| Literature DB >> 29077074 |
Hamid Esfahani1, Rajan Jose2, Seeram Ramakrishna3.
Abstract
Ceramic nanofibers (NFs) have recently been developed for advanced applications due to their unique properties. In this arEntities:
Keywords: electrospinning; materials characterization; nano ceramic fibers; nano fabrication; properties of ceramic materials
Year: 2017 PMID: 29077074 PMCID: PMC5706185 DOI: 10.3390/ma10111238
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Schematic electrospinning methods.
Figure 2FESEM images of (a) electrospun PA6 nanofibers (NFs); and (b) decorated by hydroxyapatite (HA) nanoparticles via electrospinning method. Reprinted with permission from Ref. [16]. Copyright © 2015 Published by Elsevier B.V.
Figure 3Flowchart of ceramic and ceramic/polymer NFs fabrication via electrospinning method.
Figure 4TEM images of Cu NPs inside a PAN NF. Reprinted with permission from Ref. [20]. Copyright © The Author(s) 2011.
Recent developments in single phase electrospun ceramic NFs.
| Ceramic Fiber | Ceramic Precursor(s) | Polymer Reagent(s) | Calcination Condition(s) | Morphology of Fiber | Application | Ref. |
|---|---|---|---|---|---|---|
| Al2O3 | aluminum isopropoxide | PVP | 500–1100 °C | Straight | Surface adsorption | [ |
| Al2O3 | Al2Cl(OH)5·2.5H2O, | PVA | 1100 °C–1 h | Straight | Reinforcement | [ |
| Al2O3 with CaO–SiO2 | AlCl3·6H2O, Ca(NO3)2·4H2O, Si(OC2H5)4 | PVP | 600, 800, 1300 °C–1 h | Straight | Insulation area | [ |
| BaFe12O19 | Ba(NO3)2, Fe(NO3)3·9H2O | PVP | 800 °C–2 h | Hollow fiber | Switching and sensing applications, Electro-magnetic materials, microwave absorber | [ |
| BaZrO3 | Barium acetate, zirconium 2,4-pentadionate | PVP | 800 °C–2 h | Straight | Superconductor magnets, motors and generators | [ |
| BiFeO3 | Bi(NO3)3·5H2O, Fe(NO3)3·H2O | PVP | 350 °C–0.5 h (Argon atmosphere) | Composed of NPs together | Photocatalytic activity | [ |
| Ba-stabilized Bi-Co oxide | cobalt (II) acetate, barium acetate, bismuth (III) acetate | PVA | 850 °C–2 h | Straight | Thermoelectric application | [ |
| MnO2 | KMnO4 | PAN | 1000 °C–2 h | Diversified texture | Electrochemical Capacitors | [ |
| CaCu3Ti4O12 | Cupric acetate, calcium nitrate, tetrabutyl Titanate, 2,2-bis(4-cyanatophenyl) isopropylidene | PVP | 600–1130 °C | Straight with beads | Dielectric | [ |
| CaCu3Ti4O12 | Ti(C4H9O)4, Cu(NO3)2·3H2O, CuCl2, Ca(NO3)2·4H2O, CaCl2 | PVP | 900 °C–4 h | Straight | Fillers in dielectric | [ |
| CdTiO3 | Cd(CH3COO)2·2H2O, TIP | PVA | 800 °C | Smooth and uniform surface | Removal of industrial pollutants and noxious wastes | [ |
| Ce0.96Fe0.04O2 | Ce(NO3)3·6H2O, Fe(NO3)3·9H2O | PVP | 500, 600, 700, and 800 °C for 2 h | Straight | Magnetic applications | [ |
| CexSm1−xO2 | Ce(NO3)3·6H2O, Sm(NO3)3·6H2O | PVP | 500 °C–2 h | Short fiber | Energy industrial applications | [ |
| CoFe2O4 | Co(NO3)2·6H2O, Fe(NO3)3·9H2O | PVA | 300, 500 and 800·°C for 4 h | Straight | Magnetic recording device | [ |
| CuCr2O4 | Cupric nitrate and Chromium acetate | PVP | 500–800 °C–2 h | Particles sintered after heat treatment | Catalysts | [ |
| Cu2ZnSnS4 | Cu(CH3COO)2, Zn(CH3COO)2, SnCl2, thiourea | PVB | 150–550 °C, 1–48 h | Sintered after heat treatment, Laminated, Sintered particles | Photovoltaic cell | [ |
| GdBaCo2O5+δ | Gd(NO3)3·6H2O, Ba(NO3)2, Co(NO3)2·6H2O | PVP | 600, 900 and 1000 °C for 5 h | Sintered particles | Solid oxide fuel cell | [ |
| GeO2/SnO2 | Tin(II) chloride, germanium oxid | PVP | 500 °C–2 h | Straight | Lithium-ion batteries | [ |
| HA | Ca(NO3)2·4H2O, P2O5 | PVP | 500–700 °C–0.5 h | Straight | Biomedical | [ |
| Pd/Cu doped in CeO2 | Ce(NO3)3·6H2O, Pd(NO3)2·2H2O, Cu(NO3)2·2H2O | PVP | 550 °C | Straight and smooth | Water-Gas Shift (WGS) catalysis | [ |
| LaCoO3 | La(NO3)3 6H2O, Co(NO3)2·6H2O | PVP | 200, 400, and 700 °C–2 h | Short fiber | Rechargeable Zn–air batteries | [ |
| La2CuO4 | La(NO3)3·6H2O, Cu(NO3)2·2.5H2O | PVP | 600 °C for 5 h | Straight | Humidity sensor | [ |
| LaMnO3 | La(NO3)3·6H2O, Mn(Ac)2·4H2O | PVP | 600 °C–3 h | Bend fibers after heat treatment | Sensors | [ |
| La0.7Sr0.3MnO3 | LaN3O9·6H2O, Sr (NO3)2, Mn(NO3)2·4H2O | PVP | 500, 700, and 900 °C for 7 h | Continuous structures, packed particles | Magnetic properties | [ |
| La2Zr2O7 | Basic zirconium carbonate, La(NO3)3·6H2O, LaCl3·6H2O, La(CH3COO)3·4H2O | PVA | 600 °C–2 h | Sintered particles to form a fiber | High temperature insulation applications | [ |
| Li1.6Al0.6MnO4 doped Al | Lithium acetate, manganese nitrate and aluminum nitrate | PVA and PVP | 500,700,900 °C–2 h | Short and Straight fiber, relatively parallel | Lithium adsorption from polluted effluents | [ |
| Ce doped Lu2SiO5 | Lu(NO3)3, Ce(NO3)3, Si(OC2H5)4, | PVB | 1000–1200 °C–4 h | Long straight fiber | Luminescent | [ |
| Mullite | Al(C3H7O)3, Al(NO3)3·9H2O, Si(OC2H5)4 | Sol-Gel | 1000–1400 °C–2 h | Uniform-with beads | Reinforcement in ceramic matrix | [ |
| Mullite | C9H21O3Al, (Al(NO3) 9H2O, SiC8H20O4 | PVB | 800–1400 °C–2 h | Straight | High temperature application, | [ |
| Mn2O3 and Mn3O4 | Manganese nitrate 4-hydrat | PVA | 500, 700 and 1000 °C–1 h | Straight 3D porous random | Catalysis, ion exchange, molecular adsorption, biosensors, wastewater treatment and supercapacitors | [ |
| Nb2O5 | Metallic niobium powder | PVP | 600–700 °C | Non-woven mat | Photocatalysis applications | [ |
| NiO | Ni(NO3)2 | PVP | 400, 500 °C–1 h | Sintered particles, or lamellar after sintering | Gas sensor, Catalyst | [ |
| NiO | Nickel (II) acetate tetrahydrate | SAN | 500–700 °C–2 h | Straight | Thermistor | [ |
| Ni/Al2O3 | Ni(NO3)2·6H2O, Al(NO3)3·9H2O | PVP | 700 to 1000 °C | Straight and smooth after calcination | Catalyst | [ |
| Pr0.4Sr0.6Co0.2Fe0.7Nb0.1O3−δ | Pr(NO3)3·6H2O, Sr(NO3)2, Fe(NO3)3. 9H2O, Co(NO3)3·6H2O, H3[NbO(C2O4)3] | PVP | 700 to 1000 °C–2 h | Short fibers | Solid oxide fuel cells | [ |
| SiO2 | Accuglass | PVP | 400 °C several times | Bead shape fibers after heat treatment | Surface planarization | [ |
| Silicon oxycarbide (SiOC) | Silicone resins (MK and H44 resin) | PVP | 1000 °C–2 h | Straight and smooth | Mechanical application | [ |
| Silicon oxycarbide (SiOC) doped Ag | Silver oxide or silver acetate, MK (polymethyl-silsesquioxane preceramic polymer) | PVP | 1000 °C–2 h | Straight, Ag inside the fibers | Antibacterial activity, Gas permeability | [ |
| SiO2 doped Bi2MoO6 | (NH4)6Mo7O24·4H2O, Bi(NO3)3·5H2O | PVP | 500–750 °C–2 h | Broken short fibers | Photocatalytic | [ |
| SnO2 | Tin acetate | PVAc | 450 °C, 0.5 h | Regular fibrillar structure | Gas sensing | [ |
| SnO2 doped Al | SnCl2·2H2O, Al(NO3)3·9H2O | PVP | 600 °C–5 h | Bead shape fibers sintered after heat treatment | Hydrogen sensor | [ |
| SnO2 doped Ce | SnCl2·2H2O, Ce(NO3)3·6H2O | PVP | 600 °C–5 h | Hollow fibers | Ethanol gas sensor | [ |
| SnO2 doped Eu | SnCl2·2H2O, Eu(NO3)3·6H2O | PVP | 600 °C–5 h | Straight and smooth after calcination | Acetone sensor | [ |
| Sm2O3 | Samarium carbonate | PVA | 1000 °C–2 h | Sintered particles forming a fiber | Optical film, insulator | [ |
| SrFe12O19 | Sr(NO3)2, Fe(NO3)3·9H2O | PVP | 750 °C–1.5 h | Short and relatively dense after heat treatment | Photocatalytic adsorption | [ |
| TiO2 | Butyl titanate | PVP | 550 °C–2 h | Smooth | Photocatalyst | [ |
| TiO2 | Titanium (IV) n-butoxide (TNBT) | PVP | 500 °C–6 h | Depend on humidity varied from short to long fibers | Photocatalyst | [ |
| TiO2 | Ti(OiPr)4 | Sol-Gel | 500 °C–3 h | Short fibers | Electrochemical detection | [ |
| WO3 | WCl6, PVP | 300–500 °C–1 h | Short fiber | NO2 gas responses | [ | |
| WO3 | (NH4)6[H2W12O40] nH2O | PVP | 500, 550, 600 °C–1 h | Short fiber with sintered NPs | N.A. | [ |
| Yb2O3 | Ytterbium chloride | CA | 550 °C to 850 °C–2 h | Particle and agglomerate before and after calcination | fiber amplifiers, fiber optic technologies and lasers | [ |
| ZnO | Zinc acetate dehydrate | PVA | 500 and 700 °C–4 h | Straight, Fluffy surface | Biosensors | [ |
| ZnO | Zinc acetate dehydrate | PVA | 500 °C–2 h | Straight, Random | Low frequency AC electric fields | [ |
| ZnO | Zinc nitrate hexahydrate | PVP | 500 °C–3 h | Straight | Explosive nitro-compounds sensor | [ |
| ZnO/BaO | Zinc acetate dehydrate barium acetate extra pure | PVA | 850 °C–8 h | Straight | Electrical and non-linear optical | [ |
| ZnO/SnO2 | Zn(NO3)2·6H2O, SnCl4·5H2O | PAN | 700–900 °C–3 h | Rough surface | Lithium-ion anode | [ |
| ZnO doped Mg | Zinc acetate, magnesium acetate | PVA | 300–600 °C–3 h | Sintered particles | Semiconductor | [ |
| ZnO doped Cu | Zinc acetate, copper acetate | PVP | 450 °C–3 h | Straight | Thermal and electrical conductivity, and optical properties | [ |
| ZrC | Polyzirconoxane (PZO) | PAN | 1400 °C–2 h | Core–shell, homogeneous | Ultra high temperature ceramics | [ |
| ZrO2 | Zirconium n-propoxide | PVA | 600 to 1050 °C–4 h | Non-woven fibers | Thermal barrier coatings | [ |
| ZrO2 (YSZ) | Zirconium oxychloride, Yttrium trinitrate hexahydrate | PVP | 500–1500 °C | Bead shape fibers after heat treatment | Catalytic activity | [ |
| ZrO2 (8YSZ) | ZrOCl2·8H2O, Y2O3 | PVP | 600–1400 °C–12 h | Hollow fibers | Catalytic combustion | [ |
Recent products of electrspun composite ceramic/polymer NFs and their applications.
| Ceramic | Polymer Type | Application | Ref |
|---|---|---|---|
| Graphene (G) | PANI, PS, DMF | Electrochemical sensor | [ |
| TiO2 | PVP | Photo catalyst | [ |
| Al2O3 | PVDF-CTFE | Lithium-ion batteries | [ |
| Al2O3 | PLA | Biomedical Application | [ |
| ZrO2/Y2O3 | PAN | Shielding in electronic device | [ |
| HAp | PHBV | Tissue engineering | [ |
| CNT | PVDF | Strain sensors | [ |
| SiO2, Al2O3 or BaTiO3 | P(VdF-HFP) | Lithium-ion batteries | [ |
| BaTiO3 | PVDF | Piezoelectric materials Energy harvesting | [ |
| Boehmite (AlOOH) | PA6, PCL | Removal of heavy metal ions | [ |
| CuO | PU | Electrical application | [ |
| Sepiolite (Si12O30Mg8(OH)4–(H2O)4.8H2O) | PVB | Mechanical integrity in real applications | [ |
Figure 5Schematic illustration of microstructural evolution in NiO NFs as a function of NiAc/PVA ratio and high temperature calcination. Reprinted with permission from Ref. [99]. Copyright © 2009 Elsevier Ltd. and Techna Group S.r.l.
Figure 6Image and SEM micrograph of (Pd/Cu) doped ceria in polyvinylpyrrolidone (PVP) matrix calcined at different heating rate; (a,c) rapid and (b,d) slow. Reprinted with permission from Ref. [41]. Copyright © 2014 Elsevier B.V.
Figure 7Micrographs of ceramic fibers synthesized by electrospinning method. (a) HA NFs calcined at 700 °C. Reprinted with permission from Ref. [40]; (b) Pr0.4Sr0.6Co0.2Fe0.7Nb0.1O3−δ NFs calcined at 800 °C. Reprinted with permission from Ref. [55]; (c) MnO2 NFs calcined at 1000 °C. Reprinted with permission from Ref. [29]; (d) CaCu3Ti4O12 NFs calcined at 900 °C. Reprinted with permission from Ref. [97]; (e) Al2O3 NF calcined at 800 °C. Reprinted with permission from Ref. [24]; (f) BaFe12O19 NFs calcined at 800 °C. Reprinted with permission from Ref. [25]; (g) CdTiO3 NFs calcined at 600 °C. Reprinted with permission from Ref. [32]; (h) La2Zr2O7 NFs calcined at 1400 °C. Reprinted with permission from Ref. [46]; (i) NiO NFs calcined at 400 °C. Reprinted with permission from Ref. [52]; (j) SiO2 NFs calcined at 400 °C. Reprinted with permission from Ref. [56]; (k) TiO2 NFs calcined at 500 °C. Reprinted with permission from Ref. [68]; (l) Mullite NFs calcined at 1200 °C. Reprinted with permission from Ref. [49]; (m) ZrC NFs after pyrolysis at 1400 °C. Reprinted with permission from Ref. [78]; and (n) 8YSZ NFs calcined at 1400 °C. Reprinted with permission from Ref. [81]. [40] Copyright © 2011 Elsevier B.V. [55] Copyright © 2016 Elsevier Ltd. and Techna Group S.r.l. [29] Copyright © 2011 Elsevier Ltd. [97] Copyright & 2015 Elsevier Ltd. and Techna Group S.r.l. [24] Copyright © 2012 Elsevier B.V. [25] Copyright © 2016 Elsevier B.V. [32] Copyright © 2013 Elsevier Ltd. and Techna Group S.r.l. [46] Copyright © 2016 Elsevier Ltd. and Techna Group S.r.l. [52] Copyright © 2014 Elsevier Ltd. and Techna Group S.r.l. [56] Copyright © 2015 Elsevier Ltd. [68] Copyright © 2014 Elsevier B.V. [49] Copyright © 2013 Elsevier Ltd. and Techna Group S.r.l. [78] Copyright © 2014 Elsevier Ltd. and Techna Group S.r.l. [81] Copyright © 2007 Elsevier B.V.
Figure 8SEM images of CaCu3Ti4O12 composite NFs calcined at different temperatures. Reprinted with permission from Ref. [30]. Copyright © 2012 Elsevier B.V.
Figure 9SEM image PVA/ Li1.2Ni0.17Co0.17Mn0.5O2 pristine NFs changes to nanoplates with an open porous structure after calcination and finally transform to flower-like microstructure at elevated temperature (a–d); and (e) schematic illustration of the growth mechanism of flower-like Li1.2Ni0.17Co0.17Mn0.5O2 microstructures. Reprinted with permission from Ref. [107]. Copyright © 2013 Elsevier Ltd. and Techna Group S.r.l.
Figure 10FESEM micrographs of hydrothermal process carried out on ZnO NFs at different conditions; (a) 1 min electrospinning and 1 h autoclaving (b) 2 min electrospinning and 2 h autoclaving (c) 10 min electrospinning and 2 h autoclaving (d) 1 min electrospinning and 8 h autoclaving. Reprinted with permission from Ref. [111]. Copyright © 2016 Elsevier B.V.
Figure 11TEM image and electron diffraction patterns of selected areas of a TiO2/V2O5 composite NFs. Reprinted with permission from Ref. [66]. Copyright © 2014 Elsevier Ltd. and Techna Group S.r.l.
Figure 12SEM micrographs of SnO2 NFs. (a) plasma etching time of 30 s and sputtering time of 190 s; and (b) plasma etching time of 30 s and sputtering time of 480 s. Reprinted with permission from Ref. [116]. Copyright © 2016 Elsevier Ltd.
Figure 13A typical directionality (angle distribution) of SiOC Nfs prepared with different precursors. Reprinted with permission from Ref. [57]. Copyright © Springer Science+Business Media New York 2015.
Figure 14Strain–stress curves of PA66, PA66/ MWCNT and PA66/ TMWCNT NFs. Reprinted with permission from Ref. [118]. Copyright © 2013 Elsevier Ltd. and Techna Group S.r.l.
Figure 15(a) Schematic of the microfluidic channel device for Zeta potential measurement of electrospun NFs (b) digital camera image of electrospun NF specimen. Reprinted with permission from Ref. [131]. Copyright © 2012 Elsevier Inc.
Figure 16(a) Schematic of energy harvest examination by bending test; and (b) positive output voltage generated during a test performed with finger deformation for the PVDF electrospun NFs. Reprinted with permission from Ref. [93]. Copyright © 2013 Elsevier B.V.