This application is based on and claims the benefit of Taiwan Application No. 101137883 filed Oct. 15, 2012 the entire disclosure of which is incorporated by reference herein.
1. Field of the Invention
The present invention relates to a biological test strip, and more in particular, to a test strip for measuring biological blood.
2. Related Art of the Invention
A blood glucose test is one of blood test items. One of the current technologies is proposed including steps of: blood is instilled on a test strip, the blood is sensed by a sensing reagent, a signal is transmitted to a blood glucose meter by a metallic circuit of the test strip, and blood glucose concentration of the blood is measured by the blood glucose meter.
A conventional test strip such as electrode type test strip for a biosensor includes a base body with a printed surface, an intermediate layer and a cover. The printed surface has a reactive membrane, two electrode membranes, a conductive electrode membrane and a reference electrode membrane. The conductive electrode membrane is disposed between two electrode membranes. The two electrode membranes connect with the reactive membrane at one end of each electrode membrane. The conductive electrode membrane connects to one of two electrode membranes at adjacent the reactive membrane. The reference electrode membrane is disposed and opposite to one of two electrode membranes at two sides of the printed surface. The reference electrode membrane extends to contact the reactive membrane at one end. The intermediate layer has an opening corresponding to the reactive membrane, and the cover has a test hole corresponding to the opening. The cover and the intermediate layer are disposed on the base body in sequence, and the intermediate layer is interposed between the base body and the cover and adhesive to all together.
The above-mentioned conductive layer (electrode) is fabricated by printing a conductive carbon powder and silver paste on the base body in a printing process. However, the conductive layer fabricated in a printing manner has poor test accuracy due to poor stability of resistance.
It is an object of the invention to provide a test strip in an adhering manner to solve the above-described drawback of the conventional test strip. The circuit layer is provided in adhering manner to enhance the stability of resistance and the test accuracy.
In order to achieve the above-described object, the invention provides a test strip for measuring biological blood. The test strip comprises: an insulating sheet; a circuit layer disposed on the insulating sheet, the circuit layer connecting to an electrode section; a sensing reagent layer disposed on the electrode section; an intermediate layer provided to cover the insulating sheet and the circuit layer, the intermediate layer having an opening to expose the sensing reagent layer and the electrode section; and a cover provided to cover the intermediate layer and the insulating sheet and expose part of the circuit layer, the cover having two holes corresponding to the opening.
The insulating sheet may be paper, timber, Acrylonitrile-Butadiene-Styrene (ABS), polycarbonate (PC), a mixture of ABS and PC, polyethylene terephthalate (PET), polyimide (PI), thermoplastic elastomer or polylactic acid plastic.
The circuit layer at least includes a metallic circuit layer including an electrical connector, a metallic circuit connecting to the electrical connector and an electrode section connecting to an end of the metallic circuit. The metallic circuit layer may be a conductive metallic material selected from the group consisting of palladium, nickel, platinum, tungsten, gold, titanium, copper, zinc, iridium, vanadium and zirconium.
The intermediate layer is provided to cover the insulating sheet and the circuit layer and expose the electrical connector. The intermediate layer is shorter than the insulating sheet. The intermediate layer is of insulating material.
The cover is provided to only expose the electrical connector. The cover is shorter than the insulating sheet. The cover is of insulating material.
The metallic circuit layer further comprises a metallic film plated thereon. The metallic film may be a conductive metallic material selected from the group consisting of palladium, nickel, platinum, tungsten, gold, titanium, copper, zinc, iridium, vanadium and zirconium.
The resistance of the circuit layer has a range from 0.01Ω to 2k Ω. The thickness of the circuit layer has a range from 0.02 um to 30 um.
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings. The accompanying drawings are not meant to be construed in a limiting sense, which are only for reference and explanation.
Please refer to
In step 102, an insulating material 2 is prepared, and the metallic membrane 1 may be adhered on the insulating material 2. In the embodiment, the insulating material 2 may be paper, timber, Acrylonitrile-Butadiene-Styrene (ABS), polycarbonate (PC), a mixture of ABS and PC, polyethylene terephthalate (PET), polyimide (PI), thermoplastic elastomer or polylactic acid plastic.
In step 104, a photolithography process is performed. A mask resist layer 10 is formed on the metallic membrane 1, and exposed by a stepper (not shown in drawings) to form an exposed film 101 having a specific circuit (as shown in
In step 106, an etching process is performed. The exposed portion of the metallic membrane 1 is etched by light or chemical reagent, as shown in
In step 108, a film plating process is performed. a semi-product completed by step 106 is plated at least one metallic film 1b on the metallic circuit layer 1a in an electroplating tank to form a protective layer, as shown in
In step 110, a sensing reagent is applied on the test strip. The amount and species of the sensing reagent are selected as required. The sensing reagent is applied on the electrode section 13a covered with the metallic film 1b to form a sensing reagent layer 3 by spray marking, as shown in
In step 112, an intermediate layer 4 is adhered to the insulating material 2. After adhering, the intermediate layer 4 only covers the metallic circuit 12a and the electrode section 13a covered with the metallic film 1b of the circuit layer 20, and the electrical connector 11a is exposed. Also, the intermediate layer 4 has an opening 41 to expose the sensing reagent layer 3 and the electrode section 13a, as shown in
In step 114, a cover 5 is covered on the insulating material 2 and the intermediate layer 4. After the cover 5 is covered, the test strip only exposes the electrical connector 11a covered with the metallic film 1b. The cover 5 has two holes 51 corresponding to the opening 41. The two holes 51 are provided for user to instill biological fluid, as shown in
In step 116, the insulating material 2 is cut to form a plurality of insulating sheets 2a. Each of the insulating sheets 2a has the circuit layer 20, the sensing reagent layer 3, the intermediate layer 4 and the cover 5, as shown in
The test strip is determined after the fabrication has been completed. The resistance of the circuit layer 20 has a range from 0.01Ω to 2k Ω. The thickness of the circuit layer 20 has a range from 0.02 um to 30 um.
Also, as blood flows into inside of the test strip through the two holes 51, and the sensing reagent layer 3 sensing the blood, the resistance can keep stable during signal transmission because the circuit layer 20 is fabricated by adhering manner. Therefore, it can make glucose reaction much stable so that glucose meter can read accurate readings.
Please refer to
The insulating sheet 2a may be paper, timber, Acrylonitrile-Butadiene-Styrene (ABS), polycarbonate (PC), a mixture of ABS and PC, polyethylene terephthalate (PET), polyimide (PI), thermoplastic elastomer or polylactic acid plastic.
The circuit layer 20 may be disposed on the insulating sheet 2a. The circuit layer 20 may include a metallic circuit layer 1a and a metallic film 1b disposed on the metallic circuit layer 1a. The metallic circuit layer 1a includes an electrical connector 11a, a metallic circuit 12a connecting to the electrical connector 11a and an electrode section 13a connecting to an end of the metallic circuit 12a. In the embodiment, the metallic circuit layer 1a and the metallic film 1b may be conductive metallic material selected from the group consisting of palladium, nickel, platinum, tungsten, gold, titanium, copper, zinc, iridium, vanadium and zirconium.
The sensing reagent layer 3 is applied on the electrode section 13a covered with the metallic film 1b. In the embodiment, the amount and species of the sensing reagent are selected as required.
The intermediate layer 4 covers the insulating sheet 2a and the metallic circuit 12a covered with the metallic film 1b of the circuit layer 20. Also, the intermediate layer 4 has an opening 41 to expose the sensing reagent layer 3 and the electrode section 13a covered with the metallic film 1b. In the embodiment, the intermediate layer 4 is shorter than the insulating sheet 2a. The intermediate layer 4 is of insulating material.
The cover 5 is covered on the insulating sheet 2a and the intermediate layer 4. After the cover 5 is covered, the test strip only exposes the electrical connector 11a covered with the metallic film 1b. The cover 5 has two holes 51 corresponding to the opening 41. The two holes 51 are provided for user to instill biological fluid. In the embodiment, the cover 5 is shorter than the insulating material 2. The cover 5 is of insulating material.
The test strip is determined after the fabrication has been completed. The resistance of the circuit layer 20 has a range from 0.01Ω to 2k Ω. The thickness of the circuit layer 20 has a range from 0.02 um to 30 um.
Also, as blood flows into inside of the test strip through the two holes 51, and the sensing reagent layer 3 senses the blood, the resistance can keep stable during signal transmission because the circuit layer 20 is fabricated by adhering manner. Therefore, it can make glucose reaction much stable so that glucose meter can read accurate readings.
Moreover, in case that the metallic circuit layer 1a have features of anti-oxidation and sensing, the step 108 of film plating may be omitted in the fabrication of the test strip, and thus the fabrication of the test strip is simple and save working hours.
While the invention is described in by way of examples and in terms of preferred embodiments, it is to be understood that the invention is not limited thereto. On the contrary, the aim is to cover all modifications, alternatives and equivalents falling within the spirit and scope of the invention as defined by the appended claims.
| Number | Date | Country | Kind |
|---|---|---|---|
| 101137883 | Oct 2012 | TW | national |