Medical electrodes and systems

The medical electrode with electrolyte-infused strands and a conductive channel system addresses the challenge of detecting weak signals by reducing skin impedance and noise, ensuring accurate and comfortable fetal ECG measurements without abrasive skin preparation, suitable for various body areas and cost-effective.

JP7801236B2Active Publication Date: 2026-01-16INXEL TECH PTE LTD
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Patent Information

Application Number
JP2022557926
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-25
Filing Date
2021-03-24
Publication Date
2026-01-16
Estimated Expiration
2041-03-24

AI Technical Summary

Technical Problem

Existing medical electrodes struggle to effectively detect weak electrical signals, such as fetal ECGs, due to high skin impedance and noise interference, often requiring abrasive skin preparation, causing discomfort and inefficiency, especially in areas lacking bone structure, and are costly.

Method used

A medical electrode design featuring electrolyte-infused absorbent strands that create microperforations in the stratum corneum, eliminating the need for skin ablation, distributing electrolyte evenly without air bubbles, and reducing baseline noise by using a conductive channel system with a plastic micro-bristle pressing mechanism.

Benefits of technology

The electrode achieves reduced skin impedance, low baseline noise, and accurate detection of weak signals without skin ablation, suitable for any body area, while being cost-effective and comfortable.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a medical electrode comprising: an electrolyte; an absorbent material in contact with the electrolyte, the absorbent material including a plurality of strands, each strand being infused with the electrolyte; a pressing means in contact with the absorbent material, the pressing means including a plurality of protrusions for pressing the strands of the absorbent material through the stratum corneum of a target skin area of ​​a patient; and a conductive means disposed adjacent to the pressing means and in contact with the absorbent material. The medical electrode system of the present invention reduces skin impedance at the site where the electrode is placed, generates a low level of baseline noise, and can accurately measure weak signals.
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Description

[Technical Field]

[0001] The present invention relates to a medical electrode and a system thereof, which can reduce the skin impedance at the site of application without abrading the skin, generate low-level baseline noise, and accurately measure weak signals including, but not limited to, fetal electrocardiograms (ECGs). [Background technology]

[0002] Medical electrodes detect the electrical potential on the skin surface and are used to perform various health examinations. There remains a need in the market for medical electrodes that can effectively sense and detect weak electrical signals. In fetal monitoring technology, fetal heart rate monitoring is performed using fetal ECG. This signal is picked up using surface electrodes with wet or solid gel. However, fetal ECG signals have an amplitude of 5 to 20 microvolts, making it difficult to acquire them from the surface of the mother's abdomen. Furthermore, this signal is masked by a complex mix of signals from the maternal ECG, uterine movement due to maternal contractions, and ambient noise. Picking up this small signal is made even more difficult by the high electrical impedance of the stratum corneum, the top layer of the skin. The stratum corneum attenuates fetal ECG signals and causes noise at the electrode-skin interface. When measuring fetal ECG, electrodes are placed on the patient's abdomen. To reduce skin impedance at the electrode site, the stratum corneum is removed using mildly abrasive paper tape. Prior art electrodes, such as those used by the Monica electronic fetal monitor, comprise electrodes with fixed gel areas and are available in a range of sizes, each requiring a minimum number of exfoliation strokes with an abrasive material to reduce skin-related impedance and noise signals to acceptable levels. However, this approach is skill-intensive and often requires multiple attempts, causing discomfort and scarring to the patient. Therefore, there is a need for an electrode that generates low levels of baseline noise and reduces the impedance induced by the skin in order to detect weak signals without requiring skin ablation at the electrode contact site.

[0003] Another prior art electrode from Aspect Medical Systems uses tines to separate the top layer of skin and keep it separated. The gel electrolyte held in the sponge is depressed when the tines are pressed, allowing the gel electrolyte to seep into the channels formed by the tines. However, this approach has limitations because the action of pressing the tines and the connected electrical pads causes uneven distribution of the gel and the formation of air pockets between the skin-electrode interface and the electrical pads. The sponge is composed of multiple cells that hold the electrolyte gel. However, some of the sponge cells contain air. When the sponge is pressed down, the air is squeezed out along with the gel, creating air bubbles within the electrode system, resulting in uneven electrolyte distribution and high baseline noise. Therefore, an electrode that distributes electrolyte evenly without creating air bubbles when pressed is needed.

[0004] Furthermore, this system is not particularly effective when the electrodes are placed in areas of skin lacking bone structure, such as the abdominal area. Pressing a sponge through such skin results in poor skin separation. Air pockets also create high electrical noise that masks weak signals, including but not limited to fetal ECG. Therefore, this system is not particularly effective for fetal monitoring because the electrodes are placed on the maternal abdominal skin. Furthermore, because the mother is not anesthetized, repeated pressure attempts to separate the skin with the electrodes to measure the tiny fetal signals are uncomfortable for the mother. Therefore, there is a need for electrodes that can measure signals from any part of the body, especially in areas lacking bone structure.

[0005] Additionally, commercially available electrodes are expensive, so there is a need for low-cost electrodes. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 4,848,345 [Patent Document 2] US Patent Application Publication No. 2017 / 0232249 Summary of the Invention [Problem to be solved by the invention]

[0007] Therefore, there is a need for a low-cost medical electrode that effectively reduces skin impedance at the electrode-skin interface, generates low levels of baseline noise, allows for even distribution of electrolyte without air bubbles, can be placed anywhere on the body, reduces patient discomfort during electrode placement, and avoids the need for skin abrasion before electrode placement. [Means for solving the problem]

[0008] In one embodiment, the invention is a medical electrode comprising: an electrolyte; an absorbent material in contact with the electrolyte, the absorbent material including a plurality of strands, each strand infused with the electrolyte; a pressing means in contact with the absorbent material, the pressing means including a plurality of protrusions for pressing the strands of absorbent material through the stratum corneum of a target skin area of ​​a patient; conductive means disposed adjacent to the pressing means and in contact with the absorbent material, wherein each strand of the electrolyte-infused absorbent material acts as a conductive channel from a site of ingress into the stratum corneum to the conductive means; and support means for supporting the electrode and maintaining the electrode in contact with the target skin area of ​​the patient.

[0009] In one embodiment, the present invention is a medical electrode system including at least one electrode, the at least one electrode connected to a flexible base that removably engages with a measurement device.

[0010] In one embodiment, the present invention is a method of using a medical electrode or medical electrode system, comprising the steps of placing the electrode directly on a target skin area of ​​a patient, pressing the electrode into the skin to press the electrolyte-infused strands of absorbent material through the stratum corneum, and displaying biopotential signal values ​​detected by the electrode on a measurement device. [Brief explanation of the drawings]

[0011] [Figure 1A] 1 is an embodiment of a medical electrode of the present invention. [Figure 1B] FIG. 1B illustrates the medical electrode of FIG. 1A being pressed into a target skin area. [Figure 1C] FIG. 1B illustrates the medical electrode of FIG. 1A being pressed into a target skin area. [Figure 1D] FIG. 1B illustrates the medical electrode of FIG. 1A being pressed into a target skin area. [Figure 1E] FIG. 1 illustrates an embodiment that is a multi-electrode system. DETAILED DESCRIPTION OF THE INVENTION

[0012] Reference may be made to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, which are intended to be illustrative, not limiting, and while the invention will generally be described in the context of these embodiments, it should be understood that it is not intended to limit the scope of the invention to these particular embodiments.

[0013] The present invention addresses the above technical and economic disadvantages by providing a medical electrode comprising an electrolyte; an absorbent material in contact with the electrolyte, the absorbent material including a plurality of strands, each strand being infused with the electrolyte; a pressing means in contact with the absorbent material, the pressing means including a plurality of protrusions for pressing the strands of absorbent material through the stratum corneum of a target skin area of ​​a patient; conductive means located adjacent the pressing means and in contact with the absorbent material, wherein each strand of absorbent material infused with electrolyte acts as a conductive channel from a penetration site into the stratum corneum to the conductive means; and support means for supporting the electrode and holding the electrode in contact with the target skin area of ​​a patient.

[0014] When pressure is applied via a pressure means, the electrode of the present invention creates microperforations in the stratum corneum, the skin's topmost necrotic layer. The pressure forces the gauze strands into these perforations. Furthermore, because the gauze is thin, it easily penetrates the skin and adheres to the entry site, requiring minimal pressure. The strands that are forced into these perforations also eliminate the need for a preparatory exfoliation step at the electrode placement site. The gel-infused strands contact the more conductive layer of skin below the stratum corneum. The gel-infused strands form a conductive channel between the entry site in the stratum corneum and the electrode's conductive means. Because the gel is infused into the gauze strands, it does not spread unevenly or create air bubbles that would interfere with signal transmission. In this way, the electrode allows for reduced skin impedance without abrading the skin, resulting in a low level of baseline noise and enabling accurate acquisition of weak signals, including, but not limited to, fetal ECG.

[0015] The electrolyte gel in contact with the absorbent material is an electrolyte medium that allows for ion exchange between the skin surface and the conductive means. The electrolyte is the medium in which the biopotential measurements are made. In one embodiment, the electrolyte gel is liquid and alginate-based, resulting in a slightly tacky or sticky, highly flowable, and skin-friendly composition. The liquid nature and stickiness ensure complete absorption of the electrolyte by the gauze, allow it to spread evenly when pressure is applied, and avoid the formation of air bubbles.

[0016] In one embodiment of the medical electrode, the absorbent material comprises multiple strands in a mesh, preferably a gauze structure. In a preferred embodiment of the medical electrode, the absorbent material is cotton fiber. Prior art sponges are absorbent materials used in medical electrodes, consisting of multiple cells that hold electrolyte gel. When the sponge is pressed, the gel within the cells is extruded. However, electrolyte distribution is often uneven because some of the sponge cells contain trapped air, introducing air bubbles into the system. These air bubbles should be avoided because they cause high baseline noise. Instead, the present invention uses cotton fibers arranged in a gauze structure. The electrolyte gel is absorbed into the individual strands of the gauze and is not squeezed out when the strands are pressed, and the cotton strands themselves become conductive channels.

[0017] In one embodiment of the medical electrode, the pressing means is a plastic micro-bristle structure in contact with multiple strands of absorbent material. In another embodiment, the pressing means has additional means on the top surface of the electrode to assist in applying pressure to the electrode, the top surface being the surface facing away from the target skin area. The additional means is an external mechanical or electromechanical means that applies pressure to the electrode. The additional means applies pressure for a specific time range due to physical, electrical, or chemical properties. In one embodiment, the additional means is an air bubble on the electrode, containing a standard amount of air. A specific amount / range of pressure must be applied to burst the bubble. Until the bubble bursts, the pressure built up inside is applied evenly across the entire bottom surface of the bubble, which is aligned with the pressing means on the top surface of the medical electrode and faces away from the skin. In another embodiment, the additional means is a plastic disk designed to crack once a specific amount of pressure is reached, evenly distributing the pressure up to that point.

[0018] In one embodiment of the medical electrode, the conductive means is positioned adjacent to the pressing means. In this context, the term "adjacent" includes the conductive means being located near, next to, by the side of, on top of, or offset to the pressing means. In one embodiment of the medical electrode, the conductive means is a plastic substrate coated with a conductive metal layer on a surface that contacts the absorbent material, the surface facing the target skin area. In one embodiment of the medical electrode, the conductive metal layer is silver / silver chloride. In one embodiment of the medical electrode, the plastic substrate is electrically attached to a flexible printed circuit board. In one embodiment, the conductive means has a stainless steel part on its upper surface that interfaces / locks to a standard electrocardiogram cable connector to form a connection with any measurement device, including, but not limited to, fetal or adult ECG devices, neural signal measurement devices (e.g., EEG), etc. Stainless steel parts include, but are not limited to, studs, wires, crocodile clip connectors, banana stud connectors, or universal snap and tab connectors.

[0019] In one embodiment, the medical electrodes are connected to a measurement device for measuring and recording biopotential signals detected by the electrodes. The electrodes can be used to measure any biopotential signal, including, but not limited to, fetal and adult ECG measurements, nerve signal measurements, etc. The present invention is specifically designed to detect and measure weak signals through the skin by reducing skin impedance, generating low levels of baseline noise at the electrode entry site, and eliminating the need to ablate the skin at the electrode contact site.

[0020] In one embodiment, the support means is for supporting the electrode and holding the electrode in contact with the target skin area of ​​the patient. In one embodiment, the support means includes two tapes: a backing tape onto which the electrode components are assembled, and a foam-based pressure-sensitive adhesive for adhering the assembled electrode to the patient's skin. In another embodiment, the support means further comprises a cover that is a sheet, film, or membrane having liquid-resistant properties on the upper surface of the electrode, the upper surface being away from the patient's skin.

[0021] In one embodiment, the medical electrode comprises a medical electrode system including at least one electrode connected to a flexible base that removably engages with a measurement device, the at least one electrode system including a plurality of electrodes connected to the flexible base to form a multi-electrode system, the multi-electrode system being connected to the measurement device.

[0022] In one embodiment, a method of using a medical electrode or a medical electrode system comprising multiple electrodes includes placing the electrode directly on a target skin area of ​​a patient, pressing the electrode into the skin to press the electrolyte-infused strands of absorbent material through the stratum corneum, and displaying biopotential signal values ​​detected by the electrode on a measurement device.

[0023] FIG. 1A illustrates one embodiment of a medical electrode of the present invention. This figure shows a medical electrode (100) in an exploded form, comprising one or more layers of soft cotton gauze or gauze-like structure (8) infused with an electrolyte solution (6), a pressing means (7) (in the assembled form) that contacts the cotton gauze (8) and presses the gauze strands into the skin at multiple locations, and a conductive means (3). In this embodiment, the pressing means (7) is a plastic micro-hair structure formed with vertical plastic bristles. The gauze (8) strands form an electrical channel between the penetration site (9) in the stratum corneum (10) and the conductive means (3) (FIG. 1C). The gauze (8), conductive means (3), and pressing means (7) are assembled on a backing tape (1) encapsulated in a foam-based pressure-sensitive adhesive (2). The pressure sensitive adhesive cavity (5) is shaped to concentrate the gauze strands at the junction with the conductive means (3). In this embodiment, the conductive means (3) is offset from the pressing means (7) so that pressure is applied directly to the gauze (8).

[0024] Assembly of the electrode involves placing the conductive means (3) on the adhesive side of the backing tape (1), with the adhesive side facing the patient's skin. A pressing means (7) with micro-bristles is offset from the conductive means (3) and affixed to this adhesive surface with the bristles facing the skin. This structure is assembled into a cavity (5) in a foam-based pressure-sensitive adhesive (2), with the adhesive side of the pressure-sensitive adhesive facing the skin. The cavity is closed by the backing tape, so that the system is closed from the top, with the surface facing away from the skin. A gauze (8) is placed into the cavity (5) to occupy the remaining volume of the cavity, and an electrolyte gel (6) is added. The gauze absorbs the electrolyte gel. The gel is the electrolyte medium, allowing ion exchange between the skin surface and the silver / silver chloride-coated conductive means. The electrolyte is the medium in which the biopotential measurement is performed.

[0025] Figures 1B, 1C, and 1D show the medical electrode (100) of Figure 1A being pressed into a target skin area. The plastic bristles of the pressing means (7) press the strands of absorbent material (8) into the stratum corneum (10) at the entry site (9). Figure 1D shows how, upon application of pressure to the pressing means (arrows indicate the direction of pressure), the bristles, and thus the electrolyte-infused strands of absorbent material, are pressed into the stratum corneum (10). The electrode has a stainless steel part (4) on its top surface that interfaces / locks to a standard electrocardiogram cable connector to form a connection with any measuring device. The electrode in this embodiment has an additional means (11) on its top surface to assist in applying pressure to the electrode.

[0026] FIG. 1E shows an embodiment of a multi-electrode system. In this embodiment, the multi-electrode patch includes six electrodes. The electrodes are connected to a flexible base that removably engages with a monitoring device for detecting maternal and / or fetal electrophysiological signals from the electrodes. The flexible base in this embodiment includes a flexible substrate (12), a plastic unit (13), and a pressure-sensitive adhesive foam ring (15) for attaching the base of the multi-electrode patch to the patient's skin. The module includes a mechanism for removably mechanically engaging with the monitoring device and an electrical connection unit (14) for making electrical connections from the electrodes to a readout device. Engaging the patch with the monitoring device involves both a mechanical module unit and an electrical module unit.

[0027] The following experimental examples illustrate the present invention but do not limit its scope.

[0028] [Example 1] The noise characteristics of the electrodes of the present invention were compared to prior art electrodes. The electrodes of the present invention comprise an absorbent material that is cotton gauze, while the prior art electrodes comprise a sponge-based system. Two electrodes were applied to different locations on the abdomen, 6 cm apart. The noise at the sites was measured using the 3M® solid gel electrodes and found to be equivalent. These values ​​were used as a baseline for noise levels before applying the sponge or gauze electrodes.

[0029] Forty subjects of different ages, genders, and skin types were studied. The results of five scans are shown in the table below. The noise detected by the cotton gauze electrodes was at least three times lower than that of the sponge-based electrodes, with subject 2 showing a 20-fold reduction in noise.

[0030] [Table 1]

[0031] Thus, the present invention includes a low-cost medical electrode that effectively reduces skin impedance at the electrode-skin interface, generates low levels of baseline noise, avoids the need for skin ablation before electrode placement, and allows for even distribution of electrolyte without air bubbles, which can be placed on any part of the body and reduces patient discomfort during electrode placement.

[0032] While the present invention has been described with respect to specific embodiments, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the scope of the invention as defined in the claims.

Claims

1. A medical electrode, Electrolytes, an absorbent material in contact with the electrolyte, the absorbent material including a plurality of strands, each strand being infused with the electrolyte; a pressing means in contact with the absorbent material, the pressing means including a plurality of protrusions for pressing the strands of the absorbent material through the stratum corneum of the target skin area of ​​the patient; a conductive means disposed adjacent to the pressing means and in contact with the absorbent material, wherein each strand of the absorbent material infused with electrolyte serves as a conductive channel from the stratum corneum penetration site to the conductive means; a support means for supporting the electrode and holding the electrode in contact with a target skin area of ​​a patient; A medical electrode comprising:

2. 10. The medical electrode of claim 1, wherein the absorbent material comprises a plurality of strands in a gauze structure.

3. 2. The medical electrode of claim 1, wherein the absorbent material is cotton fiber.

4. 2. The medical electrode of claim 1, wherein the conductive means is a plastic substrate coated with a conductive metal layer on a surface in contact with the absorbent material, the surface facing the target skin area.

5. 5. The medical electrode according to claim 4, wherein the conductive metal layer is silver / silver chloride.

6. The medical electrode of claim 4 , wherein the plastic substrate is connected to a flexible printed circuit board.

7. 2. The medical electrode of claim 1, wherein the pressing means has further means on an upper surface of the electrode to assist in applying pressure onto the electrode, the upper surface being the surface facing away from the target skin area.

8. 2. A medical electrode according to claim 1, connected to a measuring device for measuring and recording biopotential signals detected by said electrode.

9. 10. A medical electrode system comprising at least one electrode according to claim 1 connected to a flexible base that removably engages a measurement device.

Citation Information

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