FIBRE BASED SENSOR INCORPORATING ELECTROCHEMICAL SENSING
20220151515 ยท 2022-05-19
Inventors
- Guang-Zhong Yang (London, GB)
- Salzitsa Anastasova-Ivanova (London, GB)
- Burak Temelkuran (London, GB)
- Mohamed E.M.K. Abdelaziz (London, GB)
- Fabien Sorin (London, CH)
Cpc classification
G01N27/26
PHYSICS
A61B5/14532
HUMAN NECESSITIES
A61B5/14546
HUMAN NECESSITIES
A61B5/14503
HUMAN NECESSITIES
G01N27/3275
PHYSICS
International classification
A61B5/1455
HUMAN NECESSITIES
G01N27/327
PHYSICS
Abstract
A sensor comprising an elongate member comprising an electrochemical sensor comprising an electrochemical filament extending along the length of the elongate member, wherein the elongate member comprises a fibre formed from a drawable material.
Claims
1. A sensor comprising an elongate member comprising an electrochemical sensor comprising an electrochemical filament extending along the length of the elongate member, wherein the elongate member comprises a fibre formed from a drawable material.
2. A sensor according to claim 1 further comprising an optical sensor comprising an optical filament extending along the length of the elongate member.
3. A sensor according to claim 1 wherein the drawable material comprises drawable amorphous thermoplastics material such as Polystyrene (PS), Poly methyl methacrylate (PMMA), Acrylonitrile butadiene styrene (ABS), Polycarbonate (PC), Cyclic olefin copolymer (COC), Polycarbonate Alloys (PC/ABS, PC/PMMA), Polysulfone (PSU), Polyphenylsulfone (PPSU), Polyetherimide (PEI).
4. A sensor according to claim 1 wherein the electrochemical sensor is formed from an electrically conducting filament.
5. A sensor according to claim 2 wherein the optical sensor is formed from an optically transparent filament.
6. A sensor according to claim 1 wherein the electrochemical filament comprises at least one exposed area.
7. A sensor according to claim 2 wherein the optical filament comprises at least one exposed area.
8. A sensor according to claim 1 wherein the electrochemical sensor comprises a working electrode.
9. A sensor according to claim 1 wherein the elongate member further comprises a reference sensor, which reference sensor comprises a reference electrode.
10. A sensor according to claim 1 wherein the elongate member further comprises an auxiliary sensor, which auxiliary sensor comprises an auxiliary electrode.
11. A sensor according to claim 1 comprising a plurality of electrochemical and optionally optical filaments extending through the elongate member, the elongate member having one or more exposed areas at a distal end, and/or on a side of the elongate member, and/or inside the elongate member, which one or more exposed areas is functionalized to allow electrochemical and optionally optical detection of target molecules.
12. A method of forming a sensor comprising a electrochemical sensor wherein the sensors comprises a filament extending along the length of the elongate member the method comprising the steps of: a. selecting a material to form a preform; b. incorporating electrochemical sensor material into the preform; and c. drawing the preform to form the elongate member and the electrochemical sensor.
13. A method according to claim 12 wherein the material selected to form the preform comprises a drawable amorphous thermoplastics material.
14. A method according to claim 12 wherein the material selected is chosen from Polystyrene (PS), Poly methyl methacrylate (PMMA), Acrylonitrile butadiene styrene (ABS), Polycarbonate (PC), Cyclic olefin copolymer (COC), Polycarbonate Alloys (PC/ABS, PC/PMMA), Polysulfone (PSU), Polyphenylsulfone (PPSU), Polyetherimide (PEI).
15. A method according to claim 12 further comprising the step of incorporating an optical sensor material into the preform.
16. A method according to claim 12 comprising the further step of exposing a surface of the or each sensor.
17. A method according to claim 12, wherein the preform has a diameter of between 5 and 100 mm.
Description
[0054] The invention will now be further described by way of example only with reference to the accompanying drawings in which:
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[0066] Referring to
[0067] The sensor 2 comprises a plurality of filaments 4, and in this embodiment the sensor comprises four electrochemical filaments 4, and a reference filament 6. The electrochemical filaments 4 each comprise ions working electrodes and may be formed from a platinum-iridium alloy. The reference filament 6 is an ions reference electrode and is formed from stainless steel.
[0068] Turning now to
[0069] Sensor 20 is an amperometric sensor and is therefore adapted to sense and measure metabolites such as lactate, glucose, pyruvate. The sensor 20 comprises three electrochemical filaments 8 which each comprise an enzyme working electrode formed from platinum. The sensor further comprises a filament 10 which is an enzyme counter electrode or auxiliary electrode which is also formed from platinum. Finally, the sensor 20 comprises a filament 12 which is an electrochemical reference electrode formed from stainless steel.
[0070] Turning now to
[0071] A sensor 40 according to a fourth embodiment of the invention is illustrated schematically in
[0072] Referring now to
[0073] The enzyme working electrode 180 and the enzyme counter electrode 190 may also be used to sensor biomarkers and/or bacteria.
[0074] Turning now to
[0075] As shown in
[0076] The ends of each of the filaments 8, 10, 12 may be soldered to appropriate parts of the PCB board 60 in order to achieve appropriate electrical connections.
[0077] Turning now to
[0078] As shown in the figures, a sensor according to embodiments of the invention comprises a sensor 200 according to embodiments of the invention, which sensor 200 comprises a fibre formed from a drawable material as described hereinabove with reference to the previous embodiments. The sensor 200 comprises filaments 220 which function as sensors as will be described below. The sensor 200 is inserted into a solution 70 in a container 72. The solution 70 is formed from predetermined compounds having predetermined concentrations so that the sensor may be appropriately calibrated.
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[0080] For an ions selective sensor, the sensors are initially cleaned and dried before a material such as platinum 230 is applied using for example nanoparticle deposition. Such a process results in an increased surface area of the sensors which may be linked to higher sensitivity of the sensors.
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[0082] A further layer may be deposited, which layer contains a sensing membrane. The ions sensing membrane contains ionic sites such as nitrophenyl octyl ether, ionophores specific to the ion of interest such as pH, sodium, potassium, calcium, lead, iron, magnesium ionophores; placticizers such as polyvinyl chloride; solvent such as tetrahydrofuran.
[0083] Such a mixture (or cocktail), may be deposited on the sensors and left to dry overnight.
[0084] Following this step, the membrane is conditioned or charged. During such a process, a low and high concentration of the analyte to be tested are exposed to the membranes so that the sensor may be sensitive within a required range of interest.
[0085] For a sensor adapted to sense metabolites, the membrane may be prepared from an enzyme which is sensitive to an analyte of interest, which enzyme may be cross linked to bovine serum albumin using glutaraldehyde.
[0086] Several layers of biocompatible membrane layers such as polyurethane may be deposited after these processes in order to protect the sensors and enable the sensors to have an appropriate response during the lifetime of the probe 200.
[0087] Turning now to
[0088] In
[0089] Turning now to
[0090] Turning now to