube, which forms a pipette body 4, has an essentially conical shape. The cross section of the tube can assume any shape, e.g. oval, rectangular, etc. The pipette body 4 could also be pyramid-shaped. According to the invention, the volume measuring electrode 7 is provided on an outer surface of the pipette body 4, and the immersion detection electrode 10 is provided on an inner surface of the pipette body 4. The immersion detection electrode 10 is shown dashed through the material of the pipette body 4. The immersion detection electrode 10 is provided inside the wall of the pipette body 4 and faces or rather is exposed to the inside of the pipette body 4. As a result, the sample liquid can contact the immersion detection electrode 10 along its entire length, as shown for example in
[0088] At its one first end, the pipette body 4 has an opening 5 for aspirating and/or dispensing liquids. The other end is designed for fluid-tight connection to a pipette tube 2, wherein the pipette tube 2, for example, has a cone as an adapter. The volume measuring electrode 7 acts as a first electrode of a measuring capacitor, which further comprises at least a part of a sample liquid, which can be loaded in the pipette tip 1 as a counter electrode. The pipette body 4 forms the dielectric of this measuring capacitor. The pipette body 4 may comprise an electrically non-conductive material which forms the dielectric, in particular a non-conductive plastic, such as e.g. a non-conductive polypropylene.
[0089] In the example shown, the volume measuring electrode 7 is arranged as a narrow strip onto the outer surface of the pipette body 4 and runs axially along the pipette tip 1 (with central axis a). The volume measuring electrode 7, for example, has a width in a range from 0.8 mm to 5 mm, preferably in the range from 0.8 mm to 2 mm, especially preferably 1 mm. At its upper end, the volume measuring electrode 7 has an electrical contact 18 by means of which the volume measuring electrode 7 can be galvanically connected to the pipette tube 2.
[0090] The immersion detection electrode 10 is also designed here as a narrow strip and runs axially along the pipette tip 1 (with central axis a). This immersion detection electrode 10 can be used to determine when the pipette tip 1 touches or rather penetrates the surface of the sample liquid and dips into it (->capacitive liquid level detection, cLLD). According to the invention, the immersion detection electrode 10 is at least partially provided on the inner surface of the pipette body 4 or is at least partially exposed to the inside of the pipette body 4. In the example shown, the immersion detection electrode 10 is partially embedded in the wall of the pipette body 4. Thus, the immersion detection electrode 10 is at least partially in contact with the aspirated sample liquid, enabling a more accurate determination of the volume of the aspirated sample liquid, especially if the sample liquid has a low conductivity.
[0091] Details are explained in more detail below in connection with
[0092] In
[0093]
[0094] In another example, the first electrode may contain at least two first partial electrodes 7T1,7T2 and the second electrode may contain at least two second partial electrodes 10T1,10T2, wherein the first partial electrodes 7T1,7T2 are arranged opposite to each other and the second partial electrodes 10T1,10T2 are arranged opposite to each other as shown in
[0095]
[0096] In
[0097]
[0098]
[0099]
[0100] In both representations it is assumed that the pipette tips 1, 1 have loaded a large volume of the sample liquid 6, 6, wherein the sample liquid 6, 6 is assumed to be a liquid with a low conductivity. It is also assumed in both cases that the volume measuring electrode 7, 7 is provided outside the sample liquid 6, 6 in the sample container or rather is not in contact with it.
[0101] It is known in the prior art that an immersion detection electrode 10 is attached to the outer surface of a pipette body 4 of the pipette tip 1, as shown in
[0102] According to the invention, the immersion detection electrode 10 is at least partially attached to the inner surface of the pipette body 4, as shown in
[0103] Referring again to the prior art example as shown in
[0104] If, however, the immersion detection electrode 10 is at least partially attached to the inner surface of the pipette body 4, as proposed by the invention and schematically shown in
[0105]
[0106] For example, the pipette tip holder 15 can also be part of the liquid processing system 3, wherein the robotic arm 14 moves the pipette tube 2 with connected pipette tip 1 towards the pipette tip holder 15, in order to determine the capacitance and thus the pipette tip type or size and lowers it into the receptacle 16 for capacitance measurement. Thus, the pipette tip holder 15 is a separate/dedicated measuring station for pipette tip detection within the liquid processing system 3.
[0107] Finally,
[0108]
[0109] In the example shown, the front tip of the pipette body 4 in the area of the opening 5 thereof is completely surrounded by the material of the second electrode 10. In an example, the opening in the interior can also be surrounded, sectionwise, by the material of the second electrode 10. Therefore, improved immersion detection can be achieved. The first electrode 7 is arranged in the opening part (sector) of the partially surrounding second electrode 10. Advantageously, the second electrode 10 is arranged in the middle therein. As shown in
LIST OF REFERENCE NUMERALS
[0110] 1 Pipette tip [0111] 2 Pipette tube [0112] 3 Pipetting device [0113] 4 Pipette body [0114] 5 Opening at a first end of the pipette body [0115] 6 (Sample) liquid [0116] 7 First electrode, volume measuring electrode [0117] 7T1,7T2 First partial electrodes [0118] 8 Electrically insulating layer/coating (over the first electrode and pipette body) [0119] 10 Second electrode, immersion detection electrode [0120] 10T1,10T2 Second partial electrodes [0121] 11 (Capacitance) measuring unit [0122] 12 Detection unit [0123] 13 Control unit for controlling the movement of the drive of the pipetting robot [0124] 14 Pipetting robot incl. drive [0125] 15 Pipette tip holder/support [0126] 16 Receptacle for a pipette tip [0127] 17 Worktable/work surface [0128] 18 Electrical contact [0129] 19 (Sample) container, e.g. a microplate with wells [0130] 20 Contact point [0131] 22 Passage opening [0132] a Pipette tip axis [0133] b.sub.a Electrode width a [0134] b.sub.b Electrode width b [0135] b.sub.c Electrode width c [0136] First horizontal movement axis of the pipetting robot (e.g. forwards and backwards) [0137] y Second horizontal movement axis of the pipetting robot (e.g. to the left and right) [0138] z Vertical movement axis of the pipetting robot (downwards and upwards)