Dental light curing device

The dental light-curing device with dual LEDs and a light mixing element ensures uniform light intensity distribution, addressing inefficiencies in existing devices and improving curing reliability and efficiency.

JP7742772B2Active Publication Date: 2025-09-22SOLVENTUM INTELLECTUAL PROPERTIES CO
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Patent Information

Application Number
JP2021505329
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-07-31
Filing Date
2019-07-23
Publication Date
2025-09-22
Estimated Expiration
2039-07-23

AI Technical Summary

Technical Problem

Existing dental light-curing devices do not effectively ensure uniform light intensity distribution for curing dental materials, leading to inefficiencies and potential under-curing.

Method used

A dental light-curing device with a first and second LED emitting different peak wavelengths and a light mixing element that uses total internal reflection to achieve uniform light intensity distribution, ensuring consistent curing efficiency.

Benefits of technology

The device provides uniform light intensity across the dental material, minimizing under-curing risks and enhancing curing reliability and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The dental light polymerization device has an intraoral tip portion and a handle portion. The dental light polymerization device also has a polymerization light source and a light-mixing element. The polymerization light source has a first LED exhibiting a first peak emission wavelength and a second LED exhibiting a second peak emission wavelength. The first LED and the second LED are each configured to emit visible light within a wavelength range of 380 nm to 495 nm. The first peak emission wavelength and the second peak emission wavelength differ from each other by at least 10 nm. The light-mixing element is formed of a solid, transparent body having a posterior portion and an adjacent anterior portion. The posterior portion has a truncated pyramidal shape with a square base. Furthermore, the anterior portion has a convex shape. The posterior portion forms a posterior end of the light-mixing element, and the anterior portion forms a front end of the light-mixing element. The posterior portion defines a first diagonal dimension, and the posterior portion adjacent to the anterior portion defines a second, larger diagonal dimension. The light-mixing element is positioned such that the posterior end faces the polymerization light source and the front end faces away from the polymerization light source.
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Description

[Technical Field]

[0001] The present invention relates to a dental light polymerization device having a first LED and a second LED exhibiting a first emission peak wavelength and a second emission peak wavelength that differ by at least 10 nm, and a light mixing element for mixing the light emitted from the first LED and the second LED into a light beam having a uniform light intensity distribution. [Background technology]

[0002] Light-curable or photocurable materials are widely used in dentistry for restoring teeth. Many such materials are engineered to provide optical properties similar to those of natural teeth. Furthermore, such materials can typically be accurately and conveniently placed and quickly hardened, and the hardened materials are typically relatively durable. Thus, these materials are a desirable alternative to less aesthetically pleasing materials that harden over time, such as amalgam.

[0003] Light-curable materials often include a polymerizable matrix material and a filler material containing a colorant, and are generally initially soft or flowable so that they can be applied to a desired location and shape. For example, for dental restorations, the dental material can be filled into a tooth cavity and shaped so that the restored tooth resembles a natural tooth. Once the desired shape is formed, the material can be hardened by exposure to light of a desired wavelength. Typically, the light activates a photoinitiator in the dental material, which polymerizes the matrix material.

[0004] The use of dental materials that can be cured with blue light within a wavelength range of approximately 450-500 nm (nanometers) has become common in dentistry. Accordingly, light-emitting elements used to cure such dental materials typically emit light within this wavelength range. Such light-emitting elements are available, for example, from 3M Deutschland GmbH, Germany, under the trade name Elipar™ S10.

[0005] WO 2015 / 164180(A1) discloses a dental light irradiation device adapted to emit blue light. The device comprises a light source, a means for collimating light emitted from the light source, and a light guide, the light collimating means including a plano-convex lens and a reflector formed by a conical hollow ring-like structure, the reflector being configured such that its internal cross section widens towards the lens.

[0006] Although existing devices offer certain advantages, it remains desirable to provide a light device that effects the curing of dental materials with maximized reliability and efficiency. Summary of the Invention

[0007] The present invention relates to a dental light-curing device. The dental light-curing device comprises an intraoral tip portion and a handle portion. The dental light-curing device further comprises a polymerization light source and a light-mixing element.

[0008] The polymerization light source includes at least a first LED and a second LED (light emitting diode). The first LED exhibits a first peak emission wavelength, and the second LED exhibits a second peak emission wavelength. The first LED and the second LED are each configured to emit visible light within a wavelength range of 380 nm to 495 nm. The first peak emission wavelength and the second peak emission wavelength differ from each other by at least 10 nm.

[0009] The light mixing element is formed of a solid transparent body having a rear portion and an adjacent front portion. The rear portion has the shape of a truncated pyramid with a square base. The central axis of the pyramid forms the optical axis. Furthermore, the front portion has a convex shape. The rear portion forms the rear end of the light mixing element, and the front portion forms the front end of the light mixing element.

[0010] The rear end defines a first diagonal dimension. Additionally, the rear portion adjacent to the front portion defines a second, larger diagonal dimension. The light mixing element is positioned such that the rear end faces the polymerization light source. The light mixing element is positioned such that the front end faces away from the polymerization light source.

[0011] The present invention advantageously provides a dental light polymerization device adapted to emit uniform light. Specifically, the light beam emitted by the dental light polymerization device along its optical axis has a uniform (or substantially uniform) light intensity distribution in a plane perpendicular to the optical axis. This means that the light beam at its outer periphery has the same (or essentially the same) light intensity as the light beam at its inner periphery. This allows the dental material to be cured with maximized efficiency, since the area of ​​the dental material is irradiated entirely with an intensity suitable for curing the dental material. Furthermore, this maximizes reliability, since the risk of irradiating the dental material with insufficient light intensity is minimized.

[0012] Preferably, the first and second diagonal dimensions each extend perpendicular to the optical axis. Furthermore, the first diagonal dimension is preferably formed by a square-shaped surface forming the rear end of the light mixing element. The second diagonal dimension is preferably formed by a square-shaped cross-section at the transition between the rear portion and the front portion. The second diagonal dimension is measured between directly opposite sides at the transition to the front portion. Preferably, the front portion is axisymmetrical with respect to the optical axis.

[0013] Preferably, the polymerization light source and the light mixing element are optically coupled such that light emitted from the polymerization light source passes through the light mixing element. The light mixing element is preferably configured to mix the light as it passes through the light mixing element. The light is preferably mixed such that the light is reflected multiple times by the light mixing element. Preferably, the reflection is based on total internal reflection between the light mixing element and the air surrounding the light mixing element. Preferably, the light mixing element is not coated, and in particular may not have a mirror finish.

[0014] As referred to herein, a first peak emission wavelength means that the light intensity across the light spectrum emitted from the first LED has a maximum value at the first peak emission wavelength, and as referred to herein, a second peak emission wavelength means that the light intensity across the light spectrum emitted from the second LED has a maximum value at the second peak emission wavelength.

[0015] In one embodiment, the first peak emission wavelength is a specific wavelength within the range of 440 nm to 460 nm, and the second peak emission wavelength is a specific wavelength within the range of 460 nm to 485 nm. This embodiment may be particularly advantageous when polymerizing dental materials containing camphorquinone as a photoinitiator. Therefore, alternative ranges of the first and second peak emission wavelengths may be used when polymerizing dental materials containing other photoinitiators. In one example, the first peak emission wavelength is 457 nm, and the second peak emission wavelength is 469 nm. Note that LEDs that can be used as the first and second LEDs of the present invention are typically available with peak emission wavelengths within the specified ranges. To provide a dental light-curing device of the present invention, LEDs exhibiting peak emission wavelengths as far apart as possible from each other may be selected. To achieve a difference of 45 nm, it would be preferable to use a first LED exhibiting a first peak emission wavelength of 440 nm and a second LED exhibiting a second peak emission wavelength of 485 nm, but it has been found that a difference of 10 nm has advantages for mass production of dental light curing devices. This is because the peak emission wavelengths of LEDs typically follow a normal distribution, making it economically disadvantageous to use LEDs with only extreme peak emission wavelengths.

[0016] In one embodiment, the intraoral tip portion comprises a light guide having a rear end and a front end. The front end of the light guide preferably forms the light output of the dental light polymerization device. The front end of the light guide may be formed by a curved portion of the light guide. The front end of the light guide is preferably that end of the light guide that is used to irradiate dental materials in or on the patient's teeth. Such a curved portion provides enhanced access to the patient's mouth. Furthermore, the light guide is positioned such that the rear end is adjacent to the front end of the light mixing element. Therefore, the front end of the light mixing element faces the light guide, specifically the rear end of the light guide.

[0017] In one embodiment, a gap is provided between the light mixing element and the polymerization light source. The gap between the light mixing element and the polymerization light source is preferably an air gap. The gap between the light mixing element and the polymerization light source preferably has a width of 0.1 mm to 1 mm, and preferably 0.5 mm.

[0018] In one embodiment, the dental light polymerization device includes a housing having a clear or transparent panel disposed between the front end of the light mixing element and the rear end of the light guide. The transparent panel is preferably spaced apart from the front end of the light mixing element and from the rear end of the light guide. The distance between the front end of the light mixing element and the transparent panel is preferably 0.1 mm to 3 mm, preferably 0.5 mm. Furthermore, the distance between the rear end of the light guide and the transparent panel is preferably 0.1 mm to 3 mm, preferably 0.5 mm.

[0019] In one embodiment, the dental light polymerization device has an operating mode in which the first LED and the second LED are simultaneously activated to emit light. The operating mode can be a preferred or default operating mode. The operating mode can also be the only operating mode. Optionally, the dental light polymerization device can have a further operating mode in which each of the first LED and the second LED can be selectively used individually.

[0020] In one embodiment, the first LED exhibits a first emission range in which light is emitted over a wavelength range of plus or minus 9 nm from a first peak emission wavelength, and the second LED exhibits a second emission range in which light is emitted over a wavelength range of plus or minus 10 nm from a second peak emission wavelength. The first and second emission ranges are defined based on FWHM values ​​(full width at half maximum values). For example, the first LED may exhibit a first emission range in which light is emitted over a wavelength range (FWHM) of 441 nm to 459 nm, and the second LED may exhibit a second emission range in which light is emitted over a wavelength range (FWHM) of 449 nm to 469 nm. Within the first emission range, any light emitted at wavelengths outside the first peak emission wavelength exhibits lower light intensity than light emitted at the first peak emission wavelength. Furthermore, within the second emission range, any light emitted at wavelengths outside the second emission peak wavelength of the second LED exhibits a lower light intensity than light emitted at the second emission peak wavelength.

[0021] A suitable LED that can be used as the first LED is available, for example, from Philips Lumileds, USA, under the trade name Luxeon Z Color Royal Blue. A suitable LED that can be used as the second LED is available, for example, from Philips Lumileds, USA, under the trade name Luxeon Z Color Blue.

[0022] In one embodiment, the light mixing element is monolithically formed. Preferably, the light mixing element is made of polymethylmethacrylate (PMMA) or glass. For example, the light mixing element may be injection molded in one piece.

[0023] In one embodiment, a first diagonal dimension of the light mixing element is defined by a square having a first side length. Preferably, the first side length is in the range of 2 mm to 6 mm. Preferably, a second diagonal dimension of the light mixing element is defined by a square having a second side length. Preferably, the second side length is in the range of 8 mm to 15 mm. Preferably, the first side length of the light mixing element is 3.5 mm. Preferably, the second side length of the light mixing element is 8 mm.

[0024] The length of the light mixing element is preferably in the range of 10 mm to 20 mm, and preferably 13 mm in particular. The length of the light mixing element is preferably greater than the second side length, preferably at least twice the second side length. It has been found that a larger length of the light mixing element results in better uniformity. On the other hand, the length of the light mixing element must be limited to avoid excessive intensity loss. By using the lengths specified herein, a suitable balance between maximizing uniformity and minimizing loss has been confirmed.

[0025] In one embodiment, the front portion of the light mixing element has a spherical shape. The spherical shape is preferably based on a radius of 12 mm to 25 mm, preferably 17 mm. Furthermore, the rear portion of the light mixing element preferably increases in size from a first diagonal dimension to a second diagonal dimension. The light mixing element is preferably completely transparent and surrounded by air. In particular, the light mixing element may not include any coatings and / or mirrored outer surfaces. Therefore, reflection of light through the light mixing element is based on total internal reflection at the boundary between the light mixing element and the surrounding air.

[0026] In one embodiment, the dental light curing device further includes an activator button for switching the polymerization light source on or off. The dental light curing device may further include a selector button for preselecting a period of time until the activated polymerization light source is automatically shut off. The dental light curing device may also be battery-powered. Specifically, the handle portion may include a battery for powering the dental light curing device. The dental light curing device may also be wireless. Specifically, the dental light curing device may not have a power cord. Furthermore, the battery may be rechargeable, for example, in a contactless manner. [Brief explanation of the drawings]

[0027] [Figure 1] 1 is a side view of a dental light polymerization device according to one embodiment of the present invention. [Figure 2] 1 is a cross-sectional view of a dental light polymerization device according to one embodiment of the present invention. [Figure 3] 1 is a detailed view of a polymerization light source that can be used in a dental light polymerization device according to one embodiment of the present invention. [Figure 4] 1 is a detailed view of a light mixing element that may be used in a dental light polymerization device according to one embodiment of the present invention. [Figure 5] FIG. 5 is a detailed view of the light mixing element of FIG. [Figure 6] 1 is a summary of light intensity distributions determined from a dental light polymerization device according to the present invention. [Figure 7] FIG. 2 shows light intensity curves for different wavelengths of light emitted from a dental light polymerization device according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0028] FIG. 1 shows a dental light polymerization device 1. The dental light polymerization device 1 has an intraoral tip portion 2 and a handle portion 3. The intraoral tip portion 2 includes a light guide 21 that forms a light output 22 at a free end of the light guide 21. The dental light polymerization device 1 of this embodiment also includes an on / off button 4 and a timer setting button 5. The on / off button 4 allows a user to selectively activate and deactivate the polymerization light device 1. Furthermore, the timer setting button 5 allows a user to adjust the period of time that the polymerization light device 1 automatically remains activated upon activation via the on / off button 4. The on / off button also allows a user to turn the dental light polymerization device off while the dental light polymerization device remains automatically activated. For example, initially pressing and releasing the on / off button 4 activates the dental light polymerization device 1 for the period of time selected via the timer setting button 5. If the on / off button is not further pressed, the dental light polymerization device 1 remains activated for the period of time. However, the dental light curing device 1 can be switched off at any time by pressing (and releasing) the on / off button while the dental light curing device 1 remains activated. The dental light curing device 1 can be held for use by a user at the handle portion 3.

[0029] 2 shows in cross section a dental light-curing device 1. The dental light-curing device 1 comprises a polymerization light source 6 for emitting blue light towards a light input 23 of a light guide 21. A light-mixing element 7 is arranged between the polymerization light source 6 and the light input 23.

[0030] The intraoral tip portion 2 includes a mount 24 for removably mounting the intraoral tip portion 2 onto the handle portion 3. The handle portion 3 includes a hermetic housing 31. The housing 31 hermetically encloses the polymerization light source 6, the light mixing element 7, a battery 32, and electronic circuitry 33. In this embodiment, the housing 31 has a window that is closed by a transparent panel 34. The transparent panel 34 is thus positioned between the light mixing element and the light input 23 of the light guide 21.

[0031] The dental light curing device 1 in this embodiment is a completely wireless device. This means that the dental light curing device 1 does not have, for example, a power cord, but is powered by a battery 32. The battery 32 can be recharged, for example, via contacts (not shown) provided on the housing 31 or wirelessly. A charging device (not shown) can be provided to charge the battery 32.

[0032] FIG. 3 shows the polymerization light source 6 in more detail. The polymerization light source 6 includes a first LED 61 and a second LED 62. The first and second LEDs 61, 62 are configured to emit light in different but overlapping wavelength ranges within the visible violet and blue light spectrum (380 nm to 495 nm). Therefore, the entire polymerization light source 6 is configured to emit light over an expanded wavelength range relative to the wavelength ranges of the individual first and second LEDs 61, 62. Specifically, in this embodiment, the first LED 61 is configured to emit light at a first emission peak wavelength of 457 nm, and the second LED 62 is configured to emit light at a second emission peak wavelength of 469 nm. As shown in FIG. 7, the resulting curve of light emitted from the dental polymerization light device 1 (shown as a solid line) forms a plateau P where the light intensity I is essentially the same across a wavelength range of approximately 454 nm to 472 nm. Therefore, dental composites containing camphorquinone can be cured with increased efficiency. The dashed curve in the diagram of Figure 7 represents the absorption spectrum of camphorquinone.

[0033] In this embodiment, the first LED 61 and the second LED 62 are provided in the form of dies that are bonded onto an electronic circuit board 63 and encapsulated by a transparent cover 64. The transparent cover 64 has a flat surface 64a through which light emitted from the first LED 61 and the second LED 62 is transmitted.

[0034] FIG. 4 shows the polymerization light source 6 and the light mixing element 7 in more detail. The light mixing element 7 is formed of a solid, transparent body, for example, made of polymethyl methacrylate (PMMA) or glass. Specifically, the light mixing element 7 has a rear portion 71 and an adjacent front portion 72. The rear portion 71 is shaped according to a truncated pyramid with a square base. The front portion 72 has a spherical outer surface that forms a front end 74 of the light mixing element 7. The axis of symmetry of the light mixing element 7 forms the optical axis A. The rear portion 71 and the front portion 72 are monolithically formed. Furthermore, the light mixing element 7 does not include an internal void. The rear portion 71 at the rear end 73 of the light mixing element 7 has a first diagonal dimension D1 (see FIG. 5 ). The rear end 73 forms a square-shaped rear surface, and the square has a first side length E1 corresponding to the first diagonal dimension D1 divided by 1.41. The rear portion 71 further has a larger second diagonal dimension D2 (see FIG. 5 ). The second diagonal dimension D2 is based on the square cross-section, and the square of the square shape has a second side length E2 corresponding to the second diagonal dimension D2 divided by 1.41. The light mixing element 7 is disposed with a rear portion 72 facing the polymerization light source 6 and a front portion 71 away from the polymerization light source 6. The polymerization light source 6 is disposed adjacent to (but not in direct contact with) the rear end 73 of the light mixing element 7 so that light emitted from the polymerization light source 6 is emitted into the light mixing element 7. Specifically, the polymerization light source 6 is disposed such that the first LED 61 and the second LED 62 are disposed symmetrically with respect to the optical axis A. Therefore, the light emitted from the first LED 61 and the second LED 62 is mixed approximately uniformly within the light mixing element 7. Due to the fact that the first LED 61 and the second LED 62 emit light in different wavelength ranges, the light emitted from the light mixing element generally forms an accumulation of light received within the light mixing element 7. The light emitted from the light mixing element 7 passes finally through a transparent panel 34 before it enters the light guide (shown in Figure 2).

[0035] The light-mixing element 7 is configured to convert light from the polymerization light source 6 into light having a uniform (or relatively uniform) light intensity distribution in a plane perpendicular to the optical axis A. The light intensity distribution of light emitted from the polymerization light source, transmitted through the light-mixing element, and exiting the transparent panel 34 was simulated using computer software. The simulation was performed using simulation software available from Synopsys™ Inc., USA, under the trade name LightTools. In this simulation, the light intensity distribution of light exiting the transparent panel 34 was determined in planes positioned directly on the transparent panel 34 and at multiple distances further from the transparent panel 34. Through determinations at various different distances, changes in the light intensity distribution over a range of distances can be evaluated. Changes in the light intensity distribution over distance can be problematic when using the dental light-curing device 1 in a patient's mouth, for example, when the light output (22 in FIG. 2) is positioned at various distances from the patient's teeth or the location where light is to be applied. In that regard, it should be noted that although the simulations were performed on a transparent panel 34, the changes in light intensity distribution would be the same (or essentially the same) if determined on the light output of the light guide, since the light guide—typically formed of a bundle of parallel transparent fibers—does not modify (or does not significantly modify) the light (and in particular the direction of the light) on its way from the light input (23 in FIG. 2) to the light output (22 in FIG. 2).

[0036] The locations where the light intensity distribution was determined are called M0 to M5. The corresponding distances are given in Table 1. [Table 1]

[0037] The results are shown in Figure 6. The light intensity distribution at each of the locations M0-M5 is shown in the form of a two-dimensional false color representation 100, in which different colors represent different light intensities. Each representation 100 represents the light intensity determined over a 4x4 mm reference area. The reference area is defined on a plane perpendicular to the optical axis of the light mixing element at each of the locations M0-M5. Furthermore, the reference area is positioned so that its center is on the optical axis. An ideal uniform distribution of light intensity is represented by a uniform color. The representation 100 at location M0 is relatively uniformly colored. The deviation between the intensities at different locations on the area is relatively small, as represented in Figures 101 and 102 at location M0. Figure 101 shows the light intensity of representation 100 in the form of a curve along the Y-axis, while Figure 102 shows the light intensity of representation 100 in the form of a curve along the X-axis. The curves in both Figures 101 and 102 each show a relatively flat portion across essentially the entire range of the reference area. This demonstrates that the light intensity distribution is relatively uniform. As can be seen from representation 100 at locations M0-M3, the uniformity of the light intensity distribution does not change significantly over a distance range of 5 mm. Over a distance range of up to 10 mm (see M4 and M5), the light intensity distribution remains acceptable.

Claims

1. 1. A dental light-curing device comprising an intraoral tip portion and a handle portion, further comprising a polymerization light source and a light-mixing element, wherein the polymerization light source comprises at least a first LED exhibiting a first peak emission wavelength and a second LED exhibiting a second peak emission wavelength, the first LED and the second LED each configured to emit visible light within a wavelength range of 380 nm to 495 nm, the first peak emission wavelength and the second peak emission wavelength differing from each other by at least 10 nm, and the light-mixing element comprises a rear portion and an adjacent front portion. the rear portion has a shape of a truncated pyramid with a central axis forming an optical axis and a square base, the front portion has a convex shape, the rear portion forms a rear end of the light mixing element, the front portion forms a front end of the light mixing element, the rear end forms a first diagonal dimension and the front end forms a second, larger diagonal dimension, the light mixing element is positioned such that the rear end faces the polymerization light source and the front end faces away from the polymerization light source, A dental photopolymerization device, wherein the first emission peak wavelength is a specific wavelength within a range of 440 nm to 460 nm, and the second emission peak wavelength is a specific wavelength within a range of 460 nm to 485 nm.

2. 2. The dental light polymerization device of claim 1, wherein the intraoral tip portion comprises a light guide having a rear end and a front end, the front end of the light guide forming the light output of the dental light polymerization device, and the rear end of the light guide is positioned adjacent to the front end of the light mixing element.

3. The dental light polymerization device of claim 2 , wherein a gap is provided between the light mixing element and the polymerization light source.

4. 10. The dental light curing device of claim 1, having an operating mode in which the first LED and the second LED are simultaneously activated to emit light.

Citation Information

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