Polyamides with Intrabackbone Light Absorbers and Related Methods - Patent application

By integrating optical absorbers into the polyamide backbone, IBOA-polyamides address the issue of uniform color retention in high-temperature processed materials, particularly in 3D printing applications.

JP7681386B2Active Publication Date: 2025-05-22XEROX CORP
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Patent Information

Application Number
JP2020144534
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-30
Filing Date
2020-08-28
Publication Date
2025-05-22
Estimated Expiration
2040-08-28

AI Technical Summary

Technical Problem

Conventional dyes are unsuitable for polyamides used in high-temperature processing due to decomposition and leaching issues, which poses a challenge in achieving uniform color in applications like 3D printing.

Method used

Polyamides with optical absorbers integrated into the polyamide backbone (IBOA-polyamides) are synthesized through polymerization in the presence of light absorbers, ensuring uniform color retention over time.

Benefits of technology

The use of IBOA-polyamides maintains uniform color and fluorescence in objects produced by additive manufacturing, as the optical absorbers cannot migrate or leach from the polyamide backbone.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide methods for synthesizing a polyamide having an optical absorber in the backbone of the polyamide.SOLUTION: The methods comprise: polymerizing polyamide monomers in the presence of an optical absorber selected from the group consisting of a polyamine optical absorber, a polyacid optical absorber, an amino acid optical absorber, and any combination thereof to yield the polyamide having the optical absorber in the backbone of the polyamide.EFFECT: The polyamides are useful in producing objects by methods that include melt extrusion, injection molding, compression molding, melt spinning, melt emulsification, spray drying, cryogenic milling, freeze-drying of polymer dispersions, and precipitation of polymer dispersions.SELECTED DRAWING: None
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Description

[Technical field]

[0001] (CROSS REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of priority under 35 U.S.C. §119 to U.S. Provisional Application No. 62 / 897,534, filed September 9, 2019, the entire contents of which are incorporated herein by reference.

[0002] FIELD OF THEINVENTION The present disclosure relates to compositions, methods of synthesis, and uses of polyamides having optical absorbers in the polyamide backbone. For example, particles can include polyamides having optical absorbers in the polyamide backbone. [Background technology]

[0003] Thermoplastic polymers are often used to make extruded objects such as films, bags, particles, and filaments. One example of a thermoplastic polymer is polyamide. Polyamides, like nylon, are off-white pigmented polymers that have the ability to withstand high or low temperatures without losing physical properties. Thus, objects made of polyamide can be used in demanding applications such as power tools, automotive parts, gears, and appliance parts. In some cases, applications may require parts made of polyamide to be pigmented. However, when an application requires the pigmentation of parts made of polyamide, the combination of high processing temperatures and amines present in polyamides makes most conventional dyes unsuitable for use. For example, dyes may decompose at high processing temperatures and / or leach out of polyamide formulations over time.

[0004] One application where homogeneous incorporation of dyes is particularly important is the rapidly growing technology field of three-dimensional (3D) printing, also known as additive manufacturing. While 3D printing has traditionally been used for rapid prototyping tasks, the technique is increasingly being adopted for the production of commercial and industrial objects that may have completely different structural and mechanical tolerances than the rapid prototypes.

[0005] 3D printing operates by depositing either (a) droplets or streams of molten or solidifiable material, or (b) powder particulates at precise deposition locations for subsequent solidification into larger objects that may have any number of complex shapes. Such deposition and solidification processes are typically performed under computer control to result in layer-by-layer building of larger objects. In certain examples, the consolidation of powder particulates may occur in a 3D printing system that uses a laser to facilitate selective laser sintering (SLS).

[0006] Powder particulates that can be used in 3D printing include thermoplastic polymers, including thermoplastic elastomers, metals, and other solidifiable materials. One exemplary thermoplastic polymer is nylon. Nylon is an off-white colored polymer that has the ability to withstand high or low temperatures without losing physical properties. Therefore, nylon can be used in demanding applications such as power tools, automotive parts, gears, and appliance parts.

[0007] When using dyes in 3D printing, the dye compound should be dispersed evenly throughout the small molten droplets or power particulates, otherwise the coloring of the final object will be uneven. Summary of the Invention

[0008] The present disclosure relates to compositions, methods of synthesis, and uses of polyamides having optical absorbers in the polyamide backbone. For example, particles can include polyamides having optical absorbers in the polyamide backbone.

[0009] Disclosed herein is a method that includes polymerizing a polyamide monomer in the presence of a light absorber selected from the group consisting of a polyamine light absorber, a polyacid light absorber, an amino acid light absorber, and any combination thereof, to obtain a polyamide having a light absorber in the backbone chain of the polyamide (IBOA-polyamide).

[0010] Disclosed herein are compositions that include a polyamide having a light absorber in the backbone of the polyamide.

[0011] Disclosed herein are articles comprising polyamides having optical absorbers in the backbone of the polyamide.

[0012] Disclosed herein is a process comprising passing a polymer melt comprising a polyamide having an optical absorber in the backbone chain of the polyamide, and optionally one or more other thermoplastic polymers and / or one or more compatibilizers, through an orifice to produce a film, fiber (or filament), particle, pellet, or the like.

[0013] Disclosed herein is a method comprising extruding a filament comprising a polyamide having an optical absorber in the backbone chain of the polyamide, and optionally one or more other thermoplastic polymers and / or one or more compatibilizers, through an orifice, where the filament becomes a polymer melt upon extrusion; depositing the polymer melt as a first layer onto a platform; cooling the layer; depositing an additional layer of the polymer melt onto the first layer; cooling the additional layer; and repeating the depositing and cooling for at least one additional layer to produce a 3D shape.

[0014] Disclosed herein is a process comprising mixing a mixture comprising an IBOA-polyamide, a dispersing medium immiscible with the IBOA-polyamide, and optionally an emulsion stabilizer, at a temperature above the melting point or softening temperature of the IBOA-polyamide and at a shear rate high enough to disperse the IBOA-polyamide in the dispersing medium, and cooling the mixture below the melting point or softening temperature of the IBOA-polyamide to form solidified particles comprising the IBOA-polyamide and, if present, the emulsion stabilizer associated with the outer surface of the solidified particles.

[0015] Disclosed herein are compositions that include particles that include an IBOA-polyamide and have a circularity of about 0.90 to about 1.0.

[0016] Also disclosed herein is a method comprising depositing the IBOA-polyamide particles described herein, optionally in combination with other thermoplastic polymer particles, onto a surface in a specified shape, and, after deposition, heating at least a portion of the particles to promote their consolidation and form a consolidated body. [Brief description of the drawings]

[0017] The following figures are included to illustrate certain aspects of the present disclosure and should not be viewed as exclusive configurations. The disclosed subject matter is capable of considerable modification, alteration, combinations, and equivalents in form and function, as will occur to those of ordinary skill in the art having the benefit of this disclosure.

[0018] [Figure 1] 1 is a flow chart of a non-limiting exemplary method of the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0019] The present disclosure relates to compositions, methods of synthesis, and methods of application of polyamides with an optical absorber in the polyamide backbone. More specifically, the polyamide synthesis described herein uses an amine and / or carboxyl functionalized optical absorber as a comonomer with polyamide monomers. The result is a polyamide with an optical absorber in the polyamide backbone, also referred to herein as an in-backbone optical absorber polyamide or IBOA-polyamide. Because the optical absorber is in the polyamide backbone, objects produced by additive manufacturing methods that include IBOA-polyamide containing particles should maintain a uniform color and / or fluorescence over time because the optical absorber cannot migrate within or leach from the object.

[0020] The present disclosure also relates to particles and related methods comprising polyamides having an optical absorber in the backbone chain of the polyamide (also referred to herein as in-chain optical absorber polyamides or IBOA-polyamides). More specifically, the present disclosure includes methods for making highly spherical polymer particles comprising one or more IBOA-polyamides and, optionally, one or more other thermoplastic polymers. Such polymer particles may be useful, inter alia, as starting materials for additive manufacturing.

[0021] The polymer particles described herein are produced by a melt-emulsion process in which one or more IBOA-polyamides and, optionally, one or more additional thermoplastic polymers are dispersed as a melt in a dispersing medium that is immiscible with the IBOA-polyamides and, if used, the additional thermoplastic polymers. A sufficient amount of shear force is applied to the mixture to cause the polymer melt to form droplets in the dispersing medium.

[0022] Because the light absorber is located in the polyamide backbone, objects produced by additive manufacturing methods containing these particles should maintain a uniform color over time because the light absorber cannot migrate within or leach out of the object.

[0023] Definitions and Test Methods As used herein, the term "immiscible" refers to a mixture of components that, when combined, form two or more phases that have a melting point of less than 5% by weight with each other at room temperature at ambient pressure, or at the melting point of the components if solid at room temperature. For example, polyethylene oxide with a molecular weight of 10,000 g / mol is solid at room temperature and has a melting point of 65°C. Thus, if a material is liquid at room temperature and the polyethylene oxide has a melting point of less than 5% by weight at 65°C, the polyethylene oxide is immiscible with the material.

[0024] As used herein, the term "light absorber" refers to a molecule or portion thereof that absorbs ultraviolet or visible light.

[0025] As used herein, the term "chromophore" refers to a light absorber whose light absorption imparts color.

[0026] As used herein, the term "fluorophore" refers to a light absorber that re-emits absorbed photons at a different wavelength.

[0027] As used herein, the term "polyamide monomer" refers to a monomer that forms a polyamide.

[0028] As used herein, the term "polyacid" when referring to a compound refers to a compound having two or more carboxylic acid moieties. For the purposes of this specification, the anhydride moieties are considered carboxylic acid moieties because the anhydride is ring-opened to a carboxylic acid during synthesis.

[0029] As used herein, the term "polyamine" when referring to a compound refers to a compound having two or more amine moieties.

[0030] As used herein, the term "amino acid" when referring to a compound refers to a compound having one or more carboxylic acid moieties and one or more amine moieties, where again, the anhydride moieties are considered carboxylic acid moieties since the anhydride is ring-opened to a carboxylic acid during synthesis.

[0031] When referring to a polymer in terms of a mer unit (eg, a polyamide monomer and / or a chromophore within the backbone of a polyamide), it will be understood by one of ordinary skill in the art that the mer unit is in polymerized form within the polymer.

[0032] As used herein, the term "thermoplastic polymer" refers to a plastic polymeric material that reversibly softens and hardens on heating and cooling. Thermoplastic polymers include thermoplastic elastomers.

[0033] As used herein, the term "elastomer" refers to a copolymer that includes a crystalline "hard" segment and an amorphous "soft" segment. In the case of polyurethanes, the crystalline segment may include the portion of the polyurethane that includes urethane functionality and optional chain extenders, and the soft segment may include, for example, a polyol.

[0034] As used herein, the term "polyurethane" refers to the polymeric reaction product between a diisocyanate, a polyol, and an optional chain extender.

[0035] As used herein, the term "oxide" refers to both metal oxides and non-metal oxides. For purposes of this disclosure, silicon is considered to be a metal.

[0036] As used herein, the terms "associated," "association," and grammatical variations thereof, between an emulsion stabilizer and a surface refer to chemical bonding and / or physical adhesion of the emulsion stabilizer to the surface. Without being limited by theory, it is believed that the association described herein between the polymer and the emulsion stabilizer is primarily a physical adhesion by hydrogen bonding and / or other mechanisms. However, some chemical bonding may occur.

[0037] As used herein, the term "embedded" with respect to nanoparticles and the surface of a polymer particle refers to the nanoparticles extending at least partially into the surface such that the polymer is in contact with the nanoparticles to a greater extent than would occur if the nanoparticles were simply deposited on the surface of the polymer particle.

[0038] In this specification, D10, D50, D90, and diameter span are mainly used in this specification to describe particle size. As used in this specification, the term "D10" refers to a diameter, and 10% of the sample (based on volume unless otherwise specified) is composed of particles with a diameter less than this diameter value. As used in this specification, the term "D50" refers to a diameter, and 50% of the sample (based on volume unless otherwise specified) is composed of particles with a diameter less than this diameter value. As used in this specification, the term "D90" refers to a diameter, and 90% of the sample (based on volume unless otherwise specified) is composed of particles with a diameter less than this diameter value.

[0039] As used herein, the terms "diameter span" and "span" and "span size" when referring to diameter provide a measure of the spread of the particle size distribution and are calculated as (D90-D10) / D50 (again, each D value is based on volume unless otherwise noted).

[0040] Particle size may be determined by light scattering techniques using a Malvern MASTERSIZER™ 3000 or analysis of optical digital micrographs. Unless otherwise stated, light scattering techniques are used to analyze particle size.

[0041] For light scattering techniques, the control samples were glass beads with diameters in the range of 15 μm to 150 μm under the trade name Quality Audit Standards QAS4002™ obtained from Malvern Analytical Ltd. Unless otherwise stated, samples were analyzed as dry powders. Analyzed particles were dispersed in air and analyzed using the AERO S dry powder dispersion module with the MASTERSIZER™ 3000. Particle size was derived using the instrument software from a plot of volume density as a function of size.

[0042] Particle size measurements and diameter spans can also be determined by optical digital microscopy. Optical images are obtained using a Keyence VHX-2000 digital microscope using version 2.3.5.1 software (system version 1.93) for particle size analysis.

[0043] As used herein, when referring to sieving, the hole / screen size is described according to American Standard Sieves (ASTM E11-17).

[0044] As used herein, the terms "circularity" and "sphericity" for particles refer to how close a particle is to a perfect sphere. To determine circularity, an optical microscope image of the particle is taken. The perimeter (P) and area (A) of the particle in the plane of the microscope image are calculated (e.g., using a SYSMEX FPIA 3000 Particle Shape and Size Analyzer available from Malvern Instruments). The circularity of a particle is expressed as C EA / P and C EA is the circumference of a circle whose area corresponds to the area of ​​the actual particle (A).

[0045] As used herein, the term "shear force" refers to stirring or similar processes that induce mechanical agitation in a fluid.

[0046] As used herein, the term "aspect ratio" refers to the ratio of length divided by width, where the length is greater than the width.

[0047] Unless otherwise stated, the melting points of polymers are determined according to ASTM E794-06(2018) using a heating and cooling rate of 10° C. / min.

[0048] Unless otherwise stated, the softening temperature or softening point of a polymer is determined by ASTM D6090-17. The softening temperature may be measured by using a cup and ball apparatus available from Mettler-Toledo using a 0.50 gram sample at a heating rate of 1° C. / min.

[0049] Angle of repose is a measure of the flowability of a powder. Angle of repose measurements were determined using a Hosokawa Micron Powder Characteristics Tester PT-R using ASTM D6393-14 "Standard Test Method for Bulk Solids Characterized by Carr Indices."

[0050] Hausner ratio (H r ) is a measure of the powder's flowability, and H r =ρ tap / ρ bulk ρ is calculated by bulk is the bulk density according to ASTM D6393-14, and ρ tap is the tap density according to ASTM D6393-14.

[0051] As used herein, the viscosity of a dispersion fluid is the kinematic viscosity measured according to ASTM D445-19 at 25° C., unless otherwise specified. For commercially obtained dispersion fluids (e.g., PDMS oil), the kinematic viscosity data cited herein is that provided by the manufacturer, whether measured according to the aforementioned ASTM or another standard measurement technique.

[0052] Polyamides with Intrachain Light Absorbers Polyamides can be synthesized by condensation polymerization (also referred to herein as polycondensation) or by ring-opening polymerization. Herein, these polymerizations are carried out in the presence of one or more diamino light absorbers, one or more diacid light absorbers, one or more amino acid light absorbers, or any combination thereof. This incorporates the light absorber into the backbone chain of the polyamide. The resulting IBOA-polyamide can then be used in a variety of applications.

[0053] Some exemplary polycondensation and ring-opening polymerization reactions are presented below, followed by non-limiting examples of polyamide monomers and light absorbers suitable for use in one or more of the reactions. The following examples are not intended to limit the scope of the polyamide monomers and light absorbers.

[0054] Non-limiting polycondensation examples presented in Schemes 1-4 use amino acid polyamide monomers with one or more polyamine light absorbers, one or more polyacid light absorbers, one or more amino acid light absorbers, or any combination thereof to obtain IBOA-polyamides.

[0055] Scheme 1 shows the polycondensation reaction between an amino acid polyamide monomer and an amino acid light absorber (OA1).

[0056] [ka]

[0057] Scheme 2 shows the polycondensation reaction between an amino acid polyamide monomer and a polyamine absorber (OA2). In this example, there will be one absorber per polymer chain.

[0058] [ka]

[0059] Scheme 3 shows the polycondensation reaction between an amino acid polyamide monomer and a polyacid absorber (OA3). In this example, there will be one absorber per polymer chain.

[0060] [ka]

[0061] Scheme 4 shows the polycondensation reaction between an amino acid polyamide monomer, a polyamine absorber (OA2), and a polyacid absorber (OA3).

[0062] [ka]

[0063] Again, Schemes 1-4 are non-limiting examples. One skilled in the art will recognize other polycondensation reactions utilizing amino acid polyamide monomers with amino acid light absorbers, polyamine light absorbers, and / or polyacid light absorbers. For example, two or more amino acid polyamide monomers can be used. In other examples, other combinations of three types of light absorbers can be used (e.g., OA1 and OA2, OA1 and OA3, and OA1, OA2, and OA3). In yet other examples, two or more amino acid light absorbers, two or more polyamine light absorbers, and / or two or more polyacid light absorbers can be used. Furthermore, combinations of these variations can be implemented. Additionally, Schemes 1-4 show random polymerization. However, one skilled in the art will recognize that block polymers can be made (e.g., by adding different light absorbers at different times, or by having part of the polymerization occur in the absence of light absorbers). Other polymerization techniques can be used, such as grafting, where the light absorber is on the backbone of the polyamide.

[0064] Non-limiting polycondensation examples presented in Schemes 5-7 use polyamine polyamide monomers and polyacid polyamide monomers with one or more polyamide light absorbers, one or more polyacid light absorbers, one or more amino acid light absorbers, or any combination thereof to obtain IBOA-polyamides.

[0065] Scheme 5 shows the polycondensation reaction between polyamine polyamide monomers, polyacid polyamide monomers, and an amino acid light absorber (OA1).

[0066] [ka]

[0067] Scheme 6 shows the polycondensation reaction between a polyamine polyamide monomer, a polyacid polyamide monomer, and a polyamine light absorber (OA2).

[0068] [ka]

[0069] Scheme 7 shows the polycondensation reaction between polyamine polyamide monomers, polyacid polyamide monomers, and a polyacid light absorber (OA3).

[0070] [ka]

[0071] Again, Schemes 5-7 are non-limiting examples. Those skilled in the art will recognize other polycondensation reactions utilizing polyamine polyamide monomers and polyacid polyamide monomers with amino acid light absorbers, polyamine light absorbers, and / or polyacid light absorbers. For example, two or more polyamine polyamide monomers and / or two or more polyacid polyamide monomers can be used. In another embodiment, a combination of three light absorbers can be used (e.g., OA1 and OA2, OA1 and OA3, OA2 and OA3, and OA1, OA2 and OA3). In yet another embodiment, two or more amino acid light absorbers, two or more polyamine light absorbers, and / or two or more polyacid light absorbers can be used. Furthermore, combinations of these variations can be implemented. Additionally, Schemes 5-7 show random polymerization. However, those skilled in the art will recognize that block polymers can be made (e.g., by adding different light absorbers at different times, or by having a portion of the polymerization occur in the absence of a light absorber). Other polymerization techniques can be used, such as grafting, where the light absorber is on the backbone of the polyamide.

[0072] Non-limiting example ring-opening polymerization reactions presented in Schemes 8-11 use amino acid polyamide monomers with one or more polyamide photoabsorbers, one or more polyacid photoabsorbers, one or more amino acid photoabsorbers, or any combination thereof to yield IBOA-polyamides.

[0073] Scheme 8 shows the ring-opening polymerization reaction between a cyclic polyamide monomer and an amino acid light absorber (OA1).

[0074] [ka]

[0075] Scheme 9 shows the ring-opening polymerization reaction between a cyclic polyamide monomer and a polyamine absorber (OA2). In this example, there will be one absorber per polymer chain.

[0076] [ka]

[0077] Scheme 10 shows the ring-opening polymerization reaction between a cyclic acid polyamide monomer and a polyacid absorber (OA3). In this example, there will be one absorber per polymer chain.

[0078] [ka]

[0079] Scheme 11 shows the ring-opening polymerization reaction between a cyclic acid polyamide monomer, a polyamine light absorber (OA2), and a polyacid light absorber (OA3).

[0080] [ka]

[0081] Again, Schemes 8-11 are non-limiting examples. Those skilled in the art will recognize other ring-opening polymerization reactions utilizing cyclic polyamide monomers with amino acid light absorbers, polyamine light absorbers, and / or polyacid light absorbers. For example, two or more cyclic polyamide monomers may be used. In other examples, other combinations of three types of light absorbers may be used (e.g., OA1 and OA2, OA1 and OA3, and OA1, OA2, and OA3). In yet other examples, two or more amino acid light absorbers, two or more polyamine light absorbers, and / or two or more polyacid light absorbers may be used. Additionally, combinations of these variations may be implemented.

[0082] Examples of amino acid polyamide monomers suitable for use in polycondensation include, but are not limited to, HN-(CH 2 ) n -COOH (wherein n is 1 to 20), branched aliphatic amino acids (e.g., C 4 -C 20 ), cyclic aliphatic amino acids (e.g., C 4 -C20 ), aromatic amino acids (e.g., 3-aminobenzoic acid, 4-aminobenzoic acid), and the like, and any combination thereof.

[0083] Examples of polyacid polyamide monomers suitable for use in polycondensation include, but are not limited to, HOOC-(CH 2 ) n -COOH (wherein n is 1 to 20) (e.g., adipic acid, terephthalic acid, isophthalic acid, pimelic acid, suberic acid, decanedioic acid, dodecanedioic acid), isophthalic acid, terephthalic acid, pent-2-enedioic acid, dodec-2-enedioic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, 1,3-cyclohexanedicarboxylic acid, and the like, and any combination thereof.

[0084] Examples of polyamine polyamide monomers suitable for use in the polycondensation include, but are not limited to, HN-(CH 2 ) n -NH (wherein n is 1 to 20), 1,5-diamino-2-methylpentane, 1,2-diaminopropane, trimethylhexamethylenediamine, 2-methyloctane-1,8-diamine, n-methyl-1,6-hexamethylenediamine (wherein n is 2 or 3), n-methyl-1,7-heptamethylenediamine (wherein n is 2 to 4), n-methyl-1,8-octamethylenediamine (wherein n is 2 to 4), n-methyl-1,12-dodecamethylenediamine (wherein n is 2 to 6), 1,3-bis(amino methyl)benzene, ortho-phenylene-bis(methylamine), 1,4-bis(aminomethyl)benzene, 1,4-cyclohexanediamine, 4-methylcyclohexane-1,3-diamine, 4-methylcyclohexane-1,3-diamine, diphenylethylenediamine, diphenylethylenediamine, 1,3-bis(aminomethyl)cyclohexane, 4,4'-methylenebis(cyclohexylamine), 4,4'-biphenyldiamine, 1,8-diaminonaphthalene, and the like, and any combination thereof.

[0085] Examples of cyclic polyamide monomers suitable for use in ring-opening polymerization include, but are not limited to, azeridinone, 2-azetidinone, 2-pyrrolidinone, 2-piperidinone, ε-caprolactam, 2-azacyclooctanone, 2-azacyclononanone, 2-azacyclodecanone, 2-azacycloundecanone, 2-aza-cyclododecanone, laurolactam, and the like, and any combination thereof.

[0086] In general, the light absorbers may belong to the following light absorber classes: naphthalimides, fluoresceins, rhodamines, coumarins, azo dyes, oxadiazoles, perylenes, calceins, and other aromatic dyes. However, other light absorbers may be suitable for use in the methods and compositions described herein. As noted above, the anhydride moiety is considered a carboxylic acid moiety because the anhydride is ring-opened to a carboxylic acid during synthesis.

[0087] Examples of amino acid photoabsorbers suitable for use in polycondensation include, but are not limited to, 4-amino-1,8 naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and the like, and any combination thereof. Preferably, the amino acid photoabsorbers used in the polycondensation reactions described herein have one amine moiety and one carboxylic acid moiety.

[0088] Examples of polyacid light absorbers suitable for use in polycondensation include, but are not limited to, calcein (also known as flourexon), 4-methylumbelliferone-8-methyliminodiacetic acid (also known as calein blue), 6-carboxyfluorescein (also known as 6-FAM), 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimido)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and the like, and any combination thereof. Preferably, the polyacid light absorbers used in the polycondensation reactions described herein have two carboxylic acid moieties.

[0089] Examples of polyamine light absorbers suitable for use in polycondensation include, but are not limited to, N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4 methoxypehnyl-N'-4(1,2,2-triphenylethenyl)penyl-1,4-penylenediamine, 4,5-diamino-rhodamine B (also known as DAR-1), rhodamine 123, 2,7- Dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride (also known as Pararoseaniline and Basic Red 9), 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium (also known as Acid Blue 43), and the like, and any combination thereof. Preferably, the polyamine light absorber used in the polycondensation reaction described herein has two amine moieties.

[0090] Examples of polyamides that can have light absorbers synthesized in the backbone include, but are not limited to, polycaproamide (nylon 6, polyamide 6, or PA6), poly(hexamethylene succinamide) (nylon 4,6, polyamide 4,6, or PA4,6), polyhexamethylene adipamide (nylon 6,6, polyamide 6,6, or PA6,6), polypentamethylene adipamide (nylon 5,6, polyamide 5,6, or PA5,6), polyhexamethylene sebacamide (nylon 6,10, polyamide 6,10, or PA6,10), polyundecaamide (nylon 11, polyamide 11, or PA11), polydodecaamide (nylon 12, polyamide 12, or PA12), and polyhexamethylene Terephthalamide (nylon 6T, polyamide 6T, or PA6T), nylon 10,10 (polyamide 10,10 or PA10,10), nylon 10,12 (polyamide 10,12 or PA10,12), nylon 10,14 (polyamide 10,14 or PA10,14), nylon 10,18 (polyamide 10,18 or PA10,18), nylon 6,18 (polyamide 6,18 or PA6,18), nylon 6,12 (polyamide 6,12 or PA6,12), nylon 6,14 (polyamide 6,14 or PA6,14), nylon 12,12 (polyamide 12,12 or PA12,12), semi-aromatic polyamides, aromatic polyamides (aramids), and the like, as well as any combination thereof. Copolyamides may also be used. Examples of copolyamides include, but are not limited to, PA11 / 10,10, PA6 / 11, PA6,6 / 6, PA11 / 12, PA10,10 / 10,12, PA10,10 / 10,14, PA11 / 10,36, PA11 / 6,36, PA10,10 / 10,36, PA6T / 6,6, etc., and any combination thereof. Examples of polyamide elastomers include, but are not limited to, polyesteramides, polyetheresteramides, polycarbonate-esteramides, and polyether-block-amide elastomers. As used herein, a polyamide followed by a single number is a polyamide having that number of backbone carbons between each nitrogen.A polyamide with a first number, followed by a comma, and a second number is a polyamide with the first number of backbone carbons between the nitrogens in the moiety that does not have a pendant =O and the second number of backbone carbons between the two nitrogens in the moiety that has a pendant =O. As a non-limiting example, nylon 6,10 has the structure [NH-(CH. 2 ) 6 -NH-CO-(CH 2 ) 8 -CO] n A polyamide followed by a number(s) backslash number(s) is a copolymer of the polyamide designated by the numbers before and after the backslash.

[0091] The polycondensation reaction (e.g., Schemes 1-7 and variations thereof) can be carried out in the presence of an activator and / or a metal salt. Examples of activators include, but are not limited to, triphenylphosphine, and the like, and any combinations thereof. Examples of metal salts include, but are not limited to, calcium chloride, cesium fluoride, and the like, and any combinations thereof.

[0092] The polycondensation reaction (eg, Schemes 1 to 7 and variations thereof) can be carried out at about 50° C. to about 200° C. (or about 50° C. to about 100° C., or about 75° C. to about 150° C., or about 125° C. to about 200° C.).

[0093] The polycondensation reaction (eg, Schemes 1-7 and variations thereof) can be carried out for about 5 minutes to about 24 hours (or about 5 minutes to about 6 hours, or about 2 hours to about 12 hours, or about 6 hours to about 24 hours).

[0094] The polycondensation reaction (e.g., Schemes 1-7 and variations thereof) can be carried out in a solvent, including, but not limited to, N-methylpyrrolidone (NMP), pyridine, dichloromethane, dimethylsulfoxide (DMSO), N,N-dimethylformamide, acetonitrile, tetrahydrofuran, and the like, and any combination thereof.

[0095] The polycondensation reaction (e.g., Schemes 1-7 and variations thereof) can be carried out with a molar ratio of polyamide monomer (cumulative) to light absorber (cumulative) of about 500:1 to about 10:1 (or about 500:1 to about 100:1, or about 250:1 to about 50:1, or about 100:1 to about 10:1).

[0096] The ring-opening polymerization reaction (e.g., Schemes 8-11 and variations thereof) can be carried out in the presence of an activator and / or a metal salt. Examples of activators include, but are not limited to, triphenylphosphine, and the like, and any combinations thereof. Examples of metal salts include, but are not limited to, calcium chloride, cesium fluoride, and the like, and any combinations thereof.

[0097] The ring-opening polymerization reaction (eg, Schemes 8 to 11 and variations thereof) can be carried out at about 50° C. to about 200° C. (or about 50° C. to about 100° C., or about 75° C. to about 150° C., or about 125° C. to about 200° C.).

[0098] The ring-opening polymerization reaction (eg, Schemes 8-11 and variations thereof) can be carried out for about 5 minutes to about 24 hours (or about 5 minutes to about 6 hours, or about 2 hours to about 12 hours, or about 6 hours to about 24 hours).

[0099] The ring-opening polymerization reaction (e.g., Schemes 8-11 and variations thereof) can be carried out in a solvent including, but not limited to, N-methylpyrrolidone (NMP), pyridine, dichloromethane, dimethylsulfoxide (DMSO), N,N-dimethylformamide, acetonitrile, tetrahydrofuran, and the like, and any combination thereof.

[0100] The ring-opening polymerization reaction (e.g., Schemes 8-11 and variations thereof) can be carried out with a molar ratio of polyamide monomer (cumulative) to light absorber (cumulative) of about 500:1 to about 10:1 (or about 500:1 to about 100:1, or about 250:1 to about 50:1, or about 100:1 to about 10:1).

[0101] IBOA-polyamides obtained by any suitable synthetic route can have a molar equivalent of non-light absorbing polyamide units to light absorbing units of about 500:1 to about 10:1 (or about 500:1 to about 100:1, or about 250:1 to about 50:1, or about 100:1 to about 10:1).

[0102] IBOA-Polyamide Applications The IBOA-polyamides described herein can be used to manufacture a variety of objects (or articles). The IBOA-polyamides described herein can be used alone or in combination with other thermoplastic polymers (e.g., polyamides without light absorbers and / or other thermoplastic polymers).Examples of thermoplastic polymers that may be used in conjunction with one or more IBOA-polyamides of the present disclosure include, but are not limited to, polyamides, polyurethanes, polyethylene, polypropylene, polyacetal, polycarbonate, polybutylene terephthalate (PBT), polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polytrimethylene terephthalate (PTT), polyhexamethylene terephthalate, polystyrene, polyvinyl chloride, polytetrafluoroethene, polyesters (e.g., polylactic acid), polyethers, polyethersulfones, polyetheretherketones, polyacrylates, polymethacrylates, polyimides, acrylonitrile butadiene styrene (ABS), polyphenylene sulfide, vinyl polymers, polyarylene ethers, polyarylene sulfides, polysulfones, polyetherketones, polyamide-imides, polyetherimides, polyetheresters, copolymers comprising polyether blocks and polyamide blocks (PEBs), and the like. A or polyether block amides), grafted or ungrafted thermoplastic polyolefins, functionalized or unfunctionalized ethylene / vinyl monomer polymers, functionalized or unfunctionalized ethylene / alkyl (meth)acrylates, functionalized or unfunctionalized (meth)acrylic acid polymers, functionalized or unfunctionalized ethylene / vinyl monomer / alkyl (meth)acrylate terpolymers, ethylene / vinyl monomer / carbonyl terpolymers, ethylene / alkyl (meth)acrylate / carbonyl terpolymers, methyl methacrylate-butadiene-styrene (MBS) type core-shell polymers, polystyrene-block-polybutadiene-block-poly(methyl methacrylate) (SBM) block terpolymers, chlorinated or chlorosulfonated polyethylene, polyvinylidene fluoride (PVDF), phenolic resins, poly(ethylene / vinyl acetate), polybutadiene, polyisoprene, styrenic block copolymers, polyacrylonitrile, silicones, and the like, and any combination thereof. Copolymers comprising one or more of the foregoing may also be used in the methods and systems described herein.

[0103] Optionally, a compatibilizer may be used when combining the IBOA-polyamides described herein with other thermoplastic polymers. The compatibilizer may improve the blending efficiency and / or effectiveness of the polymers. Examples of polymeric compatibilizers include, but are not limited to, PROPOLDER™ MPP2020 20 (polypropylene, available from Polygroup Inc.), PROPOLDER™ MPP2040 40 (polypropylene, available from Polygroup Inc.), NOVACOM™ HFS2100 (maleic anhydride functionalized high density polyethylene polymer, available from Polygroup Inc.), KEN-REACT™ CAPS™ L™ 12 / L (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ CAPOW™ L™ 12 / H (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ LICA™ 12 (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ CAPS™ KPR™ 12 / LV (organometallic coupling agent, available from Kenrich Petrochemicals), and KEN-REACT™ CAPS™ KPR™ 12 / LV (organometallic coupling agent, available from Kenrich Petrochemicals). Petrochemicals), KEN-REACT™ CAPOW™ KPR™ 12 / H (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ Titanate & Zirconate (organometallic coupling agent, available from Kenrich Petrochemicals),Petrochemicals), VISTAMAXX™ (ethylene-propylene copolymer, available from ExxonMobil), SANTOPRENE™ (thermoplastic vulcanizate of ethylene-propylene-diene rubber and polypropylene, available from ExxonMobil), VISTALON™ (ethylene-propylene-diene rubber, available from ExxonMobil), EXACT™ (plastomers, available from ExxonMobil) EXXELO R™ (polymer resin, available from ExxonMobil), FUSABOND™ M603 (random ethylene copolymer, available from Dow), FUSABOND™ E226 (anhydride modified polyethylene, available from Dow), BYNEL™ 41E710 (coextrudable adhesive resin, available from Dow), SURLYN™ 1650 (ionomer resin, available from Dow), FUSABOND™ P353 (chemically modified polypropylene copolymer, available from Dow), available from Dow), ELVALOY™ PTW (ethylene terpolymer, available from Dow), ELVALOY™ 3427AC (copolymer of ethylene and butyl acrylate, available from Dow), LOTADER™ AX8840 (ethylene acrylate-based terpolymer, available from Arkema), LOTADER™ 3210 (ethylene acrylate-based terpolymer, available from Arkema), LOTADER™ 3410 (ethylene acrylate-based terpolymer, available from Arkema), BASF), BAXXODUR™ EC 301 (amine for epoxies, available from BASF), BAXXODUR™ EC 311 (amine for epoxies, available from BASF), BAXXODUR™ EC 321 (amine for epoxies, available from BASF), BAXXODUR™ EC 331 (amine for epoxies, available from BASF), BAXXODUR™ EC 3420 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ 3430 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ 4700 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ AX8900 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ 4720 (ethylene acrylate based terpolymer, available from Arkema), BAXXODUR™ EC 301 (amine for epoxies, available from BASF), BAXXODUR™ EC 311 (amine for epoxies, available from BASF), BAXXODUR™ EC303 (amine for epoxies, available from BASF), BAXXODUR™ EC 280 (amine for epoxies, available from BASF), BAXXODUR™ EC 201 (amine for epoxies, available from BASF), BAXXODUR™ EC 130 (amine for epoxies, available from BASF), BAXXODUR™ EC 110 (amine for epoxies, available from BASF), styrenics, polypropylene, polyamide, polycarbonate, EASTMAN™ G-3003 (maleic anhydride grafted polypropylene, available from Eastman), RETAIN™ (polymer modifier, available from Dow), AMPLIFY TY™ (maleic anhydride grafted polymer, available from Dow), INTUNE™ (olefin block copolymer, available from Dow), and the like, and any combination thereof.

[0104] Methods for manufacturing objects include, but are not limited to, melt extrusion, injection molding, compression molding, melt spinning, melt emulsification, spray drying (e.g., to form particles), cryomilling (or cryogenic grinding), freeze drying of polymer dispersions, precipitation of polymer dispersions, and the like, and any hybrids thereof.

[0105] Examples of articles that may be produced by such methods, where IBOA-polyamide may be all or part of the article, include, but are not limited to, particles, films, packaging, toys, household products, automotive parts, aerospace / aircraft related parts, containers (e.g., for food, beverages, cosmetics, personal care compositions, pharmaceuticals, etc.), shoe soles, furniture parts, decorative home products, plastic gears, screws, nuts, bolts, cable ties, jewelry, artwork, sculptures, medical products, prostheses, orthopedic implants, manufactured artifacts to aid learning in education, 3D anatomical models to aid surgery, robots, biomedical devices (orthotics), home appliances, dental products, electronic devices, sporting goods, etc. Additionally, the particles may be useful in applications including, but not limited to, paints, powder coatings, inkjet materials, electrophotographic toners, 3D printing, etc.

[0106] Additionally, the IBOA-polyamides described herein may have a unique chemical fingerprint useful for identifying an object, tracking an object, authenticating an object, and / or determining the health of an object. Furthermore, the configuration where the IBOA-polyamide is located within an object has another layer that fingerprints the object for identifying the object, tracking the object, authenticating the object, and / or determining the health of the object.

[0107] A method of identifying an object, tracking an object, authenticating an object, and / or determining the health of an object may include (a) exposing an object comprising an IBOA-polyamide to electromagnetic radiation (e.g., in the case of fluorophores, preferably at wavelengths below 302 nm or above 700 nm); (b) sensing one or more spectra associated with the absorbed and / or re-emitted electromagnetic radiation (e.g., in the case of fluorophores, preferably photoluminescence emitted between 302 nm and 700 nm); and (c) comparing this spectrum to a known spectrum of an optical absorber used in the object or part thereof. Optionally, the location where this spectral region is located on the object may be compared to a known location where this spectral region should be. The comparison may be used to identify and / or authenticate the object. For tracking, the comparison may be performed and / or the detected spectrum and / or spectral region may be recorded in a database along with the physical location of the object. Additionally, the health of the object, which may be worn and / or cracked, may be confirmed. For example, a core portion of an article may contain a light absorber and an outer portion may cover the core portion and not contain a light absorber (or contain a different light absorber), whereby when the spectra are compared, the appearance of a spectral signature of the light absorber in the core may indicate that the object is at or near the end of its life.

[0108] As a non-limiting example, a 3D printing process of the present disclosure may include depositing particles comprising one or more IBOA-polyamides of the present disclosure (and optionally one or more other thermoplastic polymers and / or one or more compatibilizers) onto a surface in a specified shape, and heating at least a portion of the particles after deposition to promote their consolidation and form a consolidated body (object), such that the consolidated body has a porosity of about 1% or less after consolidation. For example, the heating and consolidation of the thermoplastic polymer particles may be performed in a laser-based 3D printing device, such that the heating and consolidation is performed by selective laser sintering.

[0109] As a non-limiting example, a 3D printing process of the present disclosure may include extruding a filament including one or more IBOA-polyamides of the present disclosure (and optionally one or more other thermoplastic polymers and / or one or more compatibilizers) through an orifice, where the filament becomes a polymer melt upon extrusion, depositing the polymer melt as a first layer onto a platform, cooling the layer, depositing an additional layer of the polymer melt onto the first layer, cooling the additional layer, and repeating the depositing and cooling for at least one additional layer to produce a 3D shape.

[0110] Yet another non-limiting example is a process comprising extruding a polymer melt comprising one or more IBOA-polyamides of the present disclosure (and optionally one or more other thermoplastic polymers and / or one or more compatibilizers) through an orifice to produce films, fibers (or filaments), particles, pellets, and the like.

[0111] Thermoplastic polymer particles and method of manufacture The figure is a flow chart of a non-limiting exemplary method 100 of the present disclosure. A thermoplastic polymer 102 (including one or more IBOA-polyamides and optionally one or more other thermoplastic polymers), a carrier fluid 104, and an optional emulsion stabilizer 106 are combined 108 to produce a mixture 110. Components 102, 104, and 106 may be added in any order and may include mixing and / or heating during the process 108 of combining components 102, 104, and 106.

[0112] The mixture 110 is then processed 112 by applying a sufficiently high shear force to the mixture 110 at a temperature above the melting or softening temperature of the thermoplastic polymer 102 to form a melt emulsion 114. Because the temperature is higher than the melting or softening temperature of the thermoplastic polymer 102, the thermoplastic polymer 102 becomes a polymer melt. The shear rate should be sufficient to disperse the polymer melt as droplets (i.e., polymer emulsion 114) in the dispersion medium 104. Without wishing to be bound by theory, it is believed that, all other factors being equal, increasing the shear force should decrease the size of the polymer melt droplets in the dispersion medium 104. However, at some point, there may be diminishing returns from increasing the shear force and decreasing the droplet size, or there may be breakup into droplet contents that reduces the quality of the particles produced.

[0113] The molten emulsion 114 inside and / or outside the mixing vessel is then cooled (116) to solidify the polymer droplets into thermoplastic polymer particles (also referred to as solidified thermoplastic polymer particles). The cooled mixture 118 is then processed (120) to isolate the thermoplastic polymer particles 122 from other components 124 (e.g., the carrier fluid 104, excess emulsion stabilizer 106, etc.) and the thermoplastic polymer particles 122 may be washed or otherwise purified. The thermoplastic polymer particles 122 include the thermoplastic polymer 102 and at least a portion of the emulsion stabilizer 106, if present, that coats the outer surface of the thermoplastic polymer particles 122. The emulsion stabilizer 106, or a portion thereof, may be deposited as a uniform coating on the thermoplastic polymer particles 122. In some cases, which may depend on non-limiting factors such as temperature (including cooling rate), type of thermoplastic polymer 102, and type and size of emulsion stabilizer 106, nanoparticles of emulsion stabilizer 106 may become at least partially embedded within the outer surface of thermoplastic polymer particles 122 in the process of associating therewith. Even if the embodiment is not practiced, at least the nanoparticles within emulsion stabilizer 106 may remain tightly associated with thermoplastic polymer particles 122, facilitating their further use. In contrast, dry blending of already formed thermoplastic polymer particulates (e.g., formed by cryogenic grinding or precipitation processes) with a flow aid such as silica nanoparticles does not result in a robust, uniform coating of the flow aid on the thermoplastic polymer particulates.

[0114] Advantageously, the carrier fluids and wash solvents of the systems and methods described herein (e.g., method 100) can be regenerated and reused. Those skilled in the art will recognize any necessary washing of spent carrier fluids and solvents that may be required for the regeneration process.

[0115] The thermoplastic polymer 102 and the dispersion medium 104 should be selected such that the thermoplastic polymer 102 and the dispersion medium 104 are immiscible at various processing temperatures (e.g., from room temperature to the process temperature). An additional factor that may be considered is the difference (e.g., difference or ratio) in viscosity between the molten polyamide 102 and the dispersion medium 104 at the process temperature. The difference in viscosity may affect the droplet breakup and particle size distribution. Without being bound by theory, it is believed that if the viscosities of the molten polyamide 102 and the dispersion medium 104 are too similar, the circularity of the overall product may be reduced, and the particles may become more ovoid and more elongated structures are observed.

[0116] The thermoplastic polymer 102 includes one or more IBOA-polyamides and optionally one or more other thermoplastic polymers. Examples of other thermoplastic polymers include, but are not limited to, polyamides, polyurethanes, polyethylene, polypropylene, polyacetal, polycarbonate, polybutylene terephthalate (PBT), polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polytrimethylene terephthalate (PTT), polyhexamethylene terephthalate, polystyrene, polyvinyl chloride, polytetrafluoroethene, polyesters (e.g., polylactic acid), polyethers, polyethersulfones, polyetheretherketones, polyacrylates, polymethacrylates, polyimides, acrylonitrile butadiene styrene (ABS), polyphenylene sulfide, vinyl polymers, polyarylene ethers, polyarylene sulfides, polysulfones, polyetherketones, polyamide-imides, polyetherimides, polyetheresters, copolymers including polyether blocks and polyamide blocks (PEBA or polyether blocks), and copolymers including polyether blocks and polyamide blocks (PEBA or polyether blocks). amides), grafted or ungrafted thermoplastic polyolefins, functionalized or unfunctionalized ethylene / vinyl monomer polymers, functionalized or unfunctionalized ethylene / alkyl (meth)acrylates, functionalized or unfunctionalized (meth)acrylic acid polymers, functionalized or unfunctionalized ethylene / vinyl monomer / alkyl (meth)acrylate terpolymers, ethylene / vinyl monomer / carbonyl terpolymers, ethylene / alkyl (meth)acrylate / carbonyl terpolymers, methyl methacrylate-butadiene-styrene (MBS) type core-shell polymers, polystyrene-block-polybutadiene-block-poly(methyl methacrylate) (SBM) block terpolymers, chlorinated or chlorosulfonated polyethylene, polyvinylidene fluoride (PVDF), phenolic resins, poly(ethylene / vinyl acetate), polybutadiene, polyisoprene, styrenic block copolymers, polyacrylonitrile, silicones, and the like, and any combination thereof. Copolymers comprising one or more of the foregoing may also be used in the methods and systems of the present disclosure.

[0117] The other thermoplastic polymers in the compositions and methods of the present disclosure may be elastomeric or non-elastomeric.Some of the above examples of other thermoplastic polymers may be elastomeric or non-elastomeric depending on the exact composition of the polymer.For example, polyethylene, which is a copolymer of ethylene and propylene, may be elastomeric or non-elastomeric depending on the amount of propylene in the polymer.

[0118] Thermoplastic elastomers generally fall within one of six classes: styrenic block copolymers, thermoplastic polyolefin elastomers, thermoplastic vulcanizates (also called elastomeric alloys), thermoplastic polyurethanes, thermoplastic copolyesters, and thermoplastic polyamides (typically block copolymers containing polyamides). Examples of thermoplastic elastomers can be found in "Handbook of Thermoplastic Elastomers", 2nd ed., BMW Alker and CP Rader, eds., Van Nostrand Reinhold, New York, 1988. Examples of thermoplastic elastomers include elastomeric polyamides, polyurethanes, copolymers containing polyether blocks and polyamide blocks (PEBA or polyether block amides), methyl methacrylate-butadiene-styrene (MBS) type core-shell polymers, polystyrene-block-polybutadiene-block-poly(methyl methacrylate) (SBM) block terpolymers, polybutadiene, polyisoprene, styrenic block copolymers, and polyacrylonitrile, silicones, and the like. The elastomeric styrenic block copolymer may include at least one block selected from the group consisting of isoprene, isobutylene, butylene, ethylene / butylene, ethylene-propylene, and ethylene-ethylene / propylene. More specific examples of elastomeric styrenic block copolymers include, but are not limited to, poly(styrene-ethylene / butylene), poly(styrene-ethylene / butylene-styrene), poly(styrene-ethylene / propylene), styrene-ethylene / propylene-styrene), poly(styrene-ethylene / propylene-styrene-ethylene-propylene), poly(styrene-butadiene-styrene), poly(styrene-butylene-butadiene-styrene), and the like, and any combination thereof.

[0119] Examples of polyamides include, but are not limited to, polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecaamide, polydodecaamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamides, aromatic polyamides, any copolymers thereof, and any combinations thereof. Copolyamides may also be used. Examples of copolyamides include, but are not limited to, PA11 / 10.10, PA6 / 11, PA6.6 / 6, PA11 / 12, PA10.10 / 10.12, PA10.10 / 10.14, PA11 / 10.36, PA11 / 6.36, PA10.10 / 10.36, and the like, and any combination thereof. Examples of polyamide elastomers include, but are not limited to, polyesteramides, polyetheresteramides, polycarbonate-esteramides, and polyether-block-amide elastomers.

[0120] Examples of polyurethanes include, but are not limited to, polyether polyurethanes, polyester polyurethanes, mixed polyether and polyester polyurethanes, and the like, and any combination thereof. Examples of thermoplastic polyurethanes include, but are not limited to, poly[4,4'-methylenebis(phenylisocyanate)-alt-1,4-butanediol / di(propylene glycol) / polycaprolactone], ELASTOLLAN® 1190A (polyether polyurethane elastomer, available from BASF), ELASTOLLAN® 1190A10 (polyether polyurethane elastomer, available from BASF), and the like, and any combination thereof.

[0121] Compatibilizers may optionally be used to improve the efficiency and effectiveness of blending the IBOA-polyamide with one or more thermoplastic polymers. Examples of polymeric compatibilizers include, but are not limited to, PROPOLDER™ MPP2020 20 (polypropylene, available from Polygroup Inc.), PROPOLDER™ MPP2040 40 (polypropylene, available from Polygroup Inc.), NOVACOM™ HFS2100 (maleic anhydride functionalized high density polyethylene polymer, available from Polygroup Inc.), KEN-REACT™ CAPS™ L™ 12 / L (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ CAPOW™ L™ 12 / H (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ LICA™ 12 (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ CAPS™ KPR™ 12 / LV (organometallic coupling agent, available from Kenrich Petrochemicals), and KEN-REACT™ CAPS™ KPR™ 12 / LV (organometallic coupling agent, available from Kenrich Petrochemicals). Petrochemicals), KEN-REACT™ CAPOW™ KPR™ 12 / H (organometallic coupling agent, available from Kenrich Petrochemicals), KEN-REACT™ Titanate & Zirconate (organometallic coupling agent, available from Kenrich Petrochemicals),Petrochemicals), VISTAMAXX™ (ethylene-propylene copolymer, available from ExxonMobil), SANTOPRENE™ (thermoplastic vulcanizate of ethylene-propylene-diene rubber and polypropylene, available from ExxonMobil), VISTALON™ (ethylene-propylene-diene rubber, available from ExxonMobil), EXACT™ (plastomers, available from ExxonMobil) EXXELO R™ (polymer resin, available from ExxonMobil), FUSABOND™ M603 (random ethylene copolymer, available from Dow), FUSABOND™ E226 (anhydride modified polyethylene, available from Dow), BYNEL™ 41E710 (coextrudable adhesive resin, available from Dow), SURLYN™ 1650 (ionomer resin, available from Dow), FUSABOND™ P353 (chemically modified polypropylene copolymer, available from Dow), available from Dow), ELVALOY™ PTW (ethylene terpolymer, available from Dow), ELVALOY™ 3427AC (copolymer of ethylene and butyl acrylate, available from Dow), LOTADER™ AX8840 (ethylene acrylate-based terpolymer, available from Arkema), LOTADER™ 3210 (ethylene acrylate-based terpolymer, available from Arkema), LOTADER™ 3410 (ethylene acrylate-based terpolymer, available from Arkema), BASF), BAXXODUR™ EC 301 (amine for epoxies, available from BASF), BAXXODUR™ EC 311 (amine for epoxies, available from BASF), BAXXODUR™ EC 321 (amine for epoxies, available from BASF), BAXXODUR™ EC 331 (amine for epoxies, available from BASF), BAXXODUR™ EC 3420 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ 3430 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ 4700 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ AX8900 (ethylene acrylate based terpolymer, available from Arkema), LOTADER™ 4720 (ethylene acrylate based terpolymer, available from Arkema), BAXXODUR™ EC 301 (amine for epoxies, available from BASF), BAXXODUR™ EC 311 (amine for epoxies, available from BASF), BAXXODUR™ EC303 (amine for epoxies, available from BASF), BAXXODUR™ EC 280 (amine for epoxies, available from BASF), BAXXODUR™ EC 201 (amine for epoxies, available from BASF), BAXXODUR™ EC 130 (amine for epoxies, available from BASF), BAXXODUR™ EC 110 (amine for epoxies, available from BASF), styrenics, polypropylene, polyamides, polycarbonates, EASTMAN™ G-3003 (maleic anhydride grafted polypropylene, available from Eastman), RETAIN™ (polymer modifier available from Dow), AMPLIFY TY™ (maleic anhydride grafted polymer, available from Dow), INTUNE™ (olefin block copolymer, available from Dow), and the like, and any combination thereof.

[0122] Thermoplastic polymer 102 (including one or more IBOA-polyamides and optionally one or more other thermoplastic polymers) may have a melting point or softening temperature of about 50° C. to about 450° C. (or about 50° C. to about 125° C., or about 100° C. to about 175° C., or about 150° C. to about 280° C., or about 200° C. to about 350° C., or about 300° C. to about 450° C.).

[0123] Thermoplastic polymer 102 may have a glass transition temperature (ASTM E1356-08(2014) using 10°C / min heating and cooling rates) of about -50°C to about 400°C (or about -50°C to about 0°C, or about -25°C to about 50°C, or about 0°C to about 150°C, or about 100°C to about 250°C, or about 150°C to about 300°C, or about 200°C to about 400°C).

[0124] The thermoplastic polymer 102 may optionally include an additive. Typically, the additive is present prior to adding the thermoplastic polymer 102 to the mixture 110. Thus, in the thermoplastic polymer melt droplets and the resulting thermoplastic polymer particles, the additive is dispersed throughout the thermoplastic polymer. Accordingly, for clarity, this additive is referred to herein as an "internal additive." The internal additive may be blended with the thermoplastic polymer immediately prior to pre-forming the mixture 110 or well.

[0125] When describing amounts of components in compositions described herein (e.g., mixture 110 and thermoplastic polymer particles 122), the weight percentages are based on the thermoplastic polymer 102 without the internal additive. For example, a composition that includes 1% by weight of emulsion stabilizer based on the weight of 100 g of thermoplastic polymer 102 that includes 10% by weight of internal additive and 90% by weight of thermoplastic polymer is a composition that includes 0.9 g of emulsion stabilizer, 90 g of thermoplastic polymer, and 10 g of internal additive.

[0126] The internal additive may be present in the thermoplastic polymer 102 at about 0.1% to about 60% by weight (or about 0.1% to about 5%, or about 1% to about 10%, or about 5% to about 20%, or about 10% to about 30%, or about 25% to about 50%, or about 40% to about 60% by weight) of the thermoplastic polymer 102. For example, the thermoplastic polymer 102 may include about 70% to about 85% by weight of the thermoplastic polymer and about 15% to about 30% by weight of the internal additive, such as glass fiber or carbon fiber.

[0127] Examples of internal additives include, but are not limited to, fillers, reinforcing agents, pigments, pH adjusters, and the like, and combinations thereof. Examples of fillers include, but are not limited to, glass fibers, glass particles, mineral fibers, carbon fibers, oxide particles (e.g., titanium dioxide and zirconium dioxide), metal particles (e.g., aluminum powder), and the like, and any combinations thereof. Examples of pigments include, but are not limited to, organic pigments, inorganic pigments, carbon black, and the like, and any combinations thereof.

[0128] The thermoplastic polymer 102 may be present in the mixture 110 at about 5% to about 60% by weight (or about 5% to about 25% by weight, or about 10% to about 30% by weight, or about 20% to about 45% by weight, or about 25% to about 50% by weight, or about 40% to about 60% by weight) of the combined thermoplastic polymer 102 and dispersion medium 104.

[0129] A suitable dispersion medium 104 has a viscosity at 25° C. of about 1,000 cSt to about 150,000 cSt (or about 1,000 cSt to about 60,000 cSt, or about 40,000 cSt to about 100,000 cSt, or about 75,000 cSt to about 150,000 cSt).

[0130] Examples of the dispersion medium 104 include, but are not limited to, silicone oils, fluorinated silicone oils, perfluorinated silicone oils, polyethylene glycols, alkyl terminated polyethylene glycols (e.g., C1-C4 terminal alkyl groups such as tetraethylene glycol dimethyl ether (TDG)), paraffin, liquid petrolatum, mink oil, turtle oil, soybean oil, perhydrosqualene, sweet almond oil, calophyllum oil, palm oil, pearl oil, grapeseed oil, sesame oil, corn oil, rapeseed oil, sunflower oil, cottonseed oil, apricot oil, castor oil, avocado oil, jojoba oil, olive oil, cereal germ oil, esters of lanolin acid, esters of oleic acid, esters of lauric acid, esters of stearic acid, fatty esters, higher fatty acids, fatty alcohols, fatty acid modified polysiloxanes, fatty alcohol modified polysiloxanes, polyoxyalkylene modified polysiloxanes, and the like, and any combination thereof. Examples of silicone oils include, but are not limited to, polydimethylsiloxane, methylphenylpolysiloxane, alkyl-modified polydimethylsiloxane, alkyl-modified methylphenylpolysiloxane, amino-modified polydimethylsiloxane, amino-modified methylphenylpolysiloxane, fluorine-modified polydimethylsiloxane, fluorine-modified methylphenylpolysiloxane, polyether-modified polydimethylsiloxane, polyether-modified methylphenylpolysiloxane, and the like, and any combination thereof. When the dispersion medium 104 includes two or more of the foregoing, the dispersion medium 104 may have one or more phases. For example, a fatty acid-modified polysiloxane and an aliphatic alcohol-modified polysiloxane (preferably with similar chain lengths as the fatty acid and the aliphatic alcohol) may form a single-phase dispersion medium 104. In another example, a dispersion medium 104 including a silicone oil and an alkyl-terminated polyethylene glycol may form a two-phase dispersion medium 104.

[0131] The dispersion medium 104 may be present in the mixture 110 at about 40% to about 95% by weight (or about 75% to about 95% by weight, or about 70% to about 90% by weight, or about 55% to about 80% by weight, or about 50% to about 75% by weight, or about 40% to about 60% by weight) of the combined thermoplastic polymer 102 and dispersion medium 104.

[0132] In some cases, the dispersion medium 104 has a density of about 0.6 g / cm 3 ~Approx. 1.5g / cm 3 and the thermoplastic polymer 102 may have a density of about 0.7 g / cm 3 ~Approx. 1.7g / cm 3 and the thermoplastic polymer has a density similar to, lower than, or higher than the density of the dispersion medium.

[0133] Emulsion stabilizers used in the methods and compositions of the present disclosure may include nanoparticles (e.g., oxide nanoparticles, carbon black, polymeric nanoparticles, and combinations thereof), surfactants, and the like, and any combinations thereof.

[0134] The oxide nanoparticles may be metal oxide nanoparticles, non-metal oxide nanoparticles, or mixtures thereof. Examples of oxide nanoparticles include, but are not limited to, silica, titania, zirconia, alumina, iron oxide, copper oxide, tin oxide, boron oxide, cerium oxide, thallium oxide, tungsten oxide, and the like, and any combination thereof. Mixed metal oxides and / or non-metal oxides, such as aluminosilicates, borosilicates, and aluminoborosilicates, are also included in the term metal oxide. The oxide nanoparticles may be hydrophilic or hydrophobic and may be natural particles or the result of surface treatment of the particles. For example, silica nanoparticles with hydrophobic surface treatments, such as dimethylsilyl, trimethylsilyl, and the like, may be used in the methods and compositions of the present disclosure. In addition, silicas with functional surface treatments, such as methacrylate functional groups, may be used in the methods and compositions of the present disclosure. Non-functionalized oxide nanoparticles may be suitable for use as well.

[0135] Commercially available examples of silica nanoparticles include, but are not limited to, AEROSIL® available from Evonik (e.g., AEROSIL® R812S (with hydrophobically modified surface and 260±30 m 2 / g BET surface area), AEROSIL® RX50 (hydrophobically modified surface and 35±10m 2 / g BET surface area), AEROSIL® 380 (hydrophobically modified surface and 380±30m 2 / g) silica nanoparticles), and any combination thereof.

[0136] Carbon black is another type of nanoparticle that may be present as an emulsion stabilizer in the compositions and methods disclosed herein. Various grades of carbon black are familiar to those skilled in the art, any of which may be used herein. Other nanoparticles capable of absorbing infrared radiation may be used as well.

[0137] Polymer nanoparticles are another type of nanoparticle that may be present as an emulsion stabilizer in the present disclosure.Suitable polymer nanoparticles may include one or more polymers that are thermosetting and / or crosslinked so that they do not melt when processed by melt emulsification according to the present disclosure.High molecular weight thermoplastic polymers with high melting or decomposition points may also comprise suitable polymer nanoparticle emulsion stabilizers.

[0138] The nanoparticles can have an average diameter (D50 based on volume) of about 1 nm to about 500 nm (or about 10 nm to about 150 nm, or about 25 nm to about 100 nm, or about 100 nm to about 250 nm, or about 250 nm to about 500 nm).

[0139] Nanoparticles are about 10m 2 / g~about 500m 2 / g (or about 10m 2 / g~about 150m 2 / g, or about 25m 2 / g~about 100m 2 / g, or about 100m 2 / g ~ approx. 250m 2 / g, or 250m 2 / g~about 500m 2 / g).

[0140] The nanoparticles may be included in the mixture 110 at a concentration of about 0.01% to about 10% by weight (or about 0.01% to about 1% by weight, or about 0.1% to about 3% by weight, or about 1% to about 5% by weight, or about 5% to about 10% by weight), based on the weight of the thermoplastic polymer 102.

[0141] The surfactant may be anionic, cationic, nonionic, or zwitterionic. Examples of surfactants include, but are not limited to, sodium dodecyl sulfate, sorbitan oleate, poly[dimethylsiloxane-co-[[3-(2-(2-hydroxyethoxy)ethoxy)propylmethylsiloxane], docusate sodium (sodium 1,4-bis(2-ethylhexoxy)-1,4-dioxobutane-2-sulfonate), and the like, and any combination thereof. Commercially available examples of surfactants include, but are not limited to, CALFAX® DB-45 (sodium dodecyl diphenyl oxide disulfonate, available from Pilot Chemicals), SPAN® 80 (sorbitan maleate nonionic surfactant), MERPOL® surfactants (available from Stepan Company), TERGITOL™ TMN-6 (water soluble nonionic surfactant, available from DOW), TRITON® X-100 (octylphenol ethoxylate, available from SigmaAldrich), IGEPAL® CA-520 (polyoxyethylene (5) isooctylphenyl ether, available from SigmaAldrich), BRIJ® S10 (polyethylene glycol octadecyl ether, available from SigmaAldrich), and the like, and any combination thereof.

[0142] The surfactant may be included in mixture 110 at a concentration of about 0.01% to about 10% by weight (or about 0.01% to about 1% by weight, or about 0.5% to about 2% by weight, or about 1% to about 3% by weight, or about 2% to about 5% by weight, or about 5% to about 10% by weight), based on the weight of polyamide 102. Alternatively, mixture 110 may be free of (or absent from) a surfactant.

[0143] The weight ratio of nanoparticles to surfactant can be from about 1:10 to about 10:1 (or from about 1:10 to about 1:1, or from about 1:5 to about 5:1, or from about 1:1 to about 10:1).

[0144] As mentioned above, the components 102, 104, and 106 may be added in any order and may include mixing and / or heating during the process 108 including the components 102, 104, and 106. For example, the emulsion stabilizer 106 may first be dispersed in the dispersion medium 104 prior to adding the thermoplastic polymer 102, optionally with heating of the dispersion. In another non-limiting example, the thermoplastic polymer 102 may be heated to produce a polymer melt to which the dispersion medium 104 and the emulsion stabilizer 106 are added together or in any order. In yet another non-limiting example, the thermoplastic polymer 102 and the dispersion medium 104 may be mixed at a temperature above the melting point or softening temperature of the thermoplastic polymer 102 and at a shear rate sufficient to disperse the thermoplastic polymer melt in the dispersion medium 104. The emulsion stabilizer 106 may then be added to form the mixture 110 and maintained at suitable process conditions for a set period of time.

[0145] Combining 108 the components 102, 104, and 106 in any combination may occur in a mixing device and / or another suitable vessel used for process 112. As a non-limiting example, the thermoplastic polymer 102 may be heated to a temperature above the melting point or softening temperature of the thermoplastic polymer 102 in the mixing device used for process 112, and the emulsion stabilizer 106 may be dispersed in the dispersion medium 104 in a separate vessel. The dispersion may then be added to a melt of the thermoplastic polymer 102 in the mixing device used for process 112.

[0146] The mixing equipment used in process 112 to produce the molten emulsion 114 should be capable of maintaining the molten emulsion 114 at a temperature above the melting point or softening temperature of the thermoplastic polymer 102 and applying a shear rate sufficient to disperse the polymer melt as droplets in the dispersion medium 104.

[0147] Examples of mixing equipment used in process 112 to produce molten emulsion 114 include, but are not limited to, extruders (e.g., continuous extruders, batch extruders, etc.), stirred reactors, blenders, reactors with in-line homogenizer systems, etc., and equipment derived therefrom.

[0148] Processing 112 at suitable process conditions (eg, temperature, shear rate, etc.) for a set period of time and forming a molten emulsion 114.

[0149] The temperature of process 112 and formation of melt emulsion 114 should be a temperature above the melting point or softening temperature of thermoplastic polymer 102 and below the decomposition temperature of any of components 102, 104, and 106 in mixture 110. For example, the temperature of process 112 and formation of melt emulsion 114 may be about 1° C. to about 50° C. (or about 1° C. to about 25° C., or about 5° C. to about 30° C., or about 20° C. to about 50° C.) above the melting point or softening temperature of thermoplastic polymer 102, provided that the temperature of process 112 and formation of melt emulsion 114 is below the decomposition temperature of any of components 102, 104, and 106 in mixture 110.

[0150] The shear rate of process 112 and formation of melt emulsion 114 should be high enough to disperse the polymer melt as droplets in dispersion medium 104. The droplets should include droplets having a diameter of about 1000 μm or less (or from about 1 μm to about 1000 μm, or from about 1 μm to about 50 μm, or from about 10 μm to about 100 μm, or from about 10 μm to about 250 μm, or from about 50 μm to about 500 μm, or from about 250 μm to about 750 μm, or from about 500 μm to about 1000 μm).

[0151] The time for maintaining the temperature and shear rate for process 112 and forming molten emulsion 114 may be from 10 seconds to 18 hours or more (or from 10 seconds to 30 minutes, or from 5 minutes to 1 hour, or from 15 minutes to 2 hours, or from 1 hour to 6 hours, or from 3 hours to 18 hours). Without being bound by theory, it is believed that a steady state in droplet size is reached at which point process 112 may be stopped. That time may depend on, among other things, the temperature, the shear rate, the composition of the thermoplastic polymer 102, the composition of the dispersion medium 104, and the composition of the emulsion stabilizer 106.

[0152] The molten emulsion 114 may then be cooled (116). The cooling 116 may be slow (e.g., allowing the molten emulsion to cool under ambient conditions) to fast (e.g., rapid cooling). For example, the cooling rate may range from about 10° C. / hour to about 100° C. / second to nearly instantaneous with rapid cooling (e.g., dry ice) (or from about 10° C. / hour to about 60° C. / hour, or from about 0.5° C. / minute to about 20° C. / minute, or from about 1° C. / minute to about 5° C. / minute, or from about 10° C. / minute to about 60° C. / minute, or from about 0.5° C. / second to about 10° C. / second, or from about 10° C. / second to about 100° C. / second).

[0153] During cooling, little or no shear force may be applied to the molten emulsion 114. In some cases, the shear force applied during heating may be applied during cooling.

[0154] The cooled mixture 118 resulting from cooling 116 of the molten emulsion 114 contains solidified thermoplastic polymer particles 122 (or simply thermoplastic polymer particles) and other components 124 (e.g., the dispersion medium 104, excess emulsion stabilizer 106, etc.). The thermoplastic polymer particles may be dispersed in the dispersion medium or may settle in the dispersion medium.

[0155] The cooled mixture 118 may then be processed (120) into separate thermoplastic polymer particles 122 (or simply thermoplastic polymer particles 122) from other components 124. Suitable processing includes, but is not limited to, washing, filtering, centrifuging, decanting, the like, and any combination thereof.

[0156] The solvent used to wash the thermoplastic polymer particles 122 should generally be (a) miscible with the carrier fluid 104 and (b) non-reactive (e.g., non-swelling and non-melting) with the thermoplastic polymer 102. The choice of solvent will depend, among other things, on the composition of the carrier fluid and the composition of the thermoplastic polymer 102.

[0157] Examples of solvents include, but are not limited to, hydrocarbon solvents (e.g., pentane, hexane, heptane, octane, cyclohexane, cyclopentane, decane, dodecane, tridecane, and tetradecane), aromatic hydrocarbon solvents (e.g., benzene, toluene, xylene, 2-methylnaphthalene, and cresol), ether solvents (e.g., diethyl ether, tetrahydrofuran, diisopropyl ether, and dioxane), ketone solvents (e.g., acetone and methyl ethyl ketone), alcohol solvents (e.g., methanol, ethanol, isopropanol, and n-propanol), ester solvents (e.g., ethyl acetate, methyl acetate, butyl acetate, butyl propionate, and butyl butyrate), halogenated solvents (e.g., chloroform, bromoform, 1,2-dichloromethane, 1,2-dichloroethane, carbon tetrachloride, chlorobenzene, and hexafluoroisopropanol), water, and the like, and any combination thereof.

[0158] The solvent may be removed from the thermoplastic polymer particles 122 by drying using a suitable method such as air drying, heat drying, vacuum drying, freeze drying, or a hybrid thereof. Heating may be preferably performed at a temperature below the glass transition point of the thermoplastic polymer (e.g., about 50° C. to about 150° C.).

[0159] The thermoplastic polymer particles 122 after separation from other components 124 may, if desired, be further classified to produce purified thermoplastic polymer particles 128. For example, to narrow the particle size distribution (or reduce the diameter span), the thermoplastic polymer particles 122 may be passed through a sieve having a pore size of about 10 μm to about 250 μm (or about 10 μm to about 100 μm, or about 50 μm to about 200 μm, or about 150 μm to about 250 μm).

[0160] In another example of a purification technique, the thermoplastic polymer particles 122 may be washed with water to remove the surfactant while retaining substantially all of the nanoparticles associated with the surface of the thermoplastic polymer particles 122. In yet another example of a purification technique, the thermoplastic polymer particles 122 may be blended with additives to obtain a desired end product. For clarity, such additives are referred to herein as "external additives" because they are blended with the thermoplastic particles 122 or other particles resulting from the methods described herein after the particles have solidified. Examples of external additives include flow aids, other polymer particles, fillers, and the like, and any combination thereof.

[0161] In some cases, the surfactant used in the production of the thermoplastic polymer particles 122 may be unnecessary in downstream applications. Accordingly, yet another example of a purification technique may include at least substantially removing the surfactant from the thermoplastic polymer particles 122 (e.g., by washing and / or pyrolysis).

[0162] The thermoplastic polymer particles 122 and / or the refined thermoplastic polymer particles 128 (referred to as particles 122 / 128) may be characterized by composition, physical structure, and the like.

[0163] As mentioned above, the emulsion stabilizer is at the interface between the polymer melt and the dispersion medium. As a result, when the mixture cools, the emulsion stabilizer remains at or near that interface. Thus, the structure of the particles 122 / 128 generally includes the emulsion stabilizer (a) dispersed on the outer surface of the particles 122 / 128 and / or (b) embedded in the outer portion (e.g., the outer 1% by volume) of the particles 122 / 128.

[0164] Additionally, if voids are formed within the polymer melt droplets, the emulsion stabilizer 106 should generally be present (and / or embedded) at the interface between the interior of the void and the thermoplastic polymer. The voids generally do not contain thermoplastic polymer. Rather, the voids may contain, for example, a dispersion medium, air, or may be empty. The particles 122 / 128 may contain about 5% or less (or about 0.001% to about 5% by weight, or about 0.001% to about 0.1% by weight, or about 0.01% to about 0.5% by weight, or about 0.1% to about 2% by weight, or about 1% to about 5% by weight) of the dispersion medium by weight of the particles 122 / 128.

[0165] The thermoplastic polymer 102 may be present in the particles 122 / 128 at about 90% to about 99.5% by weight (or about 90% to about 95% by weight, or about 92% to about 97% by weight, or about 95% to about 99.5% by weight) of the particles 122 / 128.

[0166] When included, emulsion stabilizer 106 may be present in particle 122 / 128 at about 10% or less by weight of particle 122 / 128 (or from about 0.01% to about 10% by weight, or from about 0.01% to about 1% by weight, or from about 0.5% to about 5% by weight, or from about 3% to about 7% by weight, or from about 5% to about 10% by weight). When purified to at least substantially remove surfactant or another emulsion stabilizer, emulsion stabilizer 106 may be present in particle 128 at less than 0.01% by weight (or from 0% to about 0.01% by weight, or from 0% to 0.001% by weight).

[0167] In forming the thermoplastic microparticles according to the disclosure herein, at least a portion of the nanoparticles, such as silica nanoparticles, may be disposed as a coating on the outer surface of the thermoplastic microparticle. At least a portion of the surfactant, if used, may be associated with the outer surface as well. The coating may be substantially uniformly disposed on the outer surface. As used herein with respect to the coating, the term "substantially uniform" refers to a uniform coating thickness at the surface locations covered by the coating composition (e.g., nanoparticles and / or surfactant), particularly the entire outer surface. The emulsion stabilizer 106 may form a coating that covers at least 5% (or from about 5% to about 100%, or from about 5% to about 25%, or from about 20% to about 50%, or from about 40% to about 70%, or from about 50% to about 80%, or from about 60% to about 90%, or from about 70% to about 100%) of the surface area of ​​the particle 122 / 128. When purified to at least substantially remove surfactant or another emulsion stabilizer, emulsion stabilizer 106 may be present in particle 128 on less than 25% (or from 0% to about 25%, or from about 0.1% to about 5%, or from about 0.1% to about 1%, or from about 1% to about 5%, or from about 1% to about 10%, or from about 5% to about 15%, or from about 10% to about 25%) of the surface area of ​​particle 128. The coverage of emulsion stabilizer 106 on the outer surface of particle 122 / 128 may be determined using image analysis of scanning electron microscope images (SEM micrographs). The emulsion stabilizer 106 may form a coating that covers at least 5% (or from about 5% to about 100%, or from about 5% to about 25%, or from about 20% to about 50%, or from about 40% to about 70%, or from about 50% to about 80%, or from about 60% to about 90%, or from about 70% to about 100%) of the surface area of ​​the particle 122 / 128. When purified to at least substantially remove surfactant or another emulsion stabilizer, the emulsion stabilizer 106 may be present in the particle 128 on less than 25% (or from 0% to about 25%, or from about 0.1% to about 5%, or from about 0.1% to about 1%, or from about 1% to about 5%, or from about 1% to about 10%, or from about 5% to about 15%, or from about 10% to about 25%) of the surface area of ​​the particle 128. The coverage of emulsion stabilizer 106 on the outer surface of particles 122 / 128 can be determined using image analysis of SEM micrographs.

[0168] Particles 122 / 128 may have a D10 of about 0.1 μm to about 125 μm (or about 0.1 μm to about 5 μm, about 1 μm to about 10 μm, about 5 μm to about 30 μm, or about 1 μm to about 25 μm, or about 25 μm to about 75 μm, or about 50 μm to about 85 μm, or about 75 μm to about 125 μm), a D50 of about 0.5 μm to about 200 μm (or about 0.5 μm to about 10 μm, or about 5 μm to about 50 μm, or about 30 μm to about 100 μm, or about 30 μm to about 70 μm, or about 25 μm to about 50 μm, or about 50 μm to about 100 μm, or about 75 μm to about 150 μm, or about 100 μm to about 200 μm), and a D90 of about 3 μm to about 300 μm (or about 3 μm to about 15 μm, or about 10 μm to about 50 μm, or about 25 μm to about 75 μm, or about 70 μm to about 200 μm, or about 60 μm to about 150 μm, or about 150 μm to about 300 μm), with D10 < D50 < D90. Particles 122 / 128 may also have a diameter span of about 0.4 to about 3 (or about 0.6 to about 2, or about 0.4 to about 1.5, or about 1 to about 3). Without limitation, a diameter span value of 1.0 or greater is considered wide, and a diameter span value of 0.75 or less is considered narrow. For example, particles 122 / 128 may have a D10 of about 5 μm to about 30 μm, a D50 of about 30 μm to about 100 μm, and a D90 of about 70 μm to about 120 μm, with D10 < D50 < D90.

[0169] Particles 122 / 128 may also have a diameter span of about 0.4 to about 3 (or about 0.6 to about 2, or about 0.4 to about 1.5, or about 1 to about 3).

[0170] In a first non - limiting example, particles 122 / 128 may have a D10 of about 0.5 μm to about 5 μm, a D50 of about 0.5 μm to about 10 μm, and a D90 of about 3 μm to about 15 μm, with D10 < D50 < D90.

[0171] In a second non - limiting example, particles 122 / 128 may have a D10 of about 1 μm to about 50 μm, a D50 of about 25 μm to about 100 μm, and a D90 of about 60 μm to about 300 μm, with D10 < D50 < D90.

[0172] In a third non-limiting example, the particles 122 / 128 may have a D10 of about 5 μm to about 30 μm, a D50 of about 30 μm to about 70 μm, and a D90 of about 70 μm to about 120 μm, with D10 < D50 < D90. The particles 122 / 128 may have a diameter span of about 1.0 to about 2.5.

[0173] In a fourth non-limiting example, the particles 122 / 128 may have a D10 of about 25 μm to about 60 μm, a D50 of about 60 μm to about 110 μm, and a D90 of about 110 μm to about 175 μm, with D10 < D50 < D90. The particles 122 / 128 may have a diameter span of about 0.6 to about 1.5.

[0174] In a fifth non-limiting example, the particles 122 / 128 may have a D10 of about 75 μm to about 125 μm, a D50 of about 100 μm to about 200 μm, and a D90 of about 125 μm to about 300 μm, with D10 < D50 < D90. The particles 122 / 128 may have a diameter span of about 0.2 to about 1.2.

[0175] The particles 122 / 128 may have a circularity of about 0.7 or more (or about 0.90 to about 1.0, or about 0.93 to about 0.99, or about 0.95 to about 0.99, or about 0.97 to about 0.99, or about 0.98 to 1.0).

[0176] The particles 122 / 128 may have an angle of repose of about 25° to about 45° (or about 25° to about 35°, or about 30° to about 40°, or about 35° to about 45°).

[0177] The particles 122 / 128 may have a Hausner ratio of about 1.0 to about 1.5 (or about 1.0 to about 1.2, or about 1.1 to about 1.3, or about 1.2 to about 1.35, or about 1.3 to about 1.5).

[0178] The particles 122 / 128 are about 0.3 g / cm 3 ~ about 0.8 g / cm 3 (or about 0.3 g / cm 3 ~ about 0.6 g / cm 3 , or about 0.4 g / cm 3 ~ about 0.7 g / cm3 , or about 0.5 g / cm 3 ~about 0.6g / cm 3 , or about 0.5 g / cm 3 ~about 0.8g / cm 3 ) bulk density.

[0179] Depending on the temperature and shear rate of the process 112, and the composition and relative concentrations of the components 102, 104, and 106, different shapes of the structures that make up the particles 122 / 128 have been observed. Typically, the particles 122 / 128 include substantially spherical particles (having a circularity of about 0.97 or greater). However, other structures have been observed in the particles 122 / 128, including disk structures and elongated structures. Thus, the particles 122 / 128 may include one or more of: (a) substantially spherical particles having a circularity of 0.97 or greater; (b) disk structures having an aspect ratio of about 2 to about 10; and (c) elongated structures having an aspect ratio of 10 or greater. Each of the (a), (b), and (c) structures has an emulsion stabilizer dispersed on the outer surfaces of the (a), (b), and (c) structures, and / or an emulsion stabilizer embedded in the outer portions of the (a), (b), and (c) structures. At least some of the (a), (b), and (c) structures may be aggregated, for example, the elongated structures of (c) may be located on the surface of the substantially spherical particles of (a).

[0180] Particles 122 / 128 may have a sintering time within 10° C., preferably within 5° C., of the sintering time of thermoplastic polymer 102 (which includes one or more IBOA-polyamides and optionally one or more other thermoplastic polymers).

[0181] Applications of IBOA-Polyamide Particles The IBOA-polyamide particles described herein can be used to manufacture a variety of objects (or articles). The IBOA-polyamides described herein can be used alone or in combination with other particles that include other thermoplastic polymers (e.g., polyamides without light absorbers and / or other thermoplastic polymers).Examples of thermoplastic polymers that may be used in such other particles include, but are not limited to, polyamides, polyurethanes, polyethylene, polypropylene, polyacetals, polycarbonates, polybutylene terephthalate (PBT), polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polytrimethylene terephthalate (PTT), polyhexamethylene terephthalate, polystyrene, polyvinyl chloride, polytetrafluoroethene, polyesters (e.g., polylactic acid), polyethers, polyethersulfones, polyetheretherketones, polyacrylates, polymethacrylates, polyimides, acrylonitrile butadiene styrene (ABS), polyphenylene sulfide, vinyl polymers, polyarylene ethers, polyarylene sulfides, polysulfones, polyetherketones, polyamide-imides, polyetherimides, polyetheresters, copolymers containing polyether blocks and polyamide blocks (PEBA or polyether ketones), and the like. block amides), grafted or ungrafted thermoplastic polyolefins, functionalized or unfunctionalized ethylene / vinyl monomer polymers, functionalized or unfunctionalized ethylene / alkyl (meth)acrylates, functionalized or unfunctionalized (meth)acrylic acid polymers, functionalized or unfunctionalized ethylene / vinyl monomer / alkyl (meth)acrylate terpolymers, ethylene / vinyl monomer / carbonyl terpolymers, ethylene / alkyl (meth)acrylate / carbonyl terpolymers, methyl methacrylate-butadiene-styrene (MBS) type core-shell polymers, polystyrene-block-polybutadiene-block-poly(methyl methacrylate) (SBM) block terpolymers, chlorinated or chlorosulfonated polyethylene, polyvinylidene fluoride (PVDF), phenolic resins, poly(ethylene / vinyl acetate), polybutadiene, polyisoprene, styrenic block copolymers, polyacrylonitrile, silicones, and the like, and any combination thereof. Copolymers comprising one or more of the foregoing may also be used in the methods and systems described herein.

[0182] IBOA-polyamide particles can be useful in applications including, but not limited to, paints, powder coatings, inkjet materials, electrophotographic toners, 3D printing, and the like.

[0183] As a non-limiting example, a 3D printing process of the present disclosure may include depositing the IBOA-polyamide particles of the present disclosure (and optionally one or more other thermoplastic polymers and / or one or more compatibilizers) in combination with other particles, optionally including one or more thermoplastic polymers and / or one or more compatibilizers, onto a surface in a specified shape, and heating at least a portion of the particles after deposition to promote their consolidation and form a consolidated body (or object or article), such that the consolidated body has a porosity of about 1% or less after consolidation. For example, the heating and consolidation of the thermoplastic polymer particles may be performed in a laser-based 3D printing device, such that the heating and consolidation is performed by selective laser sintering.

[0184] Examples of articles that may be produced by such methods, where IBOA-polyamide may be all or part of the article, include, but are not limited to, particles, films, packaging, toys, household products, automotive parts, aerospace / aircraft related parts, containers (e.g., for food, beverages, cosmetics, personal care compositions, pharmaceuticals, etc.), shoe soles, furniture parts, decorative home products, plastic gears, screws, nuts, bolts, cable ties, jewelry, works of art, sculptures, medical products, prostheses, orthopedic implants, manufactured artifacts to aid learning in education, 3D anatomical models to aid surgery, robots, biomedical devices (prosthetics), home appliances, dental products, electronic devices, sporting goods, and the like.

[0185] The IBOA-polyamides described herein may have a unique chemical fingerprint useful for identifying an object, tracking an object, authenticating an object, and / or determining the health of an object. Furthermore, the configuration of where the IBOA-polyamide is located within an object is another layer that fingerprints the object for identifying the object, tracking the object, authenticating the object, and / or determining the health of the object.

[0186] A method of identifying an object, tracking an object, authenticating an object, and / or determining the health of an object may include (a) exposing an object comprising an IBOA-polyamide to electromagnetic radiation (e.g., in the case of fluorophores, preferably at wavelengths below 302 nm or above 700 nm); (b) sensing one or more spectra associated with the absorbed and / or re-emitted electromagnetic radiation (e.g., in the case of fluorophores, preferably photoluminescence emitted between 302 nm and 700 nm); and (c) comparing this spectrum to a known spectrum of an optical absorber used in the object or part thereof. Optionally, the location where this spectral region is located on the object may be compared to a known location where this spectral region should be. The comparison may be used to identify and / or authenticate the object. For tracking, the comparison may be performed and / or the detected spectrum and / or spectral region may be recorded in a database along with the physical location of the object. Additionally, the health of the object, which may be worn and / or cracked, may be confirmed. For example, a core portion of an article may contain a light absorber and an outer portion may cover the core portion and not contain a light absorber (or contain a different light absorber), whereby when the spectra are compared, the appearance of a spectral signature of the light absorber in the core may indicate that the object is at or near the end of its life.

[0187] Non-limiting examples A first non-limiting embodiment of the present disclosure is a method comprising polymerizing a polyamide monomer in the presence of a light absorber selected from the group consisting of a polyamine light absorber, a polyacid light absorber, an amino acid light absorber, and any combination thereof to obtain a polyamide having a light absorber in the backbone chain of the polyamide. The first non-limiting embodiment may further comprise one or more of the following elements: Element 1: the polymerization is a ring-opening polymerization; Element 2: Element 1, in which the polyamide monomer is selected from the group consisting of 2-azetidinone, 2-pyrrolidinone, 2-piperidinone, ε-caprolactam, 2-azacyclooctanone, 2-azacyclononanone, 2-azacyclodecanone, 2-azacycloundecanone, 2-aza-cyclododecanone, laurolactam, and any combination thereof; Element 3: the polymerization is a polycondensation reaction, in which the polyamide monomer comprises a polyacid polyamide monomer and a polyamine polyamide monomer; Element 4: Element 3, in which the polyacid polyamide monomer is selected from the group consisting of HOOC-(CH 2 ) n -COOH (wherein n is 1-20), isophthalic acid, terephthalic acid, pent-2-enedioic acid, dodec-2-enedioic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, 1,3-cyclohexanedicarboxylic acid, and any combination thereof; element 5: the element 3, wherein the polyamine polyamide monomer is selected from the group consisting of HN-(CH 2 ) n-NH (wherein n is 1 to 20), 1,5-diamino-2-methylpentane, 1,2-diaminopropane, trimethylhexamethylenediamine, 2-methyloctane-1,8-diamine, n-methyl-1,6-hexamethylenediamine (wherein n is 2 or 3), n-methyl-1,7-heptamethylenediamine (wherein n is 2 to 4), n-methyl-1,8-octamethylenediamine (wherein n is 2 to 4), n-methyl-1,12-dodecamethylenediamine (wherein n is 2 to 6), 1,3-bis(aminomethyl)benzene, ortho-phenylene-bis(methylamine), 1 , 4-bis(aminomethyl)benzene, 1,4-cyclohexanediamine, 4-methylcyclohexane-1,3-diamine, 4-methylcyclohexane-1,3-diamine, diphenylethylenediamine, 1,3-bis(aminomethyl)cyclohexane, 4,4'-methylenebis(cyclohexylamine), 4,4'-biphenyldiamine, 1,8-diaminonaphthalene, and any combination thereof; element 6: the polymerization is a polycondensation reaction and the monomers include amino acid polyamide monomers; element 7: the element 6, wherein the amino acid polyamide monomers are selected from the group consisting of HN-(CH 2 ) n-COOH (wherein n is 1 to 20), branched aliphatic amino acids, cyclic aliphatic amino acids, aromatic amino acids, and the like, and any combination thereof; Element 8: the polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecaamide, polydodecaamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, Element 9: The light absorber is selected from the group consisting of Nylon 6,18, Nylon 6,12, Nylon 6,14, Nylon 12,12, semi-aromatic polyamides, aromatic polyamides, any copolymers thereof, and any combinations thereof; Element 10: The light absorber is selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4 methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine- Element 10: The light absorber comprises a polyamine light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylene; Element 11: The light absorber comprises a polyamine light absorber selected from the group consisting of 3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combination thereof; Element 12: The light absorber comprises a polyamine light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylene; dicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimido)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combination thereof; Element 11: the light absorber comprises an amino acid light absorber selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combination thereof;and element 12: the molar ratio of polyamide having a light absorber in the polyamide backbone chain (cumulative) to light absorber (cumulative) of the polyamide monomer is from about 500:1 to about 10:1. Examples of combinations include, but are not limited to, element 1 (optionally combined with element 2) combined with one or more of elements 9-11, element 3 (optionally combined with element 4 and / or element 5) combined with one or more of elements 9-11, element 6 (optionally combined with element 7) combined with one or more of elements 9-11, and element 12 combined with one or more of elements 1-11.;

[0188] A second non-limiting embodiment of the present disclosure is an article comprising the polyamide described in the first non-limiting embodiment (optionally including one or more of elements 1-12).

[0189] A third non-limiting embodiment of the present disclosure is a composition comprising a polyamide having an optical absorber in the backbone of the polyamide. The third non-limiting embodiment can include one or more of elements 8, 9, 10, 11, and 12.

[0190] A fourth non-limiting embodiment of the present disclosure is an article comprising the polyamide described in the third non-limiting embodiment.

[0191] A fifth non-limiting embodiment of the present disclosure is a process comprising a polymer melt comprising the polyamide described in the third non-limiting embodiment, and optionally one or more other thermoplastic polymers and / or one or more compatibilizers, passing through an orifice to produce a film, fiber (or filament), particle, pellet, or the like.

[0192] A sixth non-limiting embodiment of the present disclosure is a method comprising extruding filaments comprising a polyamide as described in the third non-limiting embodiment and optionally one or more other thermoplastic polymers and / or one or more compatibilizers through an orifice, where the filaments become a polymer melt upon extrusion; depositing the polymer melt as a first layer onto a platform; cooling the layer; depositing an additional layer of the polymer melt onto the first layer; cooling the additional layer; and repeating the depositing and cooling for at least one additional layer to produce a 3D shape.

[0193] A seventh non-limiting embodiment of the present disclosure comprises mixing a mixture comprising a polyamide having an optical absorber in the backbone chain of the polyamide (IBOA-polyamide), a dispersion medium immiscible with the IBOA-polyamide, and optionally an emulsion stabilizer, at a temperature above the melting point or softening temperature of the IBOA-polyamide and at a shear rate high enough to disperse the IBOA-polyamide in the dispersion medium, and cooling the mixture below the melting point or softening temperature of the IBOA-polyamide to form solidified particles comprising the IBOA-polyamide and, if present, the emulsion stabilizer associated with the outer surface of the solidified particles. A seventh non-limiting embodiment can further include one or more of the following elements: Element 13: an emulsion stabilizer is included in the mixture, and the emulsion stabilizer is associated with the outer surface of the solidified particles; Element 14: the mixture further includes a thermoplastic polymer that is not an IBOA-polyamide; Element 15: the mixture further includes a second polyamide, and the second polyamide does not have an optical absorber in its backbone; Element 16: the optical absorber is a rhodamine, a fluorescein, a coumarin, a naphthalimide, a benzoxanthene, an acridine, a cyanine, an oxazine, a phenanthridine, a pyrrol ketone, a benzaldehyde, a polymethine, a triarylmethine, a methacrylate ... from a family selected from the group consisting of tans, anthraquinones, pyrazolones, quinophthalones, carbonyl dyes, diazo dyes, perinones, diketopyrrolopyrroles (DPP), dioxazine dyes, phthalocyanines, indanthrenes, benzanthrones, violanthrones, azo dyes, phthalocyanine dyes, quinacridone dyes, anthraquinone dyes, dioxagine dyes, indigo dyes, thioindigo dyes, perinone dyes, perylene dyes, isoindolene dyes, aromatic amino acids, flavins, derivatives of pyridoxyl, derivatives of chlorophyll, and any combination thereof;Element 17: The polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecamide, polydodecamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamides, aromatic polyamides, any copolymers thereof, and any combinations thereof; Element 18: The light absorber is a polyamine light absorber selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4-methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combinations thereof; Element 19: The light absorber is a polyacid light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimide)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combinations thereof; Element 20: The light absorber is an amino acid light absorber selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combinations thereof; Element 21: An emulsifying stabilizer is included in the mixture, and at least some of the solidified particles have voids containing the emulsifying stabilizer at the void / polymer interface; Element 22: Element 21, wherein the emulsifying stabilizer includes nanoparticles, and the nanoparticles are embedded at the void / polymer interface;Element 23: being Element 21, wherein the void contains a dispersion medium; Element 24: an emulsifying stabilizer is included in the mixture, and the solidified particles further include an elongated structure on the surface of the solidified particles, and the elongated structure includes IBOA-polyamide together with an emulsifying stabilizer associated with the outer surface of the elongated structure; Element 25: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer forms a coating covering less than 5% of the surface of the solidified particles; Element 26: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer forms a coating covering at least 5% of the surface of the solidified particles; Element 27: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer forms a coating covering at least 25% of the surface of the solidified particles; Element 28: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer forms a coating covering at least 50% of the surface of the solidified particles; Element 29: an emulsifying stabilizer is included in the mixture, and IBOA-polyamide is present in the mixture at 5% to 60% by weight of the mixture; Element 30: the emulsifying stabilizer is present in the mixture at 0.05% to 5% by weight of IBOA-polyamide; Element 31: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer includes nanoparticles having an average diameter of 1 nm to 500 nm; Element 32: the dispersion medium is selected from the group consisting of silicone oil, fluorinated silicone oil, perfluorinated silicone oil, polyethylene glycol, paraffin, liquid petrolatum, mink oil, turtle oil, soybean oil, perhydrosqualene, sweet almond oil, carophyllum oil, palm oil, pearl rim oil, grape seed oil, sesame oil, corn oil, rapeseed oil, sunflower oil, cottonseed oil, apricot oil, castor oil, avocado oil, jojoba oil, olive oil, cereal germ oil, esters of lanolinic acid, esters of oleic acid, esters of lauric acid, esters of stearic acid, aliphatic esters, higher fatty acids, aliphatic alcohols, polysiloxanes modified with fatty acids, polysiloxanes modified with aliphatic alcohols, polysiloxanes modified with polyoxyalkylene, and any combination thereof;Element 33: The silicone oil of Element 32, wherein the silicone oil is selected from the group consisting of polydimethylsiloxane, methylphenylpolysiloxane, alkyl-modified polydimethylsiloxane, alkyl-modified methylphenylpolysiloxane, amino-modified polydimethylsiloxane, amino-modified methylphenylpolysiloxane, fluorine-modified polydimethylsiloxane, fluorine-modified methylphenylpolysiloxane, polyether-modified polydimethylsiloxane, polyether-modified methylphenylpolysiloxane, and any combination thereof; Element 34: The dispersion medium has a viscosity of 1,000 cSt to 150,000 cSt at 25°C; Element 35: The dispersion medium has a viscosity of 0.6 g / cm; 3 ~1.5g / cm 3having a density of; Element 36: mixing is carried out in an extruder; Element 37: mixing is carried out in a stirred reactor; Element 38: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer includes a surfactant; Element 39: the particles have a D10 of about 0.1 μm to about 125 μm, a D50 of about 0.5 μm to about 200 μm, and a D90 of about 3 μm to about 300 μm, and D10 < D50 < D90; Element 30: the particles have a diameter span of about 0.2 to about 10; Element 41: the particles have a D10 of about 5 μm to about 30 μm, a D50 of about 30 μm to about 70 μm, and a D90 of about 70 μm to about 120 μm, and D10 < D50 < D90; Element 42: the particles have a diameter span of about 1.0 to about 2.5; Element 43: the particles have a D10 of about 25 μm to about 60 μm, a D50 of about 60 μm to about 110 μm, and a D90 of about 110 μm to about 175 μm, and D10 < D50 < D90; Element 44: the particles have a diameter span of about 0.6 to about 1.5; Element 45: the particles have a D10 of about 75 μm to about 125 μm, a D50 of about 100 μm to about 200 μm, and a D90 of about 125 μm to about 300 μm, and D10 < D50 < D90, Element 46: the particles have a diameter span of about 0.2 to about 1.2; Element 47: the solidified particles have a circularity of about 0.90 to about 1.0; Element 48: the solidified particles have a Hausner ratio of about 1.0 to about 1.5; Element 49: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer includes nanoparticles containing oxide nanoparticles; Element 50: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer includes nanoparticles containing carbon black; and Element 51: an emulsifying stabilizer is included in the mixture, and the emulsifying stabilizer includes nanoparticles containing polymer nanoparticles.Examples of combinations include, but are not limited to, element 13 combined with one or more of elements 14-51, element 14 combined with one or more of elements 15-51, element 15 combined with one or more of elements 16-51, element 16 combined with one or more of elements 17-51, element 17 combined with one or more of elements 18-51, a combination of two or more of elements 18-20, a combination of one or more of elements 18-20 with one or more of elements 21-51, a combination of two or more of elements 21-24, a combination of one or more of elements 21-24 with one or more of elements 25-51, a combination of one of elements 15-28 with elements 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, 105, combination of elements 30, 31, 38, 49, 50, and 51; combination of two or more of elements 30, 31, 38, 49, 50, and 51; combination of element 29 and element 30; combination of two or more of elements 32-35; combination of one or more of elements 32-35 with one or more of elements 36-51; combination of elements 39 and 40; combination of elements 41 and 42; combination of elements 43 and 44; combination of elements 45 and 46; combination of two or more of elements 38-46 with one or more of elements 30, 31, 38, 49, 50, and 51; and combination of element 47 and / or element 48 with one or more of elements 13-46.

[0194] The eighth non-limiting exemplary embodiment of the present disclosure is a composition comprising particles containing a polyamide having a light absorber in the backbone chain of the polyamide (IBOA-polyamide) and, optionally, an emulsifying stabilizer, wherein the particles have a circularity of from about 0.90 to about 1.0. The eighth non-limiting exemplary embodiment may include one or more of the following elements: Element 39; Element 40; Element 41; Element 42; Element 43; Element 44; Element 45; Element 46; Element 48; Element 52: the particles further comprise a thermoplastic polymer that is not IBOA-polyamide; Element 53: Element 42, wherein the particles further comprise a second polyamide, but the backbone chain of the second polyamide does not have a light absorber; Element 54: the particles further comprise an emulsifying stabilizer associated with the outer surface of the particles; Element 55: at least some of the particles have voids containing an emulsifying stabilizer at the void / polymer interface; Element 56: Element 55, wherein the emulsifying stabilizer comprises nanoparticles and the nanoparticles are embedded at the void / polymer interface; Element 57: Element 55, wherein the voids contain a dispersion medium; Element 58: the particles further comprise elongated structures on the surface of the particles, and the elongated structures comprise IBOA-polyamide together with an emulsifying stabilizer associated with the outer surface of the elongated structures; Element 59: the emulsifying stabilizer forms a coating that covers less than 5% of the surface of the particles; Element 60: the emulsifying stabilizer forms a coating that covers at least 5% of the surface of the particles; Element 61: the emulsifying stabilizer forms a coating that covers at least 25% of the surface of the particles; Element 62: the emulsifying stabilizer forms a coating that covers at least 50% of the surface of the particles; and Element 63: the emulsifying stabilizer comprises nanoparticles having an average diameter of from 1 nm to 500 nm.

[0195] The ninth non-limiting exemplary embodiment is a method comprising depositing the IBOA-polyamide particles described in the eighth non-limiting example, optionally in combination with other thermoplastic polymer particles, on a surface in a specified shape, and after deposition, heating at least a portion of the particles to promote their consolidation and form a consolidated body.

[0196] Section Section 1. A method comprising polymerizing a polyamide monomer in the presence of a light absorber selected from the group consisting of polyamine light absorbers, polyacid light absorbers, amino acid light absorbers, and any combination thereof to obtain a polyamide having a light absorber in the backbone chain of the polyamide.

[0197] Section 2. The method of section 1, wherein the polymerization is a ring-opening polymerization.

[0198] Section 3. The method of section 2, wherein the polyamide monomer is selected from the group consisting of 2-azetidinone, 2-pyrrolidinone, 2-piperidinone, ε-caprolactam, 2-azacyclooctanone, 2-azacyclononanone, 2-azacyclodecanone, 2-azacycloundecanone, 2-aza-cyclododecanone, laurolactam, and any combination thereof.

[0199] Section 4. The method of section 1, wherein the polymerization is a polycondensation reaction and the polyamide monomers include polyacid polyamide monomers and polyamine polyamide monomers.

[0200] Section 5. Polyacid Polyamide Monomers are HOOC-(CH 2 ) n 5. The method of claim 4, wherein the isophthalic acid is selected from the group consisting of -COOH (wherein n is 1 to 20), isophthalic acid, terephthalic acid, pent-2-enedioic acid, dodec-2-enedioic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, 1,3-cyclohexanedicarboxylic acid, and any combination thereof.

[0201] Section 6. Polyamine Polyamide Monomers HN-(CH 2 ) n-NH (wherein n is 1 to 20), 1,5-diamino-2-methylpentane, 1,2-diaminopropane, trimethylhexamethylenediamine, 2-methyloctane-1,8-diamine, n-methyl-1,6-hexamethylenediamine (wherein n is 2 or 3), n-methyl-1,7-heptamethylenediamine (wherein n is 2 to 4), n-methyl-1,8-octamethylenediamine (wherein n is 2 to 4), n-methyl-1,12-dodecamethylenediamine (wherein n is 2 to 6), 1,3-bis(aminomethyl 6. The method of claim 4 or 5, wherein the compound is selected from the group consisting of benzene, ortho-phenylene-bis(methylamine), 1,4-bis(aminomethyl)benzene, 1,4-cyclohexanediamine, 4-methylcyclohexane-1,3-diamine, 4-methylcyclohexane-1,3-diamine, diphenylethylenediamine, 1,3-bis(aminomethyl)cyclohexane, 4,4'-methylenebis(cyclohexylamine), 4,4'-biphenyldiamine, 1,8-diaminonaphthalene, and any combination thereof.

[0202] Section 7. The method of section 1, wherein the polymerization is a polycondensation reaction and the monomers include amino acid polyamide monomers.

[0203] Section 8. Amino acid polyamide monomers: HN-(CH 2 ) n 8. The method according to clause 7, wherein the amino acid is selected from the group consisting of -COOH (wherein n is 1-20), branched aliphatic amino acids, cyclic aliphatic amino acids, aromatic amino acids, and the like, and any combination thereof.

[0204] Section 9. The method of section 1, wherein the polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecaamide, polydodecaamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamides, aromatic polyamides, copolymers of any of these, and any combination thereof.

[0205] Section 10. The method of section 1, wherein the light absorber comprises a polyamine light absorber selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4 methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combination thereof.

[0206] Section 11. The method of section 1, wherein the light absorber comprises a polyacid light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimido)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combination thereof.

[0207] Section 12. The method according to Section 1, wherein the photoabsorber comprises an amino acid photoabsorber selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combination thereof.

[0208] Section 13. The method according to Section 1, wherein the molar ratio of the polyamide having a photoabsorber in the backbone chain of the polyamide monomer to the photoabsorber is from about 500:1 to about 10:1.

[0209] Section 14. An article comprising the polyamide according to Section 1.

[0210] Section 15. A composition comprising a polyamide having a photoabsorber in the backbone chain of the polyamide.

[0211] Section 16. The composition according to Section 15, wherein the polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecamide, polydodecamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamide, aromatic polyamide, any copolymer thereof, and any combination thereof.

[0212] Section 17. The composition according to Section 15, comprising a polyamine light absorber selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4-methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combination thereof. Here again, those skilled in the art will recognize that these are monomer units in the context of the synthesized polyamide. Thus, the described light absorber-monomer units are present in the polyamide in the polymerized form of the light absorber-monomer units.

[0213] Section 18. The composition according to Section 15, wherein the light absorber is a polyacid light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimide)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combination thereof.

[0214] Section 19. The composition according to Section 15, wherein the light absorber is an amino acid light absorber selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combination thereof.

[0215] Section 20. The composition according to Section 15, wherein the molar ratio of the polyamide (cumulative) having a light absorber in the backbone chain of the polyamide monomer to the light absorber (cumulative) is from about 500:1 to about 10:1.

[0216] Section 21. A method comprising depositing particles in a specified shape on a surface, the particles comprising a polyamide as described in Section 15 and optionally one or more other thermoplastic polymers and / or one or more compatibilizers, and after deposition, heating at least a portion of the particles to promote consolidation thereof and form a consolidated body.

[0217] Section 22. Articles containing polyamides as described in section 15.

[0218] Section 23. A method comprising: extruding filaments comprising the polyamide of Section 15 and, optionally, one or more other thermoplastic polymers and / or one or more compatibilizers through an orifice, wherein the filaments become a polymer melt upon extrusion; depositing the polymer melt as a first layer onto a platform; cooling the layer; depositing an additional layer of the polymer melt onto the first layer; cooling the additional layer; and repeating the depositing and cooling for at least one additional layer to produce a 3D shape.

[0219] Section 24. A process comprising passing a polymer melt comprising the polyamide of Section 15, and optionally one or more other thermoplastic polymers and / or one or more compatibilizers, through an orifice to produce a film, fiber (or filament), particle, pellet, or the like.

[0220] Section 25. A method comprising mixing a mixture comprising a polyamide having an optical absorber in the polyamide backbone (IBOA-polyamide), a dispersion medium immiscible with the IBOA-polyamide, and optionally an emulsion stabilizer, at a temperature above the melting point or softening temperature of the IBOA-polyamide and at a shear rate sufficiently high to disperse the IBOA-polyamide in the dispersion medium, and cooling the mixture below the melting point or softening temperature of the IBOA-polyamide to form solidified particles comprising the IBOA-polyamide and, if present, the emulsion stabilizer associated with the outer surface of the solidified particles.

[0221] Clause 26. The method of clause 25, wherein an emulsion stabilizer is included in the mixture, and the emulsion stabilizer is associated with the exterior surface of the solidified particles.

[0222] Clause 27. The method of clause 26, wherein the emulsion stabilizer comprises nanoparticles, the nanoparticles being embedded in the outer surface of the solidified particles.

[0223] Clause 28. The method of clause 25, wherein the mixture further comprises a thermoplastic polymer that is not an IBOA-polyamide.

[0224] Clause 29. The method of clause 25, wherein the mixture further comprises a second polyamide, the second polyamide having no light absorber in its backbone.

[0225] Clause 30. The method of clause 25, wherein the light absorber is from a family selected from the group consisting of rhodamines, fluoresceins, coumarins, naphthalimides, benzoxanthenes, acridines, cyanines, oxazines, phenanthridines, pyrrole ketones, benzaldehydes, polymethines, triarylmethanes, anthraquinones, pyrazolones, quinophthalones, carbonyl dyes, diazo dyes, perinones, diketopyrrolopyrroles (DPP), dioxazine dyes, phthalocyanines, indanthrenes, benzanthrones, violanthrones, azo dyes, phthalocyanine dyes, quinacridone dyes, anthraquinone dyes, dioxazine dyes, indigo dyes, thioindigo dyes, perinone dyes, perylene dyes, isoindolene dyes, aromatic amino acids, flavins, derivatives of pyridoxyl, derivatives of chlorophyll, and any combination thereof.

[0226] Clause 31. The method of clause 25, wherein the polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecaamide, polydodecaamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamides, aromatic polyamides, copolymers of any of these, and any combination thereof.

[0227] Section 32. The method according to section 25, wherein the light absorber is a polyamine light absorber selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4 methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combination thereof. Again, those skilled in the art will recognize that these are mer units in this context of the synthesized polyamide. Thus, the light absorber-mer units described are present in the polyamide in the polymerized form of the light absorber-mer units.

[0228] Clause 33. The method of clause 25, wherein the light absorber is a polyacid light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimido)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combination thereof.

[0229] Clause 34. The method of clause 25, wherein the light absorber is an amino acid light absorber selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combination thereof.

[0230] Clause 35. The method of clause 25, wherein at least some of the solidified particles have voids that contain an emulsion stabilizer at the void / polymer interface.

[0231] Clause 36. The method of clause 35, wherein the emulsion stabilizer comprises nanoparticles, the nanoparticles being embedded at the void / polymer interface.

[0232] Clause 37. The method of clause 35, wherein the void contains a dispersion medium.

[0233] Clause 38. The method of clause 25, wherein the solidified particle further comprises elongated structures on a surface of the solidified particle, the elongated structures comprising an IBOA-polyamide with an emulsion stabilizer associated with an outer surface of the elongated structures.

[0234] Clause 39. The method of clause 25, wherein the emulsion stabilizer forms a coating that covers less than 5% of the surface of the solidified particles.

[0235] Clause 40. The method of clause 25, wherein the emulsion stabilizer forms a coating that covers at least 5% of the surface of the solidified particles.

[0236] Clause 41. The method of clause 25, wherein the emulsion stabilizer forms a coating that covers at least 25% of the surface of the solidified particles.

[0237] Clause 42. The method of clause 25, wherein the emulsion stabilizer forms a coating that covers at least 50% of the surface of the solidified particles.

[0238] Clause 43. The method of clause 25, wherein the IBOA-polyamide is present in the mixture at 5% to 60% by weight of the mixture.

[0239] Clause 44. The method of clause 25, wherein the emulsion stabilizer is present in the mixture at 0.05% to 5% by weight of the IBOA-polyamide.

[0240] Clause 45. The method of clause 25, wherein the emulsion stabilizer comprises nanoparticles having an average diameter between 1 nm and 500 nm.

[0241] Clause 46. The method of clause 25, wherein the carrier medium is selected from the group consisting of silicone oil, fluorinated silicone oil, perfluorinated silicone oil, polyethylene glycol, paraffin, liquid petrolatum, mink oil, turtle oil, soybean oil, perhydrosqualene, sweet almond oil, carophyllum oil, palm oil, pearl oil, grapeseed oil, sesame oil, corn oil, rapeseed oil, sunflower oil, cottonseed oil, apricot oil, castor oil, avocado oil, jojoba oil, olive oil, cereal germ oil, esters of lanolin acid, esters of oleic acid, esters of lauric acid, esters of stearic acid, fatty esters, higher fatty acids, fatty alcohols, fatty acid modified polysiloxanes, fatty alcohol modified polysiloxanes, polyoxyalkylene modified polysiloxanes, and any combination thereof.

[0242] Section 47. The method according to Section 46, wherein the silicone oil is selected from the group consisting of polydimethylsiloxane, methylphenylpolysiloxane, alkyl-modified polydimethylsiloxane, alkyl-modified methylphenylpolysiloxane, amino-modified polydimethylsiloxane, amino-modified methylphenylpolysiloxane, fluorine-modified polydimethylsiloxane, fluorine-modified methylphenylpolysiloxane, polyether-modified polydimethylsiloxane, polyether-modified methylphenylpolysiloxane, and any combination thereof.

[0243] Section 48. The method according to Section 25, wherein the dispersion medium has a viscosity of 1,000 cSt to 150,000 cSt at 25°C.

[0244] Section 49. The method according to Section 25, wherein the dispersion medium has a density of 0.6 g / cm 3 ~1.5 g / cm 3 of.

[0245] Section 50. The method according to Section 25, wherein the mixing is carried out in an extruder.

[0246] Section 51. The method according to Section 25, wherein the mixing is carried out in a stirred reactor.

[0247] Section 52. The method according to Section 25, wherein the mixture further contains a surfactant.

[0248] Section 53. The method according to Section 25, wherein the particles have a D10 of about 0.1 μm to about 125 μm, a D50 of about 0.5 μm to about 200 μm, and a D90 of about 3 μm to about 300 μm, and D10 < D50 < D90.

[0249] Section 54. The method according to Section 25, wherein the particles have a diameter span of about 0.2 to about 10.

[0250] Section 55. The method according to Section 25, wherein the particles have a D10 of about 5 μm to about 30 μm, a D50 of about 30 μm to about 70 μm, and a D90 of about 70 μm to about 120 μm, and D10 < D50 < D90.

[0251] Section 56. The method according to Section 55, wherein the particles have a diameter span of from about 1.0 to about 2.5.

[0252] Section 57. The method according to Section 25, wherein the particles have a D10 of from about 25 μm to about 60 μm, a D50 of from about 60 μm to about 110 μm, and a D90 of from about 110 μm to about 175 μm, and D10 < D50 < D90.

[0253] Section 58. The method according to Section 57, wherein the particles have a diameter span of from about 0.6 to about 1.5.

[0254] Section 59. The method according to Section 25, wherein the particles have a D10 of from about 75 μm to about 125 μm, a D50 of from about 100 μm to about 200 μm, and a D90 of from about 125 μm to about 300 μm, and D10 < D50 < D90.

[0255] Section 60. The method according to Section 59, wherein the particles have a diameter span of from about 0.2 to about 1.2.

[0256] Section 61. The method according to Section 25, wherein the solidified particles have a circularity of from about 0.90 to about 1.0.

[0257] Section 62. The method according to Section 25, wherein the solidified particles have a Hausner ratio of from about 1.0 to about 1.5.

[0258] Section 63. The method according to Section 25, wherein the emulsifying stabilizer comprises nanoparticles including oxide nanoparticles.

[0259] Section 64. The method according to Section 25, wherein the emulsifying stabilizer comprises nanoparticles including carbon black.

[0260] Section 65. The method according to Section 25, wherein the emulsifying stabilizer comprises nanoparticles including polymer nanoparticles.

[0261] Section 66. A composition comprising particles comprising a polyamide having a light absorber in the polyamide backbone chain (IBOA-polyamide), the particles having a circularity of about 0.90 to about 1.0.

[0262] Clause 67. The composition of clause 66, wherein the particles further comprise a thermoplastic polymer that is not an IBOA-polyamide.

[0263] Clause 68. The composition of clause 66, wherein the particles further comprise a second polyamide, but the second polyamide does not have a light absorber in its backbone.

[0264] Clause 69. The composition of clause 66, wherein the particles further comprise an emulsion stabilizer associated with the outer surface of the particles.

[0265] Clause 70. The composition of clause 69, wherein the emulsion stabilizer comprises nanoparticles, at least some of the nanoparticles being embedded in the surface of the particle.

[0266] Clause 71. The composition of clause 69, wherein at least some of the particles have voids that contain an emulsion stabilizer at the void / polymer interface.

[0267] Clause 72. The composition of clause 69, wherein the emulsion stabilizer comprises nanoparticles, the nanoparticles being embedded at the void / polymer interface.

[0268] Clause 73. The composition of clause 69, wherein the voids contain a dispersion medium.

[0269] Clause 74. The composition of clause 66, wherein the solidified particle further comprises elongated structures on a surface of the solidified particle, the elongated structures comprising an IBOA-polyamide with an emulsion stabilizer associated with an outer surface of the elongated structures.

[0270] Clause 75. The composition of clause 66, wherein the emulsion stabilizer forms a coating that covers less than 5% of the surface of the solidified particles.

[0271] Section 76. The composition according to Section 66, wherein the emulsifying stabilizer forms a coating covering at least 5% of the surface of the solidified particles.

[0272] Section 77. The composition according to Section 66, wherein the emulsifying stabilizer forms a coating covering at least 25% of the surface of the solidified particles.

[0273] Section 78. The composition according to Section 66, wherein the emulsifying stabilizer forms a coating covering at least 50% of the surface of the solidified particles.

[0274] Section 79. The composition according to Section 66, wherein the emulsifying stabilizer contains nanoparticles having an average diameter of 1 nm to 500 nm.

[0275] Section 80. The composition according to Section 66, wherein the particles have a D10 of about 0.1 μm to about 125 μm, a D50 of about 0.5 μm to about 200 μm, and a D90 of about 3 μm to about 300 μm, and D10 < D50 < D90.

[0276] Section 81. The composition according to Section 66, wherein the particles have a diameter span of about 0.2 to about 10.

[0277] Section 82. The composition according to Section 66, wherein the particles have a D10 of about 5 μm to about 30 μm, a D50 of about 30 μm to about 70 μm, and a D90 of about 70 μm to about 120 μm, and D10 < D50 < D90.

[0278] Section 83. The composition according to Section 82, wherein the particles have a diameter span of about 1.0 to about 2.5.

[0279] Section 84. The composition according to Section 66, wherein the particles have a D10 of about 25 μm to about 60 μm, a D50 of about 60 μm to about 110 μm, and a D90 of about 110 μm to about 175 μm, and D10 < D50 < D90.

[0280] Section 85. The composition according to Section 84, wherein the particles have a diameter span of about 0.6 to about 1.5.

[0281] Section 86. The composition according to Section 66, wherein the particles have a D10 of about 75 μm to about 125 μm, a D50 of about 100 μm to about 200 μm, and a D90 of about 125 μm to about 300 μm, and D10 < D50 < D90.

[0282] Section 87. The composition according to Section 86, wherein the particles have a diameter span of about 0.2 to about 1.2.

[0283] Section 88. The composition according to Section 66, wherein the solidified particles have a Hausner ratio of about 1.0 to about 1.5.

[0284] Section 89. A method comprising depositing the composition according to Section 66, optionally in combination with other thermoplastic polymer particles, on a surface in a specified shape, and after deposition, heating at least a portion of the particles to promote their consolidation and form a consolidated body.

[0285] Unless otherwise specified, all numbers representing amounts of ingredients, properties such as molecular weights, reaction conditions, etc. used in this specification and the related claims should be understood to be modified in all cases by the term "about". Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and the appended claims are approximations that may vary depending on the desired properties sought to be obtained by embodiments of the present invention. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.

[0286] One or more exemplary implementations incorporating one or more inventive elements are presented herein. For clarity, not all features of a physical implementation are described or shown in this application. It is understood that in developing a physical embodiment incorporating one or more elements of the invention, numerous implementation-specific decisions must be made to achieve the developer's goals, which may vary from implementation to implementation and from time to time, such as compliance with system-related, business-related, government-related, and other constraints. While the developer's efforts may be time-consuming, such efforts would nevertheless be routine for one of ordinary skill in the art having the benefit of this disclosure.

[0287] Although the compositions and methods are described herein in terms of "comprising" various components or steps, the compositions and methods may also "consist essentially of" or "consist of" the various components and steps.

[0288] To facilitate a better understanding of the embodiments of the present invention, the following examples of preferred or representative embodiments are given. The following examples should not be read to limit or define the scope of the present invention. EXAMPLES

[0289] Prophetic Example 1 - Preparation of modified alizarin. Approximately 1.5 mmol of DMAP was added to a stirred solution of approximately 5.5 mmol of bromoacetic acid in DMSO. The mixture was stirred at room temperature for 5 minutes, after which 6.0 mmol of DCC was added. After 10 minutes, 5.5 mmol of alizarin was added and stirred for 4 hours. The organic layer was separated, mixed with ethyl acetate, washed with water, and concentrated with Na 2 SO 4 After evaporation of the solvent, the crude residue was purified by column chromatography using cyclohexane-EtOAc (10:1) as eluent.

[0290] Prophetic Example 2 - Preparation of Alizarin Modified Nylons Nylon 6, nylon 6,6, nylon 6,10, and nylon 12 were modified with the modified alizarin prepared in Example 1.

[0291] 150 mL of DMSO and 5.5 mmol of nylon polymer were mixed. To the mixture, 5.5 mmol of potassium t-butoxide was added. The mixture was blanketed with argon and heated to a temperature of 150° C. The suspension was mixed at 150° C. for about 1 hour or until most of the nylon was dissolved. 5.5 mmol of modified alizarin was then added to the flask and the reaction was allowed to proceed overnight. The next day, the reaction mixture was cooled to room temperature and precipitated into 800 mL of deionized water. The mixture containing alizarin modified nylon, unmodified nylon, and unreacted modified alizarin was then isolated by filtration and washed repeatedly with water to remove the DMSO solvent. The solid was then rinsed with methanol to remove the water and then stirred in hexane to remove the unreacted modified alizarin. The resulting nylon mixture (modified and unmodified) was then isolated by filtration and dried overnight in a vacuum oven at 60° C.

[0292] These examples demonstrate that a light absorber can be modified and then reacted with a polyamide to produce a light absorber modified polyamide.

[0293] Thus, the present invention is well adapted to attain the objects and advantages set forth above, as well as the advantages inherent therein. The specific embodiments and configurations disclosed above are merely illustrative, as the invention may be modified and practiced in different but equivalent manners apparent to those skilled in the art having the benefit of the teachings herein. Furthermore, no limitation is intended to the details of construction or design shown herein, other than as set forth in the following claims. Thus, it will be apparent that the specific exemplary embodiments disclosed above may be altered, combined or modified, and all such variations are considered within the scope and spirit of the invention. The invention illustratively disclosed herein may be practiced in the absence of any element not specifically disclosed herein and / or any element disclosed herein. Although the compositions and methods are described in terms "comprising," "containing," or "including" various components or steps, the compositions and methods may also "consist essentially of" or "consist of" various components and steps. All numbers and ranges disclosed above may vary somewhat. Whenever a numerical range with a lower and upper limit is disclosed, any number within that range and any included range is specifically disclosed. In particular, all ranges of values ​​disclosed herein (in the form "from about a to about b," or equivalently "approximately a to b," or equivalently "from approximately a b") should be understood to describe all numbers and ranges encompassed within the broad range of values. Also, the terms in the claims have their plain and ordinary meaning unless expressly and unambiguously defined by the patentee. In addition, when used in the claims, the indefinite article "a" or "an" is defined herein to mean one or more than one of the elements it introduces.

Claims

1. A method comprising polymerizing a polyamide monomer in the presence of a light absorber comprising an amino acid light absorber to obtain a polyamide having said light absorber in a backbone chain of the polyamide.

2. The method of claim 1 , wherein the polymerization is a ring-opening polymerization.

3. 3. The method of claim 2, wherein the polyamide monomer is selected from the group consisting of 2-azetidinone, 2-pyrrolidinone, 2-piperidinone, ε-caprolactam, 2-azacyclooctanone, 2-azacyclononanone, 2-azacyclodecanone, 2-azacycloundecanone, 2-aza-cyclododecanone, laurolactam, and any combination thereof.

4. 2. The method of claim 1, wherein the polymerization is a polycondensation reaction and the polyamide monomers include polyacid polyamide monomers and polyamine polyamide monomers.

5. The polyacid polyamide monomer is represented by the formula: HOOC-(CH 2 ) n 5. The method of claim 4, wherein the carboxylic acid is selected from the group consisting of -COOH, isophthalic acid, terephthalic acid, pent-2-enedioic acid, dodec-2-enedioic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, 1,3-cyclohexanedicarboxylic acid, and any combination thereof.

6. The polyamine polyamide monomer is represented by the formula: H 2 N-(CH 2 ) n -NH 2 , 1,5-diamino-2-methylpentane, 1,2-diaminopropane, trimethylhexamethylenediamine, 2-methyloctane-1,8-diamine, where n is 2 or 3, n-methyl 1,6-hexamethylenediamine, where n is 2 to 4, n-methyl 1,7-heptamethylenediamine, where n is 2 to 4, n-methyl 1,8-octamethylenediamine, where n is 2 to 6, n-methyl 1,12-dodecamethylenediamine, 1,3-bis(aminomethyl)benzene, ol 5. The method of claim 4, wherein the aryl group is selected from the group consisting of 4-phenylene-bis(methylamine), 1,4-bis(aminomethyl)benzene, 1,4-cyclohexanediamine, 4-methylcyclohexane-1,3-diamine, 4-methylcyclohexane-1,3-diamine, diphenylethylenediamine, 1,3-bis(aminomethyl)cyclohexane, 4,4'-methylenebis(cyclohexylamine), 4,4'-biphenyldiamine, 1,8-diaminonaphthalene, and any combination thereof.

7. The method of claim 1 , wherein the polymerization is a polycondensation reaction and the monomers comprise amino acid polyamide monomers.

8. The amino acid polyamide monomer is represented by the formula: 2 N-(CH 2 ) n 8. The method of claim 7, wherein the amino acid is selected from the group consisting of -COOH, branched aliphatic amino acids, cyclic aliphatic amino acids, aromatic amino acids, and any combination thereof.

9. 2. The method of claim 1, wherein the polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecaamide, polydodecaamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamides, aromatic polyamides, copolymers of any of these, and any combination thereof.

10. 2. The method of claim 1, wherein the light absorber further comprises a polyamine light absorber selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4 methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combination thereof.

11. 2. The method of claim 1, wherein the light absorber further comprises a polyacid light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimido)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combination thereof.

12. 2. The method of claim 1, wherein the amino acid light absorber is selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combination thereof.

13. 2. The method of claim 1, wherein a cumulative molar ratio of the polyamide having the light absorber in the backbone of the polyamide monomer to the cumulative light absorber is from about 500:1 to about 10:

1.

14. 1. A method comprising: polymerizing a polyamide monomer in the presence of a light absorber comprising an amino acid light absorber to obtain a polyamide having the light absorber in a backbone chain of the polyamide, wherein a cumulative molar ratio of the polyamide having the light absorber in the backbone chain of the polyamide monomer to the cumulative light absorber is from about 500:1 to about 10:1, and the amino acid light absorber comprises one or more selected from the group consisting of 4-amino-1,8-naphthalimide and 7-amino-4-methyl-3-coumarinylacetic acid.

15. A composition comprising a polyamide having a light absorber in a backbone chain of the polyamide, the light absorber comprising an amino acid light absorber.

16. 16. The composition of claim 15, wherein the polyamide is selected from the group consisting of polycaproamide, poly(hexamethylene succinamide), polyhexamethylene adipamide, polypentamethylene adipamide, polyhexamethylene sebacamide, polyundecaamide, polydodecaamide, polyhexamethylene terephthalamide, nylon 10,10, nylon 10,12, nylon 10,14, nylon 10,18, nylon 6,18, nylon 6,12, nylon 6,14, nylon 12,12, semi-aromatic polyamides, aromatic polyamides, copolymers of any of these, and any combination thereof.

17. 16. The composition of claim 15, wherein the light absorber further comprises a polyamine light absorber selected from the group consisting of N,N-di(4-aminophenyl)1-aminopyrene, N,N-bis(4-aminophenyl)N'-4 methoxyphenyl-N'-4(1,2,2-triphenylethenyl)phenyl-1,4-phenylenediamine, 4,5-diamino-rhodamine B, rhodamine 123, 2,7-dimethylacridine-3,6-diamine, 2-nitro-1,4-phenylenediamine, 4-[(4-aminophenyl)-(4-iminocyclohexa-2,5-dien-1-ylidene)methyl]aniline hydrochloride, 4,8-diamino-1,5-dihydroxy-9,10-dioxoanthracene-2-sulfonate sodium, and any combination thereof.

18. 16. The composition of claim 15, wherein the light absorber further comprises a polyacid light absorber selected from the group consisting of calcein, 4-methylumbelliferone-8-methyliminodiacetic acid, 6-carboxyfluorescein, 3,9-perylenedicarboxylic acid, N,N-bis(4-tert-butylphenyl)-N',N'-bis(4-carboxyphthalimido)-1,4-phenylenediamine, perylene-3,4,9,10-tetracarboxylic dianhydride, alizarin-3-methyliminodiacetic acid, and any combination thereof.

19. 16. The composition of claim 15, wherein the amino acid light absorber is selected from the group consisting of 4-amino-1,8-naphthalimide, 7-amino-4-methyl-3-coumarinylacetic acid, and any combination thereof.

20. 16. The composition of claim 15, wherein a molar ratio of the polyamide (cumulative) having the light absorber in the backbone of the polyamide to the light absorber (cumulative) of polyamide monomer is from about 500:1 to about 10:1.

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