Polymers for additive manufacturing

The development of solvent-soluble and insoluble phase compositions for additive manufacturing addresses the limitations of existing technologies by enabling the creation of porous and microporous parts with enhanced design precision and functionality, particularly for medical devices and implants.

JP2025170346APending Publication Date: 2025-11-18POLY MED INC
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Patent Information

Application Number
JP2025138528
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2017-09-01
Filing Date
2025-08-21
Publication Date
2025-11-18

AI Technical Summary

Technical Problem

Existing additive manufacturing technologies, particularly in fused filament fabrication (FFF), are limited by the phase configuration of single-phase thermoplastic polymers, which restricts the creation of complex structures and support materials, especially in biopharmaceutical applications.

Method used

Development of compositions comprising a solvent-soluble additive phase and a solvent-insoluble polymer phase, allowing for the formation of porous structures through solvent extraction after printing, with specific weight percentages and melt flow indices to facilitate precise, customizable manufacturing.

Benefits of technology

Enables the creation of porous and microporous parts with altered surface morphology, suitable for medical devices and implants, providing increased design precision and functionality.

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Abstract

To provide improved compositions that may be used in additive manufacturing.SOLUTION: The problem is solved by a composition comprising an additive in a polymer phase, wherein: a) the additive is soluble in a solvent; b) the polymer phase comprises an organic polymer and is essentially insoluble in the solvent; c) the composition is a solid at temperatures below 25°C and a viscous fluid with a Melt Flow Index of 2.5 to 30 g / 10 min at a temperature above 50°C; and d) the composition has a predetermined weight percent of the additive based on the weight of the composition and a predetermined weight percent of the polymer phase based on the weight of the composition, where the sum of the weight percent of the additive and the weight percent of the polymer phase is greater than 90%.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Patent Application No. 62 / 553,377, filed September 1, 2017, which is incorporated herein by reference in its entirety for all purposes.

[0002] FIELD OF THE INVENTION The present invention relates generally to additive manufacturing, polymer compositions for use therein and products made therefrom, including bioabsorbable polymers for medical applications. [Background technology]

[0003] Additive manufacturing, also known as 3D printing, has developed over the past two decades from a curiosity about industrial processes, primarily through advances in equipment and computer software. While our ability to create sophisticated structures has improved, improved multifunctional materials are needed to support this growing technology.

[0004] One common method of additive manufacturing is fused filament fabrication (FFF). The majority of FFF additive manufacturing uses a single-phase thermoplastic polymer monofilament to produce a printed line via melt extrusion. In advanced scenarios, multiple monofilaments are used to create areas of a specific design. Most commonly, a second monofilament is used to create supports, where the second monofilament material is water-soluble for easy removal after printing is complete. While this is extremely useful, the phase configuration of this technique is limited by the tolerances of the printing equipment.

[0005] Thus, there remains a need in the art for improved materials that can be used in additive manufacturing, particularly in the manufacture of biopharmaceutical products. The present invention addresses this need.

[0006] Not all of the subject matter described in the Background section is necessarily prior art and should not be considered prior art merely as a result of its description in the Background section. Thus, recognition of prior art problems described in the "Background" section or related to the subject matter should not be treated as prior art unless explicitly stated to be polymer technology. Instead, the description of the subject matter in the "Background" section should itself be treated as part of the inventor's approach to a particular inventive problem. Summary of the Invention [Means for solving the problem]

[0007] In summary, the present invention provides compositions useful for additive manufacturing, methods of performing additive manufacturing using the compositions of the present invention, and products produced by additive manufacturing methods, as well as related subject matter.

[0008] For example, in one embodiment, the invention provides a composition comprising an additive in a polymer phase, wherein: (a) the additive is soluble in a solvent; (b) the polymer phase comprises an organic polymer and is essentially insoluble in the solvent; (c) the composition is solid at a temperature below 25°C and is a viscous fluid having a melt flow index of 2.5 to 30 grams / 10 minutes above the melting temperature of the composition; and (d) the composition has a weight percent of a predetermined additive based on the weight of the composition and a weight percent of a predetermined polymer phase based on the weight of the composition, wherein the sum of the weight percent of the additive and the weight percent of the polymer phase is greater than 90%.

[0009] In one embodiment, the additive provides a dispersed phase, and the polymer phase is the continuous phase. In this embodiment, the present invention provides a composition comprising a dispersed phase in a continuous phase, wherein the dispersed phase is soluble in a solvent. The continuous phase comprises an organic polymer and is essentially insoluble in the solvent. The composition is a viscous fluid that is solid at temperatures below 25°C and has a melt flow index of 2.5 to 30 g / 10 min above the melting temperature of the composition. The composition also has a weight percent of the dispersed phase based on the weight of the composition and a weight percent of the continuous phase based on the weight of the composition, wherein the sum of the weight percent and weight percent of the dispersed phase is greater than 90%.

[0010] Optionally, these compositions can be characterized by one or more (e.g., two or three or four, etc.) of the following features: the solvent is water; the composition is in a form that can be used in an additive manufacturing process, for example, in the form of a filament or spool of filament (wherein the filament may have a diameter of 1-5 mm) or the composition is in the form of a powder comprising granules; the weight percentage of the additive or dispersed phase in the composition is 1-60%; the additive or dispersed phase has an average particle size of 20-400 μm; the additive or dispersed phase comprises an inorganic salt, for example, an inorganic salt comprising a cation and an anion (wherein the cation is selected from sodium, potassium, and magnesium, and the anion is selected from chloride, bromide, iodide, sulfate, phosphate, carbonate, bicarbonate); the additive or dispersed phase comprises a water-soluble organic compound, for example, a sugar or an organic calcium carbonate; the composition comprises a carboxylic acid or a salt thereof, wherein the polymer or continuous phase comprises a bioabsorbable polymer, e.g., a bioabsorbable polymer comprising segments selected from polyester, polyanhydride, poly(hydroxybutyrate), and polyether; the polymer or continuous phase comprises a non-bioabsorbable polymer, e.g., a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, and polyethylene terephthalate; the composition has little or no residual monomer, e.g., a residual monomer concentration of <2 wt% (including zero residual monomer); the composition has little or no residual tin, e.g., a tin concentration of <200 ppm (including zero tin); and the composition has little or no non-tin heavy metal, e.g., a non-tin metal concentration of <50 ppm (including zero non-tin heavy metal).

[0011] In another embodiment, the present invention provides an additive manufacturing method comprising the steps of: (a) melting a solid composition described herein to obtain a molten composition comprising either an additive phase and a polymer phase or a dispersed phase and a continuous phase; (b) performing additive manufacturing to form an article from the molten composition; and (c) contacting the article with a solvent under conditions that at least partially dissolve the additive phase or dispersed phase, but not the polymer phase or continuous phase, to form a porous body of the article, wherein the additive phase or dispersed phase is soluble in the solvent.

[0012] Optionally, the method is further characterized by one or more (e.g., 2, 3, 4, etc.) of the following features: the solvent comprises water, the solvent is water, the solvent dissolves at least 30% of the additive or dispersed phase, the solvent dissolves at least 80% of the additive or dispersed phase, the solid composition is melted at a temperature in the range of 50-450°C, the additive manufacturing process is carried out in an atmosphere with a relative humidity of less than 10%, the additive manufacturing method is fused filament fabrication (FFF), the porous body of the article comprises a plurality of holes with a maximum cross-sectional area of ​​0.5-50 mm, the composition has a predetermined density, the article has a predetermined density, the article has a density less than 85% of the density of the composition, the conditions include a temperature above 20°C, the porous article comprises pores with a maximum cross-sectional area of ​​20-400 μm, and the method further comprises sterilizing the article by a method selected from, for example, treating with ethylene oxide, gamma radiation, electron beam, dry heat, and steam processes. The method further includes removing residual solvent from the article, for example, such that the residual solvent is less than 1 weight percent based on the weight of the porous body of the article.

[0013] In another embodiment, the invention provides a method of additive manufacturing, the method comprising the steps of: (a) providing a composition as described herein, e.g., comprising a dispersed phase in a continuous phase as described herein or an additive phase in a polymer phase as described herein; (b) extruding the composition into fibers; (c) melting the fibers to obtain a molten composition comprising either a dispersed phase and a continuous phase or an additive phase and a polymer phase; (d) performing additive manufacturing to form an article from the molten composition; (d) contacting the article with a solvent under conditions to at least partially dissolve the additive phase or the dispersed phase, but not the continuous phase or the polymer, to form a porous body of the article, wherein the additive phase and the dispersed phase are soluble in the solvent; and (e) removing residual solvent from the porous body of the article so that the residual solvent is less than 1 weight percent based on the weight of the porous body of the article.

[0014] Optionally, the method is characterized by one or more (e.g., 2, 3, 4, etc.) of the following features: the solvent comprises water; the solvent is water; the solvent dissolves at least 30% of the additive or dispersed phase; the solvent dissolves at least 80% of the additive or dispersed phase; the solid composition is melted at a temperature in the range of 50-450°C; the additive manufacturing process is carried out in an atmosphere with a relative humidity of less than 10%; the additive manufacturing method is fused filament fabrication (FFF); the porous body of the product comprises a plurality of holes with a maximum cross-sectional area of ​​0.5-50 mm; and the composition is a predetermined wherein the article has a predetermined density, the article has a density less than 85% of the density of the composition, the conditions include a temperature greater than 20°C, and the porous article comprises pores of a maximum cross section of 20 to 400 μm, the method further comprising sterilizing the article by a method selected from, for example, treatment with ethylene oxide, gamma radiation, electron beam, dry heat, and steam processes, the method further comprising removing residual solvent from the article, for example, such that the residual solvent is less than 1 weight percent based on the weight of the porous body of the article.

[0015] The features of the present invention described herein, as well as additional features and methods of obtaining them, will become apparent, and the present invention will be better understood by reference to the following detailed description. All references disclosed herein are incorporated by reference in their entirety, as if each were individually incorporated.

[0016] This brief summary is provided to introduce certain concepts in a simplified form that are more fully described below in the detailed description. Unless otherwise specified, this brief summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to limit the scope of the claimed subject matter.

[0017] This brief summary also provides some exemplary numbered embodiments of the invention, with details regarding these numbered embodiments being provided in the detailed description. 1. A composition comprising an additive in a polymer phase, a. the additive is soluble in a solvent; b. the polymer phase comprises an organic polymer and is essentially insoluble in the solvent; c. the composition is a solid at temperatures below 25°C and a viscous fluid having a melt flow index of 2.5 to 30 g / 10 min at temperatures above the melting temperature of the composition; and d. The composition having a predetermined weight percentage of the additive based on the weight of the composition and a predetermined weight percentage of the polymer phase based on the weight of the composition, wherein the sum of the weight percentage of the additive and the weight percentage of the polymer phase is greater than 90%. 2. The composition of embodiment 1, wherein the solvent is water. 3. The composition of embodiment 1, in a form that can be used in an additive manufacturing process, such as FFF, such as a powder or fiber. 4. The composition of embodiment 1, in the form of a filament. 5. The composition of embodiment 4, wherein the filaments have a diameter of 1 to 5 mm. 6. The composition of embodiment 1, in the form of granules. 7. The composition of embodiment 1, wherein the weight percentage of the additive in the composition is 1-60%. 8. The composition of embodiment 1, wherein the additive has an average particle size of 20 to 400 μm. 9. The composition of embodiment 1, wherein the additive comprises an inorganic salt. 10. The composition of embodiment 1, wherein the additive comprises an inorganic salt comprising a cation and an anion, the cation being selected from sodium, potassium, and magnesium, and the anion being selected from chloride, bromide, iodide, sulfate, phosphate, carbonate, and bicarbonate. 11. The composition of embodiment 1, wherein the additive comprises a water-soluble organic compound. 12. The composition of embodiment 11, wherein the water-soluble organic compound is a sugar. 13. The composition of embodiment 11, wherein the water-soluble organic compound is an organic carboxylic acid or a salt thereof. 14. The composition of embodiment 1, wherein the polymer phase comprises a bioabsorbable polymer. 15. The composition of embodiment 1, wherein the polymer phase comprises a bioabsorbable polymer comprising segments selected from polyesters, polyanhydrides, poly(hydroxybutyrates), and polyethers. 16. The composition of embodiment 1, wherein the polymer phase comprises a non-bioabsorbable polymer. 17. The composition of embodiment 16, wherein the polymer phase comprises a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, and polyethylene terephthalate. 18. The composition of embodiment 1, comprising residual monomers at a concentration of less than 2% by weight. 19. The composition of embodiment 1, comprising tin at a concentration of less than 200 ppm. 20. The composition of embodiment 1, comprising one or more heavy metals, except for tin, at a concentration of less than 50 ppm. 21. An additive manufacturing method comprising the steps of: a. melting the solid composition to obtain a molten composition comprising the additive of any one of embodiments 1 to 20 and a polymer phase; b. performing additive manufacturing to form an article from the molten composition; and c. contacting the article with a solvent under conditions that at least partially dissolve the additive but not the polymer phase to form a porous body of the article, wherein the additive is soluble in the solvent. 22. The method of embodiment 21, wherein the solvent comprises water. 23. The method of embodiment 21, wherein the solvent is water. 24. The method of embodiment 21, wherein the solvent dissolves at least 30% of the added additive. 25. The method of embodiment 21, wherein the solvent dissolves at least 80% of the added additive. 26. The method of embodiment 21, wherein the solid composition is melted at a temperature of 50 to 450°C. 27. The method of embodiment 21, wherein the additive manufacturing process is carried out in an atmosphere of <10% relative humidity. 28. The method of embodiment 21, wherein the additive manufacturing method is fused filament fabrication (FFF). 29. The method of embodiment 21, wherein the porous body of the article comprises a plurality of holes with a maximum cross section of 0.5 to 50 mm. 30. The method of embodiment 21, wherein the composition has a predetermined density, the article has a predetermined density, and the article has a density that is less than 85% of the density of the composition. 31. The method of embodiment 21, wherein the conditions comprise a temperature above 20°C. 32. The method of embodiment 21, wherein the porous article comprises pores of maximum cross section between 20 and 400 μm. 33. The method of embodiment 21, further comprising sterilizing the article by a method selected from treatment with ethylene oxide, gamma radiation, electron beam, dry heat, and steam processes. 34. The method of embodiment 21, further comprising removing residual solvent from the article so that the residual solvent is less than 1 weight percent based on the weight of the porous body of the article. 35. An additive manufacturing method comprising the steps of: a. providing a composition comprising an additive in a polymer phase according to any one of embodiments 1-20; b. extruding the composition into fibers; c. melting the fibers to obtain a molten composition comprising an additive and a polymer phase; d. performing additive manufacturing to form an article from said molten composition; e. combining the article with a solvent under conditions that at least partially dissolve the additive but not the polymer phase to form a porous body of the article, wherein the additive is soluble in the solvent; and f. Removing residual solvent from the porous body of the article so that the residual solvent is less than 1 weight percent based on the weight of the porous body of the article.

[0018] The details of one or more embodiments are set forth in the following description. Features shown or described in connection with one exemplary embodiment may be combined with features of other embodiments. Accordingly, any of the various embodiments described herein may be combined to provide further embodiments. Aspects of the embodiments may be modified to provide yet further embodiments, where necessary to employ concepts from the various patents, applications, and publications set forth herein. Other features, objects, and advantages will become apparent from the description, drawings, and claims.

[0019] Illustrative features of the present invention, its nature and various advantages will become apparent from the accompanying drawings and the following detailed description of various embodiments, the non-limiting and non-exhaustive embodiments of which are described with reference to the accompanying drawings. [Brief explanation of the drawings]

[0020] [Figure 1] FIG. 1 shows five different exemplary phase morphologies for an additive within a polymer phase, for example, a dispersed phase within a continuous phase. [Figure 2] Figure 2 provides an SEM image of the printed article. [Figure 3A]FIG. 3A provides an SEM image of the printed article before solvent extraction. [Figure 3B] FIG. 3B provides an SEM image of the printed article after solvent extraction. [Figure 4A] FIG. 4A shows a histogram of pore directionality for the printed article before solvent extraction. [Figure 4B] FIG. 4B shows a histogram of pore directionality for the printed article after solvent extraction. [Figure 5A] FIG. 5A provides an SEM image of the printed article after solvent extraction. [Figure 5B] FIG. 5B provides an SEM image of the printed article after solvent extraction. [Figure 5C] FIG. 5C provides an SEM image of the printed article after solvent extraction. [Figure 5D] FIG. 5D provides an SEM image of the printed article after solvent extraction. [Figure 6] Figure 6 shows photographs showing the wicking performance of two parts, each printed with PDO / PEG (60 / 40). [Figure 7] Figure 7 shows a photograph of the wicking performance of two parts, one printed with PDO / PEG (60 / 40) and the other printed with HDPE / PCL (45 / 55). [Figure 8] Figure 8 provides SEM images of 3D printed parts subjected to degradation conditions. [Figure 9] FIG. 9 is a graph of estimated accelerated time (days) versus amount of degradation in vitro for 3D printed parts with various compositions. DETAILED DESCRIPTION OF THE INVENTION

[0021] The present invention may be understood more readily by reference to the following detailed description of preferred embodiments of the invention and the examples included therein.

[0022] Briefly, the present invention provides additive manufacturing, polymer compositions for use therein, and products made therewith, such as products having porosity or microporosity, i.e., greater porosity than would be produced by the additive printing process itself. Thus, the present invention provides compositions useful for additive manufacturing, methods of practicing additive manufacturing using the compositions of the present invention, and products made by additive manufacturing processes, as well as related subject matter.

[0023] Porous and microporous parts produced by additive manufacturing as disclosed herein are useful for medical and non-medical applications. These parts are produced from compositions that include both solvent-soluble and solvent-insoluble components. After a part is printed by an additive manufacturing process, the part can be exposed to a solvent to extract the solvent-soluble components from the printed part, resulting in a part with altered surface morphology.

[0024] In one exemplary application, the compositions and associated methods are useful in the manufacture of medical devices, such as devices that interface internally or externally with a patient's body. The present invention provides compositions and methods that facilitate the ability to create customized, patient-specific implants with increased precision in design. The compositions and methods of the present invention support the creation of advanced scaffolds, artificial partial or complete organs, targeted drug delivery, and many other applications.

[0025] The present invention provides a composition useful for forming parts by an additive manufacturing process. The composition includes at least two components, one of which is essentially insoluble in a selected solvent and the other of which is substantially soluble in the selected solvent. Thus, when the composition is immersed or otherwise exposed to the selected solvent for a period of time, one of the components dissolves in the solvent while the other component does not. The process by which the composition is exposed to the selected solvent is referred to herein as an extraction step or extraction process.

[0026] While the relatively insoluble component does not need to be completely insoluble in the solvent, the component should be essentially insoluble in the solvent during the extraction process. As used herein, essentially insoluble means that no more than 5% by weight of the insoluble component dissolves in the solvent during the solvent exposure period, and in embodiments, no more than 4% by weight, or no more than 3% by weight, or no more than 2% by weight, or no more than 1% by weight of the relatively insoluble component dissolves in the solvent during the extraction step.

[0027] Similarly, it is not necessary for all of the relatively soluble components of the composition to dissolve in the selected solvent during the extraction process, however, the soluble components should dissolve much more readily in the solvent than the insoluble components, so that while the soluble components dissolve in the solvent, little or none of the insoluble components dissolve in the solvent.

[0028] Herein, the soluble component may be referred to as an additive, or an additional component, or an additive phase. Herein, the insoluble component may be referred to as a matrix or a matrix phase. In one embodiment, the soluble component is a minor component (<50% by weight) of the composition, and the insoluble component is a major component (>50% by weight). Thus, herein, the insoluble component may be referred to as providing or being the continuous phase, and the insoluble component may be referred to as providing or being the discontinuous phase.

[0029] In one embodiment, the component that is relatively insoluble in the selected solvent is a polymer, e.g., an organic polymer. This component can be a single polymer, e.g., polyethylene or polylactide, or it can be a blend of polymers, e.g., a blend including polyethylene and polylactide. In one embodiment, the insoluble component is a single polymer composition. Thus, the present invention discloses a composition comprising an additive in a polymer phase, where the additive is a soluble component of the composition and is soluble in the solvent, while the polymer phase is an insoluble component of the composition, comprises an organic polymer, and is essentially insoluble in the solvent.

[0030] The compositions of the present invention include components that are soluble in the selected solvent, sometimes referred to as the additive phase. Examples of materials that make up the additive phase include organic small molecules, organic polymers, and inorganic particles. Suitable organic small molecules include sugars and carboxylic acids (including their salts). Suitable organic polymers include polyesters and polyanhydrides. Suitable inorganic particles include inorganic salts such as sodium chloride and hydroxyapatite.

[0031] In one embodiment, the component soluble in the selected solvent is a polymer, e.g., an organic polymer. In another embodiment, the component soluble in the selected solvent is a salt. In either case, the soluble component may be referred to as the additive component or additive phase of the composition.

[0032] Optionally, the component that is relatively soluble in the selected solvent is a polymer, such as an organic high molecular weight polymer. This soluble component can be a single polymer, such as polyethylene glycol or polyvinyl alcohol, or it can be a blend of polymers, such as a blend including polyethylene glycol and polyvinyl alcohol. In one embodiment, the soluble component is a single polymer. In one embodiment, the soluble component is a blend of two or more polymers. In one embodiment, the soluble component is or comprises a polyalkylene glycol, such as polyethylene glycol (PEG), a blend of PEG and polypropylene glycol (PPG) such as found in the PLURONICS polymers manufactured by DowDuPont (Midland, Michigan, USA), or a polymer phase that may be soluble in an alcohol solvent such as methanol, while the insoluble component, the polymer phase, is or comprises a biodegradable polymer, such as PPG, which is a polymer containing segments formed from polyester and / or polyhydric alcohol segments, e.g., glycolide (polyglycolide, PGA), lactide (polylactide, PLA), dioxanone (polydioxanone, PDO), trimethylene carbonate (polytrimethylene carbonate, TMC), caprolactone (polycaprolactone, PCL), hydroxyalkanoates such as hydroxybutyrate (polyhydroxyalkanoates, e.g., PHB), or mixtures thereof, such as polylactide-co-glycolide (PLGA).

[0033] The additive phase may be formed from an organic polymer that has little or no solubility in water. An example of such an additive phase is polylactide, which has a water solubility of less than 0.1 g / L. In one embodiment, the additive phase is water insoluble or essentially water insoluble, with a solubility of less than 1 g / L, or less than 0.5 g / L, or less than 0.1 g / L.

[0034] The polymer phase in the composition, whether present as a soluble or insoluble component, or both, can be entirely biodegradable or can include biodegradable components. However, the polymer phase is not necessarily biodegradable; in other embodiments, the polymer phase is non-biodegradable. In one embodiment, the polymer phase comprises a mixture of biodegradable and non-biodegradable materials. Exemplary biodegradable polymers include polyesters and polyanhydrides. In one embodiment, the biodegradable polymer comprises polyester segments, such as those derived from glycolide, lactide, dioxanone, trimethylene carbonate, caprolactone, citric acid, and hydroxyalkanoates.

[0035] In one embodiment, the insoluble component of the composition comprises a fully formed polymeric phase, or a non-degradable polymer. Examples of suitable non-degradable polymers include nylon, polypropylene, polyetheretherketone, polyaryletherketone, polyterephthalate, polyvinyl alcohol, polyurethane, thermoplastic polyurethane (TPU), and polypropylene.

[0036] Optionally, when the polymer phase comprises a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, polyethylene terephthalate, the additive is soluble in an organic solvent such as chloroform, while the polymer phase is not soluble in an organic solvent, such as chloroform, and the additive is a polymer comprising segments formed from polyester and / or polyanhydride segments, for example glycolide (polyglycolide, PGA), lactide (polylactide, PLA), dioxanone (polydioxanone, PDO), trimethylene carbonate (polytrimethylene carbonate, TMC), caprolactone (polycaprolactone, PCL), hydroxyalkanoates such as hydroxybutyrate (polyhydroxyalkanoates, e.g., PHB), or mixtures thereof, such as polylactide-co-glycolide (PLGA).

[0037] Optionally, the component that is relatively soluble in the selected solvent is not a polymer, for example, the soluble component may be a salt.

[0038] In one embodiment, the additive phase, which may be dispersed within the polymer phase or may contain a dispersed polymer phase within the additive phase, comprises a water-soluble inorganic salt. The inorganic salt is preferably a biocompatible inorganic salt such as sodium chloride. Sodium chloride dissolves in water at room temperature at a level of 359 g / L. In one embodiment, the inorganic salt is soluble in water at room temperature to the extent of at least 100 g / L, or at least 200 g / L, or at least 300 g / L.

[0039] The compositions of the present invention comprise a solvent-soluble component and a solvent-insoluble component. Taken together, these two components can comprise 100% by weight of the composition. However, in other embodiments, these two components comprise the majority of the composition, i.e., greater than 50% by weight of the composition, or at least 60%, at least 70%, at least 80%, at least 90%, or at least 95% by weight of the total weight of the composition of the present invention. Thus, in one embodiment, the present invention provides a composition comprising an additive in a polymer phase, wherein the additive is soluble in the solvent, the polymer phase comprises an organic polymer and is essentially insoluble in the solvent, the composition having a predetermined weight percentage of the additive based on the weight of the composition and a predetermined weight percentage of the polymer phase based on the weight of the composition, wherein the sum of the weight percentage of the additive and the weight percentage of the polymer phase is greater than 90%. As noted above, the additive may be a polymer or polymer blend, or may be a salt.

[0040] As noted herein, in one aspect, the present invention is a composition comprising a dispersed phase (e.g., also referred to as a soluble phase or soluble component) and a continuous phase (e.g., also referred to as an insoluble phase or insoluble component). The composition is solid at room temperature, allowing it to be formed and held in a desired shape, such as granules or filaments. However, at elevated temperatures, the composition melts and becomes flowable. Upon cooling, the composition returns to its solid state. The cooled material, when used in additive manufacturing, provides the desired shape of the printed material. Thus, the composition can be described as thermoplastic. One or both of the continuous or dispersed phases can be described as having thermoplastic properties.

[0041] The thermoplastic compositions provided herein for additive manufacturing, such as FFF printing and other similar melt extrusion additive manufacturing processes, can be composed of one or more phases, depending on the compatibility and solubility of the components and the intended manufacturing process. In certain cases, compositions of the present invention useful for additive manufacturing can include one or more continuous phases and / or one or more dispersed phases. For example, a composition can have two continuous phases formed from two different materials that are not miscible with each other. Similarly, a composition can have two dispersed phases formed from two different materials that are immiscible with each other. In another embodiment, a composition has a single continuous phase formed from two or more materials that are miscible with each other. Similarly, in another embodiment, a composition has a dispersed phase formed from two or more materials that may or may not be miscible with each other.

[0042] A continuous phase can be identified by the connectivity of the phase over a given length, for example, if the continuous phase comprises a polymer that is electrically conductive, the continuous phase allows electrical current to flow along the length of the continuous phase.

[0043] The continuous phase can have an unstructured shape, where the continuous phase has a random shape, and can take several forms, such as rod structures, foam structures, particulate structures where the particulates are in contact with each other, film structures, lamellar structures, fibrous structures, laminate structures, etc.

[0044] As previously mentioned, the continuous phase can be or include a polymer, such as a thermoplastic polymer. Compositions that include a polymeric continuous phase also include a dispersed phase that includes a porogen or other additive that is mixed with the polymer but maintains a separate phase from the polymeric continuous phase. When a relatively large amount of additive is mixed with the polymer, the additive may be present in such a large amount that it forms a continuous phase, and the polymer with which it is mixed forms a dispersed phase within the continuous phase.

[0045] In some embodiments, the composition comprises multiple continuous phases. The multiple continuous phases may take the form of continuous fibers within a continuous film, a co-continuous foam-like structure, a lamellar structure, side-by-side phases, and other forms. In an exemplary embodiment, the composition comprises two continuous polymer phases, where the composition is optionally in the form of a single monofilament, and the two continuous polymer phases may be made of polyglycolide and polycaprolactone, and take the form of a continuous polyglycolide film surrounding one or more polycaprolactone filaments. The monofilaments are printed into a part, e.g., an intermediate implant, using an additive manufacturing process such as the FFF process, which preserves the phase separation present in the process polymer. After implantation, the polyglycolide degrades via hydrolysis within two months, leaving a residual structure with the same net shape, dominated by a collection of small polycaprolactone fibers, and 50% of the original part weight. This is useful for providing a high-strength, high-density initial part that transitions into a low-density, high-surface-area implant that supports newly forming tissue ingrowth.

[0046] The compositions of the present invention are thermoplastic in that they are solid at room temperature, can be heated to reach a fluid molten state, and return to a solid state upon cooling.

[0047] In one embodiment, the compositions of the present invention are solid at ambient temperatures, e.g., 20-25°C, but are fluid at elevated temperatures, such as the operating temperatures of additive manufacturing processes. Different additive manufacturing processes use different operating temperatures, which are typically in the range of 50-450°C. In various embodiments, the compositions of the present invention become fluid at what can be referred to as the melting point of the composition, which, depending on the composition, can be about 50°C, or about 75°C, or about 100°C, or about 125°C, or about 150°C, or about 175°C, or about 200°C, or about 225°C, or about 250°C, or about 275°C, or about 300°C, or about 325°C, or about 350°C, or about 375°C, or about 400°C, or about 425°C, or about 450°C, inclusive. For example, in one embodiment, the composition of the present invention has a melting point greater than about 50°C, e.g., about 50-100°C, or about 50-150°C, or about 50-200°C. In another embodiment, the composition of the present invention has a melting point greater than about 75°C, e.g., about 75-125°C, or about 75-150°C, or about 75-175°C, or about 75-200°C, or about 75-225°C. As used herein, a temperature of "about X" (where X is a temperature as defined above) refers to the temperature X ± 5°C of the temperature X, i.e., the temperature as defined above ± 5°C.

[0048] The melting point of the compositions of the present invention can be measured according to ASTM or ISO standard procedures. For example, ASTM D7138-16 can be used to determine the melting temperature of synthetic fibers. As another example, ASTM D3418 describes measuring melting point using differential scanning calorimetry (DSC).

[0049] When a composition is in a molten state, e.g., above its melting point, it can be characterized by its melt flow properties, such as its melt flow index (MFI) or melt flow rate (MFR). A useful test for measuring a material's ability to flow is the melt flow index (MFI). This test can be applied to viscous fluids, including crystalline, semi-crystalline, or amorphous thermoplastic materials, to determine the material's flow rate under given conditions of temperature and pressure, typically given as grams of weight per minute of time that a given composition will flow through a given orifice size. This test is a nonspecific analysis of a material's ability to flow and is useful for determining the effects of temperature or pressure on a composition. For FFF and FDM, it is desirable to determine the appropriate temperature range to produce an MFI value between approximately 2.5 and 30 grams per 10 minutes, which translates to the preferred FFF or FDM process temperature for a given composition.

[0050] ASTM and ISO publish standard procedures for measuring melt flow. See, for example, ISO 1133, JIS K 7210, and ASTM D1238 for common methods. In one embodiment, melt flow is measured according to ISO-1112-1 Procedure A. In another embodiment, melt flow is measured according to ASTM A1238 Procedure A. In another embodiment, melt flow is measured according to ISO 1122-2. In another embodiment, melt flow is measured according to ASTM D1238. Instron Company (Norwood, Massachusetts, USA) sells instruments that can be used to measure melt flow according to these procedures, such as the CEAST Melt Flow Tester MF10, MF20, and MF30 models. Zwick Roell AG (Ulm, Germany) is another company that manufactures and sells official melt flow testers.

[0051] Thus, compositions of the present invention can be characterized by their MFI, if desired. The MFI generally corresponds to how viscous a fluid composition is, where a higher MFI corresponds to a lower viscosity of the composition. While a wide range of composition viscosities can be used in additive manufacturing, certain MFI values ​​are particularly suitable and obtainable by compositions of the present invention. In one embodiment, compositions of the present invention have an MFI of about 2.5 to 30 g / 10 min at temperatures above the melting temperature of the composition and within the operating temperature of an additive manufacturing process, e.g., FFF. In various embodiments, the compositions of the present invention are characterized by an MFI in grams of about 2.5 to 30, or about 2.5 to 25, or about 2.5 to 20, or about 2.5 to 15, or about 2.5 to 10, or about 5 to 30, or about 5 to 25, or about 5 to 20, or about 5 to 15, or about 10 to 30, or about 10 to 25, or about 10 to 15, or about 15 to 30, or about 15 to 25, or about 15 to 20, or about 20 to 30, or about 25 to 30. As used herein, about XY grams refers to X and Y ± 10%, respectively, e.g., about 2.5 refers to 2.25 to 2.75, and about 30 refers to 27 to 33 grams.

[0052] As the percentage of solid dispersed phase in a composition increases, the material's ability to flow decreases, reflected in a decrease in MFI value at the same temperature. Various components help to increase the viscous flow of the composition, including plasticizers such as oils, surfactants, organic solvents such as water, monomers, low molecular weight polymers, and oligomers. While the latter three are optional and can be left in the polymer as unreacted residues, their presence aids in downstream processing such as extrusion or FFF printing.

[0053] Thus, in one embodiment, the invention provides a composition comprising an additive in a polymer phase, wherein (a) the additive is soluble in a solvent, and (b) the polymer phase comprises an organic polymer and is essentially insoluble in the solvent, the composition being solid at temperatures below 25°C and a viscous fluid having a melt flow index of 2.5 to 30 g / 10 min above the melting temperature of the composition. Optionally, the composition has a predetermined weight percent of the additive based on the weight of the composition and a predetermined weight percent of the polymer phase based on the weight of the composition, wherein the sum of the weight percent of the additive and the weight percent of the polymer phase is greater than 90%.

[0054] The additive phase can generally contain non-spherical particulates. For example, non-spherical crystals, such as cubic sodium chloride salts, can be present in the composition. Thus, the additive phase can contain structures with aspect ratios greater than 1:1. In some cases, the longer aspect ratios generated from chopped filaments can be added at concentrations that function as reinforcing elements to increase strength or modulus or improve fatigue resistance. For example, chopped filaments with diameters between 5 and 50 μm, e.g., 12 μm, and aspect ratios between 1001:0 and 10:1, e.g., about 100:1, can be used to produce fiber-reinforced filaments. During processing, the additive phase containing these filaments generates loads that essentially align the filaments in the process direction, thereby improving mechanical performance along that direction.

[0055] The microparticles can range in size from about 50 nm to 0.5 mm. In one embodiment, the average particle size can be 20 to 400 μm. In another embodiment, the average particle size can be 400 to 800 μm. Optionally, the microparticles have a broad size distribution, with a standard deviation of the average particle size greater than ±30%. Alternatively, the particle size distribution is narrow, with a standard deviation of the average particle size less than ±30%.

[0056] In one embodiment, the particles have a particle size distribution with a standard deviation of 10% or less. The dispersed phase can include microparticles of various diameters. The dispersed phase can include a combination of microparticles having distinct size ranges. In one embodiment, microparticles having an average particle size of 20 to 400 μm are combined with microparticles having an average particle size of 400 to 800 μm.

[0057] Microparticles of the desired average particle size and particle size distribution can be produced by a variety of techniques: the particle size ranges used can be prepared by crystallization processes, precipitation processes, sieving processes, mechanical grinding or milling processes, cutting or chopping processes, and extrusion processes or combinations of these processes.

[0058] In one embodiment, the additive or dispersed phase comprises an inorganic salt, for example, an inorganic salt comprising a cation and a cation, wherein the cation is selected from sodium, potassium, magnesium, and an anion, wherein the anion is selected from chloride, bromide, iodide, sulfate, phosphate, carbonate, bicarbonate. In one embodiment, the additive or dispersed phase comprises a water-soluble organic compound, for example, a sugar or an organic carboxylic acid or salt thereof.

[0059] In one embodiment, the continuous phase comprises a bioabsorbable polymer, for example, a bioabsorbable polymer comprising segments selected from polyesters, polyanhydrides, poly(hydroxybutyrates), and polyethers. In one embodiment, the continuous phase comprises a non-bioabsorbable polymer, for example, a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, and polyethylene terephthalate.

[0060] Table A shows the solubility of various polymers in various solvents. The present invention provides two-phase compositions in a form suitable for additive manufacturing, comprising a dispersed phase and a continuous phase. The dispersed phase can contain an additive that is soluble in a solvent that does not dissolve the continuous phase containing the polymer. Alternatively, the additive phase can comprise the majority of the composition, with the polymer phase distributed within the continuous additive phase. In the table, PGA stands for poly(glycolic acid) or poly(glycolide), PLA stands for poly(lactic acid) or poly(lactide), PCL stands for poly(ε-caprolactone), PVA stands for poly(vinyl alcohol), and PEG stands for poly(ethylene glycol).

[0061] [Table 1]

[0062] In one embodiment, a composition is prepared, which may be in filament or granular form, comprising polylactic acid as the polymer phase and polyvinyl alcohol as the additive phase. Optionally, the polymer phase is a continuous phase. Alternatively, the polymer phase is a dispersed phase. The weight ratio of polylactide to polyvinyl alcohol can be varied to achieve the desired amount of porosity. In one embodiment, the majority of the composition by weight is the continuous phase. In other embodiments, the dispersed phase provides 10-50%, 10-40%, 10-30%, 10-20%, 20-50%, 20-40%, 20-30%, or 30-50%, 30-40%, or 40-50% of the composition by weight, with the remainder being the continuous phase and additives. For example, to create a tissue scaffold, a part can be prepared with polylactide as the continuous phase and polyvinyl alcohol as the dispersed phase in a 60:40 ratio. To create microporosity within the printed part, the part can be immersed overnight in a stirred room temperature water bath to extract the polyvinyl alcohol.

[0063] Optionally, the polymer present in the composition of the present invention, e.g., a polymer as an insoluble component, contains one or more non-polymeric components. Exemplary non-polymeric components include antioxidants, stabilizers, viscosity modifiers, extrusion aids, lubricants, plasticizers, colorants and pigments, and active pharmaceutical ingredients. In some cases, such non-polymeric components contribute to two or more of the above functions. In various embodiments, the total weight percent of the non-polymeric components based on the total weight of the continuous phase is less than 10, or less than 9, or less than 8, or less than 7, or less than 6, or less than 5, or less than 4, or less than 3, or less than 2, or less than 1 wt.%.

[0064] Suitable antioxidants that can be used to minimize process and heat-induced oxidation include, for example, primary antioxidants such as hindered phenols, and secondary antioxidants such as thioethers.Suitable antioxidants are biocompatible in the amount used in the composition.For medical applications, biocompatible antioxidants, such as vitamin E, are preferred.

[0065] Suitable colorants for imparting color to manufactured parts are optionally biocompatible in the amounts used in the composition. For medical applications, biocompatible colorants are preferred. Exemplary biocompatible colorants include D&C Violet #2, D&C Blue #6, D&C Green #6, (phthalocyaninato(2-))copper, and others listed in FDA 21 CFR parts 73 and 74. The colorant should be used in an amount effective to achieve the desired appearance; for example, about 0.05% by weight of D&C Violet #2 can be used to produce a purple device. In one embodiment, the colorant is an FDA-approved colorant present in the composition at a concentration of 0.1-0.5% by weight; in other embodiments, the colorant concentration is 0.2-0.5% by weight, or 0.3-0.5% by weight, or 0.4-0.5% by weight. In one embodiment, the colorant concentration does not exceed about 0.5% by weight.

[0066] Suitable viscosity modifiers, which typically reduce the melt viscosity of the composition, include oils, low molecular weight polymers and oligomers, monomers, and solvents. The use of a viscosity modifier reduces the energy required to melt the composition, improving flow and layer adhesion during the printing process. In one embodiment, PEG having a molecular weight of approximately 1,000 is included in the continuous phase at 0.5 wt. %. When the main component of the continuous phase is poly(lactide), the addition of 0.5 wt. % PEG having a molecular weight of 1,000 results in a composition that can be processed through the FFF process at 15° C., which is lower than the corresponding monofilament without the viscosity modifier. In one embodiment, the composition of the present invention includes a viscosity modifier that is polyethylene glycol having a molecular weight of less than 5,000, wherein the viscosity modifier is present in the composition at a concentration of less than 1 wt. % of the composition.

[0067] In one aspect, the present invention provides a composition comprising a dispersed phase in a continuous phase. The dispersed phase may be soluble in a solvent. The continuous phase optionally comprises an organic polymer and is insoluble or substantially insoluble in the solvent. Optionally, the composition is solid at temperatures below 25°C and a viscous fluid above its melting temperature. For example, when melted, the composition has a melt flow index of about 2.5 to 30 g / 10 min at temperatures above the melting temperature of the composition. Optionally, the composition is solid at temperatures below 25°C and a viscous liquid at elevated temperatures. For example, at elevated temperatures, the composition has a melt flow index of about 2.5 to 30 g / 10 min. The elevated temperatures can be in the range of 50 to 450°C, which is commonly used in FFF additive manufacturing. Optionally, the composition has a predetermined weight percent of the dispersed phase based on the weight of the composition and a predetermined weight percent of the continuous phase based on the weight of the composition, wherein the sum of the weight percent of the dispersed phase and the weight percent of the continuous phase is 90% or greater. These and other aspects of the composition are described below.

[0068] In one embodiment, the polymer phase, which may be either a continuous or dispersed phase, comprises multiple polymers. In another embodiment, the polymers of the polymer phase are not phase separated. In another embodiment, the polymers of the polymer phase can be phase separated. When the polymer phase comprises multiple polymers, the two or more polymers can provide different functions to the composition, where the polymers can provide antioxidant properties, improve the stability of the composition, modify viscosity, aid in extrusion of the composition, provide lubricant properties, provide plasticizer properties, provide color, and provide biological activity.

[0069] In addition to the continuous phase, compositions of the present invention useful for additive manufacturing include a dispersed phase. A dispersed phase is identified as a discontinuous material contained throughout the composition and can include one or a variety of shapes. An example of the distribution of a dispersed phase in a continuous phase is shown in the box in Figure 1. As noted above, the dispersed phase can be a polymer dispersed in a non-polymeric continuous phase. Alternatively, the dispersed phase can be a porogen or other additive combined with the polymer phase that makes up the continuous phase. Thus, the polymer phase can be the continuous phase, in which case the additive is the dispersed phase, or the additive can be the continuous phase, in which case the polymer is the dispersed phase.

[0070] Optionally, the additive phase may be in the form of particles. For example, in some variations, the microparticles are identified as microspheres with regular, smooth walls. These microspheres can be made, for example, by an emulsification process or by various other techniques used to make microspheres. Alternatively, the microparticles can comprise a collection of irregularly shaped particles. Irregularly shaped microparticles can include particles with smooth surfaces, rough surfaces, or a combination thereof. Microparticles include particles with jagged edges. Irregularly shaped particles can be produced by comminution techniques such as jet milling, cryomilling, or ball milling to reduce the microparticle size to a diameter suitable for the application.

[0071] The additive phase, which may be either the continuous or dispersed phase of the composition, is defined herein by its solubility in at least one solvent. In one embodiment, the additive phase is soluble in a solvent or solvent system in which the polymer phase has limited solubility. This solubility difference serves to create immediate or time-delayed porous or microporous structures based on dissolution and subsequent separation of the additive phase from the polymer phase.

[0072] In some embodiments, the continuous phase is substantially insoluble in water, while the dispersed phase dissolves or separates in water. This property allows for the creation of microporous parts by selectively dissolving the dispersed phase prior to implanting the formed part in a patient. Conversely, it may be beneficial to implant a formed part containing a soluble dispersed phase, where the dispersed phase is released from the implant after the part is implanted in a patient. One or more dispersed phases and one or more continuous phases can be selected such that the dispersed phase is soluble in a solvent while the components of the continuous phase are essentially insoluble in the same solvent.

[0073] In another embodiment, the additive phase comprises an organic polymer that is soluble in an organic solvent, and the polymer phase is an organic polymer that is not soluble in the same organic solvent. An example of such a composition is when the additive phase is polycaprolactone (PCL). PCL is soluble in chloroform, dichloromethane, carbon tetrachloride, benzene, toluene, cyclohexanone, and 2-nitropropane at room temperature, and has low but significant solubility in acetone, 2-butanone, ethyl acetate, dimethylformamide, and acetonitrile. PCL is insoluble in ethanol, petroleum ether, and diethyl ether. The composition can have a polymer phase that is insoluble in one or more of the listed solvents. For example, PCL has low solubility in acetone, while poly(glycolide-block-trimethylene carbonate) is essentially insoluble in acetone. Thus, a composition of PCL as a dispersed phase in poly(glycolide-block-trimethylene carbonate) as a continuous phase constitutes a composition of the present invention. As another example, a composition of PCL as the continuous phase in poly(glycolide-block-trimethylene carbonate) as the dispersed phase would be a composition of the invention.

[0074] In a preferred embodiment, the dispersed phase is stable within the continuous phase so that at least one dispersed phase can be incorporated into at least one continuous phase during the filament formation process. The phase separation between the continuous and dispersed phases in solid form must remain stable during storage and throughout the subsequent additive manufacturing process so that the phases remain separated until the final part. After the final part is formed, the soluble dispersed phase can be removed using a solvent, or the part can be embedded to allow for delayed porosity generation by in situ dissolution.

[0075] The dispersed phase is preferably chemically compatible with the continuous phase. For example, during storage, the dispersed phase should not cause degradation of the continuous phase, including chain scission or oxidation, and the dispersed phase should not initiate crosslinking or other chain modifications to the continuous phase. For parts intended for medical use, the continuous and dispersed phases should each be biocompatible, and ions resulting from dissolution or cellular responses to the presence of the dispersed phase, including by-products or processing aids supplied with the implanted part as part of the dispersed layer, should not be physically or medically harmful to a patient receiving an additively manufactured implant of the present invention.

[0076] Compositions comprising a dispersed phase and a continuous phase are characterized by the separation of distinct phases within the composition. In one embodiment, the dispersed phase is uniformly dispersed throughout the composition, although in some cases it may be advantageous to have the dispersed phase preferentially located in one or more regions of the composition. Furthermore, the dispersed phase preferably does not exhibit particle aggregation, but instead individual dispersed units are surrounded by material from the continuous phase. These properties can be obtained by appropriately selecting the relative surface free energy, charge, hydrophobicity, density, shape, size, and other cohesive forces of the dispersed phase relative to the continuous phase.

[0077] In various embodiments, the dispersed phase is introduced into the continuous phase by melt blending. The dispersed phase may be added to the molten continuous phase, or the molten continuous phase may be added to the dispersed phase, and upon proper mixing, a homogeneous composition will be formed. Alternatively, the dispersed phase may be added to the reactants used to form the continuous phase, i.e., the monomers that form the continuous phase upon polymerization. This latter option is preferred as long as the dispersed phase does not dissolve in the reaction mixture used to form the continuous phase, but instead is dispersed throughout that reaction mixture.

[0078] In other embodiments, the additive phase is introduced into the polymer phase by melt blending. The additive phase may be added to the molten polymer phase, or the molten polymer phase may be added to the additive phase, and upon proper mixing, a homogeneous composition is formed. Alternatively, the additive phase may be added to the reactants used to form the polymer phase, i.e., the monomers that, upon polymerization, form the polymer phase. This latter option is preferred so long as the additive phase does not dissolve in the reaction mixture used to form the polymer phase, but instead is dispersed throughout that reaction mixture.

[0079] Depending on how the continuous and disperse phases are combined, the resulting composition may have the disperse phase uniformly distributed throughout the continuous phase, or the disperse phase may be preferentially distributed in specific regions of the continuous phase. For example, the disperse phase may be present primarily or exclusively in the outermost portions of the filaments formed from the continuous and disperse phases.

[0080] The present invention provides monofilaments useful for forming articles by additive manufacturing processes. These monofilaments can be described in a variety of ways, such as by shape, weight, physical properties, etc.

[0081] In one embodiment, the monofilament has a circular cross section, i.e., the monofilament is circular. Therefore, the monofilament can be described as having a predetermined diameter. In one embodiment, the diameter of the monofilament is within the range of 1.5 to 3.5 mm. In one embodiment, the diameter is 1.75 mm. In another embodiment, the diameter is 3.0 mm. In one embodiment, the diameter does not vary significantly along the length of the filament. For example, the diameter can be selected from a range of 1.5 to 3.5 mm, characterized by a variation of ±0.1 mm or less along the length of the monofilament. In one embodiment, the diameter does not vary by more than 0.1 mm, e.g., the diameter can be described as 3.0 ±0.1 mm. In another embodiment, the diameter does not vary by more than 0.05 mm, e.g., the diameter can be described as 1.75 ±0.05 mm.

[0082] The monofilaments of the present invention are useful for additive manufacturing. In one embodiment, the monofilaments are cut into useful lengths, which correspond to useful mass. The useful mass of the monofilaments of the present invention is approximately 200 to 1500 grams for additive manufacturing. While parts printed in additive manufacturing can vary in mass, the length of the monofilament is conveniently set to provide sufficient mass to produce the entire part, but not so long that the monofilament is retained in the printer for an extended period of time before being completely consumed. Because monofilaments in the printer are prone to degradation, for example, by oxidation and hydrolysis, from a stability standpoint, it is preferred that the monofilament not remain in the printer long enough for significant amounts of degradation to occur. In light of these considerations, the present invention provides single (unbroken) lengths of monofilament weighing approximately 200 to 1500 grams, although in other embodiments, the mass is approximately 800 to 1200 grams, or approximately 1,000 grams, i.e., 950 to 1,050 grams. The present invention also provides a method of forming monofilaments, comprising cutting the monofilaments into lengths each providing a mass of approximately 1,000 grams.

[0083] The monofilaments of the present invention can be characterized by their length. In one embodiment, the length of the monofilaments is less than 500 meters. In one embodiment, the length of the monofilaments is less than 400 meters. In one embodiment, the length of the monofilaments is in the range of 10 to 500 meters, and in another embodiment, the length of the monofilaments is in the range of 10 to 400 meters. In one embodiment, the length of the monofilaments is 250 to 350 meters. These lengths of monofilaments can be wound onto spools and used in additive manufacturing. A length of about 300 to 400 meters provides a monofilament mass of about 1 kg. In one embodiment, the compositions of the present invention, i.e., monofilaments, have a mass of about 1.4 g / cm. 3 and accordingly, monofilament lengths of about 250 to 350 meters are useful for placement on a spool and are provided in accordance with one embodiment of the present invention.

[0084] The monofilaments of the present invention can be characterized by their tensile modulus. A preferred Young's modulus is at least 3 MPa and up to 4 GPa or more. The lower limit is suitable for producing highly elastic and compliant components, which is desirable for many interfaces and tissue-contacting structures. Highly elastic materials are selected for the structural performance of high-strength materials.

[0085] The monofilaments of the present invention can be characterized by their crystallinity. Different total material crystallinities can be useful in different products, with low crystallinity materials typically associated with soft, compliant materials such as elastomers. These materials can exhibit a total crystallinity of <5%. Highly crystalline materials, such as PLLA and PEEK, can be useful for creating rigid support structures where structural and mechanical strength are important.

[0086] Another useful characterization of crystallinity relates to the presence of crystalline orientation along the fiber axis. Most commonly, structural and textile monofilaments are used as oriented yarns to maximize tensile strength, an important consideration for the design and utility of a particular monofilament. Orientation is achieved after single fiber extrusion by a series of heating and drawing processes (also known as "drawing") to align the crystallites along the filament axis, thereby increasing the strength and stiffness of the fiber in that direction and having the concomitant effect of reducing the mechanical properties of the filament in the transverse direction. In one embodiment, the monofilaments of the present invention can be characterized as "undrawn" or "undrawn" in that they have not undergone a drawing process and therefore do not have the enhanced crystallinity that results from a drawing process. Several techniques are available for measuring crystalline orientation, including wide-angle X-ray diffraction, birefringence, and linear dichroism; techniques particularly useful for fibers include sound velocity.

[0087] Acoustic velocity correlates the degree of stretch to the relative speed of sound through the filament and is reported as the orientation factor (OF). OF can be measured on a scale of "0" to "1," with "0" indicating no orientation and "1" indicating perfect crystalline orientation. Sometimes, OF is reported as a percentage, i.e., 0-100%, rather than 0-1. Sometimes, OF is reported as a multiple of the velocity of an unoriented sample, e.g., 1.5 times the velocity of an unoriented control. In general, however, OF is a measure of the degree of molecular orientation or alignment of polymer chains in a fiber or filament, with higher numbers or percentages indicating a greater degree of alignment.

[0088] Many textile filaments have orientation factors greater than 0.75, 0.85, 0.90, and in some cases can and desirably exceed 0.95. Conversely, monofilaments used in additive manufacturing processes according to the present invention do not have the same tensile requirements, but instead have the benefit of mechanical isotropy along with the typically lower energy required to melt undrawn filaments. While there may be some low degree of orientation in the monofilaments of the present invention as a result of the extrusion process, because the monofilaments are undrawn, the orientation factor of the monofilaments is relatively low, e.g., less than 0.50, less than 0.40, less than 0.30, less than 0.20, or less than 0.10.

[0089] A relatively low OF is advantageous when the filaments of the present invention are suitable for melt extrusion processes such as FFF. This is because lower orientation generally means lower crystallinity, which means less heat is required to convert the monofilament to a liquid state, and the heat applied to the monofilament can convert the solid filament to a liquid state suitable for 3D printing more quickly and efficiently. Thus, in one embodiment, the monofilament of the present invention has an orientation factor of less than 50%, while in another embodiment, the monofilament has an orientation factor of less than 40%, and in another embodiment, the monofilament has an orientation factor of less than 10%. In yet another embodiment, the monofilament has an orientation factor of less than 20%, and in yet another embodiment, the monofilament has an orientation factor of less than 30%, and in yet another embodiment, the monofilament has an orientation factor of less than 10%. In each of these embodiments, the monofilament can be further characterized as an undrawn monofilament.

[0090] The monofilament of the present invention can be characterized by its flexibility. The monofilament should not be so stiff (inflexible) that it breaks or snaps when wound onto a spool. Conversely, the monofilament should not be so flexible that the trailing portion of the monofilament does not move forward when pushed forward. That is, if a length of monofilament is placed in a straight line on a flat surface and the proximal end of the monofilament is pushed toward the distal end of the monofilament, the distal end of the monofilament should move forward an equal distance as the proximal end is pushed forward. If the solid monofilament is too flexible, it will not have the strength to extrude the molten monofilament from the heating chamber.

[0091] As a measure of the ability of a monofilament to push itself through a printer, a column buckling test can be performed, where the test measures the measured buckling resistance (sometimes called buckling strength) of the monofilament in response to axial compression.

[0092] In buckling tests performed on filamentary materials, the material is positioned vertically with clamps above and below the region of the filament to be tested for buckling strength. The monofilament of the present invention can be held in place using two Bowden tubes running along and sharing a single longitudinal axis, with a 1 cm gap between the ends of one Bowden tube and the other. One monofilament is placed within the two Bowden tubes, providing an interstitial monofilament such that the 1 cm interstitial monofilament between the two tubes is unsupported and exposed to ambient conditions. Bowden tubes are found in many FFF printing devices and are cylinders with an inner diameter of approximately 2.0 mm, where a monofilament with a width of approximately 1.75 mm must move through the Bowden tube during the printing process. A mechanical test frame can be employed to move the two portions of the Bowden tube closer together, thereby observing the effect of axial compression on the interstitial filament while capturing load and displacement information during testing.

[0093] During buckling tests performed on various monofilaments, the resistance (load) increases in the fiber direction until it reaches a peak, at which point buckling becomes very pronounced as the monofilament bends and behaves like a hinge, at which point the load begins to decrease. This transition from resistance to buckling typically occurs within the first 5 mm of axial compression. After reaching this peak resistance, the filament becomes more likely to kink / bend rather than push against the applied compressive force.

[0094] A column buckling test was used to examine monofilaments that print well in 3D printing processes, as well as sample materials that print poorly or cannot be printed on existing printers that employ Bowden tubes or operate as direct-drive printers. This test identified a preferred minimum load that correlates with a "printable" monofilament, a value of at least 1 Newton. Monofilaments that offer little or no resistance to the Bowden tube ends moving together—i.e., monofilaments measuring less than approximately 1 Newton in this column buckling test—were problematic for use in direct-drive printers, as well as printers that use Bowden tubes. The failure to perform properly was due to the filament's low stiffness, which resulted in column buckling and filament misfeeding.

[0095] Thus, in one embodiment, a monofilament of the present invention exhibits a resistance of at least 1 Newton when tested by the column buckling test. The monofilament of the present invention can be characterized as having a buckling strength of at least 1 Newton. In another embodiment, a monofilament of the present invention exhibits a resistance of at least 1 Newton when a force is applied along the longitudinal axis of a 1 cm length of the monofilament. In one embodiment, a 1 cm length of a monofilament of the present invention having a width or diameter of 1.5 to 3.0 mm, e.g., 1.75±0.05 mm, exhibits a resistance of at least 1 Newton when tested by this column buckling test. In another embodiment, a 1 cm length of a monofilament of the present invention having a width or diameter of 1.5 to 3.0 mm, e.g., 1.75±0.05 mm, exhibits a resistance of at least 1 Newton when tested by this column buckling test. In another embodiment, a 1 cm length monofilament of the invention having a width or diameter of 1.5 to 3.0 mm, e.g., 1.75±0.05 mm, exhibits a resistance of at least 1 Newton when a force is applied along the longitudinal axis of the 3 cm or longer length monofilament, wherein the 1 cm length monofilament is unconstrained and there is at least 1 cm of monofilament at either end of the unconstrained 1 cm monofilament, wherein the unconstrained 1 cm monofilament resists compression along its longitudinal axis.

[0096] The present invention provides articles, sometimes referred to as assemblies, that are commercially available and give purchasers convenient access to compositions useful for use in additive manufacturing processes.

[0097] In one embodiment, the monofilament of the present invention is wound around a spool. The spool may be of the type that includes a core that supports the monofilament and two flanges that function to hold the monofilament on the core. As described herein, the monofilament of the present invention may be cut to lengths that provide approximately 1 kg of monofilament, and the present invention provides spools that contain this amount of monofilament. In other embodiments, the spools contain any of the other cut amounts of monofilament, as discussed herein.

[0098] In one embodiment, the monofilaments of the present invention are packaged and stored in a non-degrading environment. This is particularly important for monofilaments containing components susceptible to degradation by air or moisture. Such monofilaments include bioabsorbable monofilaments, i.e., monofilaments made from bioabsorbable materials that are particularly susceptible to moisture-induced degradation. Whether the monofilament is bioabsorbable or not, it is beneficial to store it in an inert atmosphere. Thus, the non-degrading environment can have one or both of a controlled moisture content and a controlled oxygen content. In one embodiment, the storage conditions include a dry environment with a controlled moisture content; in various embodiments, the moisture content is controlled to be less than 1000 ppm, or less than 800 ppm, or less than 600 ppm, or less than 400 ppm. The inert environment may be achieved by replacing the ambient air with a nitrogen-enriched atmosphere. Alternatively, the inert environment may be achieved by placing the monofilament in an oxygen-impermeable package and then sealing the package under reduced pressure. This method also reduces the amount of moisture the monofilament will be exposed to during storage. Optionally, a desiccant, such as a packet of silica, can be placed in the package along with the monofilament.

[0099] In one embodiment, the present invention provides a packaged monofilament. The packaged monofilament is wound onto a spool, and the spool with the monofilament is placed in a foil pouch. The foil pouch is sealed under vacuum or after replacing the ambient atmosphere with an inert atmosphere (e.g., nitrogen or dry air). Thus, the present invention provides a sealed package, such as a foil pouch, that contains the monofilament wound onto a spool and has reduced moisture and / or oxygen levels relative to ambient conditions. Optionally, the pouch contains a single spool. Optionally, there is about 1 kg of monofilament wound onto a single spool.

[0100] In other embodiments, the present invention provides methods of forming the compositions disclosed herein into monofilament form and methods of forming assemblies from the monofilaments disclosed herein. The methods of forming the compositions disclosed herein into monofilament form include combining a solvent-soluble component and a solvent-insoluble component, melting the composition to obtain a molten composition, extruding the molten composition into an unstretched monofilament form having a diameter of 1 to 5 mm, e.g., 1.75±0.05 mm, and then optionally maintaining the unstretched monofilament in an unstretched form and / or sterilizing the unstretched monofilament. A method of forming an assembly from the monofilaments disclosed herein includes providing a composition including a solvent-soluble component and a solvent-insoluble component, melting the composition to obtain a molten composition, extruding the molten composition into the form of an unstretched monofilament having a diameter of 1 to 5 mm, e.g., 1.75±0.05 mm, sterilizing the unstretched monofilament, winding the unstretched monofilament onto a spool, packaging the spool and monofilament in an airtight container, and optionally incorporating a desiccant into the container.

[0101] Thus, in one embodiment, the present invention provides a method for forming a monofilament-like composition, the method comprising combining an additive phase with a polymer phase to form a composition, or alternatively, combining a soluble component with an insoluble component as described herein to form a composition, heating the composition to form a molten composition, and extruding the molten composition to form a non-oriented monofilament. The non-oriented monofilament can then be used in an additive manufacturing process as described herein. Optionally, the non-oriented monofilament may be sterilized to facilitate use in forming components for medical applications. Optionally, the non-oriented monofilament may be packaged for commercial sale. For example, the non-oriented monofilament can be wound onto a spool as described herein and then placed in a package for storage until the monofilament is ready for use. The package may be airtight to prevent exposure of the monofilament to atmospheric moisture or oxidative conditions. The package may be, for example, a foil pouch, in which case the package includes placing the monofilament in the foil pouch. The monofilament may have any of the properties described herein, such as composition, diameter, length, color, orientation factor, buckling strength, etc. For example, the monofilament can be formed from a composition that includes a water-soluble component such as PEG (polyethylene glycol, an additive) and a bioabsorbable polymer phase such as PDO that is substantially insoluble in water for a period of time after forming the part therefrom during which the additive dissolves in water.

[0102] Also, in one embodiment, the present invention provides a method for forming an assembly, the method comprising providing a composition comprising an additive phase and a polymer phase as described herein to form a composition, or alternatively, preparing a composition comprising soluble and insoluble components as described herein, obtaining the composition in a molten state, extruding the composition in the molten state to form an unstretched monofilament, winding the unstretched monofilament onto a spool, and packaging the spool with the wound monofilament, for example, in a foil pouch. The packaging may be airtight to prevent exposure of the monofilament to moisture or oxidative conditions from the surrounding atmosphere. The packaging may be, for example, a foil pouch, in which case the packaging comprises placing the monofilament in the foil pouch. The monofilament may have any of the properties described herein, such as composition, diameter, length, color, orientation factor, buckling strength, etc. For example, the monofilament may be cut to lengths of less than 400 meters when placed on the spool. As another example, the monofilament may be formed from a composition that includes a water-soluble component such as PEG (polyethylene glycol, an additive) and a bioabsorbable polymer phase such as PDO that is substantially insoluble in water during the time it takes to dissolve in water after forming the part.

[0103] The present invention provides additive manufacturing methods using the compositions and / or monofilaments and / or assemblies disclosed herein.

[0104] In one embodiment, the present invention provides an additive manufacturing process, the process comprising the steps of: (a) melting a solid composition to obtain a molten composition, wherein the molten composition comprises an additive phase and a polymer phase as described herein; (b) performing additive manufacturing to form an article from the molten composition; and c) contacting the article with a solvent under conditions that at least partially dissolve the additive phase but not the polymer phase to form a porous or microporous body of the article, wherein the additive phase is soluble in the solvent.

[0105] As used herein, the terms "porous" and "microporous" refer to open spaces that occur within a printed part due to dissolution of the soluble component when the printed part is exposed to a solvent in which the soluble phase is soluble. Once the soluble phase is completely removed from the printed part, pores exist in the insoluble component. Porosity may take the form of open cells or closed cells. Porosity may also take the form of fibers, with channels present in the article, also referred to as microfibrous. Alternatively, porousness may be referred to as cavities or voids.

[0106] In additive manufacturing processes, the solid composition may be a monofilament as described herein. Alternatively, the solid phase may be a powder or granule as described herein. Rather than being described as including an additive phase and a polymer phase, the composition may be described as including a solvent-soluble phase or component and a solvent-insoluble phase or component, where the solvent-insoluble component is an organic polymer or a blend of organic polymers. The additive (insoluble) component may be an organic polymer or a blend of organic polymers as discussed herein, or a salt as also discussed herein, as two examples.

[0107] In additive manufacturing processes, a solid composition is melted to obtain a molten composition, which includes an additive phase and a polymer phase. To obtain the molten composition, the solid composition is heated to a temperature sufficient to melt the composition. As used herein, melting the composition means heating the composition to a temperature high enough to cause the composition to flow. For example, the composition can be heated to a temperature of 50 to 450°C as needed to melt the composition to a state that causes the composition to flow. Alternatively, the composition can be heated to a temperature higher than the temperature required to melt the composition. It is not necessary for all components of the composition to be liquid at elevated temperatures. However, the entire composition preferably flows at elevated temperatures (i.e., above room temperature, e.g., above 50°C), thereby possessing the properties of a liquid at elevated temperatures.

[0108] When the composition is in the form of a monofilament, the entire monofilament is not placed in a molten state at once. Rather, one end of the monofilament is placed in a heated environment and melts to form the composition. For example, during an additive manufacturing process, the end of the monofilament may be threaded into a hollow metal cylinder, such as a print head, and the walls of the cylinder are heated to a temperature that melts the filament within the cylinder. An adjacent portion of the monofilament, i.e., an adjacent portion that has not yet converted to a molten form, may be forced into the hollow cylinder, causing the molten composition already present in the cylinder to exit the cylinder and deposit in the space where the part is formed. The monofilament of the present invention has sufficient strength to be forced into a hollow cylinder or similar heated chamber. Unlike many types of monofilaments, the monofilament of the present invention does not need to be able to be pulled or drawn. The monofilament of the present invention is intended for additive manufacturing processes in which the monofilament is pushed or otherwise forced into a high-temperature chamber where it undergoes a phase change from a solid state to a molten state. Preferably, the monofilament can be forced into this heated chamber, and the molten composition can be extruded from the chamber.

[0109] In additive manufacturing processes, the molten composition is transformed into a printed part, which may be referred to as a printed article or simply an article. This process can be accomplished by fused filament fabrication methods known in the art and sometimes referred to as FFF 3D printing. This process may also be accomplished by fused deposition modeling methods known in the art and sometimes referred to as FDM 3D printing.

[0110] The present invention provides a process for additive manufacturing, e.g., 3D printing. Additive manufacturing by fused filament fabrication (FFF) is a polymer melt-enhanced process in which a polymer filament is fed into a heated nozzle, which transfers enough energy to the filament to allow the material to deform and flow. This process may completely melt the polymer, but may also result in softening of the material to a level where it can be forced out of the nozzle. A key process parameter is that the material is transported through the nozzle and, during transport, is able to deform into a substantially flat shape as the nozzle moves across a surface.

[0111] Preferably, the filaments have a diameter of about 1.75 to about 3.0 mm, and the nozzle has a diameter of about 0.35 to about 0.40 mm. The filaments are typically applied at a layer height of between about 0.1 mm and about 0.3 mm. Depending on the application and the required part mechanics and precision, alternative diameters for the filaments and nozzles can be used, with smaller diameters resulting in more precise parts at the expense of increased production cycle time. In one embodiment, the present invention provides a continuous phase and dispersed phase composition as described herein in the form of a filament, e.g., a spool of filament suitable for use in an FFF process.

[0112] Compositions containing a continuous phase and a dispersed phase can be processed with FFF as long as the softened or melted composition can flow through a nozzle. For compositions containing a dispersed phase that is solid at the processing temperature, the dimensions of the dispersed phase must be smaller than the nozzle diameter in at least one direction. For example, in an FFF system using a 0.35 mm nozzle diameter, essentially spherical microparticles must have a diameter of less than 0.35 mm, more preferably less than 0.30 mm, to allow additional continuous phase material to flow with the dispersed phase and maintain the continuity of the printed article. Furthermore, the layer thickness target should also be considered when evaluating the dimensions of the solid dispersed phase. For a target layer thickness of 0.20 mm, the solid dispersed phase should have a dimension of at least less than 0.20 mm, preferably less than 0.15 mm, to allow additional continuous phase material to form a continuous layer around at least the majority of the particles in the printed article. For printed layer thicknesses less than 0.20 mm, simultaneous reduction of the solid dispersed phase is required.

[0113] When the solid dispersed phase is an elongated structure such as chopped fibers, the FFF process typically results in alignment of the dispersed phase along the printing direction, especially for longer aspect ratio filaments or with dispersed phase diameters greater than 10% of the layer thickness.

[0114] Additive manufacturing using Fused Filament Fabrication (FFF) is made possible by the adjustment of various material, process, and environmental parameters. The appropriateness of these parameters is primarily defined by the fiber used and secondarily by the part being manufactured. Additive manufacturing using FFF technology can create macroporous structures through the implementation of infill patterns. This type of functionality is embedded within software to create geometrically regular pore patterns such as triangles, squares, and hexagons. The infill patterns generated with these software programs are generally two-dimensional, creating a single pore pattern transverse to the part's manufacturing direction. Other software programs can generate more complex three-dimensional porosity based on geometric structures or irregular patterns. The porosity thus created is physically translated into the printed part through the deposition of FFF filaments and depends on the printer's precision and layer thickness, which can be approximately 0.1 mm or greater. FFF parts can contain macropore sizes of approximately 0.5 mm or greater. The present invention utilizes two-phase materials to form parts, which may or may not be fabricated with pores.

[0115] The present invention utilizes additive manufacturing techniques, such as FFF, to form parts from two-phase materials. In one embodiment, the present invention imparts porosity to an otherwise non-porous part; i.e., the manufactured part does not contain porosity, but porosity is added to the part after formation by removing an additive phase from the part. Alternatively, the part is manufactured to contain porosity, and the present invention imparts additional, typically smaller, porosity to the manufactured finished part.

[0116] In additive manufacturing, the use of printing temperature, feed rate, and environmental conditions can affect the quality of the produced part. For thermoplastic resins, the temperature is controlled to form a fluid that is extruded from the nozzle. In FFF printing, a single heating zone is used at a set temperature above the filament's melting point, and the appropriate temperature range is determined for each printing material. At the low end of the temperature range, the fluid becomes more viscous, which is useful for creating parts with greater precision, but can weaken the adhesion between the deposited filaments. At higher temperatures, the fluid improves adhesion, but can also affect part precision due to the increased ability of the molten plastic to flow after deposition and during cooling.

[0117] Feed rate is a secondary control parameter influenced by the polymer melt viscosity as well as the stiffness of the solid monofilament input. Pressure is generated in the polymer melt via the drive mechanism that drives the filament through the FFF system, identified by the "feed rate." This simple mechanism forces the monofilament into the heated segment of the printer, where it melts and extrusion pressure is generated via the resistance of the molten material to flow through the nozzle. Increasing the feed rate directly increases extrusion pressure, and pressures above a level specific to a particular monofilament can result in filament buckling or drive mechanism error.

[0118] To support 3D printing with fused filament fabrication (FFF), the filament must meet certain minimum requirements. A set of drive gears is used to feed the filament to the nozzle at a precise speed, and this drive force generates pressure that forces the polymer out of the printer nozzle. FFF printers are divided into two types based on the drive location. "Direct drive" printers place the drive mechanism directly above the print nozzle, moving with the nozzle to form the print. This can result in heavier moving mass and slower printing speeds, but the distance between the drive mechanism and the nozzle is shorter, which is beneficial for softer materials. In contrast, "Bowden tube" printers place the drive mechanism remotely and connect the two to a flexible tube slightly larger in diameter than the printing filament. This reduces the moving mass at the print head, but the distance between the drive mechanism and the nozzle can cause kinking with softer filaments.

[0119] To facilitate the drive mechanism, the filament exhibits a minimum column stiffness that allows accurate feeding through the printer. From Euler's column stiffness equation, column stiffness increases with increasing Young's modulus and filament diameter, and decreases with increasing length. Furthermore, the composition deposition rate is directly related to the filament feed rate through the drive mechanism, as this is the only mechanism for metering material through the printer system. Feed regularity depends on a consistent filament diameter to maintain consistent pressure through the printing nozzle and maintain the specified deposition rate.

[0120] Standard industrial printers use filament diameters of approximately 1.75-3.0 mm, targeting a diameter tolerance of ±0.05 mm. Alternative filament diameters have been used, as they are practical based on the ability to feed the material into the system (adequate stiffness). For bioabsorbable polymers, smaller filament sizes reduce the time the polymer melts, thereby reducing the risk of polymer degradation, which is useful when targeting high-precision prints with fine features.

[0121] Standard FFF filaments typically have a smooth surface, but this is not required to facilitate the printing process. In certain cases, it may be beneficial for the printing filament to have a rough surface to aid the drive mechanism in feeding the material, especially materials that are much harder or softer than usual. A rough surface may also be a cosmetic effect of the filament preparation process or reflect the inclusion of secondary phases or components. However, it is still important for the filament to maintain its average diameter to support consistent feeding through the FFF printing system.

[0122] Filament printing is typically performed at room temperature, so it is preferable for the filament to meet stiffness requirements in the drive mechanism leading up to the heating point at or near the nozzle. The filament is typically introduced into the drive mechanism at a temperature of 20-25°C. For "Bowden tube" FFF printers, the material may transition from room temperature to temperatures as high as approximately 100°C as it approaches the delivery nozzle, depending on the material requirements to support the print.

[0123] The present invention provides compositions usable in additive manufacturing, optionally in filament or granular form. Special environmental controls may be implemented during the printing process, especially when the composition contains a bioabsorbable component. For example, humidity may be maintained at a low level to prevent premature degradation of the bioabsorbable polymer and parts made therefrom. Environmental temperature also affects parts during the printing process by controlling the rate of cooling and crystallization; higher temperatures result in slower cooling and crystallization rates. Lower temperatures can cause parts to cool more quickly, resulting in warpage and poor layer adhesion. For example, FFF with PLA may not be possible at 20°C due to rapid crystallization upon cooling, but increasing the environmental temperature to 30°C can produce high-quality printed parts. Generally, the environmental temperature should be set to prevent parts from completely crystallizing during the printing cycle. Similarly, the print bed should be set at a temperature close to the glass transition temperature of the polymer to allow good adhesion of the part to the build surface and stabilize the part during the build cycle.

[0124] In additive manufacturing processes, the printed part is contacted with a solvent, where the additive phase is soluble in the solvent, and this contact allows for complete or partial extraction of the additive from the printed part.

[0125] The post-forming step of the present invention is to expose the printed part to a solvent that dissolves, extracts, or causes degradation of the additive phase while having little or no effect on the material that forms the polymer phase. This process causes the printed part to acquire a microporous structure that is advantageous for some medical implants. In one embodiment, the additive phase is the dispersed phase of the composition and the polymer phase is the continuous phase of the composition. In another embodiment, the additive phase is the continuous phase of the composition and the polymer phase is the dispersed phase of the composition.

[0126] In various embodiments, at least 50% by weight, or at least 60% by weight, or at least 70% by weight, or at least 80% by weight, or at least 90% by weight of the additive phase is extracted from the printed part. In one embodiment, the solvent is water, such that the soluble components of the printed part are soluble in water, but the insoluble components of the printed part are not. In one embodiment, the solvent includes water and, optionally, one or more other solvents that are miscible with water, such as methanol, dimethyl sulfoxide (DMSO), or acetone.

[0127] In one embodiment, the extraction is carried out at room temperature, i.e., about 23°C. However, in one embodiment, the extraction is carried out at an elevated temperature. For example, the extraction can be carried out at a temperature of about 25-50°C. In one embodiment, the extraction is carried out at a temperature within the range of about 25-30°C, or about 30-35°C, or about 35-40°C, or about 45-50°C, or about 50-55°C, or about 60-65°C, or about 65-70°C, or about 70-75°C. The extraction is carried out at a temperature below the melting temperature of the composition, for example, at least 10°C, or at least 15°C, or at least 20°C, or at least 25°C, or at least 30°C below the melting temperature of the composition.

[0128] Optionally, the entire printed part is contacted with the solvent. However, in one embodiment, only a portion or multiple distinct portions of the printed part are contacted with the solvent. For example, the printed part may be a biodegradable stent, where the distal end of the stent is exposed to the solvent, creating porosity or microporosity at the distal end of the stent, but the proximal end of the stent is not exposed to the solvent and therefore does not have the same porosity or microporosity as the distal end. In this manner, the distal end of the stent is expected to degrade more rapidly in vivo than the proximal end of the stent. Thus, the process of the present invention provides a mechanism for imparting selective and controlled in vivo degradation to 3D printed biodegradable medical implants.

[0129] The printed part after extraction will have a lower density than the density of the printed part before extraction. This is because, while the overall volume of the part remains constant or essentially constant during the extraction process, the extraction of the soluble components reduces the total mass of the printed part. In one embodiment, the extraction process achieves at least a 5% reduction in the density of the printed part, while in other embodiments, the extraction process achieves at least a 10%, or at least a 15%, or at least a 20% reduction in the density of the printed part.

[0130] Similarly, the printed part after extraction will have a density less than the density of the composition from which the part was printed. This is because the printed part will have a volume approximately equal to the volume of the composition from which the part was printed, but the part will have lost some or all of the soluble components present in the printing composition. In one embodiment, the printing composition has a predetermined density, and the article has a predetermined density, where the article has a density less than 85% of the density of the composition. In other embodiments, the article has a density less than 80%, or less than 75%, or less than 70%, or less than 65%, or less than 60%, or less than 50% of the density of the printed part, where the article has a density less than 80%, or less than 75%, or less than 70%, or less than 65%, or less than 60%, or less than 50% of the density of the printed part.

[0131] The extraction process dissolves some or all of the soluble components (also referred to herein as additives) away from the printed part. After extraction, the printed part will have voids on its surface, formed by the dissolution of the soluble phase. These voids are referred to herein as pores or micropores, and the printed part will be described as porous or microporous.

[0132] Microporosity is created by removing the additive phase from the printed part. The microporosity may be in the form of closed cells, i.e., pores that do not connect to one another. However, when a high concentration of the additive phase is present in the compositions of the present invention, those regions of the additive phase may, in some embodiments, contact one another, thereby forming larger pores after removal of the additive phase. Thus, in some embodiments, the printed part may have a somewhat interconnected porous structure.

[0133] When the surface of the printed part after extraction is viewed, for example, by SEM, cavities will be visible. While cavity sizes may be described, in one embodiment, the cavities have a maximum cross-sectional area between 0.5 mm and 50 mm. In another embodiment, the cavities may have a maximum cross-sectional area, as viewed by SEM, of 20 to 400 microns. Cavities are not necessarily circular in appearance and may be irregularly shaped. For example, a cross-sectional area of ​​0.5 to 50 mm refers to the maximum distance across the cavity, not necessarily its exact diameter.

[0134] The cavities do not have to be circular or generally irregularly shaped, but can take the form of a series of channels, each running along the longitudinal axis of the printed yarn. The presence of the channels in the surface of the printed part allows the solvent to flow into and along the channels.

[0135] Removal of the additive phase in the presence of a suitable solvent can be assisted by applying ultrasonic treatment during the removal process. For example, the printed part can be placed in an ultrasonic bath with a suitable solvent that dissolves the additive phase but not the polymer phase. In this manner, printed parts with microporosity can be produced. In one embodiment of the additive manufacturing method, the printed part is contacted with a solvent while being ultrasonicated, where the additive phase is soluble in the solvent. This contact can fully or partially extract the additive from the printed part.

[0136] After exposure to the solvent, the remaining part can be dried to achieve a solvent-free condition. For example, the remaining part can be placed under reduced pressure to evaporate the residual solvent. The additive manufacturing method of the present invention can include a drying operation to remove excess solvent from the print-extracted part. In one embodiment, the drying operation removes residual solvent from the article such that the residual solvent is less than 1 weight percent based on the weight of the porous body of the article.

[0137] After exposure to the solvent, the remaining part may be exposed to sterilization conditions. That is, the additive manufacturing method of the present invention may include a sterilization operation to sterilize the post-extraction article by a method selected from treatment with ethylene oxide, gamma radiation, electron beam, dry heat, and steam processes. This operation kills or removes live bacteria from the printed part, thereby allowing the printed part to be used when a sterile environment is important, such as during surgical implantation of the printed part.

[0138] Printed parts can be further strengthened through post-forming processing, including annealing, solvent smoothing, sanding, grinding, and cutting to modify the final shape.

[0139] The present invention also provides a method comprising the steps of: (a) providing a composition comprising an additive in a polymer phase (also referred to as a composition comprising a solvent-soluble component (additive) and a solvent-insoluble component (polymer phase) as described herein), which may be in the form of granules; (b) extruding the composition into fibers; (c) melting the fibers to obtain a molten composition; (d) performing additive manufacturing to form an article (also referred to as a part or printed part) from the molten composition; (e) contacting the article with a solvent under conditions that at least partially dissolve the additive but not the polymer phase to form a porous body article, wherein the additive is soluble in the solvent; (f) Removing solvent from the porous body article so that the residual solvent still associated with the article is less than 1 weight percent based on the weight of the porous body article.

[0140] The present invention provides parts printed by additive manufacturing processes and treated by post-printing treatment processes as disclosed herein.

[0141] In one embodiment, the present invention provides articles with microporosity, particularly those produced by additive manufacturing and associated post-processing. This is particularly noteworthy in medical applications, where the ability to create customized, patient-specific implants with increasingly precise designs may aid in the creation of advanced scaffolds, artificial partial or complete organs, targeted drug delivery, and many other applications. In one embodiment, the microporosity takes the form of a series of channels running along the longitudinal axis of the printed yarn.

[0142] Filaments containing extractable materials can be useful for a variety of applications, including tissue engineering, drug delivery, selective filtration, and as precursors for additional surface modifications. The incorporation of extractable secondary materials can create surface textures and porosity not possible with typical printing processes. This technique may be enabled by the use of a solvent, where the solvent dissolves at least one component of the printed part while at least one other component is essentially insoluble. It is desirable for the components to form distinct phases, preferably sufficiently interconnected to allow selective extraction.

[0143] By way of example only, in embodiments, the present invention provides porous structures that can be made from degradable polymers, such as those formed from lactide, as described herein, where 70% by weight or more, 75% by weight or more, 80% by weight or more, 85% by weight or more, or 90% by weight or more of the degradable polymer is formed from lactide. The porous structures can be printed by fused deposition modeling (i.e., FDM printing) so that the printed structure has 20% or more void space and up to 80% void space, for example, at least 20%, or at least 30%, or at least 40%, or at least 50%, or at least 60%, or up to 70% void space, and 30%, or at least 40%, or at least 50%, or at least 60%, or at least 70%, or up to 80% void space. The structures or articles can be printed so that interconnected pores exist within the structure. In one embodiment, there are open pores with pore sizes in the range of 50 μm to 500 μm, for example, the pore size is at least 50 μm, or at least 100 μm, or at least 200 μm, or at least 300 μm, or at least 400 μm, and may be as large as 500 μm, or 400 μm, or 300 μm, or 200 μm, or 150 μm, or 100 μm.

[0144] The surface of the printed structure can optionally contain reactive functional groups to increase hydrophilicity or improve surface compatibility or bonding with a second material. For example, the surface of the structure may be modified using treatments such as plasma treatment, base or acid surface treatment, or irradiation (UV, gamma, electron beam). Treated surfaces can be further functionalized by grafting various materials onto the surface of the scaffold, such as polyethylene glycol (PEG), poly(vinyl alcohol) [PVA], chitosan, albumin, hyaluronic acid, heparin, and growth factors.

[0145] The porous structure may optionally be loaded with a hydrogel matrix containing growth factors, MSCs, or other cell types, where the hydrogel can be selected from a group that can closely approximate, interact with, ionically bond with, or covalently bond with the printed scaffold. The interaction between the hydrogel matrix and the printed scaffold may improve cell proximity to the printed scaffold and increase the stability of the hydrogel within the printed scaffold matrix. The hydrogel matrix may include, for example, hyaluronic acid, albumin, chitosan, or polyethylene glycol (PEG). After incorporating the hydrogel into the porous scaffold, the porous structure functions to generate and stabilize the desired shape and protect the hydrogel scaffold during initial cell growth. In one embodiment, the structure / hydrogel / cell composite scaffold approximates the mechanical properties of the desired tissue construct. In one embodiment, as the cell complex matures, the printed porous structure and hydrogel, printed using one or more degradable polymers, may degrade, leaving only the cellular components and extracellular matrix produced by the cells. Optionally, if the scaffold is printed from one or more non-degradable polymers, all or part of the structure remains to provide permanent support, which is an exemplary application of the compositions and articles of the present invention.

[0146] In many applications, including medical applications, it will be useful to generate discrete phases with varying functionality on a smaller scale than device control alone allows. As described herein, the techniques of the present invention utilize compositions that include additives in a polymer phase, e.g., a dispersed phase that includes additives dispersed in a continuous polymer phase, or, if sufficient additive is present in the composition, the additive may constitute the continuous phase and the polymer phase may become the dispersed phase. The composition may be in a form particularly suited to additive manufacturing processes, e.g., in the form of granules that constitute a powder, or in the form of filaments or fibers. This form is then processed, and subsequently printed parts are used to generate tailored phase-modulated structures.

[0147] If the composition is in powder or granular form, it can be used in a direct screw extrusion 3D printing process to form the desired article or part. In such a process, an on-board mini-extruder is placed in combination with a 3D printer, which uses heat to melt the powder or granular material. Alternatively, a direct plunger extraction 3D printing process can be used to form the desired part. In such a process, an on-board heated cylinder uses heat and pressure to form a fluidized bed that is then forced out of a nozzle. This type of printing appears to use a heated cylinder to form the molten composition, which is then ejected into the printer bed to form the desired article. If the composition is in the form of a monofilament, a FFF 3D printing process can be used to form the desired article or part.

[0148] For medical applications, it would be useful to create discrete phases with varying functionality at scales smaller than those that allow for device control alone. As fully described herein, approaches to obtaining these discrete phases utilize the composition and processing of monofilaments or powders and subsequent post-processing of printed parts to produce tailored phase-modulated structures.

[0149] Articles printed using the compositions disclosed herein may be useful in medical applications. For example, after implantation, the article can function as a tissue scaffold, as described elsewhere herein. The article can be used as a topical device, i.e., a device placed on the skin surface of a subject. The article can be used in dermal applications. The article can be used to fill tissue or connective defects. The article can be used in wound care. The article is an example where a medical implant having microporosity is useful.

[0150] The invention has been described broadly and generically herein. Each of the narrower species and subgeneric groupings falling within the generic disclosure also constitutes part of the invention. This includes the generic description of the invention with a proviso or negative limitation that removes any subject matter from the genus, whether or not specifically described herein.

[0151] Exemplary embodiments of the present invention include compositions comprising an additive in a polymer phase, wherein (a) the additive is soluble in a solvent; (b) the polymer phase comprises an organic polymer and is essentially insoluble in the solvent; (c) the composition is solid at temperatures below 25°C and is a viscous fluid having a melt flow index of 2.5 to 30 g / 10 min above the melting temperature of the composition; and (d) the composition has a predetermined weight percent of the additive based on the weight of the composition and a predetermined weight percent of the polymer phase based on the weight of the composition, wherein the sum of the weight percent of the additive and the weight percent of the polymer phase is greater than 90%. Another exemplary embodiment of the present invention is a composition comprising a dispersed phase in a continuous phase, wherein the dispersed phase is soluble in a solvent; the continuous phase comprises an organic polymer and is substantially insoluble in the solvent; the composition is a solid at a temperature below 25°C and a viscous fluid having a melt flow index of 2.5 to 30 g / 10 min above the melting temperature of the composition; and the composition has a predetermined weight percent of the dispersed phase based on the weight of the composition and a predetermined weight percent of the continuous phase based on the weight of the composition, wherein the sum of the weight percent of the dispersed phase and the weight percent of the continuous phase is greater than 90%.

[0152] Optionally, any of these compositions may be further characterized by one or more (e.g., two, or three, or four, etc.) of the following features: the solvent is or includes water, and the composition is in a form usable in an additive manufacturing process, e.g., in the form of a filament or a filament wound on a spool, where the filament is optionally about 0.5-5 mm, or about 1-5 mm, or about 1.5-5 mm, or about 2-5 mm, or about 2.5-5 mm, or about 0.5-4 mm, or about 1-4 mm, or about 1.or the composition is in the form of granules, and the weight percentage of the dispersed or additive phase in the composition is 1-60%, or 1-50%, or 1-40%, or 1-30%, or 1-20%, or 5-60%, or 5-50%, or 5-40%, or 5-30%, or 5-20%, or 10-60%, or 10-50%, or 10-40%, or about 10-30%, or about 20-60%, or about 20-50%, or about 20-40%, or about 30-60%, or about 30-50%, wherein these percentage ranges are based on the weight of the additive or dispersed phase. The amount of dispersed phases divided by the total weight of the composition multiplied by 100, wherein the dispersed phase has an average particle size of about 20-400 microns, or about 20-300 microns, or about 20-100 microns, or about 40-400 microns, or about 40-300 microns, or about 40-200 microns, or about 60-400 microns, or about 60-300 microns, or about 60-200 microns, or about 100-400 microns, or about 100-300 microns, or about 100-200 microns, wherein these micron values ​​refer to the average longest distance through the dispersed phases, and do not include the additive phase or wherein the dispersed phase comprises an inorganic salt, e.g., an inorganic salt comprising a cation and an anion, wherein the cation is selected from sodium, potassium, and magnesium, and the anion is selected from chloride, bromide, iodide, sulfate, phosphate, carbonate, and bicarbonate; the additive or dispersed phase comprises a water-soluble organic compound, e.g., a sugar or an organic carboxylate; the polymer or continuous phase comprises a bioabsorbable polymer, e.g., a bioabsorbable polymer comprising segments selected from polyesters, polyanhydrides, polyhydroxybutyric acid, and polyethers; and the polymer or continuous phase comprises a non-bioabsorbable polymer, e.g., The composition comprises a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, and polyethylene terephthalate, the composition having little or no residual monomer, e.g., less than 2% by weight, or less than 1% by weight, or less than 0.5% by weight of residual polymer, the composition having little or no residual tin, e.g., less than 200 ppm tin, and the composition having little or no heavy metals other than tin, e.g., less than 50 ppm metals other than tin.

[0153] In another embodiment, the present invention provides an additive manufacturing method comprising the steps of: (a) melting a solid composition to obtain a molten composition, wherein the molten composition comprises an additive phase and a polymer phase as described herein; (b) performing additive manufacturing to form an article from the molten composition; and (c) contacting the molded article with a solvent under conditions that at least partially dissolve the additive phase but not the polymer phase to form an article having a porous or microporous morphology, wherein the additive phase is soluble in the solvent.

[0154] The present invention provides the following numbered embodiments, which are illustrative and not limiting of the embodiments provided by the present invention. 1. A composition comprising an additive in a polymer phase, a. the additive is soluble in a solvent; b. the polymer phase comprises an organic polymer and is essentially insoluble in the solvent; c. the composition is a solid at temperatures below 25°C and a viscous fluid having a melt flow index of 2.5 to 30 g / 10 min at temperatures above 50°C; and d. The composition having a predetermined weight percentage of the additive based on the weight of the composition and a predetermined weight percentage of the polymer phase based on the weight of the composition, wherein the sum of the weight percentage of the additive and the weight percentage of the polymer phase is greater than 90%. 2. The composition of embodiment 1 in the form of a monofilament. 3. The composition of embodiment 2, wherein said monofilament is an unstretched monofilament. 4. The composition of embodiment 2, wherein said monofilaments have an orientation factor of less than 50%. 5. The composition of embodiment 2, wherein the monofilament has a diameter of 1 to 5 mm. 6. The composition of embodiment 5, wherein the monofilament has a diameter of 1.75±0.05 mm. 7. The composition of embodiment 6, wherein said monofilament has a column buckling resistance of at least 1 Newton. 8. The composition of embodiment 1, in the form of a powder or granules. 9. The composition of embodiment 1, wherein the additive comprises an inorganic salt. 10. The composition of embodiment 1, wherein the additive comprises a water-soluble organic compound. 11. The composition of embodiment 10, wherein said water-soluble organic compound is polyethylene glycol. 12. The composition of embodiment 1, wherein the polymer phase comprises a bioabsorbable polymer. 13. The composition of embodiment 12, wherein the polymer phase comprises a bioabsorbable polymer comprising segments selected from polyesters, polyanhydrides, poly(hydroxybutyrates), and polyethers; in one example, the additive may be or include a polyalkylene glycol, such as polyethylene glycol (PEG) or polypropylene glycol (PPG), or a copolymer of ethylene glycol and propylene glycol; and the polymer phase comprises a bioabsorbable polymer, such as a polymer comprising segments of polyesters and / or polyanhydrides, e.g., segments made from glycolide (polyglycolide, PGA), lactide (polylactide, PLA), dioxanone (polydioxanone, PDO), trimethylene carbonate (polytrimethylene carbonate, TMC), caprolactone (polycaprolactone, PCL), hydroxyalkanoates such as hydroxybutyrate (polyhydroxyalkanoates, e.g., PHB), or mixtures thereof, such as polylactide-co-glycolide (PLGA). 14. The composition of embodiment 1, wherein the polymer phase comprises a non-bioabsorbable polymer. 15. The composition of embodiment 14, wherein the polymer phase comprises a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, and polyethylene terephthalate, and in one example, the polymer phase is not soluble in organic solvents, such as chloroform, while the additive is soluble in organic solvents, such as chloroform, and the polymer phase is not soluble in organic solvents, such as chloroform, and the additive is a polymer comprising polyester and / or polyhydric alcohol segments, for example, segments made from glycolide (polyglycolide, PGA), lactide (polylactide, PLA), dioxanone (polydioxanone, PDO), trimethylene carbonate (polytrimethylene carbonate, TMC), caprolactone (polycaprolactone, PCL), hydroxyalkanoates, such as hydroxybutyrate (polyhydroxyalkanoates, e.g., PHB), or mixtures thereof, such as polylactide-co-glycolide (PLGA). 16. The composition of embodiment 1, wherein the weight percentage of said additive in said composition is 1 to 60%. 17. The composition of embodiment 1, wherein the solvent is water, the additive is soluble in water, and the polymer phase is insoluble in water. 18. An assembly comprising the monofilament of embodiment 2 and further comprising a spool, said monofilament being wound onto said spool. 19. The assembly of embodiment 18, wherein the monofilament on the spool is enclosed in an airtight container. 20. A method of forming the composition of embodiment 2, comprising the steps of: a. combining the additive and the polymer phase to form a composition; b. heating the composition to form a molten composition; c. extruding the molten composition to form an undrawn monofilament; and d. sterilizing the unstretched monofilament A method comprising: 21. A method of forming the assembly of embodiment 18, comprising the steps of: a. obtaining the composition of embodiment 1 in a molten state; b. extruding said molten composition to form an undrawn monofilament; c. winding the unstretched monofilament onto a spool; d. wrapping the spool on which the monofilament is wound. A method comprising: 22. An additive manufacturing method comprising the steps of: a. melting a solid composition to obtain a molten composition, wherein the molten composition comprises the additive of any one of embodiments 1-17 and a polymer phase; b. performing additive manufacturing to form an article from said molten composition; c. contacting the article with a solvent under conditions that at least partially dissolve the additive but not the polymer phase to form a porous body of the article, wherein the additive is soluble in the solvent. 23. The method of embodiment 22, wherein the solvent dissolves at least 50% of the additive. 24. The method of embodiment 22, wherein the solid composition is melted at a temperature of 50 to 450°C to form the molten composition. 25. The method of embodiment 22, wherein said additive manufacturing method is fused filament fabrication (FFF). 26. The method of embodiment 22, wherein the porous body of the article comprises a plurality of channels running along the surface of the article in a longitudinal direction relative to the longitudinal direction of the fiber form of the molten composition produced during the additive manufacturing process. 27. The method of embodiment 22, further comprising sterilizing the article by a method selected from ethylene oxide treatment, gamma treatment, electron beam treatment, dry heat treatment, and steam treatment. 28. The method of embodiment 22, further comprising removing the solvent from the article such that residual solvent is less than 1 wt. % based on the weight of the porous body of the article. 29. An additive manufacturing method comprising the steps of: a. obtaining a composition comprising an additive in a polymer phase according to any one of embodiments 1 to 17; b. extruding said composition into a monofilament fiber; c. melting the monofilament fibers to obtain a molten composition; d. performing additive manufacturing to form an article from said molten composition; e. contacting the article with a solvent, wherein the additive is soluble in the solvent; and f. Removing the solvent from the article so that residual solvent is less than 1 wt. % based on the weight of the porous body of the article. [Example]

[0155] The following examples are offered by way of illustration and not by way of limitation.

[0156] Example 1 Microfibrous products made from polydioxanone and PEG. Filaments suitable for additive manufacturing were fabricated from polydioxanone (PDO) and polyethylene glycol (PEG). The amounts of PDO and PEG present in each filament are listed in Table 1. Selected amounts of PDO and PEG were placed in a jar. PDO (Poly-Med, South Carolina, USA) had a molecular weight such that a diluted solution in hexafluoro-2-propanol (HFIP) had an intrinsic viscosity of 1.7 dL / g at a concentration of 0.1 mg polymer / mL solvent. PEG had an average molecular weight of 20 kDa and was obtained from Dow duPont Chemical Company. The jar containing the two powders was shaken at room temperature to achieve a homogeneous appearance (requiring approximately 1 hour). The mixture was then dried under vacuum.

[0157] This mixture was fed into a custom 3 / 4-inch barrel diameter extruder equipped with a 0.584 cc / rev metering pump and extruded through a die. The resulting fiber was conveyed using a puller attached to the extruder outlet, while simultaneously pulling the fiber into a water bath to form a monofilament fiber. Under these conditions, monofilament fibers with an average filament diameter of 1.75 mm were obtained. This process can be used to produce filaments suitable for additive manufacturing, such as filaments with diameters of 1.5 to 3.0 mm. The filaments were collected on spools and stored in a dry, inert environment (nitrogen atmosphere) until use. Herein, this filament is referred to as printing filament.

[0158] [Table 2]

[0159] FDM printing was performed using a HYDRA 640 printer (Hyrell 3D, Atlanta, Georgia, USA) with a modular direct-drive printhead equipped with a 1 mm nozzle, set at a nozzle temperature of 165 °C, a bed temperature of 45 °C, and a feed rate of 15 mm / s. Each printing filament was used to print a disk-shaped object consisting of two layers of printing filament. The disk consisted of a first series of parallel threads forming the first layer and a second series of parallel threads forming the second layer printed on top of the first layer, where the second series of parallel threads continued in a longitudinal direction perpendicular to the longitudinal direction of the first series of threads. This shape can be seen in Figure 2. Because the printing filament had a melting temperature of approximately 1100 °C and was printed at 165 °C, when the molten printing filament was printed to form the second layer, the first layer melted slightly, causing the first and second layers to adhere to each other.

[0160] In the printed part, each thread had a width of approximately 0.8 mm. Thus, this FDM printing process resulted in a disk with two layers, each layer 0.5 mm thick. Each layer, and the disk as a whole, had an 80% linear infill pattern. The disk diameter was 50 mm. An SEM image of the printed article is shown in Figure 2.

[0161] Printed filaments with the compositions listed in Table 1 and printed discs made therefrom were immersed in deionized water at 37°C for 15 hours, then carefully removed from the water bath, dried to constant weight, and reweighed to determine the extracted content. Samples were imaged with a scanning electron microscope (SEM) to assess morphology, and images were further characterized using ImageJ (National Institutes of Health).

[0162] Table 2 lists the extracted content (wt % based on the original weight of the sample) and extraction efficiency (% of soluble polymer (PEG) present in the original format that was extracted) for each of the materials and formats tested.

[0163] [Table 3]

[0164] Table 2 shows that a part printed using a PDO100 printing filament lost 1.2% of its weight after the immersion process, serving as a control. When a part was printed using a printing filament containing 60 wt% PDO and 40 wt% PEG, the starting filament lost 78% of its PEG weight during the immersion process, while the part printed from this printing filament lost 100% of its PEG weight during the immersion process. When a part was printed using a printing filament containing 50 wt% PDO and 50 wt% PEG, the starting filament lost 88% of its PEG weight during the immersion process, while the part printed from this printing filament lost 92% of its PEG weight during the immersion process.

[0165] Figure 3A provides an SEM image of a part printed with PDO60 printing filament. The part shown in Figure 3A has not undergone an extraction process. Figure 3B provides an SEM image of a part printed with PEO60 printing filament. However, in contrast to the part shown in Figure 3A, the part shown in Figure 3B has been exposed to an extraction solvent. As shown in Figure 3B, dissolution of PEG from the printed yarn left behind a series of channels, each running along the longitudinal axis of the printed yarn. These channels are not visible in the part shown in Figure 3A. This directionality was quantified using NIH ImageJ software, resulting in the histograms in Figure 4A (corresponding to a portion of Figure 3A) and Figure 4B (corresponding to a portion of Figure 3B). Similar results were observed from immersion of PDO50-derived parts. The part shown in Figures 3A and 3B appears to have wider threads than the threads shown in the image of Figure 2 because in Figures 3A and 3B the printed threads appear to be immediately adjacent to each other with no gaps between them, giving the appearance of a wider thread when in fact there are two threads in what appears to be one thread.

[0166] FDM-printed parts exhibited primarily continuous, aligned filaments after water extraction. For both PDO50 and PDO60 materials, the filament alignment was along the nozzle path, i.e., the printing axis. The printed parts were extracted with high efficiency, meaning that there was little or no soluble PEG remaining in the printed parts after extraction, improving extraction compared to the extractability of PEG from the filament precursor.

[0167] Example 2 Fine fibrous products made from high density polyethylene and polycaprolactone Filaments were produced as described in Example 1 using high-density polyethylene (HDPE) and polycaprolactone (PCL) as the insoluble and soluble materials, respectively. Both HDPE (Dow Chemical) and PCL (Poly-Med, Anderson, South Carolina, USA), the latter having an intrinsic viscosity (IV) of 1.8 g / mL in CHCl3, were used as received. 1.75 mm diameter printing filaments were collected with the composition ratios listed in Table 3. The printing filaments were stored in a dry, inert environment until use.

[0168] [Table 4]

[0169] FDM printing was performed using a HYDRA 640 printer (Hyrel 3D, Atlanta, GA, USA) with a modular direct-drive printhead equipped with a 0.4 mm or 1.0 mm nozzle. The effect of nozzle temperature was evaluated at 185 °C, 205 °C, and 225 °C. Each printing filament was printed into a disk designed with a layer thickness to nozzle diameter ratio of 50%. That is, each layer was printed to a thickness equal to half the nozzle diameter (a 0.4 mm nozzle produced a 0.2 mm thick layer). Each part had a linear infill pattern set at 80%.

[0170] The printed discs, along with the printed filament, were immersed in chloroform overnight at room temperature, then carefully removed from the solvent, washed with chloroform, and dried to a constant weight, and the extracted content was measured. HDPE is insoluble in chloroform, while PCL is soluble in chloroform. Samples were imaged with a scanning electron microscope (SEM) to characterize the morphology of the parts, and the images were analyzed with ImageJ (National Institutes of Health).

[0171] Extraction details and images are provided in Table 4 and Figures 5A, 5B, 5C and 5D. In Table 4, ND means not determined.

[0172] [Table 5]

[0173] The raw filaments (after extraction) showed a combination of fibrous structures and less oriented, discontinuous segments. 3D printed parts from HDPE45 (55% extractable content) after chloroform extraction showed different morphologies depending on the printing parameters.

[0174] Printing through a 1.0 mm nozzle (Figures 5A and 5B) yielded morphology similar to the stock filament, while increasing the process temperature (185 °C in Figure 5A; 205 °C in Figure 5B) yielded finer features.

[0175] Surprisingly, when printed through a 0.40 mm nozzle (Figures 5C and 5D), the final morphology changed to a predominantly continuous, aligned filament structure, where a 20 °C increase in process temperature (205 °C in Figure 5C; 225 °C in Figure 5D) improved the homogeneity of the filament structure.

[0176] In all cases, the extractability of PCL from the 3D-printed articles was improved compared to that from the stock printed filament. This suggests that phase separation and microstructural variations are generated through shear (1.8 mm filaments were extruded through 1.0 mm or 0.4 mm nozzles) and homogenized with temperature. This is unexpected, since the process was carried out above the melting temperature for all conditions, and temperature is believed to be the primary driver of phase separation.

[0177] The printing filaments and corresponding 3D printed parts made from HDPE20 were not stable after extraction. The high extractable content resulted in a discontinuous morphology of the insoluble HDPE fraction, resulting in the breakdown of the high-density polyethylene structure into particles. Table 4 shows ND (not determined) to reflect this observation.

[0178] Example 3 Wicking articles made from microfibrous 3D printed articles Rectangular shapes were isolated from the pre-extracted and post-extracted disks produced in Examples 1 and 2. The dimensions of the rectangular shapes were 50 mm long x 4 mm wide x 1 mm thick. The resulting rectangular shapes were evaluated for wicking properties by immersing the parts in a solution of phenol red indicator dissolved in water and observing the movement of the colored solution within the parts. The results are summarized in Table 5 and Figure 6.

[0179] [Table 6]

[0180] Figure 6 shows the difference in aqueous wicking performance between pre-extraction and post-extraction parts printed from PDO60. Wicking of aqueous phenol red indicator solution through the PDO60 part shows the wicking response approximately 1 minute after immersion for the pre-extraction part (right) and post-extraction part (left). Within this 1-minute time frame, the aqueous indicator solution had wicked along the entirety of the post-extraction PDO60 part (left), whereas essentially no indicator solution had wicked along the pre-extraction PDO60 part (right).

[0181] Figure 7 shows a comparison of wicking performance between two different post-extraction printed parts. Figure 7 shows a comparison of the wicking of aqueous phenol red indicator solution between HDPE45 (bottom) and PDO60 (top) 5 minutes after dropwise application. Within the 5-minute time frame, no wicking of the indicator solution occurred on the HDPE45 printed part (bottom), while the indicator solution wicked along the entire length of the PDO60 printed part (top).

[0182] The wicking behavior of 3D printed parts is influenced by the surface energy of the part, i.e., solution compatibility. Wicking behavior is significantly enhanced by the microstructures created as a result of the compounding, printing, and extraction processes disclosed herein. The formation of aligned microfilament structures has a significant wicking advantage over parts lacking aligned microfilament features.

[0183] Example 4 Blend compositions of glycoprene and lactoprene polymers Glycoprene™ 6829 polymer (a glycolide-based copolymer containing 68% glycolide, 29% caprolactone, and 3% trimethylene carbonate, manufactured by Poly-Med, Anderson, South Carolina, USA) and Lactoprene™ 8411 (a lactide-based copolymer containing 84% l-lactide, 11% caprolactone, and 5% trimethylene carbonate, manufactured by Poly-Med, Anderson, South Carolina, USA) were used to fabricate filaments as described in Example 1. Glycoprene™ 6829 polymer is a polymer that degrades relatively quickly in vivo, while Lactoprene™ 8411 polymer is a polymer that degrades relatively slowly in vivo. The monofilaments had the compositions shown in Table 6 and each had a diameter of 1.75 mm. After formation, the filaments were stored in a dry, inert environment until use.

[0184] [Table 7]

[0185] FDM printing was performed using an F360 printer (Fusion 3, Greensboro, North Carolina, USA) equipped with a Bowden tube printhead equipped with a 0.40 mm nozzle. Each filament material was printed onto a 50 mm x 1 mm disk as described in Example 1, designed with a layer thickness-to-nozzle diameter ratio of 50% and a linear infill pattern set at 80%.

[0186] To investigate the degradation profile and in vitro morphological changes, an accelerated degradation study was performed by placing the printed discs in a phosphate buffer solution with a pH of 12 at 50 °C. This accelerated model significantly accelerated the degradation process of the bioabsorbable polymer, shortening the evaluation time from several months to several days.

[0187] Table 7 details the overall part structure retention compared to the "as printed" disc geometry. In Table 7, R means good "as printed" shape retention, i.e., no change in the printed shape during the degradation test; D means the part showed signs of losing its "as printed" structure; and NR means the part lost its printed structure, where NR1 means filament non-bonding occurred and NR2 means brittle fracture occurred.

[0188] [Table 8]

[0189] To understand the performance differences between the various blends under consideration, samples were analyzed by SEM and compositional NMR before and during the in vitro studies. Degradation images and mass loss details are shown in Figures 8 and 9. In Figure 8, the SEM image is shown at 150x magnification. In Figure 8, using the nomenclature adopted in Table 7, A refers to parts made from Lac 100, B refers to parts made from Lac 75, C refers to parts made from Lac 60, D refers to parts made from Lac 50, and E refers to parts made from Lac 0. Figure 9 is a graph showing the mass loss profile of 3D-printed parts subjected to an in vitro degradation cycle at pH 12 and 50°C. Percentage values ​​are percentages of the total.

[0190] 3D printed parts from Lactoprene 8411 blend materials exhibited significantly different degradation morphologies compared to monocomponent filaments. The composition of the blend materials alters the phase separation within the 3D printed parts. A 50 / 50 blend with Glycoprene 6829 results in a mixed morphology with some aligned fibers and short segments. A 60 / 40 blend results in an aligned filament structure upon partial degradation. A 75 / 25 blend initially yields ribbon-like structures upon partial degradation, followed by filament-like structures upon further degradation.

[0191] Each blend exhibited different abilities to retain its printed shape through degradation cycles. Lower lactoprene 8411 blends unexpectedly exhibited a greater ability to retain the "as-printed" shape. Higher lactoprene blends exhibited filament debonding and structural "unraveling" during in vitro degradation. All blend parts changed physical morphology during degradation, but parts made solely from glycoprene 6829 and lactoprene 8411 exhibited surface cracking and embrittlement during the in vitro evaluation period.

[0192] Example 5 3D printed porous articles from inorganic salt-dispersed polycaprolactone Filaments were produced as described in Example 1 by blending polycaprolactone (PCL) homopolymer with NaCl (Sigma Aldrich). The former is insoluble in water, while the latter has a solubility of 1 M in water at 20°C. These materials were blended in an extruder to form 1.75 mm diameter monofilaments with the material ratios listed in Table 8 and stored in a dry, inert environment until use.

[0193] [Table 9]

[0194] FDM printing was performed on a HYDRA™ 640 printer (Hyrel 3D, Atlanta, GA, USA) using a 1.0 mm nozzle at 165°C on a 50 mm diameter disk with a disk thickness of 0.5 mm and 80% linear infill. The filament and 3D printed article were immersed in deionized water at room temperature for 15 hours, then dried to a constant weight and the extractable content was measured. The articles were imaged by SEM to determine the article morphology. The results are shown in Table 9. Table 9 shows the initial composition of the biocomponent material and the results of subsequent extraction testing.

[0195] [Table 10]

[0196] Water extraction was not able to completely remove the loaded salt, but it was able to partially remove it. It is noteworthy that a significant improvement in extraction efficiency was observed from the 3D-printed parts compared to the starting filament. SEM analysis revealed that the pores formed by the salt dissolution appeared to be isolated. The appearance of the formed pores was consistent with the size and shape of the loaded salt particles. Higher salt loadings (e.g., 50 wt.% or higher) are expected to result in the formation of an open-cell porous structure.

[0197] The invention has been described broadly and generically herein. Each of the narrower species and subgeneric groupings falling within the generic disclosure also constitutes part of the invention. This includes the generic description of the invention with a conditional or negative limitation that removes any subject matter from the genus, whether or not specifically described herein.

[0198] Also, as used in this specification and claims, the singular forms "a," "an," and "the" include the plural unless the context clearly dictates otherwise; the term "X and / or Y" means "X" or "Y," or both "X" and "Y," and the letter "s" following a noun shall refer to both the plural and the singular of that noun. Furthermore, when features or aspects of the invention are described in terms of a Markush group, the invention encompasses, and is thereby intended to be described with respect to, any individual member and any subgroup member of the Markush group, as one of skill in the art would recognize. Applicant reserves the right to amend this application or claims to specifically refer to any individual member or any subgroup member of the Markush group.

[0199] All documents disclosed herein, including patent and non-patent documents, are incorporated by reference in their entirety as if each were incorporated individually.

[0200] It should be noted that the terms used herein are for the purpose of describing particular embodiments only and are not intended to be limiting. Unless otherwise defined herein, terms used herein shall be given their traditional meanings known in the relevant technical field.

[0201] References throughout this specification to "one embodiment" or "an embodiment" and variations thereof mean that a particular feature, structure, or characteristic described in connection with an embodiment is included in at least one embodiment. Thus, the appearances of the phrase "in one embodiment" or "an embodiment" in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.

[0202] As used herein and in the appended claims, the singular forms "a," "an," and "the" include the plural (i.e., one or more) unless the content and context clearly dictate otherwise. It should also be noted that the conjunctions "and" and "or" are generally used in their broadest sense to include "and / or" unless the content or context clearly dictates inclusiveness or exclusiveness. Thus, the use of alternatives (e.g., "or") should be understood to mean either one, both, or any combination thereof of the alternatives. Furthermore, when described herein as "and / or," the "and" and "or" construction is intended to encompass embodiments including all of the associated terms or concepts, as well as one or more other alternative embodiments that include fewer than all of the associated terms or concepts.

[0203] Unless the context requires otherwise, throughout the specification and claims, the terms "comprises" and "having" and "including" and variations thereof are to be interpreted in their open, inclusive sense, e.g., "including but not limited to." The term "consisting essentially of" limits the scope of a claim to particular materials or steps or steps that do not materially affect the basic and novel characteristics of the claimed invention.

[0204] Any headings used herein are merely utilized to facilitate the reader's review and should not be construed as limiting the scope of the invention or claims in any way. Accordingly, the headings and summary of the disclosure provided herein are for convenience only and do not interpret the scope or meaning of the embodiments.

[0205] Where a range of values ​​is provided herein, unless the context clearly dictates otherwise, every intervening value, to the tenth of the unit of the lower limit, between the upper and lower limits of that range, and any other stated or intervening value within that stated range, is also encompassed within the invention. The upper and lower limits of these smaller ranges may independently be included in the smaller ranges and are encompassed within the invention, subject to any specifically excluded limit in the stated range. Where the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also encompassed within the invention.

[0206] For example, any concentration range, percentage range, ratio range, or integer range described herein is understood to include any integer value within the described range, and fractions thereof, where appropriate (e.g., tenths and hundredths of integers, etc.), unless otherwise indicated. Also, any numerical ranges recited herein with respect to physical characteristics such as polymer subunits, size, or thickness are understood to include any integer within the recited range, unless otherwise indicated. As used herein, the term "about" means ±20% of the indicated range, value, or structure, unless otherwise indicated.

[0207] All U.S. patents, U.S. patent application publications, U.S. patent applications, foreign patents, foreign patent applications, and non-patent publications mentioned herein and / or listed in the Application Data Sheet are incorporated herein by reference in their entirety. Such publications may be incorporated by reference, for example, for the purpose of describing and disclosing materials and methodologies described therein that may be used in connection with the inventions described herein. The publications discussed herein and throughout the text are provided solely for their disclosure prior to the filing date of the present application. Nothing herein should be construed as an admission that the inventors are not entitled to antedate the referenced publications by virtue of prior invention.

[0208] All patents, publications, scientific articles, websites, and other documents and materials referenced or mentioned herein are indicative of the level of skill of one of ordinary skill in the art to which this invention pertains, and each referenced document and material is individually incorporated by reference in its entirety or incorporated by reference to the same extent as if its entirety were set forth herein. Applicant reserves the right to physically incorporate herein any and all materials and information from such patents, publications, scientific articles, websites, electronically available information, and other referenced materials or documents.

[0209] In general, the terms used in the claims should not be construed to limit the claims to the specific embodiments disclosed in the specification and claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which the claims are entitled. Accordingly, the claims are not limited by this specification.

[0210] Furthermore, the written description of this application includes all claims. Moreover, all claims, including all original claims and all claims from all priority documents, are incorporated by reference in their entirety into the written description of this application, and applicant reserves the right to physically incorporate all such claims into the written description or other parts of the application. Accordingly, under no circumstances will a patent be construed as failing to provide a specification for a claim based, for example, on an allegation that the precise language of a claim is not set forth in those words in the written description of the patent specification.

[0211] The claims will be construed in accordance with law. However, regardless of any alleged or perceived ease or difficulty in construing any claim or portion thereof, under no circumstances will any adjustment or amendment of any claim or portion thereof during prosecution of the application or applications leading to this patent be construed as a forfeiture of all equivalents that do not form part of the prior art.

[0212] Other non-limiting embodiments are within the scope of the following claims. This patent should not be construed as limited to the particular examples or non-limiting embodiments or methods specifically and / or expressly disclosed herein. Under no circumstances should this patent be construed as limited by statements made by an examiner or other officer or employee of the Patent and Trademark Office, except to the extent that such statements are specific and absent a qualification or reservation expressly adopted in the applicant's replying brief.

Claims

1. 1. A composition comprising an additive in a polymer phase, (a) the additive is soluble in a solvent; (b) the polymer phase comprises an organic polymer and is essentially insoluble in the solvent; (c) the composition is a solid at temperatures below 25°C and a viscous fluid having a melt flow index of 2.5 to 30 g / 10 min at temperatures above 50°C; and (d) the composition having a predetermined weight percent of the additive based on the weight of the composition and a predetermined weight percent of the polymer phase based on the weight of the composition, wherein the sum of the weight percent of the additive and the weight percent of the polymer phase is greater than 90%.

2. 10. The composition of claim 1 in the form of a monofilament.

3. The composition of claim 2 wherein the monofilament is an unstretched monofilament.

4. The composition of claim 2 wherein the monofilaments have an orientation factor of less than 50%.

5. The composition of claim 2, wherein the monofilament has a diameter of 1 to 5 mm.

6. 6. The composition of claim 5, wherein the monofilament has a diameter of 1.75±0.05 mm.

7. 7. The composition of claim 6, wherein the monofilament has a column buckling resistance of at least 1 Newton.

8. 10. The composition of claim 1 in the form of a powder or granules.

9. The composition of claim 1 , wherein the additive comprises an inorganic salt.

10. The composition of claim 1 , wherein the additive comprises a water-soluble organic compound.

11. The composition of claim 10, wherein the water-soluble organic compound is polyethylene glycol.

12. The composition of claim 1 , wherein the polymer phase comprises a bioabsorbable polymer.

13. 13. The composition of claim 12, wherein the polymeric phase comprises a bioabsorbable polymer comprising segments selected from polyesters, polyanhydrides, poly(hydroxybutyrates), and polyethers.

14. The composition of claim 1 , wherein the polymer phase comprises a non-bioabsorbable polymer.

15. 15. The composition of claim 14, wherein the polymer phase comprises a non-bioabsorbable polymer selected from polyethylene, nylon, thermoplastic polyurethane, polypropylene, polyetheretherketone, polyaryletherketone, and polyethylene terephthalate.

16. The composition of claim 1, wherein the weight percent of said additive in said composition is 1 to 60%.

17. 10. The composition of claim 1, wherein the solvent is water, the additive is soluble in water, and the polymer phase is insoluble in water.

18. 3. An assembly comprising the monofilament of claim 2 and further comprising a spool, said monofilament being wound onto said spool.

19. 19. The assembly of claim 18, wherein the monofilament on the spool is enclosed in an airtight container.

20. 10. A method of forming the composition of claim 2, comprising the steps of: (a) combining the additive and the polymer phase to form a composition; (b) heating the composition to form a molten composition; (c) extruding the molten composition to form an undrawn monofilament; and (d) sterilizing the unstretched monofilament. A method comprising:

21. 20. A method of forming the assembly of claim 18, comprising the steps of: (a) obtaining the composition of claim 1 in a molten state; (b) extruding said molten composition to form an undrawn monofilament; (c) winding the unstretched monofilament onto a spool; (d) packaging the spool on which the monofilament is wound. A method comprising:

22. 1. An additive manufacturing method comprising the steps of: (a) melting a solid composition to obtain a molten composition, wherein said molten composition comprises an additive according to any one of claims 1 to 17 and a polymer phase; (b) performing additive manufacturing to form an article from said molten composition; (c) contacting the article with a solvent under conditions that at least partially dissolve the additive but not the polymer phase to form a porous body of the article, wherein the additive is soluble in the solvent.

23. 23. The method of claim 22, wherein the solvent dissolves at least 50% of the additive.

24. 23. The method of claim 22, wherein the solid composition is melted at a temperature of 50 to 450°C to form the molten composition.

25. 23. The method of claim 22, wherein the additive manufacturing method is Fused Filament Fabrication (FFF).

26. 23. The method of claim 22, wherein the porous body of the article comprises a plurality of channels running along a surface of the article longitudinally relative to the longitudinal direction of a fiber form of a molten composition produced during the additive manufacturing process.

27. 23. The method of claim 22, further comprising sterilizing the article with a method selected from ethylene oxide treatment, gamma treatment, electron beam treatment, dry heat treatment, and steam treatment.

28. 23. The method of claim 22, further comprising removing the solvent from the article such that residual solvent is less than 1 wt. % based on the weight of the porous body of the article.

29. 1. An additive manufacturing method comprising the steps of: (a) obtaining a composition comprising an additive in a polymer phase according to any one of claims 1 to 17; (b) extruding said composition into a monofilament fiber; (c) melting the monofilament fibers to obtain a molten composition; (d) performing additive manufacturing to form an article from the molten composition; and (e) contacting the article with a solvent, wherein the additive is soluble in the solvent; (f) removing said solvent from said article so that residual solvent is less than 1 wt. % based on the weight of the porous body of said article;