Electrosurgical Cutting Tools
The electrosurgical tool with dual electrode pairs on jaws provides improved cutting and coagulation in fatty tissue by employing RF and microwave energy modalities, addressing inefficiencies in existing tools and achieving uniform tissue treatment.
Patent Information
- Application Number
- JP2023516596
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-11-12
- Filing Date
- 2021-10-06
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2041-10-06
AI Technical Summary
Existing electrosurgical cutting tools struggle to effectively cut and coagulate fatty tissue using radio frequency (RF) energy and microwave energy, as they are less efficient in fatty tissue due to reduced ionic constituents and electrical effects, leading to uneven cuts and charred tissue margins.
An electrosurgical tool with a pair of jaws, each equipped with an electrode pair, capable of delivering RF and microwave energy, allowing for multiple operational modalities including RF-based gliding cuts, scissor-type cuts, and coagulation, with electrode configurations that establish multiple RF fields and uniform microwave fields for improved tissue cutting and coagulation.
The tool achieves smoother, more uniform cuts and effective tissue coagulation and ablation in fatty tissue by utilizing multiple RF and microwave fields, ensuring precise and efficient cutting and sealing.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to electrosurgical ablation tools for cutting, coagulating, and ablating biological tissue. In particular, the present invention relates to electrosurgical ablation tools capable of delivering radio frequency (RF) energy and / or microwave frequency energy for cutting biological tissue, achieving hemostasis (i.e., sealing broken blood vessels by promoting blood clotting), and ablating tissue. [Background technology]
[0002] Surgical resection is a means of removing part of an organ from the human or animal body. Organs may be highly vascular. When tissue is cut (i.e., divided or transected), small blood vessels may be damaged or rupture. Initial bleeding is followed by a clotting cascade in which the blood turns into a clot in an attempt to plug the bleeding. Because it is desirable for patients to lose as little blood as possible during surgery, various devices have been developed in an attempt to produce a bleeding-free resection. In the case of endoscopic procedures, bleeding that occurs and is not properly managed is also undesirable because the blood flow can obscure the surgeon's view.
[0003] Instead of using sharp blades, it is known to use radio frequency (RF) energy to cut biological tissue. Cutting methods using RF energy operate on the principle that when an electric current passes through a tissue matrix (assisted by the ionic contents of cells), the impedance to the flow of electrons across the tissue generates heat. When a pure sine wave is applied to the tissue matrix, sufficient heat is generated within the cells to vaporize the tissue's water. Consequently, the internal pressure of the cells increases significantly, becoming uncontrollable by the cell membrane and resulting in cell rupture. When this occurs over a large area, tissue is seen to be severed. While the above procedure works well in lean tissue, it is less effective in fatty tissue, due to the lack of ionic constituents that aid the passage of electrons. This means that the latent heat of vaporization of fat is much greater than that of water, requiring much more energy to vaporize the cell's contents.
[0004] RF coagulation works by applying a less efficient waveform to tissue, heating the cellular contents to approximately 65°C instead of vaporizing them, dehydrating the tissue and denaturing proteins in the vessel wall. This denaturation acts as a stimulus for the coagulation cascade, promoting clotting. Simultaneously, the collagen in the wall denatures, changing from rod-shaped molecules to coil-shaped molecules, causing the vessel to contract and reduce in size, providing an anchor point for the clot and reducing the area of blockage. However, RF coagulation is less efficient in the presence of fatty tissue, as the electrical effect is reduced. Therefore, it can be very difficult to seal fatty bleeding areas. Instead of having clean white margins, the tissue has a black, charred appearance.
[0005] Tissue ablation using microwave electromagnetic (EM) energy is based on the fact that biological tissue is primarily composed of water. Human soft organ tissue typically has a water content of 70% to 80%. Water molecules possess a permanent electric dipole moment, meaning that there is an imbalance of charge throughout the molecule. This charge imbalance causes the molecules to rotate and move in response to forces generated by the application of a time-varying electric field, aligning their electric dipole moment with the polarity of the applied field. At microwave frequencies, rapid molecular vibrations cause frictional heating, resulting in the dissipation of field energy in the form of heat. This is known as dielectric heating. This principle is utilized in microwave ablation, where the application of a localized electromagnetic field at microwave frequencies rapidly heats water molecules in targeted tissue, resulting in tissue coagulation and cell death. Summary of the Invention
[0006] Most generally, the present invention provides an electrosurgical resection tool having an energy delivery structure that provides multiple operational modalities to facilitate the cutting and sealing of biological tissue using radio frequency (RF) electromagnetic energy and / or microwave EM energy. In particular, the present invention relates to a combination of actuation and energy transmission mechanisms that is compact enough to allow the tool to be inserted through the instrument channel of a surgical scope device, such as an endoscope, gastroscope, or bronchoscope. The device can also be used in laparoscopic or open surgery, i.e., for bloodless resection of liver lobes with the abdominal cavity open.
[0007] The present invention represents an advancement on the electrosurgical cutting tool concept discussed in GB2567480. The electrosurgical cutting tool of the present invention includes a pair of jaws, each having a respective electrode pair. This allows the electrosurgical cutting tool to operate according to three complementary modalities: (i) RF-based gliding cuts when the jaws are closed; (ii) scissor-type cuts performed on tissue grasped between the jaws using a combination of RF energy and applied pressure; and (iii) coagulation or vessel-sealing operations performed on tissue grasped between the jaws using a combination of microwave energy and applied pressure. The inventors have discovered that by providing an electrode pair on each jaw, it is possible to improve the tool's ability to cut and coagulate tissue using EM energy. In particular, such an arrangement of electrodes can enable the establishment of multiple RF fields across the jaws, which can result in smoother, more uniform cuts. Similarly, such electrode configurations can result in more effective tissue coagulation and ablation using microwave energy by allowing for a more uniform microwave field to be emitted and / or by emitting multiple microwave fields across the jaws.
[0008] In accordance with the present invention, an electrosurgical ablation tool is provided, the tool comprising: an energy transmission structure for transmitting radio frequency (RF) electromagnetic (EM) energy and microwave EM energy, the energy transmission structure comprising a coaxial transmission line having an inner conductor separated from an outer conductor by an insulator material; and an instrument tip attached to a distal end of the energy transmission structure, the instrument tip including a first jaw and a second jaw, the second jaw being movable relative to the first jaw between a closed position in which the first and second jaws are positioned alongside one another and an open position in which the second jaw is separated from the first jaw by a gap for receiving biological tissue, the first jaw including a first electrode pair electrically insulated from one another, and the second jaw including a second electrode pair electrically insulated from one another, the first electrode pair coupled to the energy transmission structure such that the first electrode pair is operable as an active electrode and a return electrode for delivering the RF EM energy transmitted by the energy transmission structure, and the second electrode pair is operable to receive the RF EM energy transmitted by the energy transmission structure. An electrosurgical ablation tool is provided that is coupled to an energy transfer structure so as to be operable as an active electrode and a return electrode for delivering EM energy, and wherein first and second electrode pairs are operable as microwave field emitting structures for emitting microwave EM energy carried by the energy transfer structure.
[0009] The energy transmission structure may be disposed in the lumen of the shaft (or outer sheath) such that the tip of the instrument protrudes from the distal end of the shaft (or outer sheath). The shaft may be any suitable shaft into which a coaxial transmission line can be inserted. The shaft may be flexible, e.g., suitable for bending or other manipulation to reach the treatment site. A flexible shaft may allow the device to be used in a surgical scope device, such as an endoscope. In other examples, the shaft may be rigid, e.g., for use in open surgery or laparoscopy.
[0010] The coaxial transmission line may be adapted to transmit both RF EM energy and microwave EM energy. Alternatively, the energy transmission structure may include different paths for the RF EM energy and microwave EM energy. For example, microwave EM energy may be delivered through a coaxial transmission line, while RF EM energy may be delivered via a twisted pair of wires, etc. The coaxial transmission line may be in the form of a flexible coaxial cable.
[0011] For example, the inner conductor may be electrically connected to a first electrode of a first electrode pair and a first electrode of a second electrode pair, and the outer electrode may be electrically connected to a second electrode of the first electrode pair and a second electrode of the second electrode pair. With this configuration, RF EM and / or microwave EM may be transmitted to the first and second electrode pairs by a coaxial transmission line.
[0012] The first and second jaws are attached to the distal end of the energy transfer structure so as to be movable relative to one another between an open position and a closed position. Various types of relative movement between the jaws can be utilized. The relative movement between the first and second jaws can include rotational and / or translational movement. At least one of the first and second jaws can be movably attached to the distal end of the energy transfer structure, allowing for relative movement between the first and second jaws. In some cases, only one of the first and second jaws can be movably attached to the distal end of the energy transfer structure, while in other cases, both the first and second jaws can be movably attached to the distal end of the energy transfer structure.
[0013] For example, the first and second jaws may be pivotable relative to one another, e.g., to allow an opening angle between the first and second jaws to be adjusted. An example of this may resemble a scissors-type closure. The first and / or second jaws may be pivotally attached to a distal end of the energy transfer structure.
[0014] In another example, it may be beneficial for the gap between the first and second jaws to be uniform once tissue is grasped therebetween, for example, to ensure uniform energy delivery along the length of the jaws. In this example, the first and second jaws may be configured to remain parallel when moved relative to one another. For example, the first and second jaws may be parallel when the jaws are in the open position, and the first and second jaws may remain parallel when sliding past one another to the closed position.
[0015] The first jaw can include a first blade element and the second jaw can include a second blade element, such that when the jaws are in a closed position, the first blade element can be positioned alongside the second blade element, and when the jaws are in an open position, a gap can exist between the first and second blade elements to receive biological tissue.
[0016] The first and second blade elements can be configured to cut tissue disposed in a gap between the first and second jaws when the first and second jaws are moved from the open position to the closed position. Accordingly, the first and second blade elements can each include a cutting (e.g., sharp) edge positioned to cut tissue. A cutting interface can be defined between the first and second jaws corresponding to an area where the tissue is cut between the jaws when the jaws are closed.
[0017] The first and second blade elements can be arranged to slide past each other when the first and second jaws move between the open and closed positions to perform mechanical cutting of tissue, for example, by application of a shear force. Thus, the cutting performed by the first and second blade elements can resemble a scissors-type cutting mechanism.
[0018] The first and / or second blade elements can include one or more serrations (e.g., teeth), which can facilitate grasping and cutting of tissue located in the gap between the jaws.
[0019] The electrosurgical resection tool can include an actuator for controlling movement of the second jaw relative to the first jaw. The actuator can include any suitable type of actuator for controlling relative movement between the jaws. By way of example, the actuator can include a control rod extending along the energy transmission structure (e.g., inside the shaft) and movable along its length to control the position of one or both of the jaws. The control rod has an attachment mechanism that engages with one or both of the first and second jaws, such that longitudinal movement of the control rod causes movement of the second jaw relative to the first jaw. The attachment mechanism can be a hook or any suitable engagement for transmitting pushing and pulling forces to one or both of the jaws.
[0020] A first electrode pair is disposed on the first jaw, with a first electrode in the first pair acting as an active electrode for RF EM energy and a second electrode in the first pair acting as a return electrode for RF EM energy. In this manner, RF EM energy carried by the energy transmission structure can be delivered to tissue via the first electrode pair. The first electrode pair can establish a first RF cutting field with the RF EM energy from the energy transmission structure to cut the target tissue. The first electrode pair can be exposed on a surface of the first jaw so that they can contact the target tissue and deliver RF EM energy to the target tissue.
[0021] A second electrode pair is disposed on the second jaw, with a first electrode in the second pair acting as an active electrode for RF EM energy and a second electrode in the second pair acting as a return electrode for RF EM energy. In this manner, RF EM energy carried by the energy transmission structure can be further delivered to tissue via the second electrode pair. The second electrode pair can establish a second RF cutting field with the RF EM energy from the energy transmission structure to cut the target tissue. The second electrode pair can be exposed on a surface of the second jaw so that they can contact the target tissue and deliver RF EM energy to the target tissue.
[0022] Thus, when RF EM energy is transmitted by the energy transmission structure, a first RF cutting field is established by the first electrode pair and a second RF cutting field is established by the second electrode pair. In other words, a respective RF cutting field can be established at each jaw. Additionally, RF cutting fields can be established between the jaws, for example, between the active electrode of the first jaw and the return electrode of the second jaw (and vice versa). In this way, RF cutting can occur not only between the jaws but also at each jaw. This allows RF cutting to occur over a larger area of tissue, resulting in more uniform RF cutting.
[0023] Furthermore, the first and second electrode pairs serve to define a microwave field radiating structure for radiating (or emitting) microwave EM energy from the energy transmission structure. Thus, microwave EM energy carried by the energy transmission structure can be radiated from the first and second electrode pairs into target tissue to coagulate and / or ablate the target tissue. Thus, the first and second electrode pairs can function as one or more microwave antennas for delivering microwave EM energy to tissue. The specific shape of the radiated microwave field(s) depends on the arrangement of the electrode pairs of the jaws. In some examples, each electrode pair can function as a respective microwave field radiating structure, such that a respective microwave field is radiated at each jaw. Additionally or alternatively, the first and second electrode pairs can together form a microwave field radiating structure, such that a common microwave field is radiated across both jaws. The use of electrode pairs in each jaw to emit microwave EM energy can help improve the uniformity and symmetry of the microwave field(s) emitted across the jaws, which can improve the effectiveness of treating tissue with microwave energy.
[0024] In some embodiments, the first jaw may include a first planar insulator element having an inner surface facing toward the second jaw and an outer surface facing away from the second jaw, the first electrode pair including an inner electrode and an outer electrode disposed on the inner and outer surfaces of the first planar insulator element, respectively, and the second jaw may include a second planar insulator element having an inner surface facing toward the first jaw and an outer surface facing away from the first jaw, the second electrode pair including an inner electrode and an outer electrode disposed on the inner and outer surfaces of the second planar insulator element, respectively. Thus, each jaw may include an inner electrode and an outer electrode spaced apart by the respective planar insulator element. The inner surfaces of the first and second planar insulator elements may face each other across the cutting interface between the first and second blade elements. As a result, the first and second electrode pairs may be substantially aligned laterally with each other when the jaws are closed. This may allow for effective treatment of target tissue over a large area when the jaws are closed.
[0025] The first and second planar insulator elements can be substantially parallel to one another, e.g., a plane defined by an inner surface of the first planar insulator element can be substantially parallel to a plane defined by an inner surface of the second planar insulator element. The first and second planar insulator elements can each be aligned parallel to a plane in which the first and second jaws are movable relative to one another.
[0026] Each of the first and second planar insulator elements may be formed by a piece of insulating (i.e., dielectric) material, such as ceramic (e.g., alumina). Reference herein to a "planar" element may mean a flat piece of material having a thickness substantially less than its width and length. Each planar insulator element may have a length dimension aligned longitudinally, a thickness dimension aligned laterally, and a width dimension orthogonal to both the length and thickness dimensions. The plane of the planar insulator element is the plane in which the length and width dimensions lie, i.e., the plane orthogonal to the width dimension. The inner and outer surfaces of each planar insulator element may be parallel to the plane of the planar insulator element, i.e., they may be orthogonal to the width dimension. The inner and outer surfaces of each planar insulator element may be disposed on opposite sides of the planar insulator element with respect to its width.
[0027] The use of planar insulator elements in each jaw where the electrodes are located can significantly facilitate the manufacture of the instrument tip. This is because electrodes can be easily formed on their inner and outer surfaces, for example, by depositing conductive material on the surface and / or by attaching conductive elements to the surface. In contrast, in prior art resection tools, the jaws are typically made of a conductive material coated with an insulating material, and the electrodes are defined by areas of the jaw where the insulating material is etched away. Defining the electrodes by etching away the insulating material can be a tedious and time-consuming process. Furthermore, the inventors have discovered that tissue can adhere to the insulating material, making the instrument tip difficult to clean. Therefore, the use of planar insulator elements in the jaws not only facilitates the manufacture of the instrument tip, but also prevents tissue from adhering to the instrument tip.
[0028] In some cases, the first planar insulator element can define a first blade element. For example, the first planar insulator element can include a cutting edge configured to contact tissue positioned between the jaws and cut the tissue when the jaws are closed. The first pair of inner electrodes can then be formed at or near the cutting edge of the first planar insulator element.
[0029] Similarly, the second planar insulator element can define a second blade element, e.g., the second planar insulator element can include a cutting edge configured to contact and cut tissue located between the jaws. A second pair of inner electrodes can then be formed at or near the cutting edge of the second planar insulator element.
[0030] Where the first planar insulator element defines a first blade element and the second planar insulator element defines a second blade element, the inner surface of the first planar insulator element can be arranged to slide across the inner surface of the second planar insulator element as the jaws move between the open and closed positions.
[0031] The inner electrode of a first electrode pair can include a first conductive layer formed on the inner surface of a first planar insulator element, and the inner electrode of a second electrode pair can include a second conductive layer formed on the inner surface of a second planar insulator element. Thus, each pair of inner electrodes can be formed by a respective layer of conductive material directly on the inner surface of the respective planar insulator element. For example, the layer of conductive material can be deposited using any suitable deposition technique, or the layer of conductive material can be attached to the inner surface in other ways (e.g., via an adhesive). The conductive layer of each inner electrode can be formed of any suitable conductive material, such as gold.
[0032] The first conductive layer can extend longitudinally, i.e., along all or part of the length of the first planar insulator element, and similarly, the second conductive layer can extend longitudinally, i.e., along all or part of the length of the second planar insulator element.
[0033] Additionally, in some cases, the outer electrode of the first electrode pair can include a third conductive layer formed on the outer surface of the first planar insulator element, and the outer electrode of the second electrode pair can include a fourth conductive layer formed on the outer surface of the second planar insulator element. The third and fourth conductive layers can be formed similarly to the first and second conductive layers described above.
[0034] Thus, patterning and etching of an insulating layer on any of the jaws to form the electrodes may not be required, which may greatly facilitate manufacturing of the instrument tip.
[0035] The first jaw may further include a first conductive shell attached to the outer surface of the first planar insulator element and positioned to form at least a portion of the outer electrode of the first electrode pair, and the second jaw may further include a second conductive shell attached to the outer surface of the second planar insulator element and positioned to form at least a portion of the outer electrode of the second electrode pair. Thus, the outer electrode of each electrode pair may include a conductive shell attached to the outer surface of the corresponding planar insulator element. The first conductive shell may define the outer surface of the first jaw, while the second conductive shell may define the outer surface of the second jaw. Thus, each conductive shell may serve the dual purpose of defining the outer electrode and protecting the planar insulator element to which it is attached. Each conductive shell may be formed from a piece of conductive material attached (e.g., via adhesive and / or mechanical fastening) to the outer surface of the corresponding planar insulator element. Any suitable conductive material, such as stainless steel, may be used for the conductive shells.
[0036] The surface area of the first conductive shell may be greater than the surface area of the inner electrode of the first electrode pair. For example, the first conductive shell may be formed from a relatively thick block of conductive material covering all or most of the outer surface of the first planar insulator element, while the inner electrode may be formed as a relatively thin conductive layer on the inner surface of the first planar insulator element. Similarly, the surface area of the second conductive shell may be greater than the surface area of the inner electrode of the second electrode pair. Thus, the conductive shell can serve to increase the surface area of the outer electrode of each pair relative to the inner electrode.
[0037] The inventors have discovered that when RF cutting tissue using spaced-apart electrode pairs with different sizes, the tissue tends to be cut near the smaller of the two electrodes. Therefore, using a conductive shell with a larger surface area compared to the inner electrode can ensure that RF cutting of tissue occurs near the inner electrode. This allows RF EM energy to be used to produce a clear cut in tissue located between the jaws. In particular, this can help ensure that the cut produced by the RF EM energy is located at or near the cutting interface between the blade elements. Furthermore, because both electrode pairs include a large outer electrode due to their respective conductive shells, each electrode pair can produce RF tissue cuts that are concentrated on both sides of the cutting interface between the blade elements. As a result, effective RF cutting of tissue located between the jaws can be ensured.
[0038] The first and second conductive shells may be electrically coupled to each other. In other words, the first pair of outer electrodes and the second pair of outer electrodes may be electrically connected to each other. In this way, the first and second conductive shells together may function as a single, large outer electrode for both electrode pairs. This may help further focus the RF cutting around the inner electrode and thus the cutting interface between the blade elements. This may enable fine, precise RF cutting of tissue between the jaws. The first and second conductive shells may be electrically coupled to each other by any suitable means. For example, an electrical connector may be coupled between the first and second conductive shells. In some cases, the first and second conductive shells may both be coupled to a common conductor of the energy transfer structure such that the first and second conductive shells are electrically coupled via the energy transfer structure.
[0039] The instrument tip can further include a base structure connecting the first and second conductive shells to the distal end of the energy transfer structure. In this manner, the first conductive shell can serve as a support for the first jaw, through which the first jaw is attached to the distal end of the energy transfer structure. Similarly, the second conductive shell can serve as a support for the second jaw, through which the second jaw is attached to the distal end of the energy transfer structure. This can facilitate attachment of the jaws to the distal end of the energy transfer structure, as the conductive shells can be exposed on the outer surfaces of the jaws and easily connected to the base structure. This can also avoid the need to machine any mounting holes in the planar insulator element, which can typically be made of a brittle material that is difficult to machine.
[0040] The base structure may be any suitable structure for supporting the jaws at the end of the energy transmission structure. For example, the base structure may comprise an arm fixed at one end to the distal end of the energy transmission structure and connected at the other end to the first and second jaws. Such a base structure may help stiffen the distal end of the energy transmission structure (which may typically be flexible) and facilitate the transmission of longitudinal forces to the tip of the instrument. The base structure may comprise a rigid material (e.g., a metal such as stainless steel).
[0041] The first jaw and / or the second jaw can be movably connected to the base structure to allow relative movement between the first jaw and the second jaw, for example, the first jaw and / or the second jaw can be pivotally connected to the base structure.
[0042] The base structure can include a first base portion that rigidly connects the first conductive shell to the distal end of the energy transfer structure and a second base portion to which the second conductive shell is pivotally connected, such that the second jaw is pivotable relative to the second base portion. Thus, the first jaw is static, i.e., fixed relative to the base structure and thus relative to the distal end of the energy transfer structure, while the second jaw is pivotable. Thus, the jaws can be moved between open and closed positions by pivoting the second jaw.
[0043] In some cases, the first base portion may be part of the first conductive shell, i.e., the first conductive shell may form part of the base structure. For example, the first base portion may be part of the first conductive shell extending between the first jaw and the distal end of the energy transfer structure. This may help ensure a solid connection between the first jaw and the distal end of the energy transfer structure and facilitate electrical connection between the first pair of outer electrodes and the energy transfer structure.
[0044] The base structure can include (e.g., consist of) a conductive material that electrically connects the first conductive shell to a first conductor of the inner conductor and the outer conductor at the distal end of the coaxial transmission line. In this manner, the first conductive shell can be directly connected to the conductors of the coaxial transmission line through the base structure. For example, the first base portion can include a conductive material that electrically connects the first conductive shell to a first conductor of the inner conductor and the outer conductor.
[0045] Additionally or alternatively, the base structure can include (e.g., consist of) a conductive material that electrically connects the second conductive shell to a first of the inner and outer conductors at the distal end of the coaxial transmission line. In this manner, the second conductive shell can be directly connected to the conductors of the coaxial transmission line through the base structure. For example, the second base portion can include a conductive material that electrically connects the second conductive shell to a first of the inner and outer conductors.
[0046] When the first and second conductive shells are electrically coupled to one another, the base structure can include (e.g., consist of) a conductive material that connects each of the first and second conductive shells to the first conductors of the inner and outer conductors at the distal end of the coaxial transmission line. Thus, the first and second conductive shells can be electrically coupled through the base structure.
[0047] The base structure may define a cavity in which the inner electrode of the first electrode pair and / or the inner electrode of the second electrode pair are electrically connected to the second of the inner and outer conductors at the distal end of the coaxial transmission line. In this manner, the base structure may function to protect the electrical connection between the inner electrode of the first pair and / or the second pair and the second of the inner and outer conductors. The conductive material of the base structure may also serve to provide electromagnetic shielding for the electrical connection within the cavity. The cavity may be a space or void defined within the base structure.
[0048] The cavity may include an insulating material, which may ensure that the electrical connections in the cavity are electrically isolated to avoid a disconnection between the electrical connections inside the cavity and the surrounding base structure. The insulating material may be any suitable type of insulating material. As an example, an electrical potting material such as a thermosetting plastic, silicone, epoxy, or resin may be used as the insulating material in the cavity.
[0049] The base structure may include an opening formed in a sidewall of the base structure for injecting an insulating material into the cavity. For example, the opening may be a hole or aperture formed in the sidewall of the base structure. This may allow the insulating material to be injected into the cavity after assembling the instrument tip with the distal end of the energy transmission structure. This may facilitate assembly of the instrument tip.
[0050] In some embodiments, the outer electrode of the first electrode pair and the outer electrode of the second electrode pair can both be electrically connected to the first of the inner and outer conductors, and the inner electrode of the first electrode pair and the inner electrode of the second electrode pair can both be electrically connected to the second of the inner and outer conductors. Such an electrode configuration can allow a first RF cutting field to be established between the first electrode pair and a second RF cutting field to be established between the second electrode pair, thereby allowing RF cutting of tissue to occur at both jaws. The two RF fields can be substantially symmetrical about the cutting interface between the blade elements, which can result in highly uniform cutting of tissue held between the jaws. Furthermore, such an electrode configuration can emit a substantially symmetric microwave field across the jaws, enabling microwave ablation and / or coagulation of tissue around the jaws.
[0051] An example of such an embodiment may be where there is a first conductive shell and a second conductive shell electrically coupled to each other and connected to a first of the inner and outer conductors, and the inner electrodes of both pairs are connected to the second of the inner and outer conductors.
[0052] The inner electrodes of the first electrode pair and the inner electrodes of the second electrode pair may contact each other, forming a sliding electrical contact therebetween. Thus, the inner electrodes of the two pairs may be in physical contact with each other, such that they are in direct electrical contact with each other. The inner electrodes of the first pair may be positioned to slide across the inner electrodes of the second pair when the jaws are moved between the open and closed positions. The inner electrodes of the two pairs may be shaped so that a portion of the inner electrodes remains in physical contact even when the jaws are in the open position. Such electrical contact between the inner electrodes of each jaw allows them to effectively function as a single, larger electrode. This may also allow only one of the inner electrodes to be directly connected to the energy transfer structure, facilitating electrical connection between the energy transfer structure and the inner electrodes.
[0053] For example, the first electrode can be connected to a first contact pad located on the inner surface of the first planar insulator element, and the second electrode can be connected to a second contact pad located on the inner surface of the second planar insulator element, with the first and second contact pads contacting each other such that a sliding electrical contact is formed therebetween. The first and second contact pads can be aligned with an axis about which the first and second jaws are pivotable relative to each other. This can ensure that the contact pads remain in contact as the jaws pivot relative to each other.
[0054] The first jaw may be fixed relative to the distal end of the energy transfer structure, and the second jaw may be movable relative to the distal end of the energy transfer structure. The inner electrode of the first electrode pair may be electrically connected to one of the inner and outer conductors. Thus, the inner electrode of the movable jaw (i.e., the second jaw) may not need to be directly electrically connected to the energy transfer structure, since it is connected via electrical contact with the inner electrode of the fixed jaw (i.e., the first jaw). This simplifies the structure of the instrument tip and improves the reliability of the electrical connection to the inner electrode of the movable jaw (e.g., because it is not connected via a wire that may break due to jaw movement). For example, the first jaw may be rigidly attached to the distal end of the energy transfer structure (e.g., via the first base portion described above), while the second jaw may be pivotally attached relative to the first jaw (and thus relative to the distal end of the energy transfer structure).
[0055] In some embodiments, the outer electrode of a first electrode pair and the inner electrode of a second electrode pair can be electrically connected to a first of the inner and outer conductors, and the inner electrode of the first electrode pair and the outer electrode of the second electrode pair can be electrically connected to a second of the inner and outer conductors. In other words, the inner electrodes of each pair can have opposite polarities, and the outer electrodes of each pair can have opposite polarities. Such an electrode configuration can allow a first RF cutting field to be established between the first electrode pair, a second RF cutting field to be established between the second electrode pair, and a third RF cutting field to be established between the first and second pair of inner electrodes. As a result, RF tissue cutting can occur at each jaw and at the cutting interface between the first and second blade elements. Thus, RF cutting can occur across an area corresponding to the jaws. Furthermore, such an electrode configuration can emit two separate microwave fields. The first microwave field is from the first electrode pair and the second microwave field is from the second electrode pair, which may improve uniformity of microwave ablation and / or coagulation of tissue around the jaws.
[0056] The first jaw and / or the second jaw may include an insulating material disposed between the inner electrode of the first electrode pair and the inner electrode of the second electrode pair to insulate them from one another. In some cases, the insulating material may be disposed entirely within the first jaw or the second jaw. Alternatively, the insulating material may be split between the two jaws, i.e., a first portion of the insulating material may be disposed within the first jaw and a second portion of the insulating material may be disposed within the second jaw.
[0057] The insulating material may be in the form of a planar insulating element and may have a shape similar to the first and / or second planar insulating elements. The insulating material may be arranged to define all or part of one of the blade elements. For example, the insulating material may include a cutting edge arranged to contact and cut tissue located between the jaws.
[0058] The instrument tip can be sized to fit within an instrument channel of a surgical scope device. Accordingly, in another aspect, the present invention provides an electrosurgical apparatus comprising: an electrosurgical generator for supplying radio frequency (RF) electromagnetic (EM) energy and microwave EM energy; a surgical scope device having an instrument cord for insertion into a patient's body, the surgical scope device having an instrument channel through which the instrument cord extends; and an electrosurgical cutting tool as described above for insertion through the instrument channel of the surgical scope device.
[0059] The apparatus can include a handpiece for controlling the electrosurgical cutting tool, which can be attached to the proximal end of the shaft, for example, on the exterior of a surgical scope device.
[0060] As used herein, the term "surgical scope device" may refer to any surgical device that includes an insertion tube, which is a rigid or flexible (e.g., steerable) conduit that is introduced into a patient's body during an invasive procedure. The insertion tube may include an instrument channel and an optical channel (e.g., for transmitting light to illuminate the treatment site at the distal end of the insertion tube and / or capture images of the treatment site). The instrument channel may have a diameter suitable for accepting an invasive surgical tool. The diameter of the instrument channel may be 5 mm or less.
[0061] As used herein, the term "inner" means radially closer to the center (e.g., axis) of the instrument channel and / or coaxial transmission line. The term "outer" means radially farther from the center (axis) of the instrument channel and / or coaxial transmission line.
[0062] The term "conductive" is used herein to mean electrically conductive, unless the context indicates otherwise.
[0063] As used herein, the terms "proximal" and "distal" refer to the ends of an elongate tool. In use, the proximal end is closer to the generator that provides RF and / or microwave energy, while the distal end is further from the generator.
[0064] As used herein, "microwave" may be used broadly to refer to a frequency range of 400 MHz to 100 GHz, but preferably refers to the range of 1 GHz to 60 GHz. Specific frequencies considered are 915 MHz, 2.45 GHz, 3.3 GHz, 5.8 GHz, 10 GHz, 14.5 GHz, and 24 GHz. In contrast, this specification uses "radio frequency" or "RF" to refer to a frequency range at least three orders of magnitude lower, e.g., up to 300 MHz, preferably 10 kHz to 1 MHz, and most preferably 400 kHz.
[0065] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will now be described in detail with reference to the accompanying drawings. [Brief explanation of the drawings]
[0066] [Figure 1] 1 is a schematic diagram of an electrosurgical system according to an embodiment of the present invention; [Figure 2] 1 is a schematic perspective view of an electrosurgical cutting tool in accordance with an embodiment of the present invention; [Figure 3] 3 is a schematic perspective view of the electrosurgical cutting tool of FIG. 2. [Figure 4] FIG. 3 is a schematic diagram showing the components of the electrosurgical cutting tool of FIG. 2. [Figure 5] FIG. 3 is a schematic diagram showing the components of the electrosurgical cutting tool of FIG. 2. [Figure 6] FIG. 3 is a schematic diagram showing the components of the electrosurgical cutting tool of FIG. 2 before assembly. [Figure 7] 3 is a schematic diagram of the electrosurgical cutting tool of FIG. 2 prior to complete assembly. [Figure 8] 3 is a schematic diagram of the electrosurgical cutting tool of FIG. 2 prior to complete assembly. [Figure 9]1 is a schematic diagram illustrating an instrument tip of an electrosurgical cutting tool according to an embodiment of the present invention. [Figure 10] 1 is a schematic diagram illustrating an instrument tip of an electrosurgical cutting tool according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0067] FIG. 1 is a schematic diagram of a complete electrosurgical system 100 according to an embodiment of the present invention. The system 100 is configured to treat (e.g., cut or seal) biological tissue using radio frequency (RF) or microwave electromagnetic (EM) energy from the tip of an instrument. The system 100 includes a generator 102 for controllably supplying RF and microwave EM energy. Suitable generators for this purpose are described in WO 2012 / 076844, incorporated herein by reference. The generator 102 is connected to a handpiece 106 by an interface cable 104. The handpiece 106 may also be connected to receive a supply of fluid 107 from a fluid delivery device 108, such as a syringe, although this is not required. Optionally, the handpiece 106 can house an instrument actuation mechanism, such as a thumb-operated slider or plunger, operable by an actuator 109. For example, the instrument actuation mechanism can be used to operate the opening and closing of the jaws of a cutting instrument, as discussed herein. Other mechanisms can also be included in the handpiece. For example, a needle movement mechanism (operable by an appropriate trigger on the handpiece) can be provided to deploy a needle at the tip of the instrument. The function of the handpiece 106 is to couple inputs from the generator 102, the fluid delivery device 108, and the instrument actuation mechanism, along with any other inputs required, to a single flexible shaft 112 extending from the distal end of the handpiece 106.
[0068] The flexible shaft 112 is insertable through the entire length of the instrument (working) channel of the surgical scope device 114. The flexible shaft 112 has an instrument tip 118 shaped to pass through the instrument channel of the surgical scope device 114 and protrude (e.g., into a patient's body) at the distal end of the endoscope's insertion tube. The instrument tip 118 includes a pair of jaws having blade elements for grasping and cutting biological tissue and an energy delivery structure arranged to deliver RF or microwave EM energy transmitted from the generator 102. Optionally, the instrument tip 118 may also include a retractable hypodermic needle for delivering fluid delivered from the fluid delivery device 108. The handpiece 106 includes an actuation mechanism for opening and closing the jaws of the instrument tip 118. The handpiece 106 may also include a rotation mechanism for rotating the instrument tip 118 relative to the instrument channel of the surgical scope device 114.
[0069] The structure of the instrument tip 118 can be configured to have a maximum outer diameter suitable for passage through the working channel. Typically, the diameter of the working channel of a surgical scope device, such as an endoscope, is less than 4.0 mm, e.g., 2.8 mm, 3.2 mm, 3.7 mm, or 3.8 mm. The flexible shaft 112 can have a smaller maximum diameter, e.g., 2.65 mm. The length of the flexible shaft 112 can be 1.2 m or more, e.g., 2 m or more. In other examples, the instrument tip 118 can be attached to the distal end of the flexible shaft 112 after the shaft is inserted through the working channel (and before the instrument cord is introduced into the patient). Alternatively, the flexible shaft 112 can be inserted distally into the working channel before making its proximal connection. In these configurations, the distal tip assembly 118 can be allowed to have dimensions larger than the working channel of the surgical scope device 114. The above-described system is one method for introducing an instrument into a patient's body. Other techniques are possible. For example, the device may be inserted using a catheter.
[0070] Although the examples herein are presented in the context of a surgical scope device, it should be understood that the electrosurgical cutting instrument may be embodied in a device suitable for use in open surgery or with a laparoscope.
[0071] Figures 2-8 show an instrument tip 200 of an electrosurgical cutting tool according to an embodiment of the present invention. The instrument tip 200 may correspond, for example, to the instrument tip 118 described above in connection with Figure 1. Figure 2 shows a first schematic perspective view of the instrument tip 200 depicting a first side of the instrument tip 200, and Figure 3 shows a second schematic perspective view of the instrument tip 200 showing a second side of the instrument tip 200. Figures 4-8 show the structure of the instrument tip 200.
[0072] The instrument tip 200 is attached to the distal end of an energy transfer structure in the form of a coaxial cable 202 (shown in FIGS. 4 and 6-8). The coaxial cable 202 extends through a flexible shaft 204, which may correspond to the flexible shaft 112 described above. In particular, the flexible shaft 204 defines a lumen through which the coaxial cable 202 extends, with the instrument tip 200 protruding from the distal end of the flexible shaft 204. The coaxial cable 202 is positioned to transfer RF and microwave EM energy from an electrosurgical generator (e.g., the generator 102 described above) to the instrument tip 200.
[0073] The instrument tip 200 has a first jaw 206 and a second jaw 208 that are movable relative to one another between an open position and a closed position. Specifically, in the illustrated example, the first jaw 206 is stationary, i.e., fixed relative to the distal end of the coaxial cable 202, while the second jaw 208 is pivotally attached to the first jaw 206. To control the movement of the second jaw 208 relative to the first jaw 206, an actuator in the form of a control wire (or rod) 210 is connected to the second jaw 208 (see, e.g., FIGS. 3 and 8 ). The control wire 210 is disposed within a lumen of the flexible shaft 204 and is longitudinally slidable therein to move the second jaw 208. A proximal end of the control wire 210 may be connected to a handpiece (e.g., handpiece 106) operable to control the movement of the second jaw 208 via the control wire 210. 2 and 3 show the jaws 206, 208 in an open position, defining a gap between the jaws 206, 208 that can receive tissue.
[0074] First jaw 206 includes a first blade element 212, and second jaw 208 includes a second blade element 214. Each blade element may include an edge positioned to contact tissue located in the gap between the jaws and cut the tissue when the jaws are moved to the closed position. Specifically, second blade element 214 is positioned to slide across first blade element 212 as second jaw 208 moves toward the closed position so as to apply a shear force to tissue located in the gap between jaws 206, 208. Thus, tissue located in the gap between the jaws can be cut by pivoting second jaw 208 toward the closed position.
[0075] The first blade element 212 is defined by a first planar insulator element 216 of the first jaw 206, and the second blade element 214 is defined by a second planar insulator element 218 of the second jaw 208. In particular, the first planar insulator element 216 includes an inner surface 220 facing the second planar insulator element 218, and when the second jaw 208 is pivoted relative to the first jaw 206, the inner surface 222 of the second planar insulator element 218 slides against it. This creates a shear motion between the two planar insulator elements. Each of the first and second planar insulator elements can be made from ceramic (e.g., alumina) or other suitable electrically insulating material. The first and second planar insulator elements each define a plane parallel to the plane in which the second jaw 208 pivots relative to the first jaw 206. The second planar insulator element 218 includes a pair of protrusions (or teeth) 223 that function as serrations on the second blade element 214. The protrusions 223 may therefore function to grasp tissue located in the gap between the jaws to facilitate holding and / or cutting of the tissue. The first planar insulator element 216 includes similar protrusions (not shown) that may function as serrations on the first blade element 212.
[0076] The instrument tip 200 further includes two electrode pairs, one disposed on each jaw. The first jaw 206 includes an inner electrode 224 formed on the inner surface 220 of the first planar insulator element 216 and an outer electrode 226 disposed on the outer surface of the first planar insulator element 216. Similarly, the second jaw 206 includes an inner electrode 228 formed on the inner surface 222 of the second planar insulator element 218 and an outer electrode 230 disposed on the outer surface of the second planar insulator element 218. Thus, the first planar insulator element 216 serves to electrically insulate the inner and outer electrodes of the first jaw 206 from each other, and the second planar insulator element 218 serves to electrically insulate the inner and outer electrodes of the second jaw 208 from each other.
[0077] The inner electrode 224 of the first jaw 206 is formed by a layer or film of conductive material (e.g., gold) deposited on the inner surface 220 of the first planar insulator element 216. The inner electrode 224 covers a portion of the inner surface 220 and extends along the cutting edge of the first blade element 212 (i.e., the first planar insulator element 216) so that it is located at the cutting interface between the first and second blade elements when the jaws are closed. The outer electrode 226 of the first jaw 206 is in the form of a first conductive shell attached (e.g., glued) to the outer surface of the first planar insulator element 216. The first conductive shell is a piece of conductive material that covers the entire outer surface of the first planar insulator element 216 and has a thickness similar to that of the first planar insulator element 216. The outer surface of the first conductive shell acts on the outer surface of the first jaw 206. The outer surface of the first conductive shell may be rounded so that the first jaw 206 has a smooth outer surface.
[0078] The electrodes of the second jaw 208 are formed in a manner similar to that of the first jaw 206. In particular, the inner electrode 228 of the second jaw 208 is formed by a layer or film of conductive material (e.g., gold) deposited on the inner surface 222 of the second planar insulator element 218. The inner electrode 228 covers a portion of the inner surface 222 and extends along the cutting edge of the second blade element 214 (i.e., the second planar insulator element 218) so that it is located at the cut interface between the first and second blade elements when the jaws are closed. The outer electrode 230 of the second jaw 208 is in the form of a second conductive shell that is attached (e.g., glued) to the outer surface of the second planar insulator element 218. The second conductive shell is a piece of conductive material that covers most of the outer surface of the second planar insulator element 218 and has a thickness similar to that of the second planar insulator element 218. The outer surface of the second conductive shell forms the outer surface of the second jaw 206. As shown in FIG. 2 , the second conductive shell has a protrusion 232 that engages a groove in the second planar insulator element 218. The engagement of the protrusion 232 in the groove helps align the second conductive shell with the second planar insulator element 218 and prevent slippage between the two parts. Naturally, different types of engagement mechanisms can be used to position the second conductive shell relative to the second planar insulator element 218. A similar engagement mechanism can also be used to position the first conductive shell relative to the first planar insulator element 216.
[0079] The electrode pair on each jaw is electrically connected to the distal end of the coaxial cable 202 so that the electrodes can deliver RF and microwave EM energy carried by the coaxial cable 202. The manner in which the electrodes are connected to the coaxial cable is discussed in more detail below.
[0080] The structure of the instrument tip 200 will now be described with reference to Figures 4-8. The figures illustrate various stages of assembly of the instrument tip 200. The coaxial cable 202 includes an inner conductor 234 and an outer conductor 236 separated by insulating material 238. The coaxial cable 202 further includes an outer sheath 240 made of insulating material. The first jaw 206 and the second jaw 208 are attached to the distal end of the coaxial cable 202 via a base structure 242. The base structure 242 includes a first base portion 244 made of a conductive material, which securely connects the first jaw 206 to the distal end of the coaxial cable 202. The first base portion 244 includes an arm extending between the distal end of the coaxial cable 202 and the first conductive shell (forming the outer electrode 226 of the first jaw 206). In the illustrated example, the first conductive shell and the first base portion 244 are integrally formed as a single piece of conductive material. However, in other examples, they may be formed as separate components connected to each other. The first base portion 244 includes a first mounting portion 246 that includes a channel into which the distal end of the coaxial cable 202 is received. A length of the outer sheath 240 of the coaxial cable 202 is removed near the distal end of the coaxial cable, exposing the outer conductor 236. The outer conductor 236 is therefore in electrical contact with the first base portion 244 in the channel of the first mounting portion 246. The distal end of the coaxial cable 202 can be secured to the channel of the first mounting portion 246 using a suitable conductive epoxy. As a result, the first conductive shell (and therefore the outer electrode 226 of the first jaw 206) is electrically connected to the outer conductor 236 via the first base portion 244.
[0081] The base structure 242 further includes a second base portion 248 that pivotally mounts the second jaw 208 to the distal end of the coaxial cable 202. The second base portion 248 is made of a conductive material, which may be the same material as the first base portion 244 (e.g., stainless steel). The second base portion 248 includes a second mounting portion 250 that is secured to the first mounting portion 246 of the first base portion 244 so that the first and second base portions 244 and 248 are in electrical contact. The first and second mounting portions 246 and 250 have complementary shaped mating surfaces that engage with each other when the base portions are secured together. As shown in FIG. 8 , the first and second base portions 244 and 248 are secured together via a conductive ring 252 that fits around the first and second mounting portions 246 and 250 to hold them together. An adhesive may be injected inside the conductive ring 252 to secure the conductive ring 252 in place across the first and second mounting portions. In addition to holding the base structure 242 together, the conductive ring 252 may act as a microwave shield, preventing microwave energy from radiating before it reaches the jaw electrodes.
[0082] The second base portion 248 includes an arm extending longitudinally from the second mounting portion 250, to which a second conductive shell (forming the outer electrode 230 of the second jaw 208) is pivotally attached. In the example shown, the second conductive shell is pivotally attached to the second base portion 240 via a rivet 254. The second conductive shell is in electrical contact with the second base portion 248 via the rivet 254 (made of a conductive material). Thus, the second conductive shell (and therefore the outer electrode 230 of the second jaw 208) is electrically connected to the outer conductor 236 of the coaxial cable 202. Thus, both the outer electrode 226 of the first jaw 206 and the outer electrode 230 of the second jaw are electrically connected to the outer conductor 236 via the base structure 242.
[0083] 6, the second base portion 248 may include a passageway 249 through which the control wire 210 extends to connect to the second jaw 208. The second conductive shell may include an attachment portion 251 to which the distal end of the control wire 210 connects. The second conductive shell may also be provided with a limit pin 253 (shown in FIG. 6), which serves to limit the movement of the second jaw 208 relative to the first jaw 206 between the open and closed positions. This may allow for more precise control of the position of the second jaw 208.
[0084] The inner electrode 224 of the first jaw 206 is electrically connected to the inner conductor 234 of the coaxial cable 202. As shown in FIG. 4 , the first planar insulator element 216 includes a connection portion 256 extending between the first blade element 212 and the distal end of the coaxial cable 202. The distal end of the inner conductor 234 protrudes beyond the distal end of the coaxial cable 202 and resides in the connection portion 256 of the first planar insulator element 216. A wire 258 extends longitudinally along the connection portion 256 of the first planar insulator element and electrically connects the inner electrode 224 to the distal end of the inner conductor 234. The wire 258 may be a portion of the inner electrode 224 that extends along the connection portion 256; for example, the wire 258 and the inner electrode 224 may be deposited together on the inner surface 220 of the first planar insulator element 216.
[0085] The wire 258 comprises a first connection pad 260 (shown in FIGS. 4 and 5) formed on the inner surface 220 of the first planar insulator element 216. The first connection pad 260 is positioned to contact a second connection pad 262 (shown in FIG. 6) formed on the inner surface 222 of the second planar insulator element 218, such that sliding electrical contact is made between the first connection pad 260 and the second connection pad 262. In particular, the first and second connection pads are positioned about the axis of the rivet 254, about which the second jaw 208 pivots. Thus, the second connection pad 262 remains in electrical contact with the first connection pad 260 as the second jaw 208 pivots relative to the first jaw 206. The second connection pad 262 is electrically connected to the inner electrode 228 of the second jaw 208. For example, the second connection pad 262 may be part of the inner electrode 228 and / or may be deposited on the inner surface 222 along with the inner electrode 228. In this manner, the inner electrode 228 of the second jaw 208 is electrically connected to the inner conductor 234 via the connection pads 260, 262 and the wire 258.
[0086] An insulator block 264 is attached between the second base portion 248 and the first planar insulator element 216 to avoid an electrical discontinuity between the wire 258 and the conductive second base portion 248. For example, the insulator block 264 can be made of a ceramic material such as alumina. The insulator block 264 can be secured in place using an adhesive. Additionally, as shown in FIG. 7 , the base structure 242 is shaped so that a cavity 266 is formed between the first base portion 244 and the second base portion 248, within which the inner conductor 234 is electrically connected to the wire 258 (and thus to the inner electrodes 224, 228). The cavity 266 can be filled with an insulator material, such as a potting material, to reduce the risk of an electrical discontinuity between the distal end of the inner conductor 234 and the base structure 242. Filling the cavity 266 with an insulator material can also serve to reinforce the instrument tip 200 and hold the first and second base portions together. The second base portion 248 includes an injection port 268 through which an insulator material can be injected into the cavity 266 .
[0087] To assemble the instrument tip 200, the first base portion 244 and first jaw 208 may first be assembled and connected to the distal end of the coaxial cable 202, as shown in FIG. 4. As shown in FIGS. 5 and 6, the second jaw 208 is connected to the second base portion 248 via a rivet 254. Next, an insulator block 264 may be placed on the inner surface 220 of the first planar insulator element 216 (as shown in FIG. 6), after which the second base portion 248 is attached to the first base portion 244 (as shown in FIG. 7). An insulator potting material may then be injected into the cavity 266 via the injection port 268. The conductive ring 252 may then be slid over the coaxial cable 202 and onto the first and second mounting portions 246, 250 to hold the first and second base portions 244, 248 together. As described above, an adhesive may be used to secure the conductive ring 252 onto the first mounting portion 246 and the second mounting portion 250. The control wire 210 may then be threaded through a passage 249 in the second base portion 248 and connected to an attachment portion of the second jaw 208 (as shown in FIG. 8). Finally, the flexible shaft 204 may be pulled over the coaxial cable 202 and secured to the conductive ring 252, for example, using an adhesive.
[0088] In the embodiment described with reference to Figures 2-8, only one of the jaws is movable. However, in other embodiments, both jaws may be movably attached to the distal end of the coaxial cable 202, for example, to provide scissor-like opening and closing of the jaws. It should also be noted that different embodiments may use different electrical connections to the electrodes. For example, in some embodiments, the inner electrode may be connected to the outer conductor 236, while the outer electrode may be connected to the inner conductor. Various electrode configurations are discussed below with reference to Figures 9 and 10.
[0089] 9 and 10 are schematic diagrams illustrating possible electrode configurations in electrosurgical cutting tools according to embodiments of the present invention.
[0090] 9 shows a schematic cross-sectional view of a portion of an instrument tip 900 of an electrosurgical cutting tool having a first jaw 902 and a second jaw 904. The first and second jaws are movable (e.g., pivotable) relative to one another and each include a respective blade element for cutting tissue located between the jaws. The first jaw 902 includes a first inner electrode 906 and a first outer electrode 908 separated by a first insulating material 910. The first inner electrode 906 is electrically connected to the inner conductor of a coaxial cable of the electrosurgical cutting tool, while the first outer electrode 908 is electrically connected to the outer conductor of the coaxial cable. Similarly, the second jaw 904 includes a second inner electrode 912 and a second outer electrode 914 separated by a second insulating material 916. The second inner electrode 912 is electrically connected to the inner conductor of the coaxial cable, while the second outer electrode 914 is electrically connected to the outer conductor of the coaxial cable. The "+" and "-" symbols in Figures 9-10 indicate whether each electrode is connected to the inner or outer conductor of the coaxial cable, with "+" indicating that the electrode is connected to the inner conductor and "-" indicating that the electrode is connected to the outer conductor.
[0091] 9 may correspond to the electrode configuration of instrument tip 200 described above, where an inner electrode is connected to the inner conductor of a coaxial cable and an outer electrode is connected to the outer conductor of the coaxial cable. Thus, for example, first inner electrode 906 may correspond to inner electrode 224, first outer electrode 908 may correspond to outer electrode 226, first insulator material 910 may correspond to first planar insulator element 216, second inner electrode 912 may correspond to inner electrode 228, second outer electrode 914 may correspond to outer electrode 230, and second insulator material 916 may correspond to second planar insulator element 218. Thus, there may be a slidable electrical contact (not shown) between first inner conductor 906 and second inner conductor 912.
[0092] In the electrode configuration shown in FIG. 9 , two RF cutting fields can be generated when RF EM energy is transmitted to the electrodes via the coaxial cable. A first RF cutting field can be established between the first inner electrode 906 and the first outer electrode 908, with the first inner electrode 906 acting as the first active electrode and the first outer electrode 908 acting as the first return electrode for RF EM energy. Similarly, a second RF cutting field can be established between the second inner electrode 912 and the second outer electrode 914, with the second inner electrode 912 acting as the second active electrode and the second outer electrode 914 acting as the second return electrode for RF EM energy. As a result, the RF cutting field can be substantially symmetrical about the interface between the two jaws, enabling uniform RF tissue cutting. Furthermore, in the above-described instrument tip 200 embodiment in which the inner electrode is formed by a thin layer of conductive material while the outer electrode is formed by a large conductive shell, RF cutting can be concentrated near the inner electrode. This is because RF cutting of the tissue tends to occur at the smaller of the two electrodes. Thus, by making the outer electrodes 908, 914 larger than the inner electrodes 906, 912 (e.g., by dedicating a larger surface area to them), RF cutting of the tissue can be concentrated at the interface between the first and second jaws 902, 904, which can achieve fine and precise cutting.
[0093] When microwave EM energy is delivered to the electrodes of the jaws 902, 904 via the coaxial cable, a microwave field can be established around the jaws. In particular, the inner and outer electrodes can together function as a microwave field-radiating structure (or antenna structure) for emitting microwave energy. Because the first inner electrode 906 and the second inner electrode 912 are electrically connected to each other, they can function as a single microwave emitter that emits microwave energy. The first outer electrode 908 and the second outer electrode 914 can function as ground conductors that shape the emitted microwave energy. Such a microwave field-radiating structure can result in a substantially symmetrical microwave field being radiated around the jaws. In the embodiment of the instrument tip 200, because the outer conductor is provided on the conductive shell of the outer surface of the jaws, the emitted microwave energy can be concentrated around the jaws and in the gap between the jaws. This can ensure that microwave ablation and / or coagulation of tissue occurs in a well-defined area around the jaws.
[0094] Of course, in other embodiments, the polarity of the electrodes may be reversed compared to that shown in Figure 9. For example, in some embodiments, the first inner electrode 906 may be connected to the outer conductor, the first outer electrode 908 may be connected to the inner conductor, the second inner electrode 912 may be connected to the outer conductor, and the second outer electrode 914 may be connected to the inner conductor.
[0095] 10 shows a schematic cross-sectional view of a portion of an instrument tip 1000 of an electrosurgical cutting tool having a first jaw 1002 and a second jaw 1004. The first and second jaws are movable (e.g., pivotable) relative to one another and each include a respective blade element for cutting tissue located between the jaws. The first jaw 1002 includes a first inner electrode 1006 and a first outer electrode 1008 separated by a first insulating material 1010. The first inner electrode 1006 is electrically connected to the outer conductor of a coaxial cable of the electrosurgical cutting tool, while the first outer electrode 1008 is electrically connected to the inner conductor of the coaxial cable. Similarly, the second jaw 1004 includes a second inner electrode 1012 and a second outer electrode 1014 separated by a second insulating material 1016. The second inner electrode 1012 is electrically connected to the outer conductor of the coaxial cable, while the second outer electrode 1014 is electrically connected to the inner conductor of the coaxial cable, so that the inner electrodes of the two jaws are connected to opposite conductors of the coaxial cable, and the outer electrodes of the two jaws are connected to opposite conductors of the coaxial cable.
[0096] To prevent electrical connection between the first inner electrode 1006 and the second inner electrode 1012, the second jaw 1004 includes a third insulator material 1018 covering the second inner electrode 1012 and disposed between the second inner electrode 1012 and the first inner electrode 1006. The third insulator material 1018 may be made of the same insulator material as the first and second insulator materials 1010, 1016 and may be in the form of, for example, a planar insulator element attached to the second jaw 1004. The third insulator material 1018 serves to define a blade element of the second jaw 1004; for example, the third insulator material 1018 may have a cutting edge positioned to cut tissue located between the jaws. The third insulator element 1018 may also serve to protect the second inner electrode 1018. Additionally or alternatively, a fourth piece of insulating material (not shown) may be provided on the first jaw 1002 such that it covers the first inner electrode 1006 and is positioned between the first inner electrode 1006 and the second inner electrode 1012. The fourth piece of insulating material may help define the blade element of the first jaw 1002. Covering each of the first and second inner conductors with insulating material in this manner can minimize the risk of electrical discontinuity between the inner electrodes. This can also improve symmetry between the jaws, which in turn can improve the symmetry of the RF and microwave energy emitted by the tip of the instrument.
[0097] In the electrode configuration shown in FIG. 10 , three RF ablation fields can be generated when RF EM energy is transmitted to the electrodes via the coaxial cable. A first RF ablation field can be established between the first inner electrode 1006 and the first outer electrode 1008, with the first inner electrode 1006 acting as a first return electrode and the first outer electrode 1008 acting as a first active electrode for RF EM energy. A second RF ablation field can be established between the second inner electrode 1012 and the second outer electrode 1014, with the second inner electrode 1012 acting as a second active electrode and the second outer electrode 1014 acting as a second return electrode for RF EM energy. Additionally, because the first inner electrode 1006 and the second inner electrode 1012 are connected to different conductors of the coaxial cable, a third RF ablation field can be established between them. As a result, RF ablation fields can be established at each jaw as well as between the jaws. This improves the uniformity with which RF cutting can be performed on tissue located between the jaws, allowing RF cutting to be performed over a larger area of the jaws. Similar to the discussion above, RF cutting can be concentrated at the interface between the jaws 1002, 1004 by increasing the size of the outer electrodes 1008, 1014 relative to the inner electrodes 1006, 1012. For example, the outer electrodes 1008, 1014 may be implemented by relatively large conductive shells on the exterior surfaces of the jaws, while the inner electrodes 1006, 1012 may be implemented by thin conductive layers on the jaws.
[0098] When microwave energy is delivered to the electrodes of the jaws 1002, 1004, a respective microwave field may be emitted by the electrode pair of each jaw. In particular, the first inner electrode 1006 and the first outer electrode 1008 may function as a first microwave field-emitting structure, while the second inner electrode 1012 and the second outer electrode 1014 may function as a second microwave field-emitting structure. As a result, a respective microwave field may be emitted by each jaw. This may allow tissue located between the jaws to be treated with microwave energy substantially symmetrically about the interface between the jaws. For example, this may allow tissue located between the jaws to be ablated and / or coagulated substantially uniformly on both sides.
[0099] Of course, in other embodiments, the polarity of the electrodes may be reversed compared to that shown in Figure 10. For example, in some embodiments, the first inner electrode 1006 may be connected to the inner conductor, the first outer electrode 1008 may be connected to the outer conductor, the second inner electrode 1012 may be connected to the outer conductor, and the second outer electrode 1014 may be connected to the second inner electrode.
[0100] It should be noted that the distal portion of the instrument shown in Figures 9 and 10 is not drawn to scale. Additionally, for purposes of illustration, Figures 9 and 10 do not depict the first and second jaws as touching. However, in practice, the first and second jaws may be in contact with one another, for example, they may be pivotally connected to one another.
Claims
1. 1. An electrosurgical cutting tool comprising: an energy transfer structure for carrying radio frequency (RF) electromagnetic (EM) energy and microwave EM energy, the energy transfer structure comprising a coaxial transmission line having an inner conductor separated from an outer conductor by an insulating material; an instrument tip attached to the distal end of the energy transfer structure, the instrument tip including a first jaw and a second jaw; the second jaw is movable relative to the first jaw between a closed position in which the first jaw and the second jaw are positioned alongside each other and an open position in which the second jaw is separated from the first jaw by a gap for receiving biological tissue, the first jaw is fixed relative to the distal end of the energy transfer structure and the second jaw is movable relative to the distal end of the energy transfer structure; the first jaw includes a first pair of electrodes that are electrically isolated from one another; the second jaw includes a second pair of electrodes electrically isolated from one another; the first electrode pair is coupled to the energy transfer structure such that the first electrode pair is operable as an active electrode and a return electrode for delivering RF EM energy carried by the energy transfer structure; the second electrode pair is coupled to the energy transfer structure such that the second electrode pair is operable as an active electrode and a return electrode for delivering RF EM energy carried by the energy transfer structure; the first and second electrode pairs are operable as microwave field radiating structures for emitting microwave EM energy carried by the energy transfer structure; the first jaw comprises a first planar insulator element having an inner surface facing toward the second jaw and an outer surface facing away from the second jaw, the first electrode pair comprising an inner electrode and an outer electrode disposed on the inner surface and the outer surface of the first planar insulator element, respectively; the second jaw comprises a second planar insulator element having an inner surface facing toward the first jaw and an outer surface facing away from the first jaw, the second electrode pair comprising an inner electrode and an outer electrode disposed on the inner surface and the outer surface of the second planar insulator element, respectively; the first jaw further comprises a first conductive shell attached to the outer surface of the first planar insulator element and positioned to form at least a portion of the outer electrode of the first electrode pair; the second jaw further comprises a second conductive shell attached to the outer surface of the second planar insulator element and positioned to form at least a portion of the outer electrode of the second electrode pair; the tip of the instrument further comprising a base structure connecting the first and second conductive shells to the distal end of the energy transfer structure; the base structure includes a first base portion rigidly connecting the first conductive shell to the distal end of the energy transfer structure and a second base portion to which the second conductive shell is pivotally connected, the second jaw being pivotable relative to the second base portion; the first base portion includes a first mounting portion including a channel into which the distal end of the energy transfer structure is received; the second base portion includes a second mounting portion; the electrosurgical cutting tool, wherein the first base portion and the second base portion are secured together via a conductive ring that fits around the first mounting portion and the second mounting portion to hold them together.
2. the inner electrode of the first electrode pair includes a first conductive layer formed on the inner surface of the first planar insulator element; the inner electrode of the second electrode pair includes a second conductive layer formed on the inner surface of the second planar insulator element; 10. The electrosurgical cutting tool of claim 1.
3. The electrosurgical cutting tool of claim 1 or 2, wherein the first conductive shell and the second conductive shell are electrically coupled to one another.
4. 4. The electrosurgical cutting tool of claim 1, wherein the base structure comprises a conductive material that electrically connects the first conductive shell and / or the second conductive shell to a first of the inner and outer conductors at a distal end of the coaxial transmission line.
5. 5. The electrosurgical cutting tool of claim 4, wherein the base structure defines a cavity in which the inner electrode of the first electrode pair and / or the inner electrode of the second electrode pair are electrically connected to a second one of the inner and outer conductors at the distal end of the coaxial transmission line.
6. The electrosurgical cutting tool of claim 5 , wherein the cavity comprises an insulating material.
7. The electrosurgical cutting tool of claim 5 or 6, wherein the base structure includes an opening formed in a sidewall thereof for injecting an insulating material into the cavity.
8. 8. The electrosurgical cutting tool of claim 1, wherein the outer electrode of the first electrode pair and the outer electrode of the second electrode pair are both electrically connected to a first one of the inner and outer conductors, and the inner electrode of the first electrode pair and the inner electrode of the second electrode pair are both electrically connected to a second one of the inner and outer conductors.
9. The electrosurgical cutting tool of claim 8 , wherein the inner electrode of the first electrode pair and the inner electrode of the second electrode pair contact each other, forming a sliding electrical contact therebetween.
10. The electrosurgical cutting tool of claim 9 , wherein the inner electrode of the first electrode pair is electrically connected to one of the inner conductor and the outer conductor.
11. the outer electrode of the first electrode pair and the inner electrode of the second electrode pair are connected to a first conductor of the inner conductor and the outer conductor; 3. The electrosurgical cutting tool of claim 1, wherein the inner electrode of the first electrode pair and the outer electrode of the second electrode pair are connected to a second one of the inner and outer conductors.
12. 12. The electrosurgical cutting tool of claim 11, wherein the first jaw and / or the second jaw includes an insulator material disposed between and insulating the inner electrode of the first electrode pair and the inner electrode of the second electrode pair from each other.
13. 1. An electrosurgical device comprising: an electrosurgical generator for delivering radio frequency (RF) electromagnetic (EM) energy and microwave frequency EM energy; a surgical scope device having an instrument cord for insertion into a patient's body, the instrument cord having an instrument channel extending therethrough; and An electrosurgical apparatus comprising an electrosurgical cutting tool according to any one of claims 1 to 12 inserted through the instrument channel of the surgical scope device.
Citation Information
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