WO2018198456A1 - 生体センサ用シート - Google Patents
生体センサ用シート Download PDFInfo
- Publication number
- WO2018198456A1 WO2018198456A1 PCT/JP2018/002519 JP2018002519W WO2018198456A1 WO 2018198456 A1 WO2018198456 A1 WO 2018198456A1 JP 2018002519 W JP2018002519 W JP 2018002519W WO 2018198456 A1 WO2018198456 A1 WO 2018198456A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- probe
- crosspieces
- pressure
- sensitive adhesive
- adhesive layer
- Prior art date
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Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/24—Detecting, measuring or recording bioelectric or biomagnetic signals of the body or parts thereof
- A61B5/25—Bioelectric electrodes therefor
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/68—Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
- A61B5/6801—Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
- A61B5/683—Means for maintaining contact with the body
- A61B5/6832—Means for maintaining contact with the body using adhesives
- A61B5/6833—Adhesive patches
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/01—Measuring temperature of body parts ; Diagnostic temperature sensing, e.g. for malignant or inflamed tissue
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/02—Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
- A61B5/021—Measuring pressure in heart or blood vessels
- A61B5/02141—Details of apparatus construction, e.g. pump units or housings therefor, cuff pressurising systems, arrangements of fluid conduits or circuits
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/02—Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
- A61B5/024—Detecting, measuring or recording pulse rate or heart rate
- A61B5/0245—Detecting, measuring or recording pulse rate or heart rate by using sensing means generating electric signals, i.e. ECG signals
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/24—Detecting, measuring or recording bioelectric or biomagnetic signals of the body or parts thereof
- A61B5/25—Bioelectric electrodes therefor
- A61B5/279—Bioelectric electrodes therefor specially adapted for particular uses
- A61B5/291—Bioelectric electrodes therefor specially adapted for particular uses for electroencephalography [EEG]
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/24—Detecting, measuring or recording bioelectric or biomagnetic signals of the body or parts thereof
- A61B5/25—Bioelectric electrodes therefor
- A61B5/279—Bioelectric electrodes therefor specially adapted for particular uses
- A61B5/296—Bioelectric electrodes therefor specially adapted for particular uses for electromyography [EMG]
Definitions
- the present invention relates to a biosensor sheet.
- a biocompatible polymer substrate includes a data acquisition module, a viscous polymer layer, a disk-shaped electrode disposed on the polymer layer, and a data acquisition module and wiring connecting the electrodes.
- a data acquisition module for example, refer to Patent Document 1.
- the polymer layer is attached to the human skin, the electrode detects a biological signal, for example, a myocardial voltage signal, and the data acquisition module receives the myocardial voltage signal. And record.
- a biological signal for example, a myocardial voltage signal
- the data acquisition module receives the myocardial voltage signal. And record.
- the biocompatible polymer substrate described in Patent Document 1 since the electrode 51 has a disk shape, the polymer layer is attached to the human skin 33, and the electrode 51 is connected to the skin 33. When contacted, the electrode 51 may not be able to follow the fine irregularities of the skin 33. In this case, a gap 34 is generated between the electrode 51 and the surface of the skin 33 due to the fine unevenness. Therefore, the biocompatible polymer substrate described in Patent Document 1 has a limit in improving the sensing accuracy of the biological signal.
- the present invention provides a biosensor sheet that allows a probe to follow fine irregularities on the surface of a living body.
- the present invention [1] includes a pressure-sensitive adhesive layer for attaching to the surface of a living body, and a probe disposed on the pressure-sensitive adhesive layer, and the probe has an exposed region where the pressure-sensitive adhesive layer is exposed.
- the biosensor sheet is included.
- the probe since the probe has an exposed region where the pressure-sensitive adhesive layer is exposed, when the pressure-sensitive adhesive layer is applied to the living body surface and one surface of the probe is brought into contact with the living body surface, the exposed region allows the probe to be bent along the surface of the living body, and allows the probe to follow fine irregularities on the surface of the living body. Therefore, in the biosensor provided with the biosensor sheet, the sensing accuracy of the biosignal can be improved.
- the present invention [2] includes the biosensor sheet according to the above [1], wherein the probe has a thin layer shape.
- the probe since the probe has a thin layer shape, it is possible to reduce the user's wearing feeling when the biosensor sheet is attached to the surface of the living body.
- the present invention [3] includes the biosensor sheet according to the above [1] or [2], wherein the exposed region includes a plurality of holes arranged at intervals.
- the exposed region includes a plurality of holes arranged at intervals, the rigidity of the probe can be ensured while imparting flexibility to the probe.
- the present invention [4] includes the biosensor sheet according to the above [3], wherein the probe includes a crosspiece that partitions the plurality of holes.
- the probe can surely follow the fine irregularities on the surface of the living body.
- the present invention [5] includes the biosensor sheet according to the above [4], wherein the crosspiece has a lattice shape.
- the plurality of holes are partitioned by the crosspieces having a lattice shape, the plurality of holes can be uniformly arranged in a balanced manner in the entire probe. Therefore, the whole probe can be made to follow the fine unevenness
- the present invention [6] includes a plurality of first crosspieces extending in a direction orthogonal to the thickness direction of the pressure-sensitive adhesive layer, and the plurality of first crosspieces so that the crosspieces are parallel and spaced apart from each other.
- the plurality of holes are partitioned by the plurality of first crosspieces spaced parallel to each other and the plurality of second crosspieces bridging the adjacent first crosspieces.
- the rigidity can be maintained by the second crosspiece while imparting flexibility to the probe.
- the first crosspiece is bridged by the second crosspiece, so that conduction can be secured, and the biosensor including the biosensor sheet has a sensor function.
- the plurality of first crosspieces extend in a first direction orthogonal to the thickness direction, the plurality of second crosspieces are spaced from each other, and the plurality of first crosspieces Extending in a second direction intersecting both the thickness direction and the first direction so as to intersect with each other, and each dimension of the plurality of first crosspieces in the second direction: each of the plurality of holes
- the dimension in the second direction is 5:95 to 50:50
- the dimension in the first direction of each of the plurality of second crosspieces the dimension in the first direction of each of the plurality of holes is The biosensor sheet according to the above [6], which is 5:95 to 50:50.
- the dimension in the second direction of each first crosspiece the dimension in the second direction of each hole is within the above range
- the dimension in the first direction of each second crosspiece each hole. Since the dimension in the first direction is within the above range, the ratio between the area of the crosspiece and the area of the hole can be ensured in a well-balanced manner, and the probe can be more reliably followed by the fine unevenness on the surface of the living body. Can do.
- each of the second direction dimensions of the plurality of first crosspieces and each of the plurality of second crosspieces in the first direction is 10 ⁇ m or more and 500 ⁇ m or less.
- the dimension in the first direction of each of the plurality of holes and the dimension in the second direction of each of the plurality of holes are 50 ⁇ m or more and 1000 ⁇ m or less, according to the above [7].
- a biosensor sheet is included.
- the dimension in the second direction of each first crosspiece and the dimension in the first direction of each second crosspiece are within the above range, and the dimension in each of the first direction of each hole and each Since each of the dimension of the hole in the second direction is within the above range, the ratio between the area of the crosspiece and the area of the hole can be ensured with a better balance.
- the biosensor sheet of the present invention can cause the probe to follow fine irregularities on the surface of the living body.
- FIG. 1 shows the top view of the laminated body for biosensors which is one Embodiment of the sheet
- 2A is a cross-sectional view taken along line AA of the biosensor laminate shown in FIG.
- FIG. 2B is an explanatory diagram of the prior art, and shows a mode in which the probe has a plate shape.
- 3A to 3D are manufacturing process diagrams of the biosensor laminate shown in FIG. 1.
- FIG. 3A is a process for preparing a base material and a wiring layer
- FIG. 3B is a process for attaching a pressure-sensitive adhesive layer and a base material.
- the matching step, FIG. 3C shows the step of forming the through hole and fitting the probe member, and FIG.
- FIG. 4 is a perspective view of the probe-containing sheet as viewed from below, and shows a state in which the second release sheet is partially cut away.
- FIG. 5 is a perspective view illustrating a manufacturing process of the probe member.
- 6A to 6C are plan views of modified examples of the probe, in which FIG. 6A is a mode in which a plurality of holes have a circular shape, FIG. 6B is a mode in which a crosspiece has a honeycomb shape, and FIG. 6C is a crosspiece. Shows an embodiment having a zigzag shape.
- 7A and 7B are plan views of modified examples of the probe, in which FIG. 7A is a mode in which the probe has a star-shaped frame portion, and FIG.
- FIG. 7B is a mode in which the probe has a ring-shaped frame portion.
- Indicates. 8A to 8C are plan views of modified examples of the probe.
- FIG. 8A is a lattice in which the crosspieces are not parallel to each other and the plurality of second crosspieces are not parallel to each other.
- a mode having a shape FIG. 8B is a mode in which the crosspiece has a lattice shape in which the plurality of first crosspieces and the plurality of second crosspieces intersect at an angle of less than 90 ° C.
- FIG. A mode in which a plurality of first crosspieces and a plurality of second crosspieces have a lattice shape which is a wave shape is shown.
- FIG. 9A and 9B are plan views of a modification example of the probe.
- FIG. 9A is an embodiment in which the exposed region is formed such that a plurality of holes communicate with each other, and FIG. An embodiment having a letter-shaped groove is shown.
- FIG. 10 is a cross-sectional view of a modified example (embodiment in which the probe is disposed on the adhesive lower surface) of one embodiment of the biosensor laminate.
- FIG. 11 is a graph showing the results of resistance measurement in each example and comparative example.
- the horizontal direction on the paper surface is the longitudinal direction (first direction) of the biosensor laminate 1.
- the right side of the drawing is one side in the longitudinal direction (one side in the first direction), and the left side of the drawing is the other side in the longitudinal direction (the other side in the first direction).
- the vertical direction of the paper is the short direction of the biosensor laminate 1 (the direction perpendicular to the longitudinal direction, the width direction, and the second direction orthogonal to (intersects) the first direction).
- the upper side of the drawing is one side in the short direction (one side in the width direction, one side in the second direction), and the lower side of the drawing is the other side in the short direction (the other side in the width direction, the other side in the second direction).
- the paper thickness direction is the vertical direction of the biosensor laminate 1 (thickness direction, third direction orthogonal to the first direction and the second direction).
- the front side of the paper is the upper side (one side in the thickness direction, the one side in the third direction), and the back side of the paper is the lower side (the other side in the thickness direction, the other side in the third direction).
- the direction conforms to the direction arrow described in each drawing.
- the biosensor laminate 1 has a substantially flat plate shape extending in the longitudinal direction.
- the biosensor laminate 1 includes a pressure-sensitive adhesive layer 2 for attaching to the surface of a living body, a substrate 3 disposed on the upper surface of the pressure-sensitive adhesive layer 2, a wiring layer 4 disposed on the substrate 3, A probe 5 disposed on the pressure-sensitive adhesive layer 2 and a connection portion 6 that electrically connects the wiring layer 4 and the probe 5 are provided.
- the pressure-sensitive adhesive layer 2 and the base material 3 that overlap the probe 5 in the vertical direction are omitted.
- the pressure-sensitive adhesive layer 2 forms the lower surface of the biosensor laminate 1.
- the pressure-sensitive adhesive layer 2 is a layer that imparts pressure-sensitive adhesiveness to the lower surface of the biosensor laminate 1 in order to attach the lower surface of the biosensor laminate 1 to the living body surface (skin 33 or the like). .
- the pressure-sensitive adhesive layer 2 forms the outer shape of the biosensor laminate 1.
- the pressure sensitive adhesive layer 2 has, for example, a flat plate shape extending in the longitudinal direction.
- the pressure-sensitive adhesive layer 2 may have a strip shape extending in the longitudinal direction, and may have a shape in which the center portion in the longitudinal direction swells toward both outer sides in the lateral direction.
- both ends in the short direction of the central portion in the longitudinal direction are located on both outer sides in the short direction with respect to both ends in the short direction other than the central portion in the longitudinal direction.
- the pressure-sensitive adhesive layer 2 has an adhesive upper surface 8 and an adhesive lower surface 9.
- the bonding upper surface 8 is a flat surface.
- the bonding lower surface 9 is disposed to face the lower side of the bonding upper surface 8 with a space therebetween.
- the pressure-sensitive adhesive layer 2 has adhesive openings 11 at both ends in the longitudinal direction.
- Each of the two bonding openings 11 has a substantially ring shape in plan view.
- the adhesive opening 11 penetrates the pressure-sensitive adhesive layer 2 in the thickness direction.
- the bonding opening 11 is filled with the connecting portion 6.
- the adhesive lower surface 9 inside the adhesive opening 11 has an adhesive groove 10 corresponding to the probe 5 (described later).
- the adhesive groove 10 is opened downward.
- the material of the pressure-sensitive adhesive layer 2 is not particularly limited as long as it is a material having pressure-sensitive adhesiveness, and preferably includes a material having biocompatibility.
- a material having pressure-sensitive adhesiveness examples include an acrylic pressure sensitive adhesive, a silicone pressure sensitive adhesive, and the like, and preferably an acrylic pressure sensitive adhesive.
- an acrylic pressure-sensitive adhesive for example, an adhesive mainly composed of an acrylic polymer described in JP-A-2003-325441 can be mentioned.
- the thickness of the pressure-sensitive adhesive layer 2 is, for example, 10 ⁇ m or more, preferably 20 ⁇ m or more, and, for example, less than 100 ⁇ m, preferably as the distance between the adhesive upper surface 8 and the adhesive lower surface 9 in the region other than the adhesive groove 10. 50 ⁇ m or less.
- the base material 3 forms the upper surface of the biosensor laminate 1.
- the base material 3 forms the outer shape of the biosensor laminate 1 together with the pressure-sensitive adhesive layer 2.
- the planar view shape of the substrate 3 is the same as the planar view shape of the pressure-sensitive adhesive layer 2.
- the base material 3 is disposed on the entire upper surface of the pressure-sensitive adhesive layer 2 (except for the region where the connection portion 6 is provided).
- the substrate 3 is a support layer that supports the pressure-sensitive adhesive layer 2.
- the base material 3 has a flat plate shape extending in the longitudinal direction.
- the substrate 3 has a substrate lower surface 12 and a substrate upper surface 13.
- the base material lower surface 12 is a flat surface.
- the base material lower surface 12 is in contact (pressure-sensitive adhesion) with the adhesive upper surface 8 of the pressure-sensitive adhesive layer 2.
- the base material upper surface 13 is disposed to face the upper surface of the base material lower surface 12 with a gap.
- the base material upper surface 13 has a base material groove 14 corresponding to the wiring layer 4.
- the substrate groove 14 has the same pattern shape as the wiring layer 4 in plan view.
- the base material groove 14 is opened upward.
- the base material 3 has a base material opening 15 corresponding to the bonding opening 11.
- the base material opening 15 communicates with the bonding opening 11 in the thickness direction.
- the base material opening 15 has a substantially ring shape in plan view having the same shape and the same dimensions as the bonding opening 11.
- the material of the base material 3 has elasticity, for example. Moreover, the material of the base material 3 has an insulating layer, for example.
- An example of such a material is a resin.
- the resin include thermoplastic resins such as polyurethane resin, silicone resin, acrylic resin, polystyrene resin, vinyl chloride resin, and polyester resin.
- a polyurethane resin is preferably used.
- the thickness of the substrate 3 is, for example, 1 ⁇ m or more, preferably 5 ⁇ m or more, for example, 300 ⁇ m or less, preferably as the distance between the substrate lower surface 12 and the substrate upper surface 13 in the region other than the substrate groove 14. Is 10 ⁇ m or less.
- the wiring layer 4 is embedded in the base material groove 14. Specifically, the wiring layer 4 is embedded in the upper part of the base material 3 so as to be exposed from the base material upper surface 13 of the base material 3.
- the wiring layer 4 has an upper surface and a lower surface that are spaced apart from each other, and a side surface that connects their peripheral edges. All of the lower surface and all of the side surfaces are in contact with the substrate 3.
- the upper surface is exposed from the substrate upper surface 13 (excluding the substrate groove 14).
- the upper surface of the wiring layer 4 forms the upper surface of the biosensor laminate 1 together with the substrate upper surface 13.
- the wiring layer 4 has a wiring pattern that connects the connection portion 6 to an electronic component 31 (described later) and a battery 32 (described later).
- the wiring layer 4 includes a first wiring pattern 41 and a second wiring pattern 42 independently.
- the first wiring pattern 41 is arranged on one side in the longitudinal direction of the substrate 3.
- the first wiring pattern 41 includes a first wiring 16A, and a first terminal 17A and a second terminal 17B continuous thereto.
- the first wiring pattern 41 has a substantially T shape in plan view. Specifically, the first wiring 16 ⁇ / b> A of the first wiring pattern 41 extends from the longitudinal direction one end portion of the base material 3 (the connecting portion 6 located in the longitudinal direction) to the other side in the longitudinal direction, and at the longitudinal center portion of the base material 3. It branches and extends toward the outside in the lateral direction. Note that the first wiring 16 ⁇ / b> A can also have a wave shape in order to improve the stretchability of the biosensor laminate 1.
- Each of the first terminal 17A and the second terminal 17B is disposed at each of both ends in the lateral direction at the center in the longitudinal direction of the substrate 3.
- Each of the first terminal 17A and the second terminal 17B has a substantially rectangular shape (land shape) in plan view.
- Each of the first terminal 17A and the second terminal 17B is continuous with each of both end portions of the first wiring 16A extending outward in the lateral direction at the center portion in the longitudinal direction of the substrate 3.
- the second wiring pattern 42 is provided on the other side in the longitudinal direction of the first wiring pattern 41 with an interval.
- the second wiring pattern 42 includes a second wiring 16B, and a third terminal 17C and a fourth terminal 17D continuous thereto.
- the second wiring pattern 42 has a substantially T shape in plan view. Specifically, the second wiring 16B of the second wiring pattern 42 extends from the other end portion in the longitudinal direction of the base material 3 (the connecting portion 6 located in the longitudinal direction) to one side in the longitudinal direction, and the central portion in the longitudinal direction of the base material 3 Branch off and extend outward in the short direction.
- the 2nd wiring 16B can also be made into a wave shape in order to improve the elasticity of the laminated body 1 for biosensors.
- Each of the 3rd terminal 17C and the 4th terminal 17D is arranged in each of both ends of the transversal direction in the central part of the longitudinal direction of substrate 3.
- Each of the third terminal 17C and the fourth terminal 17D has a substantially rectangular shape (land shape) in plan view.
- Each of the third terminal 17C and the fourth terminal 17D is continuous with both end portions of the second wiring 16B extending outward in the short direction at the center portion in the longitudinal direction of the substrate 3.
- Examples of the material of the wiring layer 4 include conductors such as copper, nickel, gold, and alloys thereof, and preferably copper.
- the thickness of the wiring layer 4 is, for example, 0.1 ⁇ m or more, preferably 1 ⁇ m or more, for example, 100 ⁇ m or less, preferably 10 ⁇ m or less.
- the probe 5 comes into contact with the surface of the living body and outputs an electrical signal from the living body, temperature, vibration, sweat, metabolites, and the like. It is an electrode for sensing.
- the probe 5 has a thin layer shape, and the probe lower surface 20 as one surface is exposed inside the bonding opening 11, and the probe upper surface 21 as an example of the other surface is pressure-sensitive bonded.
- the pressure sensitive adhesive layer 2 is disposed so as to be embedded in the layer 2. Specifically, the probe 5 is embedded in the adhesive groove 10 in the pressure-sensitive adhesive layer 2 inside the adhesive opening 11.
- the probe 5 has an exposed region 57 where the pressure-sensitive adhesive layer 2 is exposed, as will be described in detail later.
- the exposed region 57 includes a plurality of holes 52 that are spaced apart from each other, and the probe 5 has a substantially mesh shape.
- the probe 5 includes a probe lower surface 20, a probe upper surface 21 that is disposed opposite to the probe lower surface 20 with a space therebetween, and a side surface that connects the probe lower surface 20 and the peripheral edge of the probe upper surface 21.
- the probe lower surface 20 is exposed from the adhesive lower surface 9 of the pressure-sensitive adhesive layer 2.
- the probe lower surface 20 is flush with the adhesive lower surface 9.
- the probe lower surface 20 forms the lower surface of the biosensor laminate 1 together with the adhesive lower surface 9.
- the probe upper surface 21 and side surfaces are covered with the pressure-sensitive adhesive layer 2.
- the outermost surface of the side surfaces of the probe 5 is the outer surface 22.
- the outer side surface 22 forms a virtual circle that passes through the outer side surface 22 in plan view.
- Examples of the material of the probe 5 include the materials exemplified in the wiring layer 4 (specifically, conductors).
- the outer dimensions of the probe 5 are set so that a virtual circle passing through the outer surface 22 overlaps with an inner peripheral surface that defines the bonding opening 11 in a plan view.
- the thickness of the probe 5 is, for example, 0.1 ⁇ m or more, preferably 1 ⁇ m or more, for example, less than 100 ⁇ m, preferably 10 ⁇ m or less.
- connection part 6 is provided corresponding to the base material opening part 15 and the adhesion
- the connecting portion 6 penetrates (passes) the base material 3 and the pressure-sensitive adhesive layer 2 in the thickness direction (vertical direction), and is filled in the base material opening 15 and the adhesive opening 11.
- the connecting portion 6 has an endless shape in plan view along the outer surface 22 of the probe 5. Specifically, the connecting portion 6 has a substantially cylindrical shape whose axis extends in the thickness direction (along a virtual circle passing through the outer surface 22).
- the inner surface of the connecting portion 6 is in contact with the outer surface 22 of the probe 5.
- the connecting portion 6 is pressure-sensitively bonded to the pressure-sensitive adhesive layer 2 outside the adhesive opening 11 and the pressure-sensitive adhesive layer 2 inside the adhesive opening 11.
- the upper surface of the connecting portion 6 is flush with the upper surface 13 of the base material.
- the lower surface of the connecting portion 6 is flush with the adhesive lower surface 9.
- connection portion 6 located on one side in the longitudinal direction is continuous with one end edge in the longitudinal direction of the first wiring 16 ⁇ / b> A located on one side in the longitudinal direction at the upper end portion.
- connection portion 6 located on the other side in the longitudinal direction is continuous with the other end in the longitudinal direction of the second wiring 16B located on the other side in the longitudinal direction at the upper end thereof.
- connection part 6 electrically connects the wiring layer 4 and the probe 5.
- connection portion 6 examples include metals, conductive resins (including conductive polymers), and preferably include conductive resins.
- the thickness (vertical length) of the connecting portion 6 is the same as the total thickness of the base material 3 and the pressure-sensitive adhesive layer 2.
- the length in the radial direction of the connecting portion 6 (half value of the value obtained by subtracting the inner diameter from the outer diameter) is, for example, 1 ⁇ m or more, preferably 100 ⁇ m or more, for example, 1000 ⁇ m or less, preferably 500 ⁇ m or less.
- the probe 5 includes an exposed region 57 including a plurality of holes 52 that are spaced apart from each other, and a crosspiece 53 that partitions the plurality of holes 52.
- the crosspiece 53 linear crosspieces are arranged in a net shape.
- the crosspiece 53 has a lattice shape, and includes a plurality of first crosspieces 54 and a plurality of second crosspieces 55 integrally.
- Each of the plurality of first crosspieces 54 has a substantially bar shape extending over the entire length of the probe 5.
- the plurality of first crosspieces 54 are arranged so as to be parallel to each other in the short direction. That is, the plurality of first crosspieces 54 extend in a direction orthogonal to the thickness direction of the pressure-sensitive adhesive layer 2 so as to be parallel to each other with a space therebetween.
- the plurality of second crosspieces 55 bridge the first crosspieces 54 adjacent to each other among the plurality of first crosspieces 54.
- Each of the plurality of second crosspieces 55 has a substantially bar shape extending over the entire short direction of the probe 5 and is orthogonal (intersects) with the plurality of first crosspieces 54.
- the plurality of first crosspieces 54 and the plurality of second crosspieces 55 are continuous at a portion where they intersect (cross) each other.
- the plurality of second crosspieces 55 are arranged so as to be parallel to each other in the longitudinal direction. That is, the thickness direction and the longitudinal direction (first direction) of the pressure-sensitive adhesive layer 2 are such that the plurality of second crosspieces 55 are parallel to each other with a space therebetween and orthogonal to (cross) the plurality of first crosspieces 54. (One direction) and the short direction (second direction) perpendicular to both directions.
- Each of (width) is, for example, 10 ⁇ m or more, preferably 20 ⁇ m or more, more preferably 50 ⁇ m or more, for example, 500 ⁇ m or less, preferably 300 ⁇ m or less, and more preferably 100 ⁇ m or less.
- each first crosspiece 54 and the dimension in the longitudinal direction of each second crosspiece 55 are preferably the same.
- the exposed region 57 is a portion where the adhesive lower surface 9 is exposed in a region surrounded by a virtual line to be described later (see the description of the area of the probe 5), and includes a plurality of holes 52.
- the plurality of holes 52 imparts flexibility to the probe 5 so that the probe 5 can follow fine irregularities on the surface of the living body.
- the plurality of holes 52 are partitioned by the crosspieces 53 and are arranged at intervals.
- the plurality of holes 52 includes a plurality of rows of the plurality of holes 52 that are arranged at intervals in the longitudinal direction (second beam portions 55) and are spaced from each other in the short direction (first beam portions 54). Yes.
- Each of the plurality of holes 52 exposes the adhesive lower surface 9 of the pressure-sensitive adhesive layer 2 from below.
- Each of the plurality of holes 52 is surrounded by the first crosspieces 54 adjacent to each other among the plurality of first crosspieces 54 and the second crosspieces 55 intersecting the first crosspieces 54 and adjacent to each other. It is divided as a space.
- Each hole 52 penetrates the probe 5 in the thickness direction.
- each hole 52 has a rectangular shape in plan view, more specifically, a square shape in plan view.
- Each hole 52 is filled with the pressure-sensitive adhesive layer 2.
- the dimension in the longitudinal direction of each hole 52 and the dimension in the short direction of each hole 52 are, for example, 50 ⁇ m or more, preferably 200 ⁇ m or more, more preferably 300 ⁇ m or more, and particularly preferably 400 ⁇ m or more. , 1000 ⁇ m or less, preferably 900 ⁇ m or less.
- each first crosspiece 54 in the short direction the dimension of each hole 52 in the short direction is, for example, 5:95 to 50:50, preferably 5:95 to 40:60, Preferably, it is 5:95 to 20:80.
- the longitudinal dimension of each second crosspiece 55 The longitudinal dimension of each hole 52 is, for example, 5:95 to 50:50, preferably 5:95 to 40:60, and more preferably 5 : 95 to 20:80.
- each first crosspiece 54 the dimension in the short direction of each hole 52
- the lengthwise dimension of each second crosspiece 55 the lengthwise dimension of each hole 52 is within the above range. If it is, the ratio of the area of the crosspiece 53 and the area of the hole 52 can be ensured in a well-balanced manner, and the probe 5 can be more reliably followed by the fine unevenness on the surface of the living body.
- the number of holes 52 in the probe 5 is, for example, 50 or more, preferably 100 or more, for example, 500,000 or less, preferably 50,000 or less.
- the area of the probe 5 is, for example, 0.5 cm 2 or more, preferably 1 cm 2 or more, for example, 10 cm 2 or less, preferably 5 cm 2 or less.
- the area of the probe 5 is surrounded by a virtual line connecting the outermost portion of the cut surface at the shortest distance on the cut surface when the probe 5 is cut on a virtual plane orthogonal to the thickness direction of the probe 5. It is the area of the area to be.
- the area of the probe 5 is the area surrounded by a virtual line 56A that connects the vertices at the shortest distance. It is an area.
- a virtual line 56A connecting the outermost portions of the cut surface with the shortest distance is the line 56B.
- the area of the probe 5 is the area of the region surrounded by the line 56B.
- the area of the probe 5 is an imaginary line 56A that connects the vertices with the shortest distance. , The area of the region surrounded by the line 56B.
- the total area of the exposed region 57 (including the plurality of holes 52) with respect to the area of the probe 5 is, for example, 50% or more, preferably 80% or more, for example, 95% or less.
- the total area of the exposed region 57 with respect to the area of the probe 5 is equal to or greater than the lower limit, the area of the hole 52 that allows the passage of moisture can be sufficiently secured, and when the biosensor laminate 1 is applied to a living body, The load on the living body can be suppressed. If the total area of the exposed regions 57 with respect to the area of the probe 5 is equal to or less than the above upper limit, the signal receiving capability of the probe 5 can be sufficiently ensured. 3. Next, a method for manufacturing the biosensor laminate 1 will be described with reference to FIGS. 3A to 5.
- the laminate 28 and the probe member 18 are separately prepared.
- the laminate 28 includes a pressure-sensitive adhesive layer 2, a base material 3 disposed on the top surface of the pressure-sensitive adhesive layer 2, and a wiring layer 4 disposed on the base material 3.
- Each of the pressure-sensitive adhesive layer 2, the base material 3, and the wiring layer 4 in the laminate 28 has the same configuration as each of the pressure-sensitive adhesive layer 2, the base material 3, and the wiring layer 4.
- the pressure-sensitive adhesive layer 2 is disposed on the substrate lower surface 12 of the substrate 3.
- the base material 3 on which the wiring layer 4 is arranged is prepared by embedding the wiring layer 4 in the base material groove 14 by a method described in, for example, Japanese Patent Application Laid-Open No. 2017-22236 and Japanese Patent Application Laid-Open No. 2017-22237.
- a coating solution containing the material of the pressure-sensitive adhesive layer 2 is prepared, and then the coating solution is applied to the first release sheet 19. It is applied to the upper surface and then dried by heating. Thereby, the pressure-sensitive adhesive layer 2 is disposed on the upper surface of the first release sheet 19.
- the first release sheet 19 has, for example, a substantially flat plate shape that extends in the longitudinal direction. Examples of the material of the first release sheet 19 include resins such as polyethylene terephthalate.
- the pressure-sensitive adhesive layer 2 and the base material 3 are bonded together by, for example, a laminator. Specifically, the adhesion upper surface 8 of the pressure-sensitive adhesive layer 2 and the substrate lower surface 12 of the substrate 3 are brought into contact with each other.
- the base material 3 and the pressure-sensitive adhesive layer 2 do not have the base material opening 15 and the adhesive opening 11, respectively.
- a probe member 18 is prepared.
- the probe member 18 is formed such that the pressure-sensitive adhesive layer 2, the base material 3 disposed on the upper surface of the pressure-sensitive adhesive layer 2, the probe lower surface 20 is exposed, and the probe upper surface 21 is embedded in the pressure-sensitive adhesive layer 2.
- Each of the pressure-sensitive adhesive layer 2, the substrate 3 and the probe 5 in the probe member 18 has the same configuration as each of the pressure-sensitive adhesive layer 2, the substrate 3 and the probe 5 described above.
- a probe-containing sheet 26 is prepared as shown in FIG.
- the probe-containing sheet 26 includes a pressure-sensitive adhesive layer 2, a probe pattern 25 embedded in the pressure-sensitive adhesive layer 2, and a base material 3 disposed on the adhesive upper surface 8 of the pressure-sensitive adhesive layer 2.
- the probe pattern 25 has the same pattern shape as the probe 5, and the material of the probe pattern 25 is the same as the material of the probe 5.
- the probe pattern 25 has a larger plane area than the virtual circle that passes through the outer surface 22 of the probe 5.
- the probe-containing sheet 26 is prepared by a method described in, for example, Japanese Patent Application Laid-Open No. 2017-22236 and Japanese Patent Application Laid-Open No. 2017-22237.
- a photoresist is laminated on the entire upper surface of the seed layer.
- the photoresist is exposed and developed to form a photoresist in the reverse pattern of the probe pattern 25.
- the photoresist is removed.
- a coating solution containing the material for the pressure-sensitive adhesive layer 2 is applied so as to cover the probe pattern 25 and cured to form the pressure-sensitive adhesive layer 2.
- the base material 3 is bonded to the upper surface of the pressure-sensitive adhesive layer 2 using, for example, a laminator.
- the second release sheet 29 has the same configuration as the first release sheet 19 described above.
- the cutting line 27 is formed in the probe pattern 25, the pressure-sensitive adhesive layer 2, and the base material 3 in a substantially circular shape in plan view.
- the cutting line 27 is formed by, for example, punching.
- the cutting line 27 divides the probe pattern 25, the pressure-sensitive adhesive layer 2, and the base material 3 into and out of the probe pattern 25, but is not formed on the second release sheet 29.
- the dimension of the cutting line 27 is the same as the inner diameter of the bonding opening 11 and the base material opening 15. That is, the cutting line 27 coincides with a virtual circle that passes through the outer surface 22.
- the probe member 18 is formed by forming the cutting line 27.
- the outer surface 22 of the probe 5 is flush with the outer surface of the pressure-sensitive adhesive layer 2. In the probe member 18, the outer surface 22 is exposed radially outward from the outer surface of the pressure-sensitive adhesive layer 2.
- the probe member 18 is pulled up from the second release sheet 29. Specifically, the adhesive lower surface 9 and the probe lower surface 20 in the probe member 18 are peeled from the second release sheet 29.
- the probe member 18 is prepared.
- the thickness (vertical dimension) of the probe member 18 is equal to or greater than the thickness (vertical dimension) of the laminated body 28, and is preferably the same as the thickness of the laminated body 28.
- the through hole 23 is formed in the stacked body 28.
- the through-hole 23 penetrates the laminated body 28 in the vertical direction.
- the through hole 23 is a hole (through hole) having a substantially circular shape in a plan view defined by an outer peripheral surface that defines the base material opening 15 and an outer peripheral surface that defines the bonding opening 11.
- the first wiring 16 ⁇ / b> A (or the second wiring 16 ⁇ / b> B) of the wiring layer 4 faces the through hole 23.
- the through-hole 23 is opened toward the upper side.
- the lower end of the through hole 23 is closed by the first release sheet 19.
- the inner diameter of the through hole 23 is larger than the outer shape of the probe member 18.
- the through hole 23 has such a size that a gap 100 is formed between the inner surface 23 ⁇ / b> A of the through hole 23 and the peripheral surface 18 ⁇ / b> A of the probe member 18 when the probe member 18 is disposed in the through hole 23.
- the laminated body 28 is punched and half-etched, for example.
- the probe member 18 is fitted into the through hole 23 so that the gap 100 is formed.
- the gap 100 is such that the pressure-sensitive adhesive layer 2, the base material 3, and the probe 5 of the probe member 18 and the pressure-sensitive adhesive layer 2 and the base material 3 around the through-hole 23 are spaced apart from each other in the radial direction of the probe member 18. It is formed by locating.
- the wiring layer 4 (the first wiring 16A or the second wiring 16B) and the outer surface 22 of the probe 5 face.
- connection portion 6 that electrically connects the wiring layer 4 and the probe 5 is formed in the gap 100.
- the conductive resin composition is injected (or applied) into the gap 100. Thereafter, the conductive resin composition is heated and cured as necessary.
- the biosensor laminate 1 is manufactured.
- the biosensor laminate 1 includes a pressure-sensitive adhesive layer 2, a base material 3, a wiring layer 4, a probe 5, a connection portion 6, and a first release sheet 19, preferably only from them. Become. As shown in FIG. 2A, the biosensor laminate 1 does not include the first release sheet 19, and includes the pressure-sensitive adhesive layer 2, the base material 3, the wiring layer 4, the probe 5, and the connection portion 6. It may consist only of
- the laminated body 1 for biosensors is a device that can be distributed and used industrially. Specifically, the biosensor laminate 1 can be distributed separately from the electronic component 31 and the battery 32 (see the phantom line in FIG. 1) described below. That is, the biosensor laminate 1 is a component for manufacturing the pasted electrocardiograph 30 without mounting the electronic component 31 and the battery 32.
- the adhesive electrocardiograph 30 for example, first, the biosensor laminate 1, the electronic component 31, and the battery 32 are prepared.
- an analog front end for processing and storing an electrical signal from a living body acquired by the probe 5, a microcomputer, a memory, and further converting the electrical signal into a radio wave, and receiving this externally Examples include a communication IC and a transmitter for wireless transmission to a machine.
- the electronic component 31 may have some or all of them.
- the electronic component 31 has two terminals (not shown) or two or more terminals (not shown) provided on the lower surface thereof.
- the battery 32 has two terminals (not shown) provided on the lower surface thereof.
- the two terminals of the electronic component 31 are electrically connected to the first terminal 17A and the third terminal 17C. Further, the two terminals of the battery 32 are electrically connected to the second terminal 17B and the fourth terminal 17D.
- the pasted electrocardiograph 30 including the biosensor laminate 1, the electronic component 31 and the battery 32 mounted thereon is manufactured.
- the first release sheet 19 (see the arrow and phantom line in FIG. 3D) is released from the pressure-sensitive adhesive layer 2 and the probe 5.
- the adhesive lower surface 9 of the pressure-sensitive adhesive layer 2 is then brought into contact with the human skin 33, for example. Specifically, the pressure-sensitive adhesive layer 2 is pressure-bonded to the surface of the skin 33.
- the probe lower surface 20 of the probe 5 comes into contact with the surface of the skin 33 by the pressure-sensitive adhesion (sticking) of the adhesion lower surface 9 to the skin 33.
- the probe 5 is bent along the skin 33 by each of the plurality of holes 52 and follows the fine unevenness of the skin 33.
- the probe 5 senses the cardiac action potential as an electrical signal, and the electrical signal sensed by the probe 5 is input to the electronic component 31 via the connection portion 6 and the wiring layer 4.
- the electronic component 31 processes an electrical signal based on the power supplied from the battery 32 and stores it as information. Furthermore, if necessary, the electric signal is converted into a radio wave and wirelessly transmitted to an external receiver.
- the probe 5 has an exposed region 57 including a plurality of holes 52 arranged at intervals.
- the probe 5 is attached to the skin by the exposed region 57 (each of the plurality of holes 52).
- the probe 5 can be bent along the surface of 33, and the probe 5 can follow the fine unevenness of the surface of the skin 33.
- the sensing accuracy of the biosignal can be improved.
- the probe 5 has a thin layer shape. Therefore, when the biosensor laminate 1 is affixed to the surface of the living body, it is possible to reduce the user's wearing feeling.
- the plurality of holes 52 are partitioned by a crosspiece 53. Therefore, flexibility can be imparted to the probe 5 while arranging the plurality of holes 52 regularly. As a result, the probe 5 can surely follow the fine irregularities on the surface of the living body.
- the crosspiece 53 has a lattice shape. Therefore, the plurality of holes 52 can be arranged uniformly in a well-balanced manner in the entire probe 5. As a result, the entire probe 5 can surely follow the fine irregularities on the surface of the living body.
- the plurality of holes 52 are partitioned by a plurality of first crosspieces 54 that are parallel to each other at intervals and a plurality of second crosspieces 55 that bridge adjacent first crosspieces 54. Therefore, the rigidity can be maintained by the second crosspiece 55 while imparting flexibility to the probe 5.
- the dimension in the second direction of each first crosspiece 54 the dimension in the second direction of each hole 52 is within the above range
- the dimension in the first direction of each second crosspiece 55 the first dimension of each hole 52.
- the dimension in one direction is in the above range. Therefore, the ratio between the area of the crosspiece 53 and the area of the hole 52 can be ensured in a well-balanced manner, and the probe 5 can be more reliably followed by the fine irregularities on the surface of the skin 33.
- each first crosspiece 54 and the dimension in the longitudinal direction of each second crosspiece 55 are within the above-described range, and the dimension in the longitudinal direction of each hole 52 and the short form of each hole 52.
- Each of the directional dimensions is in the above range. Therefore, the ratio of the area of the crosspiece 53 and the area of the hole 52 can be ensured with a better balance.
- the imaginary line passing through the outer surface 22 is circular, but the shape is not particularly limited. Also good.
- the plurality of holes 52 are partitioned by the crosspieces 53, but the probe 5 may not include the crosspieces 53 as long as the probe 5 has the plurality of holes 52.
- a plurality of holes 52 may be formed in the plate-like probe 5.
- the shape of the plurality of holes 52 is not particularly limited, and for example, may have a substantially circular shape in plan view.
- the crosspiece 53 has a lattice shape, but the shape of the crosspiece 53 is not particularly limited.
- the crosspiece 53 may have a honeycomb shape as shown in FIG. 6B and may have a staggered shape as shown in FIG. 6C.
- each of the plurality of first crosspieces 54 extends in the longitudinal direction so as to form a stepped step, and the plurality of first crosspieces 54 54 are arranged parallel to each other in the short direction.
- the plurality of second crosspieces 55 bridges the first crosspieces 54 adjacent to each other among the plurality of first crosspieces 54.
- the several 1st crosspiece 54 is shown with a thick line for convenience.
- Each of the plurality of holes 52 is partitioned by a plurality of first crosspieces 54 and a plurality of second crosspieces 55 and has a substantially hexagonal shape in plan view.
- each of the plurality of first crosspieces 54 extends linearly in the longitudinal direction, and the plurality of first crosspieces 54 extends in the short direction. Are arranged in parallel and spaced apart from each other. Further, the plurality of second crosspieces 55 bridge the first crosspieces 54 adjacent to each other among the plurality of first crosspieces 54 at different positions in the longitudinal direction so as not to be continuous in the lateral direction.
- Each of the plurality of holes 52 is partitioned by a plurality of first crosspieces 54 and a plurality of second crosspieces 55 and has a substantially rectangular shape in plan view.
- the shape of the probe 5 is not particularly limited.
- the probe 5 may have a star shape as shown in FIG. 7A.
- the crosspiece 53 of the probe 5 includes a frame portion 59 having a hollow star shape (specifically, a pentagonal star shape) and a plurality of bridging portions 60 arranged in the frame portion 59.
- Each of the plurality of bridging portions 60 has a substantially bar shape extending in the surface direction of the probe 5.
- the plurality of bridging portions 60 bridge portions facing each other on the inner side surface of the frame portion 59 so as to partition the plurality of holes 52 inside the frame portion 59.
- the shape of the frame portion 59 is not particularly limited.
- the crosspiece 53 may include a frame portion 59 having an annular shape, a plurality of first crosspieces 54, and a plurality of second crosspieces 55.
- the frame portion 59 surrounds the plurality of first crosspieces 54 and the plurality of second crosspieces 55 and is continuous with the end portions thereof.
- the plurality of first crosspieces 54 are arranged so as to be parallel to each other, and the plurality of second crosspieces 55 are arranged so as to be parallel to each other.
- the present invention is not limited to this.
- each of the plurality of first crosspieces 54 is inclined at an angle of less than ⁇ 45 ° with respect to the longitudinal direction, and the plurality of first crosspieces 54 are not parallel to each other. Thus, they are arranged at intervals in the short direction.
- each of the plurality of second crosspieces 55 is inclined at an angle of less than ⁇ 45 ° with respect to the short side direction, and the plurality of second crosspieces 55 are arranged in the longitudinal direction so as not to be parallel to each other. Arranged at intervals.
- the plurality of first crosspieces 54 and the plurality of second crosspieces 55 are orthogonal to each other. However, as shown in FIG. 8B, the plurality of first crosspieces 54 and the plurality of second crosspieces 55 are provided. May intersect at an angle of less than 90 ° C (or an angle exceeding 90 ° C). And each of the some hole 52 is divided by the some 1st crosspiece 54 and the some 2nd crosspiece 55, and has planar rhombus shape in planar view.
- each of the plurality of first crosspieces 54 and the plurality of second crosspieces 55 extends linearly, but their shapes are not particularly limited. As shown in FIG. 8C, each of the plurality of first crosspieces 54 and the plurality of second crosspieces 55 may have a wave shape. 8A to 8C, the crosspiece 53 has a lattice shape.
- the exposed region 57 includes a plurality of holes 52, but the exposed region 57 is not particularly limited as long as the adhesive lower surface 9 of the pressure-sensitive adhesive layer 2 can be exposed.
- the exposed region 57 may be formed by a plurality of holes 52 communicating with each other.
- each second crosspiece 55 has a notch 58 so as to communicate with the holes 52 adjacent to each other in the longitudinal direction.
- the notch 58 is formed by notching a part of each second crosspiece 55.
- each 1st crosspiece 54 may have a notch part so that the hole 52 which mutually adjoins in a transversal direction may be connected.
- the exposed region 57 may include a groove 63 that is substantially U-shaped in plan view and is opened toward one side in a predetermined direction.
- the crosspiece 53 includes a plurality of grooves 63, a plurality of first crosspieces 61 extending in a predetermined direction, and a second crosspiece that connects each of the plurality of first crosspieces 61 in the predetermined direction. 62.
- the plurality of first crosspieces 61 extend in the longitudinal direction so as to be parallel to each other in the short direction.
- the longitudinal dimensions of the plurality of first crosspieces 61 may be the same as each other or different from each other.
- the longitudinal dimensions of the plurality of first crosspieces 61 are different from each other, and the longest first crosspiece 61 among the plurality of first crosspieces 61 is arranged at the center in the short side direction, A plurality of first crosspieces 61 are arranged so that the length of the first crosspieces 61 is sequentially shortened toward the outer side in the short direction.
- the second crosspiece 62 connects the other ends in the longitudinal direction of the plurality of first crosspieces 61.
- the 2nd crosspiece 62 has a planar view substantially circular arc shape open
- Each groove 63 is partitioned as a space surrounded by the first crosspieces 61 adjacent to each other among the plurality of first crosspieces 61 and the second crosspieces 62 connecting the first crosspieces 61.
- Each groove 63 has a substantially U shape in plan view that is open toward one side in the longitudinal direction.
- the probe 5 is embedded in the pressure-sensitive adhesive layer 2 as shown in FIG. 2A, but is not particularly limited as long as it is disposed in the pressure-sensitive adhesive layer 2.
- the probe 5 may be disposed on the adhesive lower surface 9 of the pressure-sensitive adhesive layer 2.
- the probe upper surface 21 of the probe 5 is in contact with the lower surface of the connection portion 6 and the probe 5 and the connection portion 6 are electrically connected.
- the biosensor laminate 1 is given as an example of the biosensor sheet of the present invention.
- the biosensor sheet of the present invention includes a probe member 18 including a pressure-sensitive adhesive layer 2 and a probe 5, A probe-containing sheet 26 including the pressure bonding layer 2 and the probe pattern 25 (an example of a probe) is included. Further, the biosensor sheet of the present invention may not include the base material 3 as long as the pressure-sensitive adhesive layer 2 and the probe 5 are provided.
- the paste-type electrocardiograph 30 is cited as an example of a biosensor.
- an apparatus that can sense a living body signal and monitor the state of the living body can be cited.
- An adhesive sphygmomanometer, an adhesive pulsometer, an adhesive electromyograph, an adhesive thermometer, an adhesive accelerometer, and the like may be individual devices, or a plurality of devices may be incorporated in one device.
- the living body includes a human body and a living body other than the human body, and is preferably a human body.
- Examples 1 to 6 and Comparative Example 1 Preparation of laminated body (1) Preparation of base material and wiring layer After forming a seed layer made of copper on the upper surface of a stainless steel release layer by electrolytic copper plating, a dry film photoresist is laminated on the entire upper surface of the seed layer did. Next, the dry film photoresist was exposed and developed to form a dry film photoresist in the reverse pattern of the wiring layer. Then, after forming a wiring layer on the upper surface of the seed layer by electrolytic plating, the dry film photoresist was removed with a stripping solution.
- the base material coating solution prepared as described below was applied so as to cover the wiring layer, and then dried at 120 ° C. for 5 minutes to form a base material.
- the coating liquid for base materials was prepared by mix
- the release layer was peeled from the lower surface of the seed layer, and then the seed layer was removed by wet etching.
- the area of the substrate was 25 cm 2.
- an acrylic polymer was prepared from isononyl acrylate (iNA), methoxyethyl acrylate (MEA) and acrylic acid (AA) as described in Example 1 of JP-A-2003-342541. Prepared.
- a pressure-sensitive adhesive layer coating solution was prepared. Thereafter, a pressure-sensitive adhesive layer coating solution is applied to the surface of the PET film (first release sheet) whose surface has been subjected to a release treatment, then dried at 120 ° C. for 3 minutes, and further at 72 ° C. at 72 ° C. Time-aged (aged). This prepared the pressure sensitive adhesive layer supported by the peeling layer.
- probe member The dry film photoresist on the seed layer was formed in the reverse pattern of the probe pattern in the same manner as in the preparation of the laminate. Thereafter, a probe pattern was formed on the upper surface of the seed layer by electrolytic plating, and then the dry film photoresist was removed with a stripping solution.
- the probe pattern had a lattice-like pattern shape in which a plurality of first crosspieces and a plurality of second crosspieces were orthogonal.
- the plurality of holes had a square shape in plan view.
- Table 1 shows the width L of each crosspiece (the width of the first crosspiece and the second crosspiece) and the dimension (S) of one side of each hole.
- the thickness of the probe pattern was 2 ⁇ m.
- the probe pattern had a substantially flat plate shape and did not have a plurality of holes.
- the pressure-sensitive adhesive layer coating solution was applied so as to cover the probe pattern, then dried at 120 ° C. for 3 minutes, and further aged at 60 ° C. for 72 hours. This prepared the pressure sensitive adhesive layer in which a probe pattern was embedded.
- the base material coating solution was applied to the upper surface of the pressure-sensitive adhesive layer, and then dried at 120 ° C. for 5 minutes. This prepared the base material.
- the release layer was peeled from the lower surface of the seed layer, and then the seed layer was removed by wet etching. Thus, a probe-containing sheet was prepared.
- a cutting line having a substantially circular shape in plan view was formed on the probe-containing sheet by punching.
- the probe member was formed by forming the cutting line.
- the probe member was separated from the probe-containing sheet to prepare a probe member.
- the thickness of the probe member was the same as the thickness of the laminate.
- the inner diameter of the through-hole is larger than the outer shape of the probe member, and the through-hole is a size in which a gap is formed between the inner surface of the through-hole and the peripheral surface of the probe member when the probe member is disposed in the through-hole.
- the probe member was fitted into the through hole so that the above gap was formed.
- the conductive resin composition was injected into the gap and was cured by heating. Thereby, the connection part which electrically connects a wiring layer and a probe was formed.
- the laminated body for biosensors was manufactured by the above.
- the biosensor sheet of the present invention can be applied to various industrial products.
- the biosensor sheet is preferably used for an apparatus that can sense a biological signal and monitor the state of the living body. It is suitably used for an electrometer, an adhesive electroencephalograph, an adhesive blood pressure monitor, an adhesive pulse meter, an adhesive electromyograph, an adhesive thermometer, an adhesive accelerometer, and the like.
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Abstract
Description
1.生体センサ用積層体の概略構成
本発明の生体センサ用シートの一実施形態である生体センサ用積層体1を、図1~図5を参照して説明する。
基材下面12は、感圧接着層2の接着上面8に接触(感圧接着)している。
次に、プローブ5の詳細について、図1を参照して説明する。
3.生体センサ用積層体の製造方法
次に、生体センサ用積層体1の製造方法について、図3A~図5を参照して説明する。
第1剥離シート19の材料として、例えば、ポリエチレンテレフタレートなどの樹脂が挙げられる。
以下の各変形例において、上記した一実施形態と同様の部材および工程については、同一の参照符号を付し、その詳細な説明を省略する。また、各変形例を適宜組み合わせることができる。さらに、各変形例は、特記する以外、一実施形態と同様の作用効果を奏することができる。
例えば、図6Aに示すように、板状のプローブ5に、複数の穴52が形成されてもよい。
複数の穴52の形状は、特に限定されず、例えば、平面視略円形状を有していてもよい。
1.積層体の準備
(1)基材および配線層の準備
ステンレス製の剥離層の上面に、電解銅めっきにより、銅からなるシード層を形成した後、シード層の上面全体にドライフィルムフォトレジストを積層した。次いで、ドライフィルムフォトレジストを露光および現像して、ドライフィルムフォトレジストを配線層の逆パターンに形成した。その後、電解めっきにより、配線層をシード層の上面に形成した後、ドライフィルムフォトレジストを剥離液により除去した。
また、特開2003-342541号公報の実施例1に記載に従って、アクリル酸イソノニル(iNA)、アクリル酸メトキシエチル(MEA)およびアクリル酸(AA)からアクリルポリマーを調製した。
その後、感圧接着層を、基材の下面に真空ラミネータにより、60℃で貼り合わせた。
上記の積層体の準備と同様にして、シード層上のドライフィルムフォトレジストを、プローブパターンの逆パターンに形成した。その後、電解めっきにより、プローブパターンをシード層の上面に形成した後、ドライフィルムフォトレジストを剥離液により除去した。
次いで、ハーフエッチングにより、積層体に貫通口を形成した。
(抵抗値の測定)
各実施例の生体センサ用積層体を、それぞれ2つずつ準備した。
2 感圧接着層
5 プローブ
52 穴
53 桟部
54 第1桟部
55 第2桟部
Claims (8)
- 生体表面に貼付するための感圧接着層と、
前記感圧接着層に配置されるプローブと、を備え、
前記プローブは、前記感圧接着層が露出する露出領域を有することを特徴とする、生体センサ用シート。 - 前記プローブは、薄層形状を有することを特徴とする、請求項1に記載の生体センサ用シート。
- 前記露出領域は、互いに間隔を空けて配置される複数の穴を含むことを特徴とする、請求項1に記載の生体センサ用シート。
- 前記プローブは、前記複数の穴を区画する桟部を備えることを特徴とする、請求項3に記載の生体センサ用シート。
- 前記桟部は、格子形状を有することを特徴とする、請求項4に記載の生体センサ用シート。
- 前記桟部は、
互いに間隔を空けて平行となるように、前記感圧接着層の厚み方向と直交する方向に延びる複数の第1桟部と、
前記複数の第1桟部のうち互いに隣り合う第1桟部を架橋する複数の第2桟部と、を備えることを特徴とする、請求項4に記載の生体センサ用シート。 - 前記複数の第1桟部は、前記厚み方向と直交する第1方向に延び、
前記複数の第2桟部は、互いに間隔を空け、かつ、前記複数の第1桟部と交差するように、前記厚み方向と前記第1方向の両方向と交差する第2方向に延び、
前記複数の第1桟部のそれぞれの前記第2方向の寸法:前記複数の穴のそれぞれの前記第2方向の寸法は、5:95~50:50であり、
前記複数の第2桟部のそれぞれの前記第1方向の寸法:前記複数の穴のそれぞれの前記第1方向の寸法は、5:95~50:50であることを特徴とする、請求項6に記載の生体センサ用シート。 - 前記複数の第1桟部のそれぞれの前記第2方向の寸法、および、前記複数の第2桟部のそれぞれの前記第1方向の寸法のそれぞれは、10μm以上500μm以下であり、
前記複数の穴のそれぞれの前記第1方向の寸法、および、前記複数の穴のそれぞれの前記第2方向の寸法のそれぞれは、50μm以上1000μm以下であることを特徴とする、請求項7に記載の生体センサ用シート。
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