METHOD OF MAKING FLEXIBLE CERAMIC FIBERS AND POLYMER COMPOSITE
20200318257 ยท 2020-10-08
Inventors
Cpc classification
C04B2235/781
CHEMISTRY; METALLURGY
C04B2235/3246
CHEMISTRY; METALLURGY
C04B35/63444
CHEMISTRY; METALLURGY
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B29C39/003
PERFORMING OPERATIONS; TRANSPORTING
C04B2235/3244
CHEMISTRY; METALLURGY
C04B2235/3284
CHEMISTRY; METALLURGY
C04B35/6225
CHEMISTRY; METALLURGY
C04B35/63448
CHEMISTRY; METALLURGY
D01D5/0038
TEXTILES; PAPER
C04B2235/963
CHEMISTRY; METALLURGY
C04B2235/526
CHEMISTRY; METALLURGY
C04B2235/3206
CHEMISTRY; METALLURGY
D01D5/003
TEXTILES; PAPER
D01D5/14
TEXTILES; PAPER
C04B2235/3418
CHEMISTRY; METALLURGY
C04B35/63472
CHEMISTRY; METALLURGY
C04B2235/3232
CHEMISTRY; METALLURGY
C04B2235/3217
CHEMISTRY; METALLURGY
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C70/42
PERFORMING OPERATIONS; TRANSPORTING
C04B2235/5264
CHEMISTRY; METALLURGY
B32B5/24
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C39/00
PERFORMING OPERATIONS; TRANSPORTING
C04B35/622
CHEMISTRY; METALLURGY
C08J5/24
CHEMISTRY; METALLURGY
D01D5/14
TEXTILES; PAPER
Abstract
The present application discloses and claims a method to make a flexible ceramic fibers (Flexiramics) and polymer composites. The resulting composite has an improved mechanical strength (tensile) when compared with the Flexiramics respective the nanofibers alone. Additionally a composite has better properties than the polymer alone such as lower fire retardancy, higher thermal conductivity and lower thermal expansion. Several different polymers can be used, both thermosets and thermoplastics. Flexiramics has unique physical characteristic and the composite materials can be used for numerous industrial and laboratory applications.
Claims
1. A process for making a flexible composite material comprising flexible ceramic nanofibers and a polymer, the process of making flexible ceramic nanofibers comprising the steps of: a) preparing a ceramic fiber precursor solution comprising (i) a dissolved metal precursor for ceramic selected from the group consisting of metallic ions and metal containing polymer and selected from the group consisting of Si.sup.4+, Zr.sup.4+, Ti4+, Y.sup.3+, Al.sup.3+, Zn.sup.2+, Mg.sup.2+, Pb.sup.4+, Ni.sup.2+, Sr.sup.2+, Ca.sup.2+, La.sup.3+; (ii) a polymer to increase the precursor solution viscosity, with the solid content of the precursor solution (polymer plus precursor) being above 5% by weight in order to obtain the required deposition, and (iii) solvent capable of providing the precursor solution a sufficiently high evaporation rate; b) allowing the dissolved metal precursors for ceramic to form a final metal oxide also known as ceramic; c) maintaining the precursor solution viscosity between 0.01 and 1000 Pascal-second at a shear rate of 0.01 to 1 s.sup.1 in order to spin usable fibers; d) spinning the precursor solution by forcespinning, electrospinning and blowspinning wherein the spinning parameters are tunable so that the spinning step results in polymeric fibers and with the spinning parameters being adaptable to each precursor solution; e) annealing the polymeric fibers obtained from the spinning process, the polymeric fibers comprising the metal precursors for ceramic, until all the organic content is burned out and the metallic ion oxidizes to form a ceramic; f) tuning and calibrating annealing parameters comprising heating and cooling rates, annealing temperature and dwell time consistent with a trapezium shaped thermal profile so a crystallinity comprising a crystal size of 1 to 100 nm and a smoothness of 0.05 to 5 nm of R.sub.q of the resulting 20 to 10000 nm thick fibers is obtained, the annealing parameters being distinct and specific with respect to each material composition; and g) setting the annealing temperature above the ceramic fiber crystallization point resulting in the formation of ceramic material.
2. The process for making the flexible composite material of claim 1, further comprising the step of: selecting the composition of the flexible ceramic nanofiber from the group consisting of yttria-stabilized zirconia, zirconia, titania, alumina, zinc oxide, silica, magnesium oxide and pervoskites.
3. The process for making the flexible composite material of claim 1, wherein the polymer is selected from the group consisting of polydimethylsiloxane, polyimide, polypropylene, polyethylene, polyether ether ketone, polyethylenimine, polyurethanes, cyanate esters, epoxy resins, polyesters, vinyl esters, urea-formaldehyde, allylics, polyphthalamide and polyphenylene sulfide, polytetrafluoroethylene, polybenzimidazole and the ceramic content is between 0.1 to 99.9% of ceramic/total weight resulting in a composite that retains a flexibility of nearly 0 bending radius.
4. The process for making the flexible composite material of claim 1, wherein the resulting flexible ceramic nanofibers comprises a fiber diameter that ranges between 20 and 10000 nanometers thus allowing bendability of the ceramic nanofibers, a fiber length being measurable up to at least 4 centimeters, a crystal size ranging from 1 to 100 nanometers, a fiber smoothness ranging from 0.05 to 5 nanometers R.sub.q and the fibers being disposed in a non-woven mat form in which the fibers are not physically attached to each other thus allowing the fibers to freely move and be extremely bendable at a macroscopic scale.
5. The process for making the flexible composite material comprising flexible ceramic nanofibers and a polymer of claim 1, further comprising the steps of: impregnating a flexible ceramic nanofiber sample by applying a polymer solution over the top of the sample that has been previously extended on a flat and rigid surface; allowing the ceramic nanofiber sample to be completely impregnated with the polymer solution via capillarity and gravity; thermally curing the polymer solution spread over the ceramic nanofiber sample by placing the sample into an oven at temperatures ranging between 20 C. and up to 300 C., noting that the curing step is achieved at temperatures as low as 20 C. with the only effect being longer curing times; the resulting cured sample being able to maintain a desired fibrous structure by applying the polymer as a thin coating on every individual ceramic nanofiber with the coating being in the range of a few tenths to a few hundred nanometers; e. achieving desired polymer/ceramic nanofiber ratios by tuning the viscosity of the polymeric solution used to embed the ceramic nanofiber;
6. The process for making the flexible composite material of claim 1, further comprising the steps of: a) casting the non-diluted or little diluted polymeric solution on the ceramic nanofibers on flat and rigid surfaces with thickness between 0.1 to 5.0 millimeters; b) depositing the ceramic nanofiber on top of the casted solution thus allowing the solution to permeate through the entire sample via capillarity forces; and c) thermally curing the resulting solution permeated sample by placing the sample into an oven at temperatures between 20 C. and 300 C. over a pre-determined curing time, and the cured sample comprising a polymer layer on one or on both sides of the composite with a thickness ranging from 1 m to 5 mm. d) achieving a dense composite with no porosity;
7. The process according to claim 5 with the following steps for single coated nanofibers: a) dissolving the thermal plastic in a solvent; b) impregnating the flexible ceramic nanofiber and c) increasing the temperature to evaporate the solvent, leaving the polymer behind as thin coating of the ceramic nanofibers; or for dense composites: d) melting the polymer on top or bottom of the ceramic nanofibers; e) applying some pressure and/or temperature for better infiltration of the polymer in the ceramic nanofiber matrix and f) decreasing the temperature to solidify the polymer.
8. The process for making the flexible composite material of claim 5, wherein the resulting composite material comprises more than 0% and less than 100% of ceramic/total weight by embedding the flexible ceramic nanofiber with polymeric solution of viscosity between 50 to 150 000 mPa s, with the coating step selected from the group consisting of casting a polymeric solution over a flat substrate by allowing impregnation by capillarity and/or gravity.
9. The process for making the flexible composite material of claim 5, wherein the resulting composite material comprises more than 0% and less than 100% of ceramic/total weight by casting a polymeric solution through a commercially available casting device selected from the group consisting of a pistol equipped with a slot die head, a casting knife, a spray coating gun and a doctor blade on top of the flexible ceramic filler thus allowing impregnation by capillarity.
10. The process for making the flexible composite material of claim 5, wherein the resulting composite material comprises more than 0% and less than 100% of ceramic/total weight by pressing and heating the solid polymer and the ceramic filler with typical pressures ranging between 1 and 10 kilo Newtons in a hot press melt.
11. The process for making the flexible composite material of claim 5, wherein the resulting composite material comprises more than 0% and less than 100% of ceramic/total weight by using thermosets requiring curing temperatures ranging from 20 to 300 C. and up to 500 C. and thermoplastics requiring melting temperatures up to 700 C., up to 400 C.
12. The process for making the flexible composite material of claim 5, wherein the resulting composite material is used to replace the currently used flexible printed circuit board substrates made using polyimide or polyimide with low ceramic fillers.
13. The process for making the flexible composite material of claim 5, wherein the resulting composite material is used to replace polymeric protective layers used for cable insulation such as polyethylene.
Description
GENERAL DESCRIPTION OF THE INVENTION
[0018] This invention describes the fabrication of composite materials with enhanced properties compared to the original materials. The said composition consists of ceramic micro and nanofibers, simply called ceramic nanofibers in the following, and polymers. The ratio polymer/ceramic ranges from >0% to <100%. The invention is directed to the production of flexible ceramic nanofibers according to claim 1 as well as a composite material or a film or generally a sample using the flexible ceramic nanofibers. In the latter case the flexible ceramic nanofibers form a flexible ceramic composite material as described in claims 5ff.
[0019] To produce the ceramic nano fibers the fabrication process starts by preparing the precursor solution according to a. of claim 1. The solution comprises the dissolved metal's precursor and the polymer to increase the solution's viscosity. To dissolve the metals, solvents like toluene or hexane are suitable because of their volatile character at room temperature. The solid content (polymer and precursor) must be above 5% by weight in the precursor solution (solvent plus metal plus polymer) in order to get a nice deposition. The (kinematic) viscosity of the solution (polymer plus metal's precursor/metal plus solvent) must be kept between 0.01 and 5000 Pascal-second (Pa.Math.s) at a shear rate of 0.01 s.sup.1 to 1 s.sup.1 preferably at a shear rate of 0.1 s.sup.1, in order to be able to spin proper fibers (compare c. in claim 1). The viscosity and shear rate is measured for example with a method and system disclosed in U.S. Pat. No. 8,881,577 B1.
[0020] The diameter of the spun fibers depends on the precursor and polymer content. I.e. it is possible to increase the fiber diameter by increasing the polymer and/or metal's precursor content in the solution.
[0021] The second stage of the applied procedure according to claim 1 is the spinning process which can be preferably forcespinning or electrospinning. Also blowspinning is possible. The parameters of the spinning process like diameter of the used needle, distance from a porous collector and injection rate of the solution (compare the already mentioned publication Fabrication of ZrO.sub.2 ceramic fiber mats . . . ) do not have a big influence on the flexibility of the spun fibers. Therefore they are set to get a continuous film or mat or generally a continuous sample of the polymeric fibers (the fibers leaving the electrospinning needle used for ejecting the solution) according to d. of claim 1.
[0022] The last step is the annealing according to e., f., g. and h. of claim 1. This stage is necessary because the fibers leaving the spinning process according to d. of claim 1 are not yet ceramic fibers. Due to the thermal treatment while annealing all the organic components of the polymeric fibers are burned out. Additionally the temperature treatment oxidizes the metal ions to form a ceramic. The temperature profile is preferably trapezium shaped over the time as depicted in
[0023] It is worth to note that the trapezium shaped temperature profile is only one preferred possibility. Because the heating and cooling rates could contain some plateaus. For example, it is possible to heat at 5 C./min until 150 C. are reached. Then the temperature is kept for 15 min. Afterwards, the temperature is increased up to 250 C. at a heating rate of 1 C./min, hold for 1 h and then increased at 5 C./min until the final temperature is reached.
[0024] The smoothness of the ceramic nanofibers depends on the annealing parameters as shown in
[0025] The second process according to the invention uses the spun (non-woven) ceramic nano fibers as a flexible ceramic filler or generally the ceramic sample (film or mat) made from the nano fibers according to the independent claims 5 and 6. The sample, i.e. the resulting non-woven mat, is shown in
[0026] The following detailed description mainly focuses on claims 5 ff. and corresponding examples. In these claims composites made of the samples produced from the ceramic nano fibers with the polymers are described in detail. The composites can be prepared with ceramic nano fibers and generally thermoplastics as the polymer. If the thermoplastic is melt, dense composites can be achieved. However, by diluting the polymer with the solvent, dense or single nano fiber coated composites can be achieved. Composites can also be made with thermosets, requiring curing temperatures. Depending on the amount of solvent added to the thermoset, also dense or single fiber coated composites can be obtained.
Detailed Description of the Invention
[0027] Objects, advantages and novel features, and further scope of applicability of the present invention will be set forth in part in the detailed description to follow, taken in conjunction with the accompanying drawings. The objects, advantages and novel features, and further scope of applicability of the present invention will become apparent to those skilled in the art upon examination of the following, or may be learned by practice of the invention. The objects and advantages of the invention may be realized and attained by means of the instrumentalities and combinations particularly pointed out in the appended claims.
[0028] A principal objective of the invention embodied in the present application is to make Flexiramics for the preparation of composite materials with several polymers to increase the properties of the polymer by adding the ceramic nanofibers. Besides, the composite has a higher mechanical strength (tensile strength) than the Flexiramics. The polymers can be thermosets (a curing temperature is needed to create a full polymer cross-linking, typically between 20 C. and 300 C.) or thermoplastics (a melting temperature is needed to soften and make the polymer fluid, typically between 100 C. and 400 C.). The thermoplastics can also be dissolved like the thermosets. Therefore not only a melting temperature is needed.
[0029] Specifically, Applicants have used polydimethylsiloxane (PDMS) as polymer to make the composites. Applicants have prepared PDMS/ceramic nanofiber composites ranging from weight ratios of 0.1 to 99.9% of ceramic/total weight of the final product. Applicants have achieved the high ratios by using diluted PDMS precursor solutions. Dilution percentages typically ranged from 70% to 90% in the solution. I. e., the final solution contains 10% to 30% volume percentage of polymer and 70% to 90% volume percentage solvent. The preferred solvents used to dilute the PDMS precursors were toluene and hexane. The viscosity of the resulting diluted solution was typically between 80 to 200 Millipascal per Second (mPa.Math.s).
[0030] Generally, to achieve that desired viscosity range, a pre-crosslinking at 60 C. was needed. Due to the low viscosity of the solution, the ceramic nanofibers can be easily impregnated by applying the solution preferably over the top of a sample, i.e. the ceramic nanofibers, extended on a flat and rigid surface as described in claim 5. This can be achieved using a casting knife or a spray coating gun. Due to capillarity and gravity, the ceramic nano fibers become completely impregnated with the solution.
[0031] Next, the polymer was thermally cured by placing the sample, i.e. the ceramic nano fibers impregnated with the PDMS precursor solution, into an oven at temperatures between 60 C. and 90 C. The curing step can be achieved at temperatures as low as 20 C. with the only effect being longer curing times. The resulting composite (the sample of the ceramic nanofibers impregnated with the polymer) maintained the desired fibrous structure due to the fact that Applicants applied the PDMS as a thin coating on every individual ceramic nanofiber. In the preferred embodiment of the invention, the coating was in the range of a few tenths to a few hundred nanometers.
[0032] Applicants achieved the desired low ceramic nano fiber/total weight ratios by embedding the ceramic fibers in non-diluted PDMS precursor solutions. The non-diluted PDMS precursor solutions preferred viscosity range between 1000 to 150000 (mPa.Math.s), preferably 1500 and 15000 (mPa.Math.s). Applicants then casted the non-diluted solutions on flat and rigid surfaces with preferred thickness between 0.1 to 5.0 millimeters (mm) as described in claim 6.
[0033] Next, the ceramic nanofibers were deposited on top of the casted solution, thus allowing the solution to permeate through the entire sample, i.e. the entire ceramic nanofibers, via capillarity forces.
[0034] Next, the sample was thermally cured by placing it into an oven at temperatures between 60 C. and 90 C. The curing time was inversely proportional to the curing temperature. For example, at 60 C., the curing time was one (1) hour.
[0035] The cured sample comprises a thick PDMS layer on one side (between 0.1 to 5.0 mm), and a thin PDMS layer of a few micrometers on the other side, typically from 1 m to 5 mm. It is also possible that the cured composite comprises in one or both sides a PDMS layer of a typical thickness of 1 m to 5 mm. It is also possible that none of the sides comprises a PDMS layer if the casted thickness contains just the exact amount of PDMS to infiltrate the ceramic nanofibers.
[0036] In an alternative embodiment of the invention, Applicants prepared composites with thicker PDMS layers on both sides of the composite by casting an extra PDMS precursor solution layer on top of existing PDMS layers. Applicants can easily control the thickness of that layer by modifying the viscosity of the PDMS precursor solution. In order to increase the viscosity of the PDMS precursor solution, short thermal treatments at moderate temperature (between 30 C. to 60 C.) can be performed. Alternatively, Applicants can decrease the viscosity of the PDMS by mixing small amounts of toluene or hexane (1% to 99 vol %) with the PDMS precursor solution.
[0037] In yet another alternative embodiment of the invention, polyethylene (PE) was used to prepare composite materials with the ceramic nanofibers. In that embodiment, PE was melted at temperature above its melting point of 135 C. The melted PE was then applied on top of the ceramic nanofibers applying sufficient pressure (typically between 1 to 10 kilo Newtons) for a complete embedding of the PE onto the ceramic nano fibers. This was done using a hot-press melt equipment, which resulted in the application of sufficient pressure. The composite was then allowed to cool down to room temperature resulting in different PE thicknesses on the surface of the composite ranging from 0.1 to 5.0 mm. The prior calibration of the amount of PE results in being able to control the thickness of the PE layer. Therefore, a wide range of PE/ceramic nano fibers/total weight ratios can be achieved.
[0038] Another embodiment of the invention can be achieved by double side coating after the deposition of the first PE layer. The thickness of the new PE layers can be controlled by adjusting the opening of the slot die of a pistol equipment and by manipulating the viscosity of the molten PE by increasing or decreasing the temperature used to melt the polymer. These controlling steps result in a broad range of PE/ceramic nano fibers ratios that can be predictably modified depending on the application.
[0039] Another embodiment of the invention comprises the use of polyurethane (PUR) for making composite materials. In that embodiment, the PUR precursor is melted under temperatures above 200 C. The melted PUR precursor is then applied on top (or on bottom) of the ceramic nanofibers using a pistol equipment with a slot die head. Next, the resulting PUR precursor/ceramic nanofibers sample is thermally cured inside an oven at approximately 100 C. The resulting composite embodiment has a thickness ranging typically from 1 m to a few mm, preferably from 0.1 mm to 5.0 mm.
[0040] Another embodiment of the invention can be obtained by using Polyimide (PI) as the polymeric material for the fabrication of composite materials with the ceramic nano fibers. In order to obtain that embodiment of the invention, Applicants dissolved poly(amic acid) in N-Methyl-2-pyrrolidone (NMP) resulting in the PI precursor solution with typical viscosities of 1000 to 10000 mPa.Math.s. In order to obtain alternative embodiments of the precursor solution, Applicants used solvents like NMP and -butyrolactone. The solution was then casted on a flat and solid surface and the ceramic nanofibers were deposited on the top, thus allowing the solution to penetrate through the entire sample, i.e. the ceramic nanofibers, via capillarity forces. Next, the sample, i. e. the ceramic nanofibers impregnated with the PI precursor solution, was dried typically at 80 C. for 1 h and then was thermally dried by applying heat typically up to 300 C. using a hot plate or a furnace, typically for 30 minutes. Upon allowing the composite to cool down, it presents polyimide films on both sides of the ceramic nanofibers, typically ranging from 1 to 100 m. That thickness can be modified or suppressed by casting thinner or thicker PI precursor solution films.
[0041] The method of the present invention can be executed using a pistol with a slot die head, as well as other techniques like the doctor blade or the casting knife. The resulting composites were dense but the fibrous structure of the ceramic nano fibers can be maintained by diluting the poly(amic acid) respective PI with higher amounts of solvents in order to decrease the viscosity down to a range of e.g. 50 to 300 mPa.Math.s. Then, ceramic nanofibers could be individually coated with thin polyimide coatings as described above for the PDMS.
[0042] These composite materials can also be prepared with different polymers (thermoplastics or thermosets) like polypropylene (PP), polyether ether ketone (PEEK), Polyethylenimine (PEI), cyanate esters, epoxy resins, polyesters, vinyl esters, urea-formaldehyde, allylics, polyphthalamide (PPA), polyphenylene sulfide (PPS) and polytetrafluoroethylene (PTFE) and polybenzimidazole (PBI) as mentioned in claim 3. The techniques applied would be the same than before, namely, spray coating, pistol with slot head die, doctor blade, casting knife and hot press melt.
[0043] This composite materials retain their flexibility and can be bent to very low bending radius without breaking or being damaged, even when the polymeric content does not even exceed 5% per weight in the final product. Additionally, these composites present a great enhancement of the thermal properties as compared with the polymers themselves. For example, the composite made with PDMS catches fire two times slower than freestanding PDMS foil (of the same thickness) when exposed to a methane flame. The composite made with PE can even retard the flame at least twice and up to one order of magnitude more than free standing PE of the same thickness. Furthermore, when the composite material is burning, there is no dripping of any part, preventing the fire to spread. Instead, a protective crust is formed. Another example to illustrate the excellent thermal properties of the composite material prepared with polyimide is that it can resist exposures at temperatures as high as 500 C. without losing flexibility and flatness when the ceramic content is typically 25% per weight in the final product. Instead, a freestanding polyimide film of the same thickness, starts wrinkling at temperatures around 300 C. or higher because the glass transition of the polyimide is surpassed. In general, the ceramic nano fibers can be used to create bendable composites with higher thermal endurance and better flame fire retardancy properties. The ratio of ceramic/total weight in the final product can range from very low, being a dense polymer film with very low content of ceramic fibers, to very high, being a porous films (non-woven) with the ceramic fibers individually coated with polymer.
[0044] The ceramic nanofibers of the present invention are flexible in a macroscopic scale (as a mat) and at a single fiber scale. The mechanical properties of the material of the present invention can be attributed to several factors: [0045] The elongated shape comprising a fiber diameter that ranged between 20-10000 nm [0046] thus allowing bendability; [0047] The fiber lengths are measurable up to 4 cm, however, they are presumed to be longer; [0048] Small crystal sizes ranging from 1 to 100 nm with smaller grains allowing increased ductility; [0049] Fiber smoothness ranging between 0.05 and 5 nm Root Mean Square Roughness (Rq); and [0050] The fibers are not physically attached to each other in the non-woven mat form of the material of the present invention which allows the fibers to freely move and have a more bendable material at a macroscopic scale.
[0051] The composite materials of the present invention comprising non-woven ceramic micro and nanofibers (Flexiramics) and polyimide present optimal thermal stability. At exposures at temperature as high as 400 C. to 500 C., i.e. an exposure for several minutes, the composite does not wrinkle nor loses flexibility and therefore, increases the temperature threshold at which it can be used. Additionally, the material is light and has a low density (10-40 g/m.sup.3).
[0052] The composite materials of the present invention comprising Flexiramic and polyethylene present optimal fire retarding properties. Applicants have found that it takes at least twice as long for that material to start catching fire when compared with materials of the prior art being used for similar purposes. Additionally, once the material of the present invention starts combusting, no parts drip and the fire can be contained because a crust of the calcined material is formed and held onto the fibers. That crust also prevents the flame from propagating through the material.
Description of the Preferred Embodiment of the Invention
[0053] The preferred embodiment of the present invention describes the preparation of the ceramic nano fibers. The method comprising the following steps:
[0054] 1. Preparation of a precursor solution, the precursor solution comprising the metallic ions or inorganic polymer (sol) that will form the final metal oxide (ceramic), as well as polymer to increase the viscosity. [0055] a. Sol-gel parameters can be used to increase the viscosity of the solution but sol-gels are not fully necessary since the viscosity can also be modified by the use of additives. [0056] b. Bigger fiber diameters can be achieved by increasing the polymer content and/or precursor content. This must be tuned to achieve the desired fiber diameters. [0057] c. The material's viscosity must be kept between 0.01 and 1000 Pascal second (Pa-s) at a shear rate of preferably 0.1 s.sup.1 in order to spin usable fibers. [0058] d. The solid content (polymer plus precursor) must be above 5% per weight in order to obtain the required deposition. [0059] e. The utilized solvents must be carefully chosen in order to provide an evaporation rate that is high enough. This can be done, but is not limited to, by mixing water with alcohols as it increases the evaporation rate.
[0060] 2. Spinning the precursor solution by using forcespinning or electrospinning or blowspinning. [0061] a. The spinning parameters have little or no effect on the flexibility of the resulting polymeric fiber. [0062] b. Instead, the spinning parameters are tunable so that the spinning step can result in a continuous film or polymeric fiber. This must be adapted to each different solution.
[0063] 3. Annealing the fibers obtained from the spinning process which are not ceramic after the spinning Instead, the spun fibers are polymeric fibers comprising ionic metal or inorganic polymer. [0064] a. Annealing the fibers until all the organic content is burned out and the metal ions oxidize to form a ceramic. [0065] b. A typical thermal profile is generated as shown in
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0069] The accompanying drawings, which are incorporated into and form a part of the specification, illustrate an embodiment of the present invention and, together with the description, serve to explain the principles of the invention. The drawings are only for the purpose of illustrating a preferred embodiment of the invention and are not to be construed as limiting the invention. The scope of the invention can only be limited by specific limitations contained in the appended claims.
[0070] Simple sketches that allow one not necessarily familiar with the technical area to which
this application pertains to gain a visual understanding of the invention.
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