Systems and methods for high-throughput volumetric 3D printing

The system enables 3D printing of objects from photopolymerizable liquids with non-Newtonian behavior in an inert atmosphere, eliminating support structures and substrate attachment, thus simplifying post-processing and improving efficiency.

JP7780446B2Active Publication Date: 2025-12-04QUADRATIC 3D INC
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Patent Information

Application Number
JP2022559834
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-31
Filing Date
2021-03-30
Publication Date
2025-12-04
Estimated Expiration
2041-03-30

AI Technical Summary

Technical Problem

Existing 3D printing techniques require support structures for fragile or thin parts, leading to post-processing complications and potential damage, and often necessitate attachment to a fixed substrate, which increases labor and waste.

Method used

A system and method for 3D printing using a sealed container with an optically transparent window, a pump, and inert atmosphere to form objects from photopolymerizable liquids with non-Newtonian behavior, allowing light-induced solidification without support structures and enabling detachment from the substrate post-printing.

Benefits of technology

Simplifies post-processing by eliminating support structure removal and substrate detachment steps, reducing labor, waste, and enhancing throughput while maintaining object integrity during printing.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for printing a three-dimensional object includes: providing a volume of photopolymerizable liquid in a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the container including at least one print zone having at least an optically transparent window to facilitate irradiating excitation light of a first wavelength into the print zone through the at least optically transparent window; directing the excitation light into the print zone through the at least optically transparent window to selectively photopolymerize the photopolymerizable liquid in the print zone without a support structure to form a print; and applying pressure to the contents of the sealed container and / or pumping additional photopolymerizable liquid into the sealed container through the inlet port to at least transport the print out of the print zone towards the outlet port.
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Description

[Technical Field]

[0001] Priority claims This application claims priority to U.S. Provisional Patent Application No. 63 / 003,078, filed March 31, 2020, which is incorporated by reference in its entirety for all purposes.

[0002] The present invention relates to the technical field of three-dimensional printing. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication No. 2019 / 063629 [Patent Document 2] International Publication No. 2015 / 059179 [Patent Document 3] International Publication No. 2019 / 025717 [Patent Document 4] U.S. Patent Application Publication No. 62 / 911,125 [Non-patent literature]

[0004] [Non-Patent Document 1] S. Sanders et al., "Photon Upconversion in Aqueous Nanodroplets", J.Amer.Chem.Soc.2019, 141, 9180-9184 [Non-patent document 2] Beauti, Sumar, Abstract titled "Search for New Chromophore Pairs for Triplet-Triplet Annihilation Upconversion," ISEF Projects Database, Finalist Abstract (2017) [Non-patent document 3] B. Redwood et al., “The 3D Printing Handbook- Technologies,designs applications”, 3D HUBS BV2018 Summary of the Invention [Means for solving the problem]

[0005] According to one aspect of the present invention, there is provided a system for printing one or more three-dimensional objects, comprising: a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the sealed container including a print zone, the print zone comprising at least an optically transparent window to facilitate directing excitation light into the print zone through the at least optically transparent window to form a three-dimensional print within a volume of photopolymerizable liquid in the print zone; a pump in communication with the inlet port of the sealed container and configured for connection to a source of photopolymerizable liquid, the pump being capable of pumping a quantity of photopolymerizable liquid through the inlet port and into the sealed container; A system is provided, comprising:

[0006] Preferably, the system is capable of being maintained in an inert atmosphere and each connection and port is airtight.

[0007] Preferably, the system can be light-tight except in the printing area to reduce unwanted photopolymerization.

[0008] According to another aspect of the present invention, there is provided a system for printing one or more three-dimensional objects, comprising: a reservoir for containing a supply of photopolymerizable liquid, the reservoir having a reservoir outlet and a reservoir inlet; a pump in communication with the reservoir outlet for pumping a quantity of the photopolymerizable liquid from the reservoir through an inlet port of the container and into the container; a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the sealed container including a print zone, the print zone including at least an optically transparent window facilitating directing excitation light of a first wavelength through the optically transparent window into the print zone to form a three-dimensional print from the photopolymerizable liquid in the print zone; a separator unit in communication with the outlet port of the sealed container for receiving contents discharged from the sealed container, the separator unit being capable of separating any printed matter from non-polymerized photopolymerizable liquid contained in the discharged contents, the separator unit including a first discharge port for discharging any separated printed matter from the separator unit and a second discharge port for discharging the separated non-polymerized photopolymerizable liquid from the separator unit; A system is provided, comprising:

[0009] Preferably, the system is capable of being maintained in an inert atmosphere and each of the connections and ports is gas-tight.

[0010] Preferably, the system can be light-tight except in the printing area to reduce unwanted photopolymerization.

[0011] According to yet another aspect of the present invention, there is provided a method of printing one or more three-dimensional objects, comprising: providing a volume of photopolymerizable liquid in a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the container including at least one print zone with at least an optically transparent window to facilitate irradiating excitation light of a first wavelength into the print zone through the at least optically transparent window, the photopolymerizable liquid preferably exhibiting non-Newtonian rheological behavior such that objects formed in the photopolymerizable liquid in the print zone remain in a fixed position during formation or are minimally displaced in the unpolymerized photopolymerizable liquid; directing excitation light into the print area through at least an optically transparent window to selectively photopolymerize the photopolymerizable liquid in the print area without a support structure to form a print, wherein the print remains in a fixed position during formation or is minimally displaced in the unpolymerized photopolymerizable liquid; applying pressure to the contents of the sealed container and / or pumping additional photopolymerizable liquid into the sealed container through the inlet port to at least transport the print out of the print zone towards the outlet port, thereby discharging at least a portion of the contents of the sealed container out of the sealed container through the outlet port; A method is provided, comprising:

[0012] The method may further include separating any printed matter from unpolymerized photopolymerizable liquid contained in the discharged contents.

[0013] Optionally, the method further comprises recycling separated, unpolymerized photopolymerizable liquid from the discharged contents.

[0014] Preferably, the method is carried out in an inert atmosphere.

[0015] The systems and methods according to the present invention are particularly useful for printing three-dimensional (3D) objects from photopolymerizable liquids that exhibit non-Newtonian behavior and can be solidified at volumetric locations impinged by excitation light to form prints without the need for additional support structures. Support structures are typically required by most 3D printing techniques involving vat polymerization techniques to stabilize the part during printing or to enable printing of thin or fragile protruding portions of the part; after printing, post-processing is required to remove the support structures, which can damage or leave marks on the printed part. Avoiding the addition of support structures advantageously simplifies post-processing of printed parts.

[0016] Systems and methods according to the present invention advantageously do not further require the object being printed to be attached to a fixed substrate (e.g., a build plate) at the beginning of the printing process, avoiding the post-processing step of separating the print from the fixed substrate.

[0017] All of the foregoing and other aspects and embodiments described herein and contemplated by this disclosure constitute embodiments of the present invention.

[0018] It will be understood by those skilled in the art to which this invention pertains that any of the features described herein with respect to any particular aspect and / or embodiment of the invention may be combined with one or more of any of the other features of any other aspect and / or embodiment of the invention described herein, with modifications necessary to ensure compatibility of the combination, and such combinations are considered to be part of the invention contemplated by this disclosure.

[0019] It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention, as claimed.

[0020] Other embodiments will be apparent to those skilled in the art from consideration of the specification and drawings, from the claims, and from practice of the invention disclosed herein. [Brief explanation of the drawings]

[0021] [Figure 1] 1 is a diagram of an example embodiment of a system according to an aspect of the present invention; [Figure 2] 1 is a diagram of an example embodiment of a system according to an aspect of the present invention; DETAILED DESCRIPTION OF THE INVENTION

[0022] The accompanying figures are simplified representations presented for illustrative purposes only; actual structures may differ in many respects, including, inter alia, the relative size and aspect of the depicted items.

[0023] For a better understanding of the present invention, together with other advantages and capabilities thereof, reference is made to the following disclosure and appended claims in conjunction with the above-described drawings.

[0024] Various aspects and embodiments of the present invention will be further described in the detailed description that follows.

[0025] The present invention relates to a system and method for printing one or more three-dimensional objects.

[0026] According to one aspect of the present invention, there is provided a system for printing one or more three-dimensional objects, the system comprising: an enclosed vessel including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the enclosed vessel including at least one print zone, the print zone comprising at least an optically transparent window facilitating directing excitation light through the optically transparent window into the print zone to form a three-dimensional print within a volume of photopolymerizable liquid in the print zone; and a pump in communication with the inlet port of the enclosed vessel, the pump configured for connection to a source of photopolymerizable liquid, the pump capable of pumping a quantity of photopolymerizable liquid through the inlet port into the enclosed vessel. Equipped with.

[0027] Preferably, the system is capable of being maintained in an inert atmosphere and each connection and port is airtight.

[0028] Preferably, the system can be light-tight except in the printing area to reduce unwanted photopolymerization.

[0029] In use, the sealed container is filled with a photopolymerizable liquid that will be selectively polymerized in the print zones to form a three-dimensional object.

[0030] FIG. 1 depicts a diagram of an example embodiment of a system according to one aspect of the present invention. The diagram depicts system 1 including a pump 2 in communication with an inlet port 3 of a sealed container 4. The pump is configured for connection to a source of photopolymerizable liquid (not shown). The sealed container also includes an outlet port 5. The inlet port 3 and the outlet port 5 are connected by a conduit 6 therebetween. As depicted, the conduit contains photopolymerizable liquid with multiple three-dimensional printed objects 8 therein, one of which is within a print zone 9 and the others are spaced apart due to successive displacements from the print zone toward the outlet port by a series of separate additions of new amounts of photopolymerizable liquid pumped into the sealed container by the pump. The arrows depicted in FIG. 1 indicate the direction of flow of the photopolymerizable liquid in the conduit from the entry point where the liquid is introduced into the sealed container to the exit port where the contents are expelled from the sealed container.

[0031] The system is preferably capable of being maintained in an inert atmosphere, and each of the connections and ports is gas-tight.

[0032] Preferably, the system can be light-tight except in the printing area to reduce unwanted photopolymerization.

[0033] For illustrative purposes, the conduit portion of the enclosure is depicted as being optically transparent. While in some cases it may be desirable for the conduit portion of the enclosure or the entire enclosure to be completely optically transparent, at least a window in the enclosure is optically transparent to facilitate passing excitation from the optical system into the photopolymerizable liquid in the print zone to print an object.

[0034] In some cases, it may be desirable for the portion of the sealed container adjacent to the print zone to be optically non-transparent to help prevent the excitation light from spreading into areas of the sealed container outside the print zone where photopolymerization is not desired.

[0035] Additional information regarding enclosures and pumps is provided below.

[0036] The system may further include an optical system 10 outside the print zone of the enclosure. The optical system may optionally be provided separately or may be included as part of the system in combination with the enclosure and pump.

[0037] The optical system can be in communication with the excitation light source, and the optical system is positioned or positionable to project the excitation light through at least an optically transparent window in the print area.

[0038] FIG. 1 depicts an optical system positioned above the print area within the enclosure.

[0039] Optionally, an optical system used with or included in the present system can be movable relative to the print zone so that excitation light can be projected into the print zone from one or more sides (e.g., the top, one side, both sides, the bottom, or any combination including two or more sides) of the print zone. If a movable optical system is to be used, the print zone includes a transparent portion to accommodate projection of excitation light into the print zone from one or more sides. For example, each side or surface of the print zone through which excitation light will be projected is optically transparent or includes at least an optically transparent window through which the excitation light can pass.

[0040] Optionally, the excitation light may be temporally and / or spatially modulated. Optionally, the intensity of the excitation light may be modulated.

[0041] The spatially modulated excitation light can be generated by known spatial modulation techniques, including, for example, a liquid crystal display (LCD), a digital micromirror display (DMD), or a microLED array. Other known spatial modulation techniques can be readily identified by those skilled in the art.

[0042] The optical system may be selected to apply continuous excitation light. The optical system may be selected to apply intermittent excitation light. Intermittent excitation may include random on and off application of light or periodic application of light. An example of periodic application of light includes pulsing. The optical system may be selected to apply a combination of both continuous excitation light and intermittent light, including, for example, an illumination step that includes application of intermittent excitation light preceded or followed by illumination with continuous light.

[0043] Preferably, the excitation light has a wavelength in the visible range.

[0044] The optical system may be movable in one or more of the x, y, and z directions relative to a given print area.

[0045] Optionally, the printed area may be completely optically transparent.

[0046] The system may optionally include two or more printing zones, each of which includes at least an optically transparent window to facilitate the application of excitation light into the photopolymerizable liquid in the printing zone. As discussed above, other portions or all of the printing zones may be optically transparent to accommodate the optical system to be used and its movability.

[0047] When the system includes two or more print zones, the system can include an optical system associated with each print zone. Alternatively, when the system includes two or more print zones, the system can include an optical system that is individually movable relative to at least the location of the print zones within the enclosed container and positionable to irradiate each of the print zones with excitation light.

[0048] The system may optionally further include a separator unit (not shown in FIG. 1 ) in communication with the outlet port of the sealed container for receiving the contents discharged from the sealed container. The separator unit separates any printed matter from unpolymerized photopolymerizable liquid contained in the discharged contents, and the separator unit includes a first discharge port for discharging any separated printed matter from the separator unit and a second discharge port for discharging the separated unpolymerized photopolymerizable liquid from the separator unit. Optionally, the second discharge port of the separator unit is configured for connection to a return line or recirculation loop for recirculating the separated unpolymerized photopolymerizable liquid to a source of photopolymerizable liquid to be pumped into the sealed container.

[0049] The separator unit is preferably sealed to prevent the introduction of air or oxygen into the unit during separation.

[0050] The separator unit preferably mechanically separates any printed matter from non-polymerized photopolymerizable liquid in the contents discharged from the sealed container. Examples of techniques for mechanically separating the printed matter from non-polymerized photopolymerizable liquid in the discharged contents include, but are not limited to, screening techniques, using a scoop or claw to extract any printed matter from the discharged contents, a cyclone separator, a spiral separator; and combinations of two or more techniques.

[0051] The separated, unpolymerized photopolymerizable liquid may be processed after separation from any printed matter. Examples of such processing include, but are not limited to, clarification / purification, filtering, degassing, or solvent / monomer addition.

[0052] The printed matter collected from the separator unit may optionally be post-processed.

[0053] Examples of post-treatments include, but are not limited to, washing, post-curing (e.g., by light, heat, non-ionizing radiation, ionizing radiation, pressure, or a simultaneous or sequential combination of techniques), metrology, freeze-drying, critical point drying, and packaging.

[0054] According to another aspect of the present invention, a system for printing one or more three-dimensional objects is provided, the system comprising: a reservoir for containing a supply of photopolymerizable liquid, the reservoir having a reservoir outlet and a reservoir inlet; a pump in communication with the reservoir outlet for pumping a quantity of photopolymerizable liquid from the reservoir into the sealed container through an inlet port of the sealed container; the sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the sealed container including at least one print zone, the print zone having at least an optically transparent window that facilitates directing excitation light of a first wavelength through the optically transparent window into the print zone to form a three-dimensional print from the photopolymerizable liquid in the print zone; and a separator unit in communication with the outlet port of the sealed container for receiving contents discharged from the sealed container. The separator unit can separate any printed matter from unpolymerized photopolymerizable liquid contained in the discharged contents. The separator unit also supplies any separated printed matter out of the separator unit through a first discharge port for collection and / or post-processing. The separator unit also includes a second exhaust port for exhausting the separated, unpolymerized photopolymerizable liquid from the separator unit. Optionally, the separator unit further includes a return line or recirculation loop in communication with the second exhaust port for recirculating the separated, unpolymerized photopolymerizable liquid to the reservoir.

[0055] Preferably, the system is capable of being maintained in an inert atmosphere and each of the connections and ports is gas-tight.

[0056] Preferably, the system can be light-tight except in the printing area to reduce unwanted photopolymerization.

[0057] In use, the sealed container is filled with a photopolymerizable liquid that is selectively photopolymerized in the print areas to form a three-dimensional object.

[0058] FIG. 2 depicts a diagram of an example embodiment of a system according to one aspect of the present invention. The diagram depicts a system 20 including a pump 21 in communication with an inlet port 22 of a sealed container 23. The pump is configured for connection to a reservoir 24 (labeled "resin tank" in the diagram) for containing photopolymerizable liquid. The sealed container also includes an outlet port 25. The inlet port 22 and the outlet port 25 are connected by a conduit 26 therebetween. As depicted, the conduit contains photopolymerizable liquid with multiple three-dimensional printed objects 28 therein, one of which is within a print zone 27, while the others are spaced apart due to successive displacements from the print zone toward the outlet port by a series of separate additions of new amounts of photopolymerizable liquid pumped into the sealed container by the pump. The arrows depicted in FIG. 2 indicate the direction of flow of photopolymerizable liquid within the conduit from the entry point where the liquid is introduced into the sealed container to the exit port where the contents are expelled from the sealed container. The displaced contents, including the unpolymerized photopolymerizable liquid and any printed matter contained therein, are displaced from the print zone and transported along the length of the conduit to the outlet port through a series of additions of new photopolymerizable liquid into the sealed container by the pump. The discharged contents exit the sealed container through the outlet port and enter a separator unit (labeled "Separator" in the figure) 29, which is connected to the outlet port. The separator unit can separate any printed matter from the unpolymerized photopolymerizable liquid contained in the discharged contents. The separator unit also delivers any separated printed matter out of the separator unit through a first outlet port 30 for collection and / or post-processing. The separator unit also includes a second outlet port 31 for discharging the separated unpolymerized photopolymerizable liquid from the separator unit.

[0059] The separator unit is preferably sealed to prevent the introduction of air or oxygen into the unit during separation.

[0060] The separator unit preferably mechanically separates any printed matter from non-polymerized photopolymerizable liquid in the contents discharged from the sealed container. Examples of techniques for mechanically separating the printed matter from non-polymerized photopolymerizable liquid in the discharged contents include, but are not limited to, screening techniques, using a scoop or claw to extract any printed matter from the discharged contents, a cyclone separator, a spiral separator; and combinations of two or more techniques.

[0061] The separated, unpolymerized photopolymerizable liquid may be processed after separation from any printed matter. Examples of such processing include, but are not limited to, clarification / purification, filtering, degassing, or solvent / monomer addition.

[0062] Optionally, the system further includes a return line or recirculation loop (labeled "Resin Return" in the figure) 32 in connection with the second exhaust port 31 of the separator unit for recirculating the separated, unpolymerized photopolymerizable liquid to the reservoir 24.

[0063] The printed material collected from the separator unit may optionally be post-processed. Examples of post-processing include, but are not limited to, washing, post-curing (e.g., by light, heat, non-ionizing radiation, ionizing radiation, pressure, or a simultaneous or sequential combination of techniques), metrology, freeze-drying, critical point drying, and packaging.

[0064] For illustrative purposes, the conduit portion of the enclosure is depicted as being optically transparent.

[0065] In some cases, it may be desirable for the conduit portion of the enclosure or the entire enclosure to be completely optically transparent, but at least a window in the enclosure is optically transparent to facilitate passing excitation from the optical system into the photopolymerizable liquid in the print zone to print an object.

[0066] In some cases, it may be desirable for the portion of the enclosed container adjacent to the print zone to be optically non-transparent to help prevent the excitation light from spreading into areas of the enclosed container outside the print zone where polymerization is not desired.

[0067] Additional information regarding enclosures and pumps is provided below.

[0068] The system may further include an optical system 35 outside the print zone of the enclosure. The optical system may optionally be provided separately or may be included as part of the system in combination with the enclosure and pump.

[0069] The optical system can be in communication with the excitation light source, and the optical system is positioned or positionable to project the excitation light through at least an optically transparent window in the print area.

[0070] FIG. 2 depicts an optical system positioned above the print area within the enclosure.

[0071] Optionally, an optical system used with or included in the present system can be movable relative to the print zone so that excitation light can be projected into the print zone from one or more sides (e.g., the top, one side, both sides, the bottom, or any combination including two or more sides) of the print zone. If a movable optical system is to be used, the print zone includes a transparent portion to accommodate projection of excitation light into the print zone from one or more sides. For example, each side or surface of the print zone through which excitation light will be projected is optically transparent or includes at least an optically transparent window through which the excitation light can pass.

[0072] Optionally, the excitation light may be temporally and / or spatially modulated. Optionally, the intensity of the excitation light may be modulated.

[0073] The spatially modulated excitation light can be generated by known spatial modulation techniques, including, for example, a liquid crystal display (LCD), a digital micromirror display (DMD), or a microLED array. Other known spatial modulation techniques can be readily identified by those skilled in the art.

[0074] The optical system may be selected to apply continuous excitation light. The optical system may be selected to apply intermittent excitation light. Intermittent excitation may include random on and off application of light or periodic application of light. An example of periodic application of light includes pulsing. The optical system may be selected to apply a combination of both continuous excitation light and intermittent light, including, for example, an illumination step that includes application of intermittent excitation light preceded or followed by illumination with continuous light.

[0075] Preferably, the excitation light has a wavelength in the visible range.

[0076] The optical system may be movable in one or more of the x, y, and z directions relative to a given print area.

[0077] Optionally, the printed area may be completely optically transparent.

[0078] The system may optionally include two or more printing zones, each of which includes at least an optically transparent window to facilitate the application of excitation light into the photopolymerizable liquid in the printing zone. As discussed above, other portions or all of the printing zones may be optically transparent to accommodate the optical system to be used and its movability.

[0079] When the system includes two or more print zones, the system can include an optical system associated with each print zone. Alternatively, when the system includes two or more print zones, the system can include an optical system that is individually movable relative to at least the location of the print zones within the enclosed container and positionable to irradiate each of the print zones with excitation light.

[0080] According to yet another aspect of the present invention, a method for printing one or more three-dimensional objects is provided. The method includes providing a volume of photopolymerizable liquid in a sealed container. The photopolymerizable liquid preferably exhibits non-Newtonian rheological behavior, such that objects formed in the photopolymerizable liquid within a print zone remain in a fixed position or are minimally displaced within the unpolymerized photopolymerizable liquid during formation. The sealed container includes an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween. The sealed container also includes at least one print zone in which the objects are formed. Each print zone includes at least an optically transparent window through which excitation light of a first wavelength can be irradiated within the print zone. The method also includes directing excitation light into the print zone through at least the optically transparent window to selectively photopolymerize the photopolymerizable liquid within the print zone without the addition of a support structure to form the print. The print remains in a fixed position or is minimally displaced within the unpolymerized photopolymerizable liquid during formation. The method further includes applying pressure to the contents of the sealed container and / or pumping additional photopolymerizable liquid into the sealed container through the inlet port to at least transport the printed material out of the printing zone toward the exit port, thereby discharging at least a portion of the contents of the sealed container out of the sealed container through the exit port.

[0081] The method may further include the step of separating any printed matter from unpolymerized photopolymerizable liquid contained in the discharged contents.

[0082] Optionally, the method further comprises recycling separated, unpolymerized photopolymerizable liquid from the discharged contents.

[0083] Preferably, the method is carried out in an inert atmosphere.

[0084] In one example of this method, 1) the resin is photocured without a support structure so that the parts are suspended in the resin; 2) the resin is thixotropic (shear thinning) or has a yield stress so that the parts remain fixed in space or undergo a minimal amount of displacement during the curing operation; 3) upon application of pressure, the cured part(s) are pumped out of the print zone and the print zone is refilled with new resin; 4) the parts are separated from the resin; and 5) the resin is optionally recycled.

[0085] The method of the present invention can produce one or more printed objects using light-induced solidification of a photopolymerizable liquid containing a photopolymerizable component that exhibits non-Newtonian rheological behavior. Examples of such non-Newtonian rheological behavior include pseudoplastic, non-Bingham-yielding pseudoplastic, or Bingham-yielding plastic. This behavior can be inherent to the combination of reactive components (monomers and oligomers) within the resin, or can be imparted by non-reactive additives (thixotropic agents, rheology modifiers). The formation of photopolymerizable components that exhibit non-Newtonian behavior is within the skill of those skilled in the relevant art. An example includes forming a photopolymerizable liquid for use in the present method, comprising 86 parts GENOMER 4259 (aliphatic urethane acrylate), 14 parts N,N-dimethylacrylamide, 13.3 parts of a 60 wt % nanoparticle dispersion in N,N-dimethylacrylamide, 2 parts Rheobyk 410 thixotropic agent, 0.5 parts bis(2,6-difluoro-3-(1-hydropyrro-1-yl)phenyl) titanocene photoinitiator, 0.0001 parts 2,2,6,6-tetramethyl-1-piperidinyloxy free radical inhibitor.

[0086] A print is formed in a volume of photopolymerizable liquid by application of light in the print zone without the creation of support structures, and due to the rheological behavior (high zero-shear viscosity or yield stress), the part displaces only the minimum amount acceptable to accurately reproduce the intended part geometry during the time interval required to form the part. Once the part is formed, it is displaced from the print zone by applying pressure and / or pumping additional photopolymerizable liquid into the sealed container, thereby causing the photopolymerizable liquid to flow. While the object experiences little or no displacement during formation in the print zone, when the object is displaced from the print zone by pumping pressure and / or adding more photopolymerizable liquid to the sealed container, it may experience positional displacement within the contents as it is moved toward the exit port.

[0087] For photopolymerizable liquids that exhibit non-Newtonian rheological behavior, the preferred steady shear viscosity is less than 10,000 cP, and most preferably less than 1,000 cP. (Steady shear viscosity refers to the viscosity after the thixotropic agent network has broken down.)

[0088] The method according to the present invention is additionally particularly useful for printing 3D objects from photopolymerizable liquids that exhibit non-Newtonian behavior and can be solidified at volumetric locations struck by excitation light of a first wavelength by upconversion-induced photopolymerization.

[0089] Preferably, the photopolymerizable liquid comprises (i) a photopolymerizable component; (ii) upconverting nanoparticles comprising a sensitizer and an annihilator, wherein the sensitizer comprises a molecule selected to absorb light at a first wavelength and generate triplet excitons, and the annihilator is selected to emit light at a second wavelength after energy transfer from the sensitizer to the quencher, the second wavelength being shorter than the first wavelength; and (iii) a photoinitiator that initiates polymerization of the photopolymerizable component upon excitation by light at the second wavelength, wherein the photopolymerizable liquid exhibits non-Newtonian behavior.

[0090] As discussed herein, the photopolymerizable liquid preferably comprises: a photopolymerizable component; upconverting nanoparticles comprising a core portion (e.g., oleic acid) containing a sensitizer and a quencher in the liquid, and an encapsulating coating or shell (e.g., silica) covering at least a portion, preferably substantially all, of the outer surface of the core portion, wherein the sensitizer comprises a molecule selected to absorb light at a first wavelength and generate triplet excitons, and the quencher is selected to emit light at a second wavelength after energy transfer from the sensitizer to the quencher, the second wavelength being shorter than the first wavelength; and a photoinitiator that initiates polymerization of the photopolymerizable component upon excitation by light at the second wavelength. The upconverting nanoparticles may further comprise a ligand on their surface to facilitate dispersion of the nanoparticles in the photopolymerizable component. Surfactants and other substances useful as ligands are commercially available. Examples of ligands include, but are not limited to, polyethylene glycol.

[0091] The quencher may also be referred to as a triplet quencher.

[0092] The upconverting nanoparticles preferably have an average particle size smaller than the wavelength of the excitation light. Examples of preferred average particle sizes are less than 100 nm, less than 80 nm, less than 50 nm, less than 30 nm, or less than 20 nm, although larger or smaller nanoparticles can also be used. Most preferably, the upconverting nanoparticles have an average particle size that does not produce significant light scattering.

[0093] Examples of materials for use as sensitizers and quenchers are described in International Application PCT / US2019 / 063629 to Congreve et al., filed November 27, 2019; S. Sanders et al., "Photon Upconversion in Aqueous Nanodroplets," J. Amer. Chem. Soc. 2019, 141, 9180-9184; and the abstract entitled "Search for New Chromophore Pairs for Triplet-Triplet Annihilation Upconversion," Beauti and Sumar, ISEF Projects Database, Finalist Abstract (2017), available at https: / / abstracts.societyforscience.org, each of the foregoing is incorporated herein by reference in its entirety. WO2019 / 025717 to Baldeck et al., published February 7, 2019, and International Application PCT / US2019 / 063629 to Congreve et al., filed November 27, 2019, also provide potentially useful information regarding the concentration of upconverting nanoparticles and the concentration of sensitizers and quenchers in photopolymerizable liquids.

[0094] The quencher includes a molecule capable of accepting a triplet exciton from a sensitizer molecule through triplet-triplet energy transfer, which can excite the photosensitizer to initiate polymerization of the photopolymerizable component through triplet fusion with another quencher molecule triplet to generate a higher energy singlet that emits light of a second wavelength. Examples of quenchers include polycyclic aromatic hydrocarbons, such as anthracene, anthracene derivatives (e.g., diphenylanthracene (DPA), 9,10-dimethylanthracene (DMA), 9,10-dipolyanthracene (DTA), 2-chloro-9,10-diphthylanthracene (DTACI), 2-carbonitrile-9,10-diptetrylanthracene (DTACN), 2-carbonitrile-9,10-dinaphthylanthracene (DNACN), 2-methyl-9,10-dinaphthylanthracene (DNAMe), 2-chloro ... (DNACI), 9,10-bis(phenylethynyl)anthracene (BPEA), 2-chloro-9,10-bis(phenylethynyl)anthracene (2CBPEA), 5,6,11,12-tetraphenylnaphthacene (rubrene), pyrene and / or perylene (e.g., tetra-t-butylperylene (TTBP)). The above anthracene derivatives can also be functionalized with halogens. For example, DPA can be further functionalized with halogens (e.g., fluorine, chlorine, bromine, iodine). Fluorescent organic dyes may be preferred.

[0095] The sensitizer can include at least one molecule capable of transferring energy from a singlet state to a triplet state when it absorbs photon energy of an excitation at a first wavelength. Examples of sensitizers include, but are not limited to, metalloporphyrins (e.g., palladium tetraphenyltetrabutylporphyrin (PdTPTBP), platinum octaethylporphyrin (PtOEP), octaethyl-porphyrin palladium (PdOEP), palladium-tetratolylporphyrin (PdTPP), palladium-meso-tetraphenyltetrabenzoporphyrin 1 (PdPh4TBP), 1,4,8,11,15,18,22,25-octabutoxyphthalocyanine (PdPc(OBu)), 2,3-butanedione (or diacetyl), or some combination of the above molecules).

[0096] The sensitizer preferably absorbs excitation at a first wavelength to maximize use of that energy.

[0097] Considerations in selecting a photosensitizer / quencher pair may include compatibility of the pair with the photoinitiator being used.

[0098] More preferably, at least a portion of the upconverting nanoparticles include a core portion (e.g., oleic acid) containing the sensitizer and quencher in a liquid, and an encapsulating coating or shell (e.g., silica) covering at least a portion, preferably substantially all, of the outer surface of the core portion. The core may include micelles containing the sensitizer and quencher in a liquid. (Micelles are typically formed, for example, from one or more surfactants having relatively hydrophilic and relatively hydrophobic portions.) Examples of preferred upconverting nanoparticles include the nanocapsules described in International Application PCT / US2019 / 063629, filed November 27, 2019, by Congreve et al., the entire contents of which are incorporated herein by reference. Other information regarding nanocapsules that may be useful includes International Publication No. WO2015 / 059179 to Landfester et al., published April 30, 2015, and S. Sanders et al., "Photon Upconversion in Aqueous Nanodroplets," J. Amer. Chem. Soc. 2019, 141, 9180-9184, each of which is incorporated herein by reference in its entirety.

[0099] The upconverting nanoparticles may further comprise a ligand on their surface to facilitate dispersion of the nanoparticles in the photopolymerization component. Surfactants and other substances useful as ligands are commercially available. Examples of ligands include, but are not limited to, polyethylene glycol.

[0100] A photoinitiator can be easily selected by those skilled in the art, taking into consideration its suitability for the mechanism to be used to initiate polymerization and its suitability and / or compatibility with the resin to be polymerized. Information regarding potentially useful photoinitiators can be found in WO2019 / 025717 to Baldeck et al., published February 7, 2019, and International Application PCT / US2019 / 063629 to Congreve et al., filed November 27, 2019, each of which is incorporated herein by reference in its entirety.

[0101] The photopolymerizable liquid may further contain additional additives. Examples of such additives include, but are not limited to, thixotropic agents, oxygen scavengers, etc. WO 2019 / 025717 to Baldeck et al., published February 7, 2019, provides information that may be useful regarding additives.

[0102] Other information that may be useful in conjunction with the present invention is U.S. Patent Application No. 62 / 911,125, filed October 4, 2019, to Congreve et al.

[0103] Examples of excitation light source sources for use in the methods described herein include laser diodes, light emitting diodes, DMD projection systems, micro LED arrays, vertical cavity lasers (VCLs), etc. In some embodiments, the excitation radiation source (e.g., light source) is a light emitting diode (LED).

[0104] Systems and methods according to the present invention are particularly useful for printing three-dimensional (3D) objects from photopolymerizable liquids that exhibit non-Newtonian behavior and can be solidified at volumetric locations impinged by excitation light to form prints without the need for additional support structures. Support structures are typically required by most 3D printing techniques involving vat polymerization techniques to stabilize the part during printing or to enable printing of thin or fragile protruding portions of the part; after printing, post-processing is required to remove the support structures, which can damage or leave marks on the printed part. Avoiding the addition of support structures advantageously simplifies post-processing of printed parts.

[0105] Systems and methods according to the present invention advantageously do not further require the object being printed to be attached to a fixed substrate (e.g., a build plate) at the beginning of the printing process, avoiding the post-processing step of separating the print from the fixed substrate.

[0106] Post-processing steps to remove the support structures and / or remove the print from the fixed substrate add labor (e.g., manual removal), add waste (discarded support structures), and reduce throughput (the build plate cannot be reused until the print is removed), all of which add cost to the process.

[0107] The systems and methods according to the present invention are additionally particularly useful for printing 3D objects from photopolymerizable liquids that exhibit non-Newtonian behavior and can be solidified at volumetric locations struck by excitation light of a first wavelength by upconversion-induced photopolymerization. Preferably, upconversion involves triplet upconversion (or triplet-triplet annihilation (TTA)), which can be used to generate higher energy light relative to the light used to photoexcite the sensitizer or quencher. Most preferably, the sensitizer absorbs low-energy light and upconverts it by transferring energy to the quencher, where two triplet excitons can combine to generate a higher-energy singlet exciton that can emit light at a higher frequency or shorter wavelength, for example, via annihilation upconversion.

[0108] Preferably, the photopolymerizable liquid comprises (i) a photopolymerizable component; (ii) upconverting nanoparticles comprising a sensitizer and a quencher, wherein the sensitizer comprises a molecule selected to absorb light at a first wavelength and generate triplet excitons, and the quencher is selected to emit light at a second wavelength after energy transfer from the sensitizer to the quencher, the second wavelength being shorter than the first wavelength; and (iii) a photoinitiator that initiates polymerization of the photopolymerizable component upon excitation by light at the second wavelength. More preferably, the photopolymerizable liquid exhibits non-Newtonian behavior.

[0109] The first and second wavelengths may be in the visible range.

[0110] The enclosed containers for use in the systems and methods of the present invention may be one-component units or may be constructed from two or more components.

[0111] The sealed vessel may be constructed from materials including, but not limited to, glass, quartz, fluoropolymers (e.g., Teflon FEP, Teflon AF, Teflon PFA), cyclic olefin copolymers, polymethyl methacrylate (PMMA), polynorbornene, sapphire, or transparent ceramics.

[0112] Preferably, at least the optically clear portion of the print area is also optically flat.

[0113] Preferably, the photopolymerizable liquid is purged or sparged with an inert gas before being introduced into the sealed container and is maintained in an inert atmosphere while in the sealed container. The photopolymerizable liquid source and the photopolymerizable liquid contained in the reservoir used to supply the sealed container are also preferably purged and maintained under inert conditions before use in the systems and methods of the present invention.

[0114] As shown in Figures 1 and 2, the sealed container is depicted as having an elongated shape. Such a configuration facilitates printing multiple objects one by one and moving them out of the print zone by pumping a certain amount of additional photopolymerizable liquid into the sealed container, moving the objects out of the print zone as the displaced contents are discharged from the outlet port, and introducing a new amount into the print zone to print new objects. After a series of actions of printing a part and adding new photopolymerizable liquid into the print zone, the printed objects are ultimately contained within the discharged contents and are collected after separation from the discharged contents. The separated objects can be further post-processed.

[0115] In alternative designs, the length of the conduit within the enclosure may correspond to the size of the print zone, with the introduction of new photopolymerizable liquid filling the print zone and the ejection of print and unpolymerized photopolymerizable liquid from the print zone and exit port for separation. For example, but not limited to, other enclosure designs may be desirable based on the number of print zones and the type and number of optical systems selected.

[0116] The enclosure conduit may have a uniform cross section over its length between the inlet and outlet ports.

[0117] The enclosure conduit may alternatively have a non-uniform cross-section, which may be used to manipulate the spacing between successive prints, e.g., a larger cross-section will cause parts to move closer together; a smaller cross-section will cause parts to move further apart. Either scenario may be potentially advantageous for object separation.

[0118] The conduit may have a circular or elliptical cross section. The conduit may have a polygonal cross section. The conduit may have a rectangular or square cross section.

[0119] The enclosed container may optionally further include a conveyor located at the bottom of the conduit to assist in transporting the printed matter to the exit port. It may be beneficial for the conveyor to include an anti-reflective coating on the side of the conveyor that may be hit by the excitation light in the printing zone. Other coatings that may be included on one surface of the conveyor (e.g., the surface transporting the printed matter), or optionally on both the surface transporting the printed matter and the opposite surface of the conveyor, include anti-corrosion or anti-scratch coatings. Other coating materials include polymers such as polyolefins and fluoropolymers.

[0120] The conveyor may be a belt conveyor, including, by way of example and not limitation, a solid belt, a mesh belt, or a chain belt. Belt conveyors may also benefit from including an anti-reflective coating on the sides of the belt that may be impinged by the excitation light in the print zone. The conveyor may be a trolley or platform made of a magnetizable metal that can be actuated from outside the container using a magnetic field.

[0121] Pumps for use in the systems and methods of the present invention preferably comprise hydrostatic pumps. Other suitable pumps may be used.

[0122] The pump is preferably capable of (i) pumping photopolymerizable liquid from a source or reservoir into the sealed container to fill the container with photopolymerizable liquid, and (ii) pumping an amount, which may be a metered amount, of photopolymerizable liquid into the filled sealed container to move the printed material out of the printing zone in a direction toward the exit port, the exit port being configured to expel a portion of the contents of the sealed container displaced by the amount of added photopolymerizable liquid out of the sealed container through the exit port.

[0123] Optionally, the systems and methods of the present invention may include two pumps, a first pump for moving the photopolymerizable liquid to the print zone and a second pump for imparting other flow characteristics to the photopolymerizable liquid. The inclusion of a second pump may be beneficial to compensate for the potential loss of effectiveness of a single pump due to distance.

[0124] Before printing, a digital file of the object to be printed is obtained. If the digital file is not in a format that can be used to print the object, the digital file is converted to a format that can be used to print the object. An example of a typical format that can be used for printing is an STL file. Typically, the STL file is then sliced ​​into two-dimensional layers using 3D slicer software and converted into a set of G-Code or machine commands that facilitate building the object. See B. Redwood et al., "The 3D Printing Handbook - Technologies, designs applications," 3D HUBS BV2018.

[0125] When used as a property of a container or portion of a build chamber, "optically transparent" refers to having high light transmission for the wavelength of light being used, and "optically flat" refers to not being distorted (e.g., the optical wavefront entering the container or portion of the build chamber remains largely untouched).

[0126] As used herein, the singular forms "a," "an," and "the" include plurals unless the context clearly dictates otherwise. Thus, for example, reference to an emitting substance includes a reference to one or more of such substances.

[0127] Applicant specifically incorporates the entire contents of all cited references in this disclosure.Furthermore, when an amount, concentration, or other value or parameter is given as a range, a preferred range, or a list of a preferred upper value and a preferred lower value, this should be understood to specifically disclose all ranges formed from any pair of any upper range limit or preferred value and any lower range limit or preferred value, regardless of whether the ranges are separately disclosed.When a range of numerical values ​​is listed herein, unless otherwise stated, the range is intended to include the endpoints thereof, and all integers and fractions within the range.It is not intended that the scope of the present invention be limited to the specific values ​​listed when defining a range.

[0128] Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims and equivalents thereof.

Claims

1. 1. A system for printing one or more three-dimensional objects, comprising: a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the sealed container including a print zone, the print zone comprising at least an optically transparent window to facilitate directing excitation light into the print zone through the at least optically transparent window to form a three-dimensional print within a volume of photopolymerizable liquid in the print zone; a pump in communication with the inlet port of the sealed container and configured for connection to a source of photopolymerizable liquid, the pump being capable of pumping a quantity of photopolymerizable liquid through the inlet port and into the sealed container; Equipped with a separator unit in communication with the outlet port of the sealed container for receiving discharged contents from the sealed container, the separator unit separating any printed matter from non-polymerized photopolymerizable liquid contained in the discharged contents, the separator unit including a first discharge port for discharging any separated printed matter from the separator unit and a second discharge port for discharging the separated non-polymerized photopolymerizable liquid from the separator unit; system.

2. 1. A system for printing one or more three-dimensional objects, comprising: a reservoir for containing a supply of photopolymerizable liquid, the reservoir having a reservoir outlet and a reservoir inlet; a pump in communication with the reservoir outlet for pumping a quantity of the photopolymerizable liquid from the reservoir through an inlet port of the container and into the container; a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the sealed container including at least one print zone, the print zone comprising at least an optically transparent window to facilitate directing excitation light of a first wavelength through the at least optically transparent window into the print zone to form a three-dimensional print from the photopolymerizable liquid in the print zone; a separator unit in communication with the outlet port of the sealed container for receiving output matter discharged from the sealed container, the separator unit for separating any printed matter from non-polymerized photopolymerizable liquid contained in the discharged contents, the separator unit including a first discharge port for discharging any separated printed matter from the separator unit and a second discharge port for discharging the separated non-polymerized photopolymerizable liquid from the separator unit; A system comprising:

3. 3. The system of claim 1, wherein the system is capable of being maintained in an inert atmosphere and each connection and port is gas-tight.

4. 3. The system of claim 1 or 2, wherein the conduit has a uniform cross section over its length between the inlet and outlet ports.

5. 3. The system of claim 1 or 2, wherein the conduit is cylindrical with a circular or elliptical cross section.

6. 3. The system of claim 1 or 2, wherein the conduit has a polygonal cross section.

7. 3. The system of claim 1 or 2, wherein the conduit has a rectangular or square cross section.

8. 10. The system of claim 1, 2 or 4, wherein the enclosed container is optically transparent.

9. 10. The system of claim 1, 2 or 4, wherein all sides of the print area are optically transparent.

10. 10. The system of claim 1, 2 or 4, wherein one or more sides of the print area are optically transparent top and side surfaces.

11. 3. The system of claim 1 or 2, wherein the enclosure further comprises a conveyor located at the bottom of the conduit to assist in transporting the printed product to the exit port.

12. 12. The system of claim 11, wherein the conveyor comprises an anti-reflective coating on sides of the conveyor that may be impinged by the excitation light in the print zone.

13. 12. The system of claim 11, wherein the conveyor comprises an anti-reflective coating on a side of the conveyor facing the point of entry of the excitation light into the print zone.

14. The system of claim 11 , wherein the conveyor comprises a belt conveyor.

15. The system of claim 14 , wherein the belt conveyor comprises a solid belt.

16. The system of claim 14 , wherein the belt conveyor comprises a mesh belt.

17. The system of claim 14 , wherein the belt conveyor comprises a chain conveyor.

18. 18. The system of any one of claims 14 to 17, wherein the belt conveyor comprises an anti-reflective coating on the sides of the belt that may be impinged by the excitation light in the print zone.

19. 10. The system of claim 1, wherein the system further comprises a recirculation loop in communication with the second exhaust port for recirculating the separated, unpolymerized photopolymerizable liquid to the source.

20. The system of claim 1 or 2, wherein the pump comprises a hydrostatic pump.

21. 3. The system of claim 1 or 2, wherein the system includes two pumps, a first pump for moving the photopolymerizable liquid to the printing zone and a second pump for imparting other flow characteristics to the photopolymerizable liquid.

22. 3. The system of claim 1, wherein the sealed container is replaceable.

23. 3. The system of claim 1 or 2, wherein the separator unit mechanically separates any printed matter from unpolymerized photopolymerizable liquid.

24. 3. The system of claim 1 or 2, wherein the pump (i) is capable of pumping photopolymerizable liquid from a supply into the sealed container to fill the container with photopolymerizable liquid, and (ii) is capable of pumping a metered amount of photopolymerizable liquid into the filled sealed container to move the printed material out of the printing zone in a direction toward the outlet port, and the outlet port is configured to discharge the contents of the sealed container displaced by the metered amount out of the sealed container through the outlet port.

25. The system of claim 1 , further comprising an optical system positioned or positionable to project excitation light through at least an optically transparent window in the print zone.

26. 3. The system of claim 2, wherein the system further comprises a recirculation loop in communication with the second exhaust port for recirculating the separated, unpolymerized photopolymerizable liquid to the reservoir.

27. The system of claim 1 or 2, further comprising one or more optical systems positioned or positionable to project excitation light through an optically transparent window in the print zone.

28. 1. A method of printing one or more three-dimensional objects, comprising: providing a volume of photopolymerizable liquid in a sealed container including an inlet port and an outlet port, the inlet port and the outlet port being connected by a conduit therebetween, the container including at least one print zone with at least an optically transparent window to facilitate irradiating excitation light of a first wavelength into the print zone through the at least optically transparent window, the photopolymerizable liquid exhibiting non-Newtonian rheological behavior such that objects formed in the photopolymerizable liquid in the print zone remain in a fixed position during formation or are minimally displaced in the unpolymerized photopolymerizable liquid; directing excitation light into the print area through at least an optically transparent window to selectively photopolymerize the photopolymerizable liquid in the print area without a support structure to form a print, wherein the print remains in a fixed position during formation or is minimally displaced in the unpolymerized photopolymerizable liquid; applying pressure to the contents of the sealed container and / or pumping additional photopolymerizable liquid into the sealed container through the inlet port to at least transport the print out of the print zone towards the outlet port, thereby discharging at least a portion of the contents of the sealed container out of the sealed container through the outlet port; A method comprising:

29. 30. The method of claim 28 carried out in an inert atmosphere.

30. 30. The method of claim 28, further comprising separating any printed matter from unpolymerized photopolymerizable liquid contained in the discharged contents.

31. 30. The method of claim 28, further comprising recycling the discharged unpolymerized photopolymerizable liquid after any print separation to a reservoir.

32. 30. The method of claim 28, wherein the minimum displacement comprises displacing the printed material by an amount that is acceptable to accurately reproduce the geometry of the object to be printed during the time interval required to form the object.

33. 30. The method of claim 28, wherein the print is formed by upconversion-induced photopolymerization initiated by irradiating the photopolymerizable liquid in the print area with excitation light of the first wavelength.

34. 34. The method of claim 28 or 33, wherein the photopolymerizable liquid comprises: (i) a photopolymerizable component; (ii) upconverting nanoparticles comprising a sensitizer and a quencher, wherein the sensitizer comprises a molecule selected to absorb light at a first wavelength and generate triplet excitons, and the quencher is selected to emit light at a second wavelength after energy transfer from the sensitizer to the quencher, the second wavelength being shorter than the first wavelength; and (iii) a photoinitiator that initiates polymerization of the photopolymerizable component upon excitation by light at the second wavelength.

35. 35. The method of claim 34, wherein at least a portion of the upconverting nanoparticles comprise a core portion comprising a sensitizer and a quencher in a liquid, and an encapsulating shell covering an outer surface of the core portion.

36. 3. The method of claim 1 or 2, wherein the cross section of the conduit is non-uniform.

37. 28. The system of claim 27, wherein the optical system is in communication with an excitation light source.

38. 38. The system of claim 37, wherein the excitation light source comprises a DMD projection system.

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