EP2850230A1 - Apparatus and methods for fabricating nanofibers from sheared solutions under continuous flow - Google Patents
Apparatus and methods for fabricating nanofibers from sheared solutions under continuous flowInfo
- Publication number
- EP2850230A1 EP2850230A1 EP12877015.3A EP12877015A EP2850230A1 EP 2850230 A1 EP2850230 A1 EP 2850230A1 EP 12877015 A EP12877015 A EP 12877015A EP 2850230 A1 EP2850230 A1 EP 2850230A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- dispersion medium
- polymer
- inorganic
- nanofibers
- conduit
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
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Classifications
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- D01D5/00—Formation of filaments, threads, or the like
- D01D5/40—Formation of filaments, threads, or the like by applying a shearing force to a dispersion or solution of filament formable polymers, e.g. by stirring
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- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
- C04B35/00—Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products
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- C04B35/62236—Fibres based on aluminium oxide
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- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
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- C04B35/62231—Forming processes; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products obtaining fibres based on oxide ceramics
- C04B35/6224—Fibres based on silica
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- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
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- C04B35/6225—Fibres based on zirconium oxide, e.g. zirconates such as PZT
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- C—CHEMISTRY; METALLURGY
- C04—CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
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- C04B35/62259—Fibres based on titanium oxide
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- C04B35/63—Preparing or treating the powders individually or as batches ; preparing or treating macroscopic reinforcing agents for ceramic products, e.g. fibres; mechanical aspects section B using additives specially adapted for forming the products, e.g.. binder binders
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- C04B35/63404—Polymers obtained by reactions only involving carbon-to-carbon unsaturated bonds
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- C04B35/63404—Polymers obtained by reactions only involving carbon-to-carbon unsaturated bonds
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- C04B35/00—Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products
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- C04B35/63—Preparing or treating the powders individually or as batches ; preparing or treating macroscopic reinforcing agents for ceramic products, e.g. fibres; mechanical aspects section B using additives specially adapted for forming the products, e.g.. binder binders
- C04B35/632—Organic additives
- C04B35/636—Polysaccharides or derivatives thereof
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- D—TEXTILES; PAPER
- D01—NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
- D01F—CHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
- D01F1/00—General methods for the manufacture of artificial filaments or the like
- D01F1/02—Addition of substances to the spinning solution or to the melt
- D01F1/10—Other agents for modifying properties
-
- D—TEXTILES; PAPER
- D01—NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
- D01F—CHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
- D01F9/00—Artificial filaments or the like of other substances; Manufacture thereof; Apparatus specially adapted for the manufacture of carbon filaments
- D01F9/08—Artificial filaments or the like of other substances; Manufacture thereof; Apparatus specially adapted for the manufacture of carbon filaments of inorganic material
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B82—NANOTECHNOLOGY
- B82Y—SPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
- B82Y40/00—Manufacture or treatment of nanostructures
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- C—CHEMISTRY; METALLURGY
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- C04B2235/00—Aspects relating to ceramic starting mixtures or sintered ceramic products
- C04B2235/02—Composition of constituents of the starting material or of secondary phases of the final product
- C04B2235/30—Constituents and secondary phases not being of a fibrous nature
- C04B2235/44—Metal salt constituents or additives chosen for the nature of the anions, e.g. hydrides or acetylacetonate
- C04B2235/441—Alkoxides, e.g. methoxide, tert-butoxide
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- C04B2235/00—Aspects relating to ceramic starting mixtures or sintered ceramic products
- C04B2235/02—Composition of constituents of the starting material or of secondary phases of the final product
- C04B2235/50—Constituents or additives of the starting mixture chosen for their shape or used because of their shape or their physical appearance
- C04B2235/52—Constituents or additives characterised by their shapes
- C04B2235/5208—Fibers
- C04B2235/5264—Fibers characterised by the diameter of the fibers
Definitions
- the present invention relates generally to nanofibers and processes for making them. More specifically, the invention relates to nanofibers formed by a continuous process where a polymer solution, or a liquid mixture with or without additives and reactive precursors, is sheared in viscous liquid.
- Fibers form, in part or in whole, a large variety of both consumer and industrial materials such as, for example, clothing and other textile materials, medical prostheses, construction materials and reinforcement materials, and barrier, filtration and absorbent materials.
- materials such as, for example, clothing and other textile materials, medical prostheses, construction materials and reinforcement materials, and barrier, filtration and absorbent materials.
- Nanofibers are increasingly being investigated for use in various applications. Nanofibers may attain a high surface area comparable with the finest nanoparticle powders, yet are fairly flexible, and retain one macroscopic dimension which makes them easy to handle, orient and organize. Moreover, the high surface area of nanofibers may facilitate the addition of particles that improve the properties of the nanofibers such as mechanical strength, and/or impart additional functionality such as therapeutic activity, catalytic activity, or microelectronic/optoelectronic functionality.
- Bicomponent spinning involves extrusion of two immiscible polymers and two-step processing: (1) melt spinning the two polymer melts through a die with a "segmented pie” or “islands-in-the-sea” configuration, followed by solidification and (2) release of small filaments by mechanically breaking the fiber or by dissolving one of the components.
- melt spinning the two polymer melts through a die with a "segmented pie” or “islands-in-the-sea” configuration, followed by solidification and (2) release of small filaments by mechanically breaking the fiber or by dissolving one of the components.
- a disadvantage of these techniques is that they are limited to melt-processable polymers.
- Electrospinning differs from melt or dry spinning by the physical origin of the electrostatic rather than mechanical forces being used to draw the fibers.
- electrospinning can produce the smallest fibers (20 - 2000 nm in diameter), and to date has been the only technique that can produce sub-micron fibers from most polymers.
- low production rate is a major disadvantage of this technique.
- nanofibers there is a need for a method capable of several orders of magnitude higher productivity.
- nanofibers that are organic/inorganic composites.
- organic and inorganic materials are conventionally made and used separately because of their widely differing precursor chemistries and synthesis procedures.
- Inorganic materials are typically produced as thin films via vacuum deposition processes, or in some cases as particles via colloidal synthesis. It would be desirable to produce composite nanofibers by way of an integrated process.
- a method for fabricating polymer nanofibers includes introducing a polymer solution into a dispersion medium and shearing the polymer solution. Dispersed-phase components of the polymer solution, such as, for example liquid streaks, strands or droplets, of the polymer solution are spun into elongated fibers that are insoluble in the dispersion medium.
- a method for fabricating composite inorganic/polymer nanofibers includes introducing a mixture of a polymer solution and an inorganic precursor into a dispersion medium and shearing the mixture. Dispersed-phase components of the mixture are spun into elongated fibers that include inorganic fibrils.
- the inorganic fibrils are liberated from the polymer matrix by, for example, treating the elongated fibers that include the inorganic fibrils to a calcination, chemical treatment, or energy addition process, thereby forming pure or isolated inorganic fibrils.
- the inorganic fibrils may be of the same cross section size as the original fibers, or may be of much smaller cross section sizes due to longitudinal phase separation of the inorganic component.
- a method for fabricating nano fibers includes flowing a dispersion medium through a conduit; introducing a fiber precursor solution into the dispersion medium to form a dispersion system comprising the dispersion medium and a plurality of dispersed-phase components of the fiber precursor solution, wherein the fiber precursor solution comprises a polymer dissolved in a polymer solvent, and the dispersion medium comprises an anti- solvent; and shearing the dispersed-phase components by flowing the dispersion system through the conduit, wherein a plurality of nanofibers are formed in the dispersion medium.
- a method for fabricating composite inorganic/polymer nanofibers includes flowing a dispersion medium through a conduit; introducing a mixture of a polymer solution and an inorganic precursor into the dispersion medium to form a dispersion system comprising the dispersion medium and a plurality of dispersed-phase components of the mixture, wherein the polymer solution comprises a polymer dissolved in a polymer solvent, and the dispersion medium comprises an anti-solvent; shearing the dispersed-phase components by flowing the dispersion system through the conduit to form a plurality of composite nanofibers, wherein phase separation occurs between the polymer and the inorganic precursor such that a plurality of inorganic fibrils are formed in each nanofiber; and forming an inorganic compound from the inorganic precursor, wherein the inorganic fibrils comprise the inorganic compound.
- a method for fabricating inorganic fibrils includes flowing a dispersion medium through a conduit; introducing a mixture of a polymer solution and an inorganic precursor into the dispersion medium to form a dispersion system comprising the dispersion medium and a plurality of dispersed-phase components of the mixture, wherein the polymer solution comprises a polymer dissolved in a polymer solvent, and the dispersion medium comprises an anti-solvent for the polymer such that the polymer solvent is miscible with the anti- solvent; shearing the dispersed-phase components by flowing the dispersion system through the conduit to form a plurality of composite nanofibers, wherein phase separation occurs between the polymer and the inorganic precursor such that a plurality of inorganic fibrils are formed in each nanofiber; forming an inorganic compound from the inorganic precursor, wherein the inorganic fibrils comprise the inorganic compound; and removing the polymer from the inorganic fibrils.
- the ratio of viscosity of the fiber precursor solution to viscosity of the dispersion medium ranges from 0.1 to 200 or greater.
- the flow of the dispersion medium is generally laminar. In other implementations, the flow is laminar with localized turbulence at one or more locations. In other implementations, the flow is generally non-laminar.
- introducing the fiber precursor solution includes injecting or otherwise introducing a plurality of streams of the fiber precursor solution into the dispersion medium at a plurality of respective locations of the conduit.
- a polymer, composite, or inorganic nanofiber material is provided.
- the material may be fabricated by introducing a solution or solution/dispersion mixture into a dispersion medium while shearing the dispersion medium.
- the nanofiber material may be incorporated into various products, structures or devices, and/or be utilized for various functions or purposes.
- a composite inorganic/polymer nanofiber material that includes inorganic fibrils is provided.
- the polymer, composite, or inorganic nanofiber material is provided in the form of one or more nanofibers, a nonwoven article that includes a plurality of nanofibers, or a yarn that includes a plurality of twisted nanofibers.
- an inorganic nanofiber or "fibril” is provided.
- an apparatus for fabricating nanofibers may include a means, structure or device for containing a dispersion medium, a means, structure or device for adding a fiber precursor solution to the dispersion medium, and a means, structure or device for shearing the fiber precursor solution in the medium.
- the means, structure or device for containing the dispersion medium may include one or more conduits/pipes through which the dispersion medium flows and in which the fiber precursor solution is introduced.
- the means, structure or device for shearing the fiber precursor solution includes the conduit(s), wherein the flowing dispersion medium imparts shear to the fiber precursor solution.
- the apparatus may include a means, structure or device for controlling the amount of shear stress or force applied.
- Figure 1 is a cross-sectional view of an example of an apparatus or system that may be utilized for fabricating nanofibers in accordance with certain implementations of the present disclosure.
- Figures 2A to 2E illustrate the formation of either nanorods (Figure 2D) or nanofibers (Figure 2E) from fiber precursor solution sheared in the device in accordance with the present teachings.
- Figure 3 is a flow diagram illustrating an example of a method for fabricating polymer nanofibers in accordance with the present disclosure.
- Figure 4A shows short polymer rods formed from the 5.8k molecular weight (MW) polymer
- Figure 4B shows long fibers formed from the 230k MW polymer.
- Figures 5A to 5D are a set of data demonstrating the dependence of fiber diameters on values of processing parameters. Specifically, Figure 5A plots fiber diameter ( ⁇ ) as a function of polymer solution concentration (w/w %), demonstrating the effect of polymer solution concentration in a device such as illustrated in Figure 1.
- Figure 5B is a log-log plot of zero-shear viscosity (specific viscosity ⁇ 8 ⁇ ) of a series of solutions of varying concentrations C n (M) of styrene monomers; the entanglement concentration is located at the intersection of the two straight power- law regions.
- Figure 5C plots fiber diameter ( ⁇ ) as a function of angular velocity ⁇ (rpm) of a rotating shearing element of a device such as illustrated in Figure 1, demonstrating the effect of shear stress r, as shown, the average fiber diameter and distribution decrease with increasing angular velocity ⁇ .
- Figure 5D plots fiber diameter ( ⁇ ) as a function of ethanol concentration (v/v %), demonstrating the effect of shearing medium composition provided in a device such as illustrated in Figure 1. Increasing the ethanol (antisolvent) concentration significantly increased both the diameter and polydispersity of the fibers.
- the bars denote the 10-90% range, the denote the 25-75% range, and the lines denote the average diameter in the size distribution.
- Figures 6A to 6F are a set of scanning electron microscopy (SEM) micrographs of PS fibers formed from 15 % solution (w/w in CHCI3) sheared into 75 % glycerol : 25 % ethanol at 2000 rpm. Specifically, Figures 6A and 6B show typical fibers produced. Figure 6C shows a rare broken fiber with a void space in its interior. Cross-sectional SEM and TEM imaging showed fiber interiors were solid polymer. Figure 6D indicates that approximately 5 % of the fibers have an uneven surface, which upon closer examination was considered to be due to a series of closely- spaced necking deformations with constant diameter sections in between. Figures 6E and 6F show the cross-section of fibers after fracturing in liquid nitrogen. Larger fibers with diameters > ⁇ 1 ⁇ have a few small pores (Figure 6E), but no such pores are observed in smaller fibers ( Figure 6F).
- SEM scanning electron microscopy
- Figure 7 is a SEM micrograph showing a same-scale comparison of a partial cross- section of a typical wet-spun fiber and cross-sections of nanospun PS fibers (inset) formed by the present teaching.
- the outer skin of the wet-spun fiber (2-3 ⁇ ) has a different morphology from the macropore-filled bulk of the fiber.
- the skin is produced by quick precipitation of the polymer when it comes in contact with the polymer solution.
- the macropores inside the fiber result from the slower diffusion of solvent through this skin barrier and subsequent phase-separation processes.
- the fibers formed by the present teaching have diameters much smaller than the skin layer, so it is likely that they are produced by precipitation mechanisms.
- Figures 8A to 8F are a set of optical micrographs illustrating the following:
- Figure 8A is a SEM micrograph of PS fibers formed from 15 % solution (w/w in CHCI 3 ) sheared into 75 % glycerol : 25 % ethanol at 2000 rpm.
- Figure 8B is a high-resolution SEM micrograph of the fibers shown in Figure A.
- Figures 8C and 8D are optical and SEM micrographs of cellulose acetate (CA) micro fibers, produced by shearing a 10 % CA solution (w/w in acetone) into a medium with 75 % glycerol : 25 % water (v/v) at 2000 rpm for 2 min.
- CA cellulose acetate
- Figure 8E shows poly-lactic acid fibers (PLA), produced by shearing a 1 % PLA solution (w/w in CHCI3) into a medium with 37 % glycerol : 63 % ethanol (v/v) at 2000 rpm for 8 min.
- Figure 8F is a TEM micrograph of a composite PS fiber containing 50 nm magnetite (Fe 3 0 4 ) nanocubes. The fibers were produced by shearing a PS solution (10 % w/w in CHC1 3 , containing ⁇ 0.5 % w/w Fe 3 0 4 nanocubes) into a 75 % glycerol : 25 % ethanol medium at 2000 rpm for 3 min.
- Figures 9A to 9D illustrate the following:
- Figure 9D is an XRD spectrum (intensity (counts) as a function of 2 ⁇ (degrees)) of the titania nanofibers show they are composed of anatase. All the peaks are referenced to specific anatase diffraction planes.
- Figure 10 is a schematic view of an example of a continuous shear flow apparatus that may be utilized for fabricating nanofibers in accordance with certain implementations of the present disclosure.
- Figure 11 is a schematic view of an example of a continuous shear flow apparatus with multiple secondary conduit injection or insertion points along the length of the main shear flow conduit.
- Figure 12 is a schematic view of another example of a continuous shear flow apparatus in which a second conduit is movable relative to a shear flow conduit.
- Figures 13 and 14 are schematic views of other examples of a continuous shear flow apparatus, in which the second conduit has a bent geometry.
- Figures 15-17 are schematic views of other examples of a continuous shear flow apparatus, in which the geometry of the shear flow conduit is modified along the length of the shear flow conduit.
- Figure 18 A is an SEM micrograph of nanofibers produced by a batch process utilizing an apparatus such as illustrated in Figure 1.
- Figures 18B, 18C and 18D are SEM micrographs of nanofibers produced by a continuous process utilizing an apparatus such as illustrated in Figure 10.
- Figure 19A, 19B, 19C and 19D are SEM micrographs of very fine (nanoscale diameter) polystyrene nanofibers at different magnifications produced by the continuous process utilizing an apparatus such as illustrated in Figure 10.
- Figure 20 shows the fiber diameter distribution for the very fine polystyrene nanofibers produced with frequency (%) plotted versus fiber diameter (nm).
- the term nanofiber refers generally to an elongated fiber structure having an average diameter ranging from less than 50 nm to 5000 nm or greater. In some examples, the average diameter may range from 40 nm to 5000 nm.
- the "average" diameter may take into account not only that the diameters of individual nanofibers making up a plurality of nanofibers formed by implementing the presently disclosed method may vary somewhat, but also that the diameter of an individual nanofiber may not be uniform over its length in some implementations of the method.
- the average length of the nanofibers may be a high as millions of nm.
- the aspect ratio (length/diameter) of the nanofibers may be as high as millions.
- nanofibers with aspect ratios of at least 10,000.
- diameter of the nanofiber may be on the order of a few microns or less, for convenience the term "nanofiber” as used herein encompasses both nano-scale fibers and micro- scale fibers (micro fibers).
- the term nanorod refers generally to a structure having an aspect ratio (length/diameter) of less than 100.
- fibril refers generally to an elongated fiber structure having an average diameter ranging from about 1 nm - 1 ,000 nm in some examples, in other examples ranging from about 1 nm - 500 nm, and in other examples ranging from about 25 nm - 250 nm. According to certain methods described below, fibrils are formed by phase separation from nanofibers. In these methods, the diameter of a fibril is generally smaller than the diameter of the nanofiber with which it is associated, and typically smaller by an order of magnitude.
- a fibril may be composed of an inorganic precursor or an inorganic compound. Fibrils may also be characterized as nanofibers. In the present disclosure, the term “fibrils" distinguishes these structures from the polymer nanofibers utilized to form the inorganic fibrils. The length of the fibrils may be about same as the polymer nanofibers or may be shorter.
- the term inorganic precursor refers to any compound from which an inorganic compound may be formed (derived, produced, synthesized, etc.), with or without the use of a reagent, catalyst, or addition of energy.
- titanium isopropoxide, or Ti(OCH(CH 3 ) 2 ) 4 is an inorganic precursor for titania (titanium (IV) oxide, or Ti0 2 ). Titanium isopropoxide may, for example, be reacted with water to form titania.
- microparticle or nanoparticle refers to any particle that may form a composite with a nanofiber fabricated in accordance with the present teachings.
- the average size of nanoparticles may range from 1 to 100 nm or greater. More generally, the average size of microparticles or nanoparticles may range from 0.5 nm to 10 ⁇ .
- size takes into account the fact that the nanoparticles may exhibit irregular shapes such that "size” corresponds to the characteristic dimension of the nanoparticles. For example, if the shapes of the nanoparticles are approximated as spheres, the characteristic dimension may be considered to be a diameter.
- the characteristic dimension may be considered to be a predominant length, width, height, etc.
- the terms “nanoparticle,” “microparticle” and “particle” are used interchangeably to encompass both nanoparticles and microparticles, unless specified otherwise.
- the terms “anti-solvent” and “coagulant” are used interchangeably unless specified otherwise.
- the present disclosure describes efficient and scalable methods for processing fiber precursor solutions into nano fibers, which combines phase separation and shear forces.
- the fiber precursor solutions are polymer solutions.
- the method may be characterized as entailing a bulk process of antisolvent-induced precipitation under shear stress in viscous media. This approach differs significantly from existing technologies for creating nanofibers (e.g., electrospinning, bicomponent splitting, and melt-blowing) and overcomes a number of their limitations.
- the method may advantageously be employed for producing composite fibers incorporating nanoparticles and/or other additives and material precursors.
- the process takes place in the bulk volume of the medium liquid, and a massive number of fibers may be formed in parallel at the same time.
- the process is scalable and can be tailored to produce fibers of a wide variety of polymers, composites and inorganic materials with diameters and lengths typically falling within the ranges indicated above.
- the fiber precursor solutions are mixtures (or blends) of polymer solutions and inorganic precursors.
- the present disclosure also describes efficient and scalable methods for fabricating composite inorganic/polymer nanofibers that include inorganic fibrils in each polymer nanofiber. This method also entails antisolvent-induced precipitation under shear stress in viscous media. Additionally, inorganic fibrils are formed via phase separation from the polymer nanofibers. The composite nanofibers may additionally incorporate nanoparticles and/or other additives and material precursors. In some implementations, the inorganic fibrils may be isolated from the polymer fraction whereby the inorganic fibrils may be provided as an end product.
- the methods for fabricating nanofibers based on shear and antisolvent-based polymer precipitation are batch processes. In other implementations, the methods are continuous processes.
- polymer nanofibers are provided. Methods disclosed herein for fabricating the polymer nanofibers entail the use of shear stresses in a liquid- liquid dispersion system (or bi-phase liquid dispersion system) to form and stretch nanofibers. Operationally, the actual formation of these nanofibers may be considered as being accomplished in just one or two steps, although the formation process may also be considered as entailing various sub-steps or events.
- a polymer solution is introduced into a dispersion medium (also termed a shearing medium herein). Any means for introducing, injecting or inserting the polymer solution may be employed (e.g., syringe, tube, orifice, nozzle, etc.).
- the polymer solution includes a polymer dispersed in any solvent (“polymer solvent”) capable of dissolving the polymer and forming a stable solution.
- the polymer solution may additionally include one or more additives for various purposes such as, for example, to impart or enhance a certain function or property of the nanofibers being formed, to facilitate the process by which the nanofibers are formed, etc.
- the dispersion medium generally should be sufficiently viscous as to enable through shear and elongation the nanofiber formation in the manner described herein.
- the dispersion medium is or includes a component that behaves as an anti-solvent for the polymer of the polymer solution that causes the polymer to precipitate out of solution.
- the anti-solvent should be sufficiently miscible with the polymer solvent as to enable the nanofiber formation in the manner described herein.
- the polymer solution resides in the dispersion medium in the form of a dispersed phase comprising a plurality of dispersed-phase components (or dispersed-phase units, or dispersed-phase species) that are dispersed throughout the volume of the dispersion medium. This results in a dispersion system comprising the dispersed-phase components (collectively, the dispersed phase) and the dispersion medium.
- the dispersed-phase components may be in the form of liquid streaks, liquid strands, and/or liquid droplets of various shapes and shape ratios. Accordingly, in the present disclosure the terms dispersed-phase components, streaks, strands, and droplets are used interchangeably unless specified otherwise.
- the polymer solution may enter the dispersion medium already in the form of dispersed-phase components or may enter in a continuous stream and break up into dispersed-phase components in the dispersion medium.
- the dispersion system (and more particularly the dispersed-phase components of the polymer solution present in the dispersion medium) is sheared. Any means or device may be utilized to impart a shearing action to the dispersed-phase components in a batch or continuous process.
- one or more surfaces confining the volume of the dispersion medium may be moved (e.g., rotated, translated, twisted, etc.) relative to one or more stationary or other moving surfaces.
- the shearing of the dispersion system deforms the dispersed-phase polymer solution into liquid filament streams due to capillary instabilities. These filaments are further stretched under a mechanism of shear-force elongation.
- the polymer solvent being miscible with the dispersion medium, diffuses out from the dispersed-phase components/filaments and into the dispersion medium.
- insoluble nanofibers composed of the polymer are formed.
- the duration of time required to the form nanofibers in a batch process is typically on the order of less than a few seconds to more than a few tens of seconds.
- fibers may be formed at a rate of up to 0.1 g/min. Generally, the production rate should scale with the volume of the apparatus and/or shear fluid flux or volume.
- the as-formed nanofibers may be composites that include nanoparticles, microparticles or other additives retained by the polymer component.
- the term "retained” indicates that such nanoparticles, microparticles or other additives may be disposed on the outer surface of, and/or embedded in (or encapsulated by) the polymer component.
- Such nanoparticles, microparticles or other additives would typically be included in the polymer solution introduced into the dispersion medium. More generally, depending at least in part on the type of nanoparticles, microparticles or other additives, they may be introduced before or during shearing such as by being dispersed in the polymer solution or by being introduced into the dispersion medium separately from the polymer solution.
- the nanoparticles, microparticles or other additives may be introduced after shearing such as by being introduced into the dispersion medium while the as-formed nanofibers are still resident in the dispersion medium, or by being added to the nanofibers by any suitable manner (e.g., coating, vapor deposition, etc.) after the nanofibers have been separated from the dispersion medium.
- a notable advantage of the present method is that it is not limited to the use of any particular polymer or class of polymers.
- Polymers encompassed by the present disclosure generally may be any naturally-occurring or synthetic polymers capable of being fabricated into nanofibers in accordance with the shear-driven nanospinning technique taught herein.
- Non-limiting examples of polymers include many high molecular weight (MW) solution-processable polymers such as polyethylene (more generally, various polyolefms), polystyrene, cellulose, cellulose acetate, poly(L- lactic acid) or PLA, polyacrylonitrile, polyvinylidene difluoride, conjugated organic semiconducting and conducting polymers, biopolymers such as polynucleotides (DNA) and polypeptides, etc.
- MW high molecular weight
- linear high-MW polymers have a MW ranging from ⁇ 20,000 - 30,000 Da or greater for formation of high-aspect ratio fibers.
- a MW ranging from about 15,000 Da or greater may be sufficient for formation of high-aspect ratio fibers. In other implementations, a MW ranging from about 10,000 Da or greater may be sufficient for formation of high-aspect ratio fibers. Generally, higher MW ranges would likely be required for branched polymers. More generally, any molecular weight could be used without departing from the invention, including below 10,000.
- Suitable polymers include vinyl polymers such as, but not limited to, polyethylene, polypropylene, poly(vinyl chloride), polystyrene, polytetrafluoroethylene, poly(a- methylstyrene), poly(acrylic acid), poly(isobutylene), poly(acrylonitrile), poly(methacrylic acid), poly(methyl methacrylate), poly(l-pentene), poly(l,3-butadiene), poly(vinyl acetate), poly(2-vinyl pyridine), 1,4-polyisoprene, and 3,4-polychloroprene.
- vinyl polymers such as, but not limited to, polyethylene, polypropylene, poly(vinyl chloride), polystyrene, polytetrafluoroethylene, poly(a- methylstyrene), poly(acrylic acid), poly(isobutylene), poly(acrylonitrile), poly(methacrylic acid), poly(methyl methacrylate), poly(
- nonvinyl polymers such as, but not limited to, poly(ethylene oxide), polyformaldehyde, polyacetaldehyde, poly(3-propionate), poly(lO-decanoate), poly(ethylene terephthalate), polycaprolactam, poly(l l- undecanoamide), poly(hexamethylene sebacamide), poly(m-phenylene terephthalate), poly(tetramethylene-m-benzenesulfonamide).
- nonvinyl polymers such as, but not limited to, poly(ethylene oxide), polyformaldehyde, polyacetaldehyde, poly(3-propionate), poly(lO-decanoate), poly(ethylene terephthalate), polycaprolactam, poly(l l- undecanoamide), poly(hexamethylene sebacamide), poly(m-phenylene terephthalate), poly(tetramethylene-m-benzenesulfonamide).
- Additional polymers include those falling within one of the following polymer classes: polyolefm, polyether (including all epoxy resins, polyacetal, polyetheretherketone, polyetherimide, and poly(phenylene oxide)), polyamide (including polyureas), polyamideimide, polyarylate, polybenzimidazole, polyester (including polycarbonates), polyurethane, polyimide, polyhydrazide, phenolic resins, polysilane, polysiloxane, polycarbodiimide, polyimine, azo polymers, polysulfide, and polysulfone.
- polyolefm polyether (including all epoxy resins, polyacetal, polyetheretherketone, polyetherimide, and poly(phenylene oxide)), polyamide (including polyureas), polyamideimide, polyarylate, polybenzimidazole, polyester (including polycarbonates), polyurethane, polyimide, polyhydrazide, phenolic resins, polysilane, polysiloxane, poly
- the polymer can be synthetic or naturally-occurring.
- natural polymers include, but are not limited to, polysaccharides and derivatives thereof such as cellulosic polymers (e.g., cellulose and derivatives thereof as well as cellulose production byproducts such as lignin) and starch polymers (as well as other branched or non-linear polymers, either naturally occurring or synthetic).
- exemplary derivatives of starch and cellulose include various esters, ethers, and graft copolymers.
- Other examples of natural biopolymers include chitin, chitosan and their derivatives, alginates, xantans and various gums.
- the polymer may be crosslinkable in the presence of a multifunctional crosslinking agent or crosslinkable upon exposure to actinic radiation or other type of radiation.
- the polymer may be homopolymers of any of the foregoing polymers, random copolymers, block copolymers, alternating copolymers, random tripolymers, block tripolymers, alternating tripolymers, derivatives thereof (e.g., graft copolymers, esters, or ethers thereof), and the like.
- the polymer solvent may generally be any solvent capable of dissolving the polymer being processed, and which is completely or partially miscible with the antisolvent dispersion medium to a degree sufficient for forming nanofibers in accordance with the present teachings.
- Complete or full miscibility generally means that two (or more) liquids are miscible with each other in all proportions.
- Partial miscibility generally means that the degree to which the two (or more) liquids are miscible with each other is not necessarily the same.
- partially miscible solvents have a solubility in each other of at least 5 g/L at 25 °C.
- Non-limiting examples of polymer solvents include chloroform (CHCI3), acetone, toluene, tetrahydrofuran (THF), formic acid, acetic acid, dimethylformamide (DMF), dimethylacetamide (DMAc), dichloromethane (DCM), ethanol, ethylene glycol (EG) and glycol derivatives, and other polar and non-polar organic solvents, water, water with varied pH values, water with varied salt concentration, dissolved and supercritical carbon dioxide, mixtures of two or more of the foregoing, and mixtures of one or more of the foregoing with other solvents.
- CHCI3 chloroform
- acetone acetone
- toluene tetrahydrofuran
- THF tetrahydrofuran
- DMF dimethylformamide
- DMAc dimethylacetamide
- DCM dichloromethane
- ethanol ethylene glycol (EG) and glycol derivatives
- other polar and non-polar organic solvents water
- Polymer solution concentrations typically range from 0.1 wt % to over 50 wt %, with generally lower wt % for higher MW polymers in order to achieve the optimal viscosities. More generally, however, the polymer solution concentration will depend on the polymer type and molecular weight.
- the dispersion medium may generally include any component or components that serve as an anti-solvent for the polymer being processed, but which is miscible with the polymer solvent being utilized.
- the anti-solvent may be any liquid or solution in which the polymer does not dissolve, which may include the dispersion medium itself or specific additives.
- dispersion media include various alcohols such as ethanol, methanol, isopropanol, glycerol or the like, and combinations of two or more alcohols such as glycerol/ethanol, as well as water.
- glycerol may be included to control the viscosity of the dispersion medium, with ethanol or water also included for its miscibility with the polymer solvent to provide a pathway for the polymer solvent to leave the fibers whereby the fibers can be stably formed.
- Various biopolymers, biomacromolecules, conditioners and thickeners may also be used to adjust the media viscosity.
- the shear stress applied to the dispersion medium while the polymer solution is added and the nano fibers are being formed ranges from about 10 Pa to 1000 Pa. In some specific examples demonstrated herein, the applied shear stress ranges from ⁇ 30 to - 100 Pa.
- the insolubility of the polymer in the dispersion medium may be characterized in advantageous implementations as the polymer having a solubility in the anti-solvent of (or comprising) the dispersion medium of less than about 2 g/L at 25 °C, preferably less than about 1 g/L, more preferably less than about 0.5 g/L, and most preferably less than about 0.1 g/L.
- the concentration of the antisolvent medium will generally depend on the polymer- antisolvent interactions as well as the polymer-solvent interactions. For a system where the polymer is barely soluble in the solvent, minute amounts of antisolvent would be sufficient for the formation of fibers.
- an advantage of the method disclosed herein is that it does not require the use of nozzles. This feature enables the incorporation of additives without the risk of clogging a nozzle or unduly increasing the operating pressure of extrusion.
- additives include, but are not limited to, ceramics such as titania, alumina, zirconia and various clays, silica, glasses, bioceramics, bioactive glasses, metals (e.g., silver, gold, etc.), metal alloys, metal oxides, metalloids (e.g., silicon, germanium, semiconductor and quantum dot forming materials etc.) and their oxides, graphite, carbon black, various graphene nanosheets and carbon nanotubes (CNTs).
- ceramics such as titania, alumina, zirconia and various clays, silica, glasses, bioceramics, bioactive glasses, metals (e.g., silver, gold, etc.), metal alloys, metal oxides, metalloids (e.g., silicon,
- Additives may be included for various purposes such as imparting to or enhancing a property or function of the nano fiber, for example strength, anti-bacterial activity, therapeutic activity (e.g., pharmaceutical drug crystals), conductivity, semiconductivity (e.g., quantum dots, semiconductor nanoparticles), magnetic behavior, porosity, hydrophobicity, selective permeability, selective affinity to various materials, adhesiveness, enzymatic or catalytic activity, biocompatibility, biodegradability, biological adhesion, biological recognition and/or binding, chemical inertness, polarity, selective retention and/or enrichment of analytes in analytical separation techniques, etc.
- high molecular-weight polyethylene known for its strength, could be strengthened by the incorporation of CNTs.
- additives may be added to the polymer solution or the dispersion medium for various purposes.
- examples include, but are not limited to, colorants (e.g., fluorescent dyes and pigments), odorants, deodorants, plasticizers, impact modifiers, fillers, nucleating agents, lubricants, surfactants, wetting agents, flame retardants, ultraviolet light stabilizers, antioxidants, biocides, thickening agents, heat stabilizers, defoaming agents, blowing agents, emulsifiers, crosslinking agents, waxes, particulates, flow promoters, and other materials added to enhance processability or end-use properties of the polymeric components.
- colorants e.g., fluorescent dyes and pigments
- odorants e.g., deodorants, plasticizers, impact modifiers
- fillers e.g., nucleating agents, lubricants, surfactants, wetting agents, flame retardants, ultraviolet light stabilizers, antioxidants, biocides, thickening agents, heat
- additives can be added before, during or after formation of the polymer dispersion and/or formation of the polymer fibers.
- a surfactant such as a nonionic or anionic surfactant, is added to a solution comprising the fibers in order to enhance dispersion of the fibers in the solution, particularly where the fibers are in an aqueous solution.
- Nanofibers produced according to the present disclosure may be solid, hollow, or porous, where the pores may be opened or closed.
- Hollow fibers for example, may be formed by shearing double emulsions with polymer-containing dispersed-phase components of various controlled sizes.
- a core-shell fiber may be fabricated. If the immiscible core of the fiber is a liquid, it may be subsequently washed out to create a hollow tube.
- the length of the fibers that could be obtained may be limited by the size of the dispersed-phase components.
- This variation of the method may allow one to produce polymer rods, potentially with good control over length and aspect ratio, from high molecular weight polymers that normally form only fibers.
- Nanofibers produced according to the present disclosure have a wide variety of applications.
- polystyrene fibers may be utilized to fabricate disposable nonwoven sheets, pads or foam products.
- Other examples include medical prostheses, textured surfaces and sensors (including implantable, ingestible and transdermal applications); biomedical textiles; scaffolds in tissue engineering; bioceramics; vehicles for delivery of biological or chemical materials; smart materials responsive to external stimuli (e.g., pH, light, heat, moisture), such as for customized heat response near the human body temperature, tuned pH/humidity response for protective clothing textiles, adjustable breathability, and combat-field materials for smart gas-mask filters with selective responses to virus, gas and other threats; electromagnetic shielding; acoustical insulation; photocatalysts; protective clothing (including antibacterial, photo- protective, etc.); wound dressings; and conductive and/or electronic textiles such as flexible organic and hybrid organic/inorganic microcircuit textiles, LED light color modifiers, and photo
- Nanofibers produced from various polymers may be utilized in the fabrication of filters and barriers for nano-scale and micro-scale applications, including purification of proteins and other biopolymers, and membranes for hydrogen production.
- Nanofibers may be processed according to the present disclosure from recycled polystyrene and subsequently utilized to fabricate fiber-based products of higher value than recycled products fabricated from conventional techniques.
- Nanofibers spun from DNA may be utilized to create templates for biomimetric or biological materials.
- Polypeptides, proteins and their derivatives may be utilized to fabricate biocompatible fibers, silks, and many other products. Other examples of applications include those noted above in the background section of this disclosure.
- FIG. 1 is a schematic view of an example of an apparatus or system 100 that may be utilized for fabricating the nanofibers.
- the apparatus 100 generally includes a container 104 for containing a volume of dispersion medium and receiving polymer solution, a structure 108 extending out from the container 104, and a dispensing device 112 for supplying the polymer solution to the dispersion medium.
- the dispensing device 112 may be of any suitable type for introducing the polymer solution (optionally with additives) into the dispersion medium from a suitable supply source (not shown).
- the container 104 and the structure 108 may be configured such that they both provide surfaces cooperatively defining the boundaries of the volume of the dispersion medium, and such that the container 104 and/or the structure 108 move.
- the container 104 serves as an outer boundary or surface and the structure 108 serves as an inner boundary or surface, at least one of which moves relative to the other to effect shearing.
- the container 104 is a stationary outer cylinder and the structure 108 is an inner cylinder extending upward from the inside bottom of the outer cylinder in a concentric arrangement along its center axis.
- the outer cylinder and the inner cylinder cooperatively define an annular cylindrical interior containing the dispersion medium.
- the inner cylinder is driven by a suitable motor (not shown) to rotate at a desired angular velocity about the center axis, as indicated by an arrow.
- the polymer solution supplying device 112 may be any suitable conduit or applicator that dispenses the polymer solution from its tip by any operating principle (e.g., pumping action, capillary action, etc.). Rotation of the inner cylinder relative to the stationary outer cylinder imparts a shear stress to the components contained in the outer cylinder.
- Figure 1 illustrates polymer solution being dispensed into the outer cylinder 104 as droplets 116 and dispersed-phase components 120 of the polymer solution undergoing shear in the dispersion medium, which as described below causes polymer solvent to diffuse out from the dispersed-phase components 120 into the dispersion medium.
- the apparatus 100 illustrated in Figure 1 is advantageous in that it can generate uniform shear stress.
- the shear stress may be highly tunable by changing one or more variables that control the shear stress proportionately, such as the viscosity of the dispersion medium (i.e., the shear medium), the shear rate (e.g., the revolution speed of the inner cylinder in the present example), and the gap between the outer cylinder and the inner cylinder.
- the shear stress e.g., the revolution speed of the inner cylinder in the present example
- the present teachings are not limited, however, to the apparatus 100 illustrated by example in Figure 1. Many other designs and types of apparatus may be suitable, but preferably are configured to enable the maintaining of uniform shear stress and control over the uniform shear stress as just described.
- the outer cylinder (container 104) has a radius of r 0 relative to its central axis
- the inner cylinder (structure 108) has a radius of r z relative to the same axis.
- the dispersion medium is or approximates a Newtonian fluid such that its fluid velocity profile may be depicted as shown during rotation of the inner cylinder.
- the dispersion medium will have a different fluid velocity profile (not shown) in which the velocity vectors are largest near the rotating outer cylinder 104 and smallest near the stationary inner cylinder 108. Rotation of the outer cylinder 104 may be useful for operating at higher shear stress without the onset of turbulence.
- the apparatus 100 may be configured to reciprocate or oscillate the inner cylinder 108 along its axis, i.e., in an axial direction orthogonal to the radial gap between the outer cylinder 104 and the inner cylinder 108, which may further contribute to stabilizing the flow.
- the polymer solution may be delivered to the dispersion medium through openings 132 formed through the inner cylinder 108 or other types of orifices, tubes or injectors.
- an electrical field may be applied in a radial direction by applying a voltage potential between the outer cylinder 104 and the inner cylinder 108, as depicted schematically by a positive terminal 136 and a negative terminal 138.
- the apparatus 100 may be configured to apply an electrical field in an axial direction.
- fibers exhibiting anisotropic surface properties may be formed. It is also possible to displace the nanoparticles inside the polymer creating fibers with anisotropic bulk structure.
- Other types of fields that can be applied during the shear formation process to modify the properties of the nanofibers formed include magnetic fields, light fields or thermal gradients.
- Figures 2A to 2E illustrate the formation of either nanorods (Figure 2D) or nanofibers (Figure 2E) from dispersed-phase components of the polymer solution ( Figure 2A), schematically depicting the mechanism of rod or fiber formation by way of solvent attrition under shear in accordance with the present teachings.
- a dispersed-phase component is introduced into the dispersion medium, it becomes deformed due to shear stress ( Figure 2A).
- the dispersed-phase component may break up into smaller components ( Figure 2B) until the shear forces are balanced by the interfacial tension forces.
- the dispersed-phase components then elongate and stiffen as the polymer solvent diffuses out into the dispersion medium, thereby forming proto-fibers (Figure 2C).
- the anti-solvent of the dispersion medium may coat the proto-fibers and may diffuse into the proto- fibers.
- MW molecular weight
- the polymer plays a role in the rod/fiber formation process.
- low-MW polymers result in the formation of polymer rods ( Figure 2D)
- high-MW polymers result in the formation of polymer fibers ( Figure 2E).
- the higher MW of the fiber-forming polymers is associated with a high level of molecular entanglement of the polymer solution, whereas lower MW is associated with low entanglement levels leading to rod formation. Images of examples of such rods and fibers are illustrated in Figures 4A and 4B, respectively, and referred to below.
- r is the shear stress
- a is the droplet radius
- ⁇ is the interfacial tension
- ⁇ is the fluid viscosity
- r ⁇ and i3 ⁇ 4 are the radius and angular velocity of the inner cylinder, respectively
- d r 0 - ri ( Figure 1).
- the surface tension dominates and the droplet remains close to spherical.
- the shear stress dominates and the droplet stretches into a long cylinder.
- p > 3 Ca cr diverges, so it is almost impossible to break up the droplet.
- Ca cr varies between 0.3 and 1.
- the tip-streaming may be conducive to the formation of initial fibers, which then get drawn out of the parent droplets by the shear forces.
- the polymer droplets deform and break up in the shear flow until they reach a critical size, which is likely determined by the capillary number Ca as well as the competition between the shear extension and diffusion.
- the critical size the polymer solvent leaves the droplets, and the droplets thereby become solidified in the deformed state.
- Means may be provided to assist in removing fibers from the apparatus. For example, long fibers may become wrapped about a rotating inner cylinder.
- the inner cylinder may be provided with small, retractable drums or other structures (not shown) that cut or remove as-produced fibers upon activation by a user.
- Figure 3 is a flow diagram illustrating an example of a method 300 for forming polymer nanofibers.
- any desired or necessary pre-formation steps may be taken. Such pre-formation steps may include preparing the polymer solution, adding nanoparticles or other additives as desired.
- the polymer solution is introduced into a dispersion medium.
- shear is imparted to the dispersion medium to form polymer fibers from the polymer solution.
- any desired or necessary post-formation steps may be taken. Such post-formation steps may include removing the fibers from an apparatus in which the fibers were formed, washing and drying the fibers, etc.
- the flow diagram illustrated in Figure 3 may also schematically represent an apparatus or system 300 configured for carrying out the process steps just described. Additional apparatus features used for fiber alignment, extension, extraction and other processing may be included as needed.
- a method for fabricating polymer strands or strings is provided.
- the polymer of the polymer strands may have a molecular weight of less than about 20,000 Da. Similar to the methods described above, the polymer strands may be formed by introducing a polymer solution into a dispersion medium and shearing the polymer solution. In this case, the resulting polymer strands having an aspect ratio of about 100 or less.
- the polymer strands are not necessarily straight or rigid. The strands may be utilized in a wide variety of applications and articles of manufacture for which relatively short, non-rigid polymer fibers are desirable.
- Nanoparticles of oleic acid capped iron oxide nanocrystals (10 nm) were obtained from Ocean NanoTech (Fayetteville, AK). These nanoparticles were easily suspended in CHC1 3 .
- a lab scale Couette flow apparatus similar to the apparatus 100 illustrated in Figure 1, was constructed by combining a mixer with a straight cylindrical shaft and a centrifuge tube.
- the mixer was a Cole-Parmer Servodyne Model # 50003 with digitally controllable speeds (150 - 6000 rpm).
- the radii for the shaft, r h and the stationary tube, r Q were 5.00 mm and 7.32 mm respectively. Clamping a disposable tube to a bench stand and centering it around the bare rotating shaft resulted in an easy-to-clean setup where only the shaft had to be wiped clean after each experiment.
- SEM images were obtained on a Hitachi S-3200N SEM after applying 6-12 nm of Au/Pd sputter coat to minimize charging and improve resolution. Beam energies of 5 kV, with low beam current and short working distance were used to increase resolution.
- TEM images were obtained on a JEOL 2000FX HRTEM at Atomic Resolution Electron Microscopy Center (AREMC).
- Fiber diameter distributions were measured by analyzing SEM images containing 20-30 fibers each and with a minimum resolution of 800 x 800 pixels. Fiber diameters were measured in pixels, scaling by the image-embedded scale bar, and building a distribution histogram. At least 50 measurements were made to characterize the fibers for each processing condition.
- nanofibers are produced in two steps. First, the dispersed-phase components of the polymer solution deform and break up in the shear flow until they reach a critical size, determined by the capillary number as well as competition between the shear extension and diffusion. Second, at the critical size, the polymer solvent leaves the dispersed- phase components, solidifying them in the deformed state.
- baffles to eliminate the open air interface and its destabilizing end effect, has shown a monotonic decrease of fiber diameter with shear rate up to the maximum 6000 rpm achievable in one particular experimental setup (Figure 5A).
- one or more baffles may be positioned perpendicular to the cylinders 104, 108 shown in Figure 1, with each baffle having a central opening just large enough for the inner cylinder 104 to pass through.
- Figure 1 illustrates an annular baffle 140. When such a device is filled with a liquid to a level just above the baffle 140, the air is not pulled in and the flow is more stable.
- the diameters of fibers of the present Example are at least an order of magnitude smaller than those of most wet-spun fibers, and determining the mechanism of their formation may enable the process to be optimized. A small number of tiny polymer fibrils ( ⁇ 200 nm, with occasional ones - 100 nm) was observed under most conditions, including varying antisolvent concentration in the medium.
- Figure 6 is a set of scanning electron microscopy (SEM) micrographs of PS fibers formed from 15 % solution (w/w in CHCI 3 ) sheared into 75 % glycerol : 25 % ethanol at 2000 rpm.
- Figures 6A and 6B show typical fibers produced in the present Example. The diameters ranged from ⁇ 200 nm to ⁇ 2 ⁇ and the average size was - 500 nm.
- Figure 6C shows a rare broken fiber with a void space in its interior. Cross-sectional SEM and TEM imaging showed that the fiber interiors were solid polymer.
- Figures 6E and 6F are SEM images of cross-sections of the fibers of the present Example, obtained after fracturing fiber bundles in liquid nitrogen. Larger fibers with diameters > - 1 ⁇ have a few small pores (Figure 6E), but no such pores are observed in smaller fibers ( Figure 6F).
- Figure 7 contains SEM cross-sectional view micrographs of part of a wet-spun fiber and several nanospun fibers.
- the morphology of the nanospun fibers provides information on the mechanism of their formation.
- the fibers show no voids inside, suggesting that they are formed by a vitrification process upon direct contact between the coagulant and polymer solution.
- Similar processes have been observed in the formation of a non-porous glassy skin layer on the surface of electrospun fibers, or the skin layer in wet- spun fibers. Glassy layers are formed on a fast timescale, compared to phase-separation.
- the round profile of the fibers also indicates that the solidification process is faster than the buckling timescale, otherwise one would expect fibers with wrinkled surface topographies.
- nanospun fibers which, due to their small diameter and fast solvent-antisolvent interdiffusion, are composed mostly of a glassy skin layer, preventing void formation inside.
- the Figures also highlight the difference in size between nanospun and wet- spun fibers - shown here on the same scale. Due to the large size of wet-spun fibers, only the outer "skin" layer formation is fast, compared to phase-separation. By contrast, the morphology inside wet-spun fibers is characterized by macrovoids, formed via phase separation during the slower interdiffusion of solvent and antisolvent through this skin layer, via either nucleation and growth or spinodal decomposition processes.
- SAXS Small angle X-ray scattering
- Figure 8A is an SEM micrograph of PS fibers formed from 15 % solution (w/w in CHC1 3 ) sheared into 75 % glycerol : 25 % ethanol at 2000 rpm
- Figure 8B is a high resolution SEM of the fibers in Figure 8A. The method presented here, however, can be used in many systems, as the formation of fibers is not limited to polystyrene alone.
- the nozzle-less shear nanospinning technique disclosed herein avoids this problem.
- the fabrication of magnetic composite fibers (Figure 8F) was demonstrated by dispersing 50 nm magnetite (Fe 3 0 4 ) nanocubes in a solution of polystyrene in CHC1 3 , and shearing the mixed suspension/solution in a glycerol/ethanol medium.
- the fibers were produced by shearing a PS solution (10 % w/w in CHC1 3 , containing ⁇ 0.5 % w/w Fe 3 0 4 nanocubes) into a 75 % glycerol : 25 % ethanol medium at 2000 rpm for 3 min.
- catalyst immobilization for chemical transformations and waste treatment among others, is one possible use because nonwoven composites would have active areas similar to those of nanoparticle suspensions. Embedding of Ti0 2 particles can confer self-cleaning properties to fibers in the presence of UV light.
- the fabrication capacity of this shear nanospinning method scales with the volume of the shearing device.
- the 6-ml benchtop setup employed in the above Example was able to produce nanofibers at a rate of ⁇ 0.1 g/min, and its volume production could be straightforwardly scaled up several thousand times by, for example, using available centrifuge equipment. Production rates of over 1.0 g/min have been achieved by using a scaled benchtop apparatus that included a larger diameter rotor (similar to the component 108 of Figure 1) and a cylindrical beaker (similar to the component 104 of Figure 1).
- the method described herein can process a variety of polymers, and its scalability is one of its best advantages in nanofiber production.
- the method allows for the spinning of nanofibers from solution at room temperature which is highly desired in the processing of functional polymers, including conductive polymers for flexible electronics. Volume production of such fibers may provide concurrently economical electrical functionality and structural support, and would allow embedding in clothes and other textiles, including disposable garments. Mild processing conditions would benefit numerous other applications, including generation of biocomposite fibers containing active enzymes or even whole live cells.
- composite inorganic/polymer nanofibers are provided.
- the composite nanofiber includes a polymer nanofiber and a plurality of inorganic fibrils disposed in the polymer nanofiber.
- "disposed in” generally means that the inorganic fibrils are confined or retained in the polymer medium. No limitation is placed on the specific mechanism of this confinement or retention. In some cases, chemical binding may be involved.
- Methods disclosed herein for fabricating composite inorganic/polymer nanofibers are similar to the above-described methods for fabricating polymer nanofibers, insofar as they entail utilizing shear stresses in a liquid-liquid dispersion system to form and stretch the nanofibers as generally illustrated in Figures 2 and 3.
- an inorganic fibrils encompasses fibrils composed of the inorganic precursor and fibrils composed partially or entirely of the resulting inorganic compound.
- the exact composition of the inorganic fibrils depends on the experimental conditions that allow the conversion of the inorganic precursor into an inorganic compound and the relative timescales of phase separation and formation of the inorganic fibrils. The time of conversion may differ in different implementations.
- a mixture with a particular ratio of the polymer solution and the inorganic precursor is employed in the place of the polymer solution described above.
- the ratio of polymer solution to inorganic precursor will generally depend on the type of polymer and inorganic precursor employed. In some implementations, the ratio of polymer solution to inorganic precursor ranges from 1 : 10,000 to 10,000: 1 by weight. In other implementations, the ratio may range from 1 :200 to 200: 1 by weight. In other implementations, the ratio may range from 200: 1 to 2: 1 by weight.
- the polymer solution/inorganic precursor mixture may optionally include one or more additives as described above. The mixture is introduced into a dispersion medium by any means such as described above.
- the dispersion medium should be viscous, include an antisolvent for the polymer employed, and be miscible with the solvent of the polymer solution.
- the mixture resides in the dispersion medium as dispersed-phase components (described above).
- the mixture may already be in the form of dispersed-phase components when added to the dispersion medium, or may be introduced as a continuous stream and thereafter break up into dispersed-phase components.
- As the polymer solution is introduced it is sheared by any means such as described above. The shearing action deforms the dispersed-phase components of the mixture into liquid filament streams due to capillary instabilities.
- the polymer solvent (being miscible with the dispersion medium as noted previously), diffuses out from the dispersed-phase components/filaments and into the dispersion medium. This causes an increase in the polymer concentration and phase separation between the polymer and the inorganic precursor. This process results in the formation of insoluble composite inorganic/polymer nanofibers that include inorganic fibrils dispersed in the polymer fraction of the nanofibers.
- the composite inorganic/polymer nanofibers may then be washed (utilizing, for example, a low-viscosity antisolvent), collected, and dried as desired.
- the composite inorganic/polymer nanofibers may then be subjected to any suitable calcination or organics removal process to release (or liberate) the inorganic fibrils from the nanofibers.
- the inorganic fibrils may be provided as an end product.
- Calcination may be performed in any device (furnace, kiln, fluidized bed reactor, etc.) configured for implementing calcination.
- the temperature at which calcination is carried out and the total time of calcination will depend on the type of polymer and inorganic compound utilized, and generally should be sufficient to vaporize the polymer fraction without thermally decomposing the inorganic fibrils. In some examples, the calcination temperature is about 200 °C or greater.
- the calcination temperature is about 500 °C or greater. In other examples, the calcination temperature ranges from about 200 to about 1200 °C. In some implementations, the calcination temperature may be varied according to a predetermined temperature program. In other implementations, the organic components may be removed by chemical treatment instead of thermal oxidation, dissolution, enzymatic degradation, etc.
- the shear stress imparted to the dispersed-phase components may be controlled and kept uniform as desired.
- One or more operating parameters may be adjusted or tuned so as to control the shear stress, such as the viscosity of the dispersion medium, shear rate (e.g., revolution speed in the case of the device illustrated in Figure 1), the gap between the inside cylinder and outside cylinder in the case of the device illustrated in Figure 1, etc.
- Shear stress may be controlled, for example, to minimize the polydispersity of the final diameter of the composite inorganic/polymer nanofibers.
- the polymer(s) utilized in the presently described method may have any naturally- occurring or synthetic composition described earlier in this disclosure.
- the polymer has a molecular weight greater than 20,000 to ensure formation of high aspect-ratio nanofibers.
- the polymer solvent(s), polymer solution concentration, antisolvents, antisolvent concentration in the dispersion medium, viscosity of dispersion medium, magnitude of applied shear stress, and insolubility of the polymer in the dispersion medium may all be specified as described earlier in this disclosure. Any of the particles (microparticles or nanoparticles) and/or other additives described earlier in this disclosure may be utilized as well.
- the inorganic precursor that forms a mixture with the polymer solution will depend on the desired composition of the inorganic fibrils.
- the present method enables the formation of fibrils composed of a wide variety of inorganic compounds. Accordingly, a large number of inorganic precursors (i.e., precursors for the respective inorganic compounds) may be utilized so long as they are compatible with forming fibril-inclusive nanofibers in accordance with the methods disclosed herein.
- suitable inorganic compounds include, but are not limited to, ceramics such as titania, alumina and zirconia, and non-crystalline ceramic-like compounds such as silica, glasses, bioceramics, and bioactive glasses.
- examples of inorganic precursors include, but are not limited to, titania precursors, alumina precursors, zirconia precursors, silica precursors, bioceramic precursors, and bioactive glass precursors.
- titania precursors include titanium alkoxides (e.g., Ti(IV) isopropoxide) and titanium tetrachloride (T1CI 4 ).
- alumina precursors include aluminum alkoxides (e.g., aluminum isopropoxide) and aluminum salt mixtures with organics resulting in sol-gel formation.
- zirconia precursors include zirconium alkoxides (e.g., zirconium ethoxide).
- silica precursors include tetraethyl orthosilicate (TEOS) and tetramethyl orthosilicate.
- the nanofibers may include fibrils having two or more different compositions, in which case two or more different inorganic precursors may be utilized.
- Other hydrolysable, decomposable or reactive metal compounds, such as methoxides, ethoxides and sec-butoxide for example, may also serve as inorganic precursors.
- the mechanism by which the inorganic compound is formed will depend on the inorganic precursor and chemical or physical conversion process utilized.
- the inorganic compound is formed by reacting the inorganic precursor with an appropriate reagent.
- the orthosilicates and many metal alkoxides hydrolyze with water to form inorganic oxides.
- the reagent may be a liquid or a gas (or vapor).
- a liquid reagent is added to the dispersion medium before introducing the mixture, while introducing the mixture, after introducing the mixture, or during two or more of the foregoing stages.
- the dispersion medium may include both the antisolvent and the reagent.
- the antisolvent may be effective as a reagent and thus serves a dual role in the dispersion medium, acting both as an antisolvent for the polymer solvent and as a reagent for interacting with the inorganic precursor to form the inorganic compound that comprises the fibrils of the final composite nano fibers.
- Water is an example of an antisolvent that may serve this dual role, again depending on the inorganic precursor.
- the composite nanofibers (containing fibrils composed of the inorganic precursor) may first be separated (removed) from the dispersion medium and then exposed to the reagent.
- exposure may entail introducing the composite nanofibers into a solution containing the reagent.
- a gaseous reagent exposure may entail introducing the composite nanofibers into an atmosphere or environment containing the reagent.
- the atmosphere or environment may be controlled or enclosed, such as a reaction chamber or vessel.
- the reactivity of the inorganic precursor with water may be high enough that simply exposing the composite nanofibers to ambient air of sufficient humidity is sufficient to convert the inorganic precursor to the inorganic compound.
- the reaction between the inorganic precursor and the reagent may be initiated, promoted, or otherwise assisted by an appropriate catalyst, depending on the type of inorganic precursor utilized.
- the inorganic compound is formed by irradiating the inorganic precursor with thermal energy (e.g., heating) or electromagnetic energy (e.g., UV light, laser light, etc.).
- the heat provided by the calcining device may serve as an effective energy input for converting the inorganic precursor to the inorganic compound.
- the inorganic precursor is Ti(IV) isopropoxide
- calcining the inorganic fibrils results in the formation of titania fibrils in which the titania is predominantly the anatase phase of titania.
- the term "predominantly" means that -90-95% or greater of the fibrils are composed of the anatase phase.
- the inorganic compound is formed from the inorganic precursor by a combination of reaction with a reagent and exposure to thermal or electromagnetic energy.
- the composite inorganic/polymer nanofibers may find a wide variety of applications.
- Composite nanofibers may obtain part or much of their desirable mechanical properties from the polymer, including toughness and flexibility.
- Polymers may also provide special electrical (e.g., conductive, semiconductive) properties, optical properties (absorption, fluorescence, light emission), and surface chemical functionalities (e.g., for conjugating growth factors in the case of tissue scaffolds).
- Some polymers, such as polyacrylonitrile, poly(N- isopropylacrylamide) (PNIPAm), and polyvinylidene difluoride, may allow fibers to respond mechanically to a number of different stimuli.
- the present method entails the use of a sacrificial polymer material that serves as a structural mold for defining the polymer/inorganic composite fibers, but is later removed by calcination. Therefore, in addition to its ability to form fibers, the polymer should be as inexpensive as possible.
- Polystyrene for instance, is a high-volume use polymer, comprising a large percentage of disposable foam products (e.g., Styrofoam® cups) though unsuitable for use in melt-spinning for production of fibers.
- the present method offers the possibility of making much higher value products (inorganic fibers) using this inexpensive commodity polymer.
- polystyrene In addition to the use of the virgin raw material, during recycling polystyrene is commonly separated from other polymers using solvents, recovered, and re-used into low value products again.
- the present method offers the possibility of forming high value fiber products using recycled polystyrene and other recyclable polymers as well.
- inorganic fibrils The ability to produce inorganic fibrils provided by the present method dramatically extends the range of materials that may be provided in the form of nanofibers (i.e., fibrils).
- bioceramics are increasingly being explored for tissue engineering scaffolds, though mostly in research environments because of their extremely high cost, which is due to a low production rate by the previously known methods.
- Bioglass supports which can deliver unique combinations of minerals to growing tissues, have a number of biomedical applications.
- the nanospinning techniques disclosed herein may potentially increase the production rate of such materials by orders of magnitude and dramatically decrease production cost, and therefore have significant commercial potential.
- Even common minerals such as calcite and calcium phosphate are highly desired in a nanofiber form.
- Other applications include the fabrication of semiconductor fibers for photo voltaics and photocatalysts.
- a lab scale Couette flow apparatus similar to the apparatus 100 illustrated in Figure 1, was utilized to fabricate composite inorganic/polymer nano fibers.
- the annular volume (between the inner cylinder and outer cylinder) was 14 mL, and the gap between the inner cylinder and outer cylinder was 2.3 mm.
- the inner cylinder was rotated at 2,000 RPM.
- the inorganic precursor utilized was Ti(IV) isopropoxide (TUP), obtained from Sigma (97%, catalog #205273).
- a 13.5% PS (w/w), 7.6% TIPP (w/w) solution in chloroform was prepared under inert (N 2 ) atmosphere.
- a dispersion medium composed of 75% glycerol / 25% EtOH (v/v) (viscosity 0.15 Pa s (Pascal-second)) was added to the apparatus to a volume of 6.5-6.6 mL.
- the glycerol controls the viscosity of the dispersion medium, while the ethanol is miscible with the polymer solvent and provides a way for the solvent to leave the forming fibers and form stable fibers (see Figure 2). Dry 100% ethanol was utilized to prevent a hydrolysis reaction with TIPP before the fibers were formed.
- a volume of 0.1-0.2 mL of the polymer solution/inorganic precursor mixture (PS/TIIP/CHCI 3 solution) was injected into the dispersion medium while the dispersion medium was being sheared at the above-noted rotation rate.
- the resulting shear stress applied to the dispersed PS/TUP mixture was about 65 Pa.
- the nanofibers formed were washed with dry 100% ethanol and left to dry in air at room temperature. It is believed that because the glycerol/ethanol media contained a small amount of water, conversion to the inorganic compound was initiated by hydrolysis in the solution, and humidity and oxygen from the air contributed to the final conversion. In other cases (depending for example on the composition of the polymer and inorganic precursor utilized), conversion may not be complete or even initiated until the nanofibers are subsequently exposed to a specific reagent.
- Figure 9A is an SEM micrograph of the overall composite fiber morphology.
- Figure 9B is a TEM micrograph of a single fiber from Figure 9A, revealing the phase separation of the PS and titania phases inside it, as indicated by the stripes of varying electron density.
- the nanofibers fabricated in this Example were subsequently placed in an oven set to 515 °C and calcined in air for eighteen hours. As shown in the SEM micrograph of Figure 9C, the PS was removed completely and only titania nanofibers 50-200 nm in diameter remained.
- Figure 9D is an X-ray diffraction (XRD) of the resulting Ti0 2 fibrils. All of the peaks shown in Figure 9D are referenced to specific anatase diffraction planes, demonstrating that the Ti0 2 fibrils are composed of the more catalytically-active anatase phase of titania.
- methods disclosed herein enable the formation of composite fibers from precursors in essentially a single step, without separate synthesis for any components.
- Methods disclosed herein enable the formation of composites with bi-continuous morphology, where each type of component may form a continuous structure over the length of the fiber. Such structures could be particularly useful for next generation solar cells and tissue engineering scaffolds.
- the sol-gel method allows for the creation of pure inorganic semiconductor nanofibers by removing the organic polymer component from the composites by calcinations at high temperature. This capability is promising for the creation of inexpensive, yet highly efficient, thin layer photovoltaics.
- the above-described nanospinning technology is extended to continuous processes.
- the continuous processes are based on antisolvent attrition under shear.
- the continuous processes are based on flow geometries provided by conduits (e.g., pipes).
- conduits e.g., pipes.
- a continuous flow of a viscous dispersion medium is established in a conduit and a flow of a fiber precursor solution is introduced into the flow of the dispersion medium.
- liquid flow through the conduit is maintained in the laminar regime, whereas in other implementations the flow may not be laminar.
- the fiber precursor solution may be a polymer solution, with or without an inorganic precursor, and with or without various additives.
- the dispersion medium may include an antisolvent for the polymer that is miscible with the solvent component of the polymer solution, and in some implementations may include additives. Examples of suitable polymers, polymer solvents, and antisolvents and other components of the dispersion medium are described earlier in this disclosure.
- the mechanisms of fiber formation may generally entail the transformation of liquid strands, streaks and/or droplets of the fiber precursor solution into proto- fibers and eventually into nanofibers of significant length. Consequently, the output of the conduit is a continuous stream of material that includes the as-formed insoluble nanofibers carried in the dispersion medium.
- the nanofibers may be formed at a rate of a few g/min (e.g., 2-5 g/min) or much higher, depending on how the apparatus is scaled up.
- the continuous output of nanofibers may facilitate any desired post-fabrication process.
- FIG 10 is a schematic view of an example of continuous shear flow apparatus (or device or system) 1000 that may be utilized for fabricating nanofibers in accordance with certain implementations of the continuous process.
- the apparatus 1000 generally includes a shear flow conduit (or first conduit, or main conduit) 1004 and a fiber precursor solution inlet 1008.
- the shear flow conduit 1004 includes an inlet 1012 into which the viscous dispersion medium flows from a suitable source (not shown) as indicated by an arrow 1014, and an outlet 1016 from which nanofibers carried in the dispersion medium are discharged as indicated by an arrow 1018.
- the outlet 1016 may be placed in communication with any suitable post-processing components or destination.
- the solution inlet 1008 may be any structure suitable for introducing a stream 1022 of fiber precursor solution into the shear flow conduit 1004 and thus into the flowing dispersion medium.
- the solution inlet 1008 may be or include an opening through the wall of the shear flow conduit 1004.
- the solution inlet 1008 may be or include a second conduit (or side conduit) 1026.
- the second conduit 1026 may be adjoined to the shear flow conduit 1004 in any suitable manner that results in the second conduit 1026 fluidly communicating with the shear flow conduit 1004.
- the second conduit 1026 has an inlet 1028 into which a fiber precursor solution as described above flows from a suitable source (not shown), and an outlet (or tip) 1032 from which the fiber precursor solution is discharged into the interior of the shear flow conduit 1004 and hence into the flowing dispersion medium.
- the second conduit 1026 may represent a conduit that is part of a pump or other means for flowing the fiber precursor solution into the shear flow conduit 1004.
- the second conduit 1026 may represent a needle mounted to a syringe pump, or a nozzle, cannula or capillary associated with the output side of some other type of small pump.
- the outlet 1032 of the second conduit may be flush with the opening in the wall of the shear flow conduit 1004, as illustrated in the example of Figure 10.
- the second conduit 1026 may extend through the opening such that the outlet 1032 is positioned at some distance in the interior of the shear flow conduit 1004.
- the second conduit 1026 is oriented orthogonal to the shear flow conduit 1004, although in other implementations may generally be oriented at any angle relative to the shear flow conduit 1004.
- the second conduit 1026 may be representative of one or more conduits. That is, two or more second conduits 1026 may be included to provide two or more respective injection points, and hence two or more introductory streams 1022 of fiber precursor solution, into the shear flow conduit 1004.
- two or more second conduits 1026 may be circumferentially spaced from each other relative to the central axis of the shear flow conduit 1004.
- two, three or more second conduits 1026 may be axially spaced from each other along the length of the shear flow conduit 1004 as shown in Figure 11. Multiple injection points may allow for increasing the throughput of the process and the uniformity of the fiber diameter distribution.
- the cross-sectional flow area of the shear flow conduit 1004 is elliptical.
- the terms “elliptical” and “ellipse” encompass the terms “circular” and “circle” with the understanding that a circle is an ellipse having an eccentricity of zero.
- the cross-sectional flow area is circular. Accordingly, in this case the shear flow conduit 1004 is configured as a pipe of circular cross-section.
- the cross-sectional flow area of the shear flow conduit 1004 may be polygonal (e.g., rectilinear, trapezoidal, etc.) or annular.
- the cross-sectional flow area of the shear flow conduit 1004 may be shaped as a slot or slit, i.e., a shape having parallel sides elongated in one dimension adjoined by opposing ends (with either rounded or angled corners) where the length between the opposing ends is significantly greater than the width between the parallel sides.
- the shear flow conduit 1004 is straight along the length from its inlet 1012 to its outlet 1016, while in other implementations it may be curved.
- the length of the shear flow conduit 1004 may range from less than 1 inch to 5 inches or greater, and the characteristic dimension of the flow area of the shear flow conduit 1004 (e.g., the inside diameter if circular, or the major axis if elliptical with an eccentricity greater than zero, or the length of the predominant side if polygonal or slot-shaped) may range from 0.1 to 1 inch or greater.
- the ratio of the length of the shear flow conduit 1004 to the characteristic dimension of its flow area may range from 10 to 600 or greater.
- the cross- sectional flow area of the second conduit 1026 may likewise be elliptical, polygonal, annular, or have some other shape such as a slot, and may be straight or curved.
- the dimensions of the second conduit 1026 are typically much less than those of the shear flow conduit 1004.
- a steady or pulsed flow of the dispersion medium is established through the shear flow conduit 1004.
- the steady flow through the shear flow conduit 1004 may be characterized as being Poiseuille flow.
- the flow through the shear flow conduit 1004 may be characterized by the dimensionless Reynolds number, which may be defined as follows:
- DR is the hydraulic diameter (m) of the shear flow conduit 1004 (the inside diameter in the case of a circular conduit)
- Q is the volumetric flow rate (m 3 /s)
- A is the cross- sectional area (m 2 ) of the shear flow conduit 1004
- v is the mean velocity of the liquid (m/s)
- ⁇ is the dynamic viscosity of the liquid (Pa x s, or kg/(m x s))
- p is the density of the liquid (kg/m 3 )
- v ⁇ / ⁇ is the kinematic viscosity of the liquid (m 2 /s).
- the flow of a liquid through a conduit of circular cross-section is considered laminar if its Reynolds number is less than about 2040.
- the Reynolds number characterizing the flow through the shear flow conduit 1004 may be within the laminar flow regime.
- Laminar flow is depicted by example in Figure 10, which schematically illustrates the radial position-dependent profiles of the velocity v and applied shear stress ⁇ of the dispersion medium. Velocity is at a minimum at the inside wall of the shear flow conduit 1004 and at a maximum at the central axis, while shear stress is at a maximum at the inside wall and at a minimum at the central axis.
- the flow through the shear flow conduit 1004 may be generally laminar while exhibiting localized turbulence at one or more locations with the shear flow conduit 1004.
- the flow may be within the transitional regime between pure laminar flow and pure turbulent flow.
- the flow may be appreciably turbulent.
- the viscosity of the dispersion medium may fall within the ranges specified earlier in this disclosure.
- the shear stress applied by the dispersion medium may also fall within the ranges specified earlier in this disclosure, although the pump utilized to supply the dispersion medium may be configured to achieve higher shear stresses (e.g., greater than 200 Pa) than a typical batch apparatus.
- the volumetric flow rate of the dispersion medium through the shear flow conduit 1004 may range from a few mL/sec to tens of L/min or greater.
- the flow rate may range from 30 mL/sec or greater. In another example, the flow rate may range from 35-75 L/min. In one non-limiting example, the pressure of the dispersion medium at the inlet 1012 of the shear flow conduit 1004 may range from 0 to 125 PSIG or higher.
- the fiber precursor solution is injected under pressure as a continuous stream into the flowing dispersion medium via the second conduit 1026 or other type of solution inlet 1008.
- the volumetric flow rate of the fiber precursor solution as it is introduced into the shear flow conduit 1004 may range from a few mL/min to several L/min or greater. In another example, the flow rate may range from 5 mL/min or higher. In another example, the flow rate may range from 1-5 L/min or higher.
- the pressure of the fiber precursor solution at the solution inlet 1008 may range from 0 to 125 PSIG or higher. The events associated with fiber formation then proceed as described above.
- Figure 10 schematically depicts a dispersed-phase component 1042 of the fiber precursor solution near the outlet 1032 of the second conduit 1026.
- the fiber precursor solution may be injected into the dispersion medium already in the form of a plurality of dispersed-phase components 1042, or as a continuous phase that breaks up into dispersed-phase components 1042 upon mixing with the dispersion medium.
- Figure 10 also schematically depicts a dispersed-phase component deforming under shear at 1044, and breaking up into smaller dispersed-phase components 1046, which elongate and stiffen into insoluble nanofibers 1048.
- the flow of fiber precursor solution into the dispersion medium may be maintained for any desired length of time.
- the flow of fiber precursor solution may continue until a desired amount of nanofibers are fabricated during a given production run.
- the fiber precursor solution may be flowed into the dispersion medium on a continuous basis, or in intervals (e.g., pulses of a desired duration).
- the flow rate of the dispersion medium and/or the flow rate (injection rate) of the fiber precursor solution may be constant (or substantially constant), or may be varied according to a desired profile (e.g., a ramped, sinusoidal, saw-tooth, square -wave or stepped flow rate).
- a variable speed injection of the fiber precursor solution may be performed to intentionally produce a wide variation in fiber diameters, which may be desirable in certain applications.
- a variation in fiber diameter may improve the mechanical strength of a stand-alone nonwoven article that lacks a stronger backing substrate.
- higher flow rates (or shear rates) of the dispersion medium, or lower injection rates of the fiber precursor solution result in fibers of smaller diameters.
- the precursor solution may be injected in the form of pre-made droplet dispersion into an appropriate intermediate medium that is miscible with the shear medium.
- the final diameter of the nanofibers may be controlled, and the polydispersity of the nanofibers may be reduced if desired, by controlling (or adjusting) the applied shear stress.
- shear stress may be controlled in a number of ways, such as by modifying the flow rate and/or viscosity of the dispersion medium.
- the viscosity of the dispersion medium may be modified in real time by, for example, changing its temperature or switching to a dispersion medium having a different composition.
- Shear stress may also be controlled by replacing the shear flow conduit 1004 for another conduit having a different geometry.
- the continuous process may be varied or modified in many of the same ways described above in conjunction with batch processes.
- the continuous process may be employed to produce composite fibers by incorporation of selected particles in the fiber precursor solution.
- the continuous process may be employed to produce composite fibers by incorporation of a selected inorganic precursor material in the fiber precursor solution.
- the batch processes upon shear-induced filament elongation of the dispersed-phase components (consisting of the mixture of polymer solution and inorganic precursor), as the polymer solvent diffuses out from the as-forming fibers phase separation occurs between the polymer and the inorganic precursor, leading to the formation of insoluble composite fibers.
- pure inorganic fibrils may be released from the composite fibers by performing an appropriate polymer removal technique as described above (e.g., calcination, chemical treatment, thermal oxidation, dissolution, enzymatic degradation, etc.). Examples of various additives and inorganic precursors are described earlier in this disclosure.
- nanofibers As the nanofibers are fabricated they may be transported from the outlet 1016 of the shear flow conduit 1004 to any suitable destination and subjected to any suitable post-fabrication processing steps.
- the non-uniform shear stress profile associated with Poiseuille flow may make the process somewhat sensitive to the location of injection of the polymer solution in the flowing dispersion medium.
- the second conduit 1026 associated with the solution inlet 1008 may extend into the shear flow conduit 1004 such that the outlet 1032 of the second conduit 1026 is positioned at a desired radial distance from the central axis of the shear flow conduit 1004.
- the position of the outlet 1032 of the second conduit 1026 may be selected so as to optimize fiber production in view of a given set of other operating parameters (e.g., compositions of the fiber precursor solution and dispersion medium, shear flow rate, injection rate, viscosity, shear stress to be applied, etc.).
- Figure 12 is a schematic view of another example of the continuous shear flow apparatus 1000 in which the second conduit 1026 is movable relative to the shear flow conduit 1004, as indicated. That is, the position of the outlet 1032 of the second conduit 1026 relative to the central axis of the shear flow conduit 1004 is adjustable. Any means or device suitable for moving the second conduit 1026 for this purpose may be provided, such as a linear actuator communicating with the second conduit 1026. A feed-through structure or other suitable interface between the second conduit 1026 and the opening through the wall of the shear flow conduit 1004 may be provided to maintain a fluid seal during movement of the second conduit 1026.
- the outlet 1032 of the second conduit 1026 is oriented such that the fiber precursor solution is injected in a direction orthogonal to the direction of the flow of dispersion medium, i.e., in a cross-flow direction.
- Figures 13 and 14 are schematic views of other examples of the continuous shear flow apparatus 1000, in which the second conduit 1026 has a bent geometry to provide alternative techniques for injecting the fiber precursor solution.
- the outlet 1032 of the second conduit 1026 is oriented such that the fiber precursor solution is injected in the same direction as the flow of dispersion medium, i.e., in a co-flow direction.
- the outlet 1032 of the second conduit 1026 is oriented such that the fiber precursor solution is injected in the direction opposing the flow of dispersion medium, i.e., in a counterflow direction, such that dispersed-phase components of the fiber precursor solution are sheared away from the injection point.
- the geometry of the shear flow conduit 1004 may be altered at one or more points along its length (typically downstream from the injection point(s)) to improve one or more process parameters.
- the initial geometry of the shear flow conduit 1004 may be transitioned to a more constricted geometry in which the cross-sectional flow area of the shear flow conduit 1004 is reduced in one or both dimensions.
- it may result in higher and/or more uniform shear stress being applied to the fiber precursor solution, and in turn may result in nanofibers of smaller and/or more uniform diameter.
- Figures 15-17 are schematic views of other examples of the continuous shear flow apparatus 1000, in which the geometry of the shear flow conduit 1004 is modified along the length of the shear flow conduit 1004.
- the shear flow conduit 1004 is configured such that its cross-sectional flow area is gradually reduced along the length, by tapering (reducing) the cross-section in the direction of flow.
- the outlet 1016 is smaller than the inlet 1012.
- the maximum cross-sectional flow area of the shear flow conduit 1004 is located at the inlet 1012, and the minimum cross-sectional flow area is located at the outlet 1016.
- the shear flow conduit 1004 may have a conical (or frustoconical) geometry.
- the shear flow conduit 1004 is configured such that its cross-sectional flow area is reduced one or more times in a step-wise fashion, by providing one or more transitional regions or sections at which the cross-sectional flow area tapers down.
- the outlet 1016 is smaller than the inlet 1012, the maximum cross-sectional flow area of the shear flow conduit is located at the inlet 1012, and the minimum cross-sectional flow area is located at the outlet 1016.
- the shear flow conduit 1004 includes a first section 1504 having a relatively large cross-sectional flow area, followed by a transitional section 1506 through which the cross-sectional flow area is reduced over some length, followed by a second section 1508 having a relatively small cross-sectional flow area (i.e., smaller than that of the first section 1504).
- the cross-sectional flow area may be constant over the respective lengths of the first section 1504 and the second section 1506, or may be tapered to a lesser degree than the transitional section 1506.
- the shear flow conduit 1004 may include more than one transitional section 1506 such that the cross-sectional flow area is stepped down more than one time.
- transitional sections 1506 may be more abrupt such as in the nature of shoulders.
- the tapered (e.g., conical) configuration of the transitional section 1506 illustrated in Figure 16 may facilitate maintaining smooth, laminar flow.
- the shear flow conduit 1004 is configured such that one of the dimensions of its cross-sectional flow area is significantly or predominantly changed relative to the other dimension.
- the shear flow conduit 1004 includes a first section 1604 having an elliptical (circular in the illustrated example) cross-sectional flow area, followed by a transitional section 1606, followed by a second section 1608 having a slot-shaped cross-sectional flow area. Defining the cross-sectional flow area by x- and y-axes, the transition to the slot-shaped second section 1608 is characterized by a significant reduction in the x-dimension.
- the transition to the slot-shaped second section 1608 may also be characterized by an increase in the y-dimension, although typically the change in the y- dimension will be of much less magnitude than the change in the x-dimension.
- the outlet 1016 may be smaller than the inlet 1012
- the maximum cross-sectional flow area of the shear flow conduit 1004 may be located at the inlet 1012
- the minimum cross-sectional flow area may be located at the outlet 1016.
- the cross-sectional flow area may be constant over the respective lengths of the first section 1604 and the second section 1608, or may be tapered to some degree.
- the fiber precursor solution may be flowed through a gap between concentric cones. At least one cone may be rotated relative to the other cone in a manner analogous to a colloidal mill. As another example, the fiber precursor solution may be flowed through a homogenizing device that includes a ball spring or other type of high-pressure or high-shear valve.
- a high-pressure continuous shear flow device was configured similar to that illustrated in Figure 10.
- the shear flow conduit was a stainless steel tube with a straight length and circular cross-section, having a length of four feet and an inside diameter of 4 mm.
- a triplex positive displacement pump (CAT Pumps, Minneapolis, MN, Model #2SF20ES) was placed in communication with the inlet of the shear flow conduit to supply the viscous dispersion medium. An inlet was formed through the wall of the shear flow conduit.
- a syringe pump (New Era Pump Systems Inc., Farming dale, NY, Model # NE- 1000) was placed in communication with the small inlet to pump the polymer solution.
- Initial optimization of the continuous process utilizing this device has yielded conditions where polymer fibers less than 500 nm in diameter are formed at rates of 20 g/min or greater and often significantly greater than 20 g/min.
- TABLE 1 below provides data from sample production runs utilizing the continuous device and employing polystyrene (PS), poly(methyl methacrylate) (PMMA), and cellulose acetate (CA) as the dispersion medium; and, for comparative purposes, data from a production run utilizing a batch device similar to that illustrated in Figure 1 and employing PS.
- PS polystyrene
- PMMA poly(methyl methacrylate)
- CA cellulose acetate
- the production rate is easily scalable to greater than 100 g/min in single-conduit configurations, and to multiples of 100 g/min or greater in multi-conduit configurations.
- higher injection rates of the fiber precursor solution result in higher fiber production, due to faster shearing, more fiber precursor solution being introduced, and/or higher concentration of fiber precursor solution in the flowing dispersion medium.
- the ratio of polymer solution to inorganic precursor may also be a factor in the production rate.
- Figure 18A is an SEM micrograph of nanofibers produced by a batch process utilizing an apparatus such as illustrated in Figure 1.
- Figures 18B, 18C and 18D are SEM micrographs of nanofibers produced by a continuous process utilizing an apparatus such as illustrated in Figure 10 and having the specifications just described above.
- the process conditions were as follows.
- Figure 18B 15% w/w PS in CHC1 3 , manually injected into an antisolvent of 70% glycerol : 20% EtOH : 10% water (w/w) flowing at a flow rate of 82 ml/s, washed with EtOH.
- Figure 18C 30% w/w PMMA in CHC1 3 , sheared in an antisolvent of 65%> glycerol : 25% EtOH : 10%> water (w/w) flowing at 90 psi, washed with EtOH.
- Figure 18D 10%> w/w CA in acetone, sheared in an antisolvent of 75% glycerol : 25% water (w/w) flowing at 90 psi, washed with water. [00161] TABLE 2 - Very fine Nano fiber Diameter Measurement Data
- polystyrene nano fibers having a median diameter of 155 nm have been synthesized using the continuous method.
- the nanofibers were formed in a very small diameter tube (3 mm inner diameter) at an antisolvent flow rate of 55 mL/sec and a very low polymer flowrate of 5 mL/min.
- the concentration of the polymer solvent was 12% w/w PS in tetrahydrofuran solvent, sheared in an antisolvent of 80% glycerol : 20% Water or 75% glycerol : 25% Water (w/w).
- Figure 19 shows SEM images (at different magnifications) of the very fine polystyrene nanfibers formed by the continuous process.
- Figure 20 shows fiber diameter distribution with frequency (%) plotted as a function of fiber diameter (nm). The plot indicates that all of the fine fibers have a diameter below 1 ⁇ (also see TABLE 2 above) and most of the fibers have a diameter ranging from 100 to 250 nm.
- the continuous processes may enable the fabrication of fine nanofibers to be carried out continuously, in the bulk of a fluid, by maintaining and controlling only the flow rates and pressures in the system, without direct input of mechanical energy or mechanical agitation in the shear process itself.
- Various implementations of the continuous nanofiber production process and associated device and system may enable high production capacity with simultaneous improvement of the level of process control and a decrease in manufacturing cost.
- Various implementations of the continuous process and associated device and system may provide one or more of the following advantages, in comparison with conventional continuous nanofiber production processes and batch processes.
- the continuous process may provide lower labor and operating costs, in that the continuous process eliminates the need to regularly stop, clean, start and recalibrate machinery, resulting in significant operational cost savings.
- the continuous process may provide more simplicity in that it utilizes a small-footprint device of low capital cost, and which is easy to operate and integrate with other manufacturers' existing continuous or in-line processes, while potentially producing orders of magnitude more fibers than batch methods.
- the simple design of the device may result in very low cost for machine fabrication and correspondingly low capital costs per unit production rate.
- the continuous process may provide higher reliability, low maintenance and less frequent recalibration after repair, as the continuous process utilizes no moving parts, apart from the pumps employed to transport and pressurize the liquids involved in the production process.
- the continuous process does not require the use of nozzles, and thus is not subject to clogging, which is particularly useful when adding additives is desired.
- the continuous process may provide continuous/instantaneous control and thus more uniform process conditions, as compared with batch processes in which process conditions may vary over the course of a production run.
- the production rate of the continuous process may easily be scaled up by, for example, increasing the diameter of the conduit utilized to flow the dispersion system, or operating several conduits in parallel.
- a single, high-capacity pump may be utilized to supply dispersion medium to several parallel conduits.
- the continuous process does not involve solvent evaporation, which is an environmental problem associated with dry-spinning and electrospinning techniques.
- various dispersion media suitable for the continuous process e.g., glycerin
- the system associated with the continuous process may be configured to provide feedback corrections that instantaneously correct for unforeseen events. A stoppage in a continuous production run will result in less waste than in a large batch process.
- the system associated with the continuous process may be configured to provide continuous process parameter and product quality monitoring and thus allow tight control over fiber specifications and uniformity.
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- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Manufacturing & Machinery (AREA)
- Ceramic Engineering (AREA)
- Inorganic Chemistry (AREA)
- Materials Engineering (AREA)
- Structural Engineering (AREA)
- Organic Chemistry (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Textile Engineering (AREA)
- General Chemical & Material Sciences (AREA)
- Dispersion Chemistry (AREA)
- Mechanical Engineering (AREA)
- Spinning Methods And Devices For Manufacturing Artificial Fibers (AREA)
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- Nonwoven Fabrics (AREA)
- Inorganic Fibers (AREA)
Abstract
Description
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Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/US2012/038162 WO2013172831A1 (en) | 2012-05-16 | 2012-05-16 | Apparatus and methods for fabricating nanofibers from sheared solutions under continuous flow |
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| Publication Number | Publication Date |
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| EP2850230A1 true EP2850230A1 (en) | 2015-03-25 |
| EP2850230A4 EP2850230A4 (en) | 2016-01-13 |
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| EP12877015.3A Withdrawn EP2850230A4 (en) | 2012-05-16 | 2012-05-16 | APPARATUS AND METHODS FOR MANUFACTURING NANOFIBRES FROM CONTINUOUS FLOW SHEET SOLUTIONS |
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| Country | Link |
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| EP (1) | EP2850230A4 (en) |
| JP (1) | JP2015523473A (en) |
| WO (1) | WO2013172831A1 (en) |
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| JP6238176B2 (en) * | 2013-03-06 | 2017-11-29 | ハイキュー プロプライエタリー リミテッド | Apparatus for forming nano-objects |
| WO2017147501A1 (en) | 2016-02-25 | 2017-08-31 | Massachusetts Institute Of Technology | Neuronal axon mimetics for in vitro analysis of neurological diseases, myelination, and drug screening |
| US11535826B2 (en) | 2017-05-10 | 2022-12-27 | Massachusetts Institute Of Technology | Engineered 3D-printed artificial axons |
| CN116411360A (en) * | 2021-12-30 | 2023-07-11 | 江阴博绯康默生物医药有限公司 | Stress spinning method, device and application of polymer micro-nano fiber material |
| CN114481351B (en) * | 2022-02-21 | 2023-07-21 | 青岛大学 | A kind of copolymer in-situ embedding CdSe quantum dot nano film and its preparation method and application |
| CN119082897A (en) * | 2024-08-29 | 2024-12-06 | 宁波大学 | Nano/micron particle polymer composite fiber and preparation method thereof |
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| JPS5038720A (en) * | 1973-08-08 | 1975-04-10 | ||
| GB2096586A (en) * | 1981-04-03 | 1982-10-20 | Ici Ltd | Inorganic fibres |
| US6835311B2 (en) * | 2002-01-31 | 2004-12-28 | Koslow Technologies Corporation | Microporous filter media, filtration systems containing same, and methods of making and using |
| JP2004285538A (en) * | 2003-03-25 | 2004-10-14 | Toray Ind Inc | Method for producing polymer alloy fiber and nanofiber |
| WO2006007393A1 (en) * | 2004-06-16 | 2006-01-19 | North Carolina State University | A process for preparing microrods using liquid-liquid dispersion |
| US20100013115A1 (en) * | 2006-06-06 | 2010-01-21 | Breslauer David N | Apparatus and Method for Forming Fibers |
| CN101854820B (en) * | 2007-11-13 | 2013-06-19 | 纳幕尔杜邦公司 | Breathable clothing with a drainage layer |
| CZ2008277A3 (en) * | 2008-05-06 | 2009-11-18 | Elmarco S.R.O. | Process for preparing inorganic nanofibers by electrostatic spinning |
| KR101201897B1 (en) * | 2008-12-12 | 2012-11-16 | 한국전자통신연구원 | Ultra High Sensitive Gas Sensors Using Semiconductor Oxide Nanofiber and Method for Preparing the Same |
| US8551378B2 (en) * | 2009-03-24 | 2013-10-08 | North Carolina State University | Nanospinning of polymer fibers from sheared solutions |
| KR101142852B1 (en) * | 2010-05-03 | 2012-05-08 | 한국과학기술연구원 | Ultrafine continuous fiber-based ceramic filter and preparation thereof |
-
2012
- 2012-05-16 EP EP12877015.3A patent/EP2850230A4/en not_active Withdrawn
- 2012-05-16 WO PCT/US2012/038162 patent/WO2013172831A1/en not_active Ceased
- 2012-05-16 JP JP2015512610A patent/JP2015523473A/en active Pending
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| JP2015523473A (en) | 2015-08-13 |
| WO2013172831A1 (en) | 2013-11-21 |
| EP2850230A4 (en) | 2016-01-13 |
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