A review on nanofiber fabrication with the effect of high-speed centrifugal force field

Among the traditional methods for nanofiber fabrication, their inherent defects limit their application in industry. This work presents a simple and novel spinning technology to fabricate nanofiber, which uses a high-speed rotary spinneret called high-speed centrifugal spinning. Unlike electrospinni...

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Published inJournal of engineered fibers and fabrics Vol. 14
Main Authors Zhang, Zhi-Ming, Duan, Yao-Shuai, Xu, Qiao, Zhang, Biao
Format Journal Article
LanguageEnglish
Published London, England SAGE Publications 01.07.2019
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Abstract Among the traditional methods for nanofiber fabrication, their inherent defects limit their application in industry. This work presents a simple and novel spinning technology to fabricate nanofiber, which uses a high-speed rotary spinneret called high-speed centrifugal spinning. Unlike electrospinning, the electric field is not required, and it could fabricate nanofiber in bulk from melt or solution materials. This work introduces the mechanism principle and development of high-speed centrifugal spinning. Besides, the high-speed centrifugal spinning is compared with the traditional spinning methods. The jet movement and nanofiber formation process under the action of centrifugal force are explained in detail. The effects of equipment parameters and spinning solution parameters on final nanofiber morphology are presented. These parameters are controllable, they include rotational speed of spinneret, length and diameter of nozzle, spinning solution concentration, spinning solution viscosity and surface tension, and collection distance.
AbstractList Among the traditional methods for nanofiber fabrication, their inherent defects limit their application in industry. This work presents a simple and novel spinning technology to fabricate nanofiber, which uses a high-speed rotary spinneret called high-speed centrifugal spinning. Unlike electrospinning, the electric field is not required, and it could fabricate nanofiber in bulk from melt or solution materials. This work introduces the mechanism principle and development of high-speed centrifugal spinning. Besides, the high-speed centrifugal spinning is compared with the traditional spinning methods. The jet movement and nanofiber formation process under the action of centrifugal force are explained in detail. The effects of equipment parameters and spinning solution parameters on final nanofiber morphology are presented. These parameters are controllable, they include rotational speed of spinneret, length and diameter of nozzle, spinning solution concentration, spinning solution viscosity and surface tension, and collection distance.
Author Zhang, Biao
Xu, Qiao
Zhang, Zhi-Ming
Duan, Yao-Shuai
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Cites_doi 10.1515/POLYENG.2008.28.1-2.55
10.1039/c1jm12240a
10.1016/j.jconrel.2014.04.018
10.1016/j.polymer.2017.10.019
10.1016/S1369-7021(11)70118-3
10.4028/www.scientific.net/AMR.1015.170
10.1515/ntrev-2015-0065
10.1007/s10570-015-0564-8
10.1016/j.camwa.2012.03.019
10.1063/1.1408260
10.1016/j.ijbiomac.2018.02.047
10.1116/1.2363403
10.1515/polyeng-2014-0297
10.1016/j.polymer.2016.05.045
10.1002/macp.201000211
10.1007/12_2011_141
10.1039/c2cs35083a
10.1002/app.31059
10.1016/j.ceramint.2018.03.239
10.1007/s10853-013-7705-y
10.1016/j.polymer.2016.02.029
10.1016/j.biotechadv.2010.01.004
10.1088/0957-4484/17/4/046
10.1016/j.progpolymsci.2013.02.001
10.1016/j.eurpolymj.2013.09.017
10.1039/c3nr33423f
10.1016/j.ijmultiphaseflow.2014.10.005
10.1016/j.polymer.2008.02.002
10.1007/s10971-011-2475-y
10.1016/S1359-0294(03)00004-9
10.1002/term.421
10.1016/j.apsusc.2018.05.211
10.1088/0957-4484/12/3/329
10.1016/S0021-8502(03)00021-1
10.1016/S0008-6223(99)00148-7
10.1177/0040517511424524
10.1016/j.ijnonlinmec.2017.03.004
10.1016/j.addr.2007.04.020
10.1002/app.36843
10.1016/j.addr.2007.04.022
10.1007/s12221-013-0941-6
10.1063/1.4769886
10.1007/s11706-015-0274-z
10.1016/j.ssi.2015.12.020
10.1016/j.jallcom.2016.06.089
10.1021/nl101355x
10.1016/j.cplett.2017.11.041
10.1021/nl080124q
10.1016/j.memsci.2009.07.005
10.1016/j.apm.2009.03.011
10.1016/S0065-2156(07)41002-X
10.1016/j.msec.2014.06.011
10.1063/1.3662015
10.1002/marc.201300339
10.1016/j.progpolymsci.2017.03.002
10.1016/j.jpowsour.2014.09.130
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Keywords jet
High-speed centrifugal force field
process parameters
nanofibers
fiber movement
Language English
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References Hu, Liu, Zhou 2014; 185
Reneker, Yarin 2008; 49
Riahi 2017; 92
Theron, Zussman, Yarin 2001; 12
Malfatti, Innocenzi 2011; 60
Dosunmu, Chase, Kataphinan 2006; 17
Luo, Stoyanov, Stride 2012; 41
Wang, Yap, He 2016; 5
Huttunen, Kellomäki 2011; 5
Agubra, Zuniga, Ia Garza 2016; 286
Deshawar, Chokshi 2017; 131
Frenot, Chronakis 2003; 8
Liu, He, Xu 2008; 28
Natarajan, Bhargava 2018; 40
Bellan, Craighead 2006; 24
Fang, Dulaney, Gadley 2016; 88
Barnes, Sell, Boland 2007; 59
Badrossamay, McIlwee, Goss 2010; 10
Zhang, Qiao, Zhao 2018; 691
Lu, Li, Zhang 2013; 49
Rutledge, Fridrikh 2007; 59
Faraz, He, Xu 2012; 10
Chen, Liu, Wang 2014; 35
Badieyan, Janmaleki 2015; 35
Yarin, Koombhongse, Reneker 2001; 90
Liu, Pi, Wang 2014; 9
Kang, Kang 2018; 455
Xu, Liu, Faraz 2012; 64
Valipouri, Ravandi, Pishevar 2013; 14
Ren, Pandit, Elkin 2013 2337; 5
Weng, Xu, Alcoutlabi 2015; 22
Stojanovska, Kurtulus, Abdelgawad 2018; 113
Mceachin, Lozano 2012; 126
Beachley, Katsanevakis, Zhang 2011; 246
Bhardwaj, Kundu 2010; 28
Li, Qiu, Zhou 2011; 25
Zhang, Aboagye, Kelkar 2013; 49
Lahann 2010; 211
Agarwal, Greiner, Wendorff 2013; 38
Loordhuswamy, Krishnaswamy, Korrapati 2014; 42
Wu, Zhang, Feng 2016; 30
Feng, Khulbe, Matsuura 2010; 115
Li, Long, Yang 2011; 21
Weitz, Harnau, Rauschenbach 2008; 8
Padron, Fuentes, aruntu 2013; 113
Reneker, Yarin, Zussman 2007; 41
Moriya, Maruyama, Ohmukai 2009; 342
Nayak, Padhye, Kyratzis 2011; 82
Watanabe, Korai, Mochida 2000; 38
Mahalingam, Edirisinghe 2013; 34
Kenry Lim 2017; 70
Lu, Fu, Zhang 2015; 273
Jang, Wang, Wei 2016; 28
Decent, King, Simmons 2009; 33
Zuniga, Agubra, Flores 2016; 686
Stepanyan, Subbotin, Cuperus 2016; 97
Senthilram, Mary, Venugopal 2011; 14
Mellado, Mcllwee, Badrossamay 2011; 99
Lopez-Herrera, Barrero, Lopez 2003; 34
Zou, Chen, Zhang 2014; 1015
Valipouri, Ravandi, Pishevar 2015; 69
bibr25-1558925019867517
bibr42-1558925019867517
bibr17-1558925019867517
Jang M (bibr27-1558925019867517) 2016; 28
bibr34-1558925019867517
bibr51-1558925019867517
bibr18-1558925019867517
bibr43-1558925019867517
bibr26-1558925019867517
Hooper JP. (bibr39-1558925019867517) 1924
Zhang PB (bibr41-1558925019867517) 2007
bibr52-1558925019867517
bibr6-1558925019867517
bibr19-1558925019867517
bibr14-1558925019867517
bibr53-1558925019867517
bibr60-1558925019867517
Wagner W (bibr40-1558925019867517) 1990
bibr1-1558925019867517
bibr24-1558925019867517
bibr32-1558925019867517
bibr11-1558925019867517
bibr45-1558925019867517
bibr29-1558925019867517
bibr58-1558925019867517
bibr16-1558925019867517
bibr37-1558925019867517
bibr50-1558925019867517
bibr12-1558925019867517
Chen W (bibr31-1558925019867517) 2014; 35
bibr63-1558925019867517
bibr55-1558925019867517
Li Y (bibr35-1558925019867517) 2011; 25
bibr8-1558925019867517
bibr47-1558925019867517
bibr38-1558925019867517
bibr64-1558925019867517
bibr21-1558925019867517
bibr56-1558925019867517
bibr13-1558925019867517
bibr48-1558925019867517
bibr30-1558925019867517
Faraz N (bibr61-1558925019867517) 2012; 10
bibr9-1558925019867517
Li Y (bibr3-1558925019867517) 2011; 25
bibr22-1558925019867517
bibr65-1558925019867517
bibr49-1558925019867517
bibr57-1558925019867517
bibr44-1558925019867517
Wu HL (bibr4-1558925019867517) 2016; 30
bibr10-1558925019867517
bibr5-1558925019867517
bibr23-1558925019867517
bibr36-1558925019867517
bibr7-1558925019867517
bibr62-1558925019867517
bibr59-1558925019867517
bibr15-1558925019867517
bibr46-1558925019867517
bibr28-1558925019867517
bibr33-1558925019867517
bibr54-1558925019867517
bibr20-1558925019867517
bibr2-1558925019867517
References_xml – volume: 38
  start-page: 963
  issue: 6
  year: 2013
  end-page: 991
  article-title: Functional materials by electrospinning of polymers
  publication-title: Prog Polym Sci
– volume: 28
  start-page: 711
  issue: 5
  year: 2016
  end-page: 726
  article-title: Aligned nanofibers based on electrospinning technology
  publication-title: Progr Chem
– volume: 60
  start-page: 226
  issue: 3
  year: 2011
  end-page: 235
  article-title: Sol-gel chemistry: from self-assembly to complex materials
  publication-title: J Sol-gel Sci Technol
– volume: 35
  start-page: 1
  issue: 6
  year: 2014
  end-page: 6
  article-title: Finite element analysis of electric field intensity and distribution during multi-needle electrospinning process
  publication-title: J Text Res
– volume: 12
  start-page: 384
  issue: 3
  year: 2001
  end-page: 390
  article-title: Electrostatic field-assisted alignment of electrospun nanofibres
  publication-title: Nanotechnology
– volume: 38
  start-page: 741
  issue: 5
  year: 2000
  end-page: 747
  article-title: Structure of melt-blown mesophase pitch-based carbon fiber
  publication-title: Carbon
– volume: 88
  start-page: 102
  year: 2016
  end-page: 111
  article-title: A comparative parameter study: controlling fiber diameter and diameter distribution in centrifugal spinning of photocurable monomers
  publication-title: Polymer
– volume: 90
  start-page: 4836
  issue: 9
  year: 2001
  end-page: 4846
  article-title: Taylor cone and jetting from liquid droplets in electrospinning of nanofibers
  publication-title: J Appl Phys
– volume: 92
  start-page: 1
  year: 2017
  end-page: 7
  article-title: Modeling and computation of nonlinear rotating polymeric jets during forcespinning process
  publication-title: Int J Non-Linea Mech
– volume: 691
  start-page: 314
  year: 2018
  end-page: 318
  article-title: Preparation and performance of novel polyvinylpyrrolidone/polyethylene glycol phase change materials composite fibers by centrifugal spinning
  publication-title: Chem Phys Lett
– volume: 455
  start-page: 251
  year: 2018
  end-page: 257
  article-title: Advanced electrospinning using circle electrodes for freestanding PVDF nanofiber film fabrication
  publication-title: Appl Surf Sci
– volume: 10
  start-page: 664
  year: 2012
  end-page: 665
  article-title: A simple mathematical model for prediction of fibre size in the bubble electrospinning
  publication-title: J Comput Theor
– volume: 34
  start-page: 1134
  issue: 14
  year: 2013
  end-page: 1139
  article-title: Forming of polymer nanofibers by a pressurised gyration process
  publication-title: Macromol Rapid Commun
– volume: 40
  start-page: 11644
  issue: 10
  year: 2018
  end-page: 11649
  article-title: Influence of spinning parameters on synthesis of alumina fibres by centrifugal spinning
  publication-title: Ceramics Int
– volume: 5
  start-page: 51
  issue: 1
  year: 2016
  end-page: 73
  article-title: Electrospinning: a facile technique for fabricating functional nanofibers for environmental applications
  publication-title: Nanotechnol Rev
– volume: 35
  start-page: 587
  issue: 6
  year: 2015
  end-page: 596
  article-title: Nanofiber formation in the presence of an external magnetic field in electrospinning
  publication-title: J Polym Eng
– volume: 28
  start-page: 55
  issue: 1–2
  year: 2008
  end-page: 65
  article-title: The principle of bubble electrospinning and its experimental verification
  publication-title: J Polym Eng
– volume: 8
  issue: 4
  year: 2008
  article-title: Polymer nanofibers via nozzle-free centrifugal spinning
  publication-title: Nano Lett
– volume: 10
  start-page: 2257
  issue: 6
  year: 2010
  end-page: 2261
  article-title: Nanofiber assembly by rotary jet-spinning
  publication-title: Nano Lett
– volume: 126
  start-page: 6836
  issue: 2
  year: 2012
  end-page: 6844
  article-title: Production and characterization of polycaprolactone nanofibers via forcespinning? Technology
  publication-title: J Appl Polym Sci
– volume: 49
  start-page: 463
  issue: 2
  year: 2013
  end-page: 480
  article-title: A review: carbon nanofibers from electrospun polyacrylonitrile and their applications
  publication-title: J Mater Sci
– volume: 59
  start-page: 1384
  issue: 14
  year: 2007
  end-page: 1391
  article-title: Formation of fibers by electrospinning
  publication-title: Adv Drug Deliver Rev
– volume: 686
  start-page: 733
  year: 2016
  end-page: 743
  article-title: Multichannel hollow structure for improved electrochemical performance of TIO2/Carbon composite nanofibers as anodes for lithium ion batteries
  publication-title: J Alloy Compound
– volume: 99
  start-page: 203107
  issue: 20
  year: 2011
  article-title: A simple model for nanofiber formation by rotary jet-spinning
  publication-title: Appl Phys Lett
– volume: 64
  start-page: 1017
  issue: 5
  year: 2012
  end-page: 1021
  article-title: Theoretical model for the electrospinning nanoporous materials process
  publication-title: Comput Math Appl
– volume: 22
  start-page: 1311
  issue: 2
  year: 2015
  end-page: 1320
  article-title: Fibrous cellulose membrane mass produced via forcespinning for lithium-ion battery separators
  publication-title: Cellulose
– volume: 28
  start-page: 325
  issue: 3
  year: 2010
  end-page: 347
  article-title: Electrospinning: a fascinating fiber fabrication technique
  publication-title: Biotech Adv
– volume: 41
  start-page: 4708
  issue: 13
  year: 2012
  end-page: 4735
  article-title: Electrospinning versus fibre production methods: from specifics to technological convergence
  publication-title: Chem Soc Rev
– volume: 342
  start-page: 307
  issue: 1–2
  year: 2009
  end-page: 312
  article-title: Preparation of poly(lactic acid) hollow fiber membranes via phase separation methods
  publication-title: J Memb Sci
– volume: 8
  start-page: 64
  issue: 1
  year: 2003
  end-page: 75
  article-title: Polymer nanofibers assembled by electrospinning
  publication-title: Curr Opin Colloid In
– volume: 5
  issue: 6
  year: 2013 2337
  article-title: Large-scale and highly efficient synthesis of micro- and nano-fibers with controlled fiber morphology by centrifugal jet spinning for tissue regeneration
  publication-title: Nanoscale
– volume: 113
  start-page: 024318
  issue: 2
  year: 2013
  article-title: Experimental study of nanofiber production through forcespinning
  publication-title: J Appl Phys
– volume: 42
  start-page: 799
  year: 2014
  end-page: 807
  article-title: Fabrication of highly aligned fibrous scaffolds for tissue regeneration by centrifugal spinning technology
  publication-title: Mater Sci Eng
– volume: 70
  start-page: 1
  year: 2017
  end-page: 17
  article-title: Nanofiber technology: current status and emerging developments
  publication-title: Prog Polym Sci
– volume: 246
  start-page: 171
  issue: 1
  year: 2011
  end-page: 212
  article-title: Highly aligned polymer nanofiber structures: fabrication and applications in tissue engineering
  publication-title: Adv Polym Sci
– volume: 286
  start-page: 72
  year: 2016
  end-page: 82
  article-title: Forcespinning: a new method for the mass production of Sn/C composite nanofiber anodes for lithium ion batteries
  publication-title: Solid State Ion
– volume: 24
  start-page: 3179
  issue: 6
  year: 2006
  end-page: 3183
  article-title: Control of an electrospinning jet using electric focusing and jet-steering fields
  publication-title: J Vac Sci Technol B
– volume: 30
  start-page: 44
  issue: 2
  year: 2016
  end-page: 47
  article-title: Progress in preparation of nano-porous oxide by electrospinning
  publication-title: Mater Rev
– volume: 211
  start-page: 1387
  issue: 12
  year: 2010
  end-page: 1387
  article-title: Science and technology of polymer nanofibers
  publication-title: Macromol Chem Phys
– volume: 115
  start-page: 756
  issue: 2
  year: 2010
  end-page: 776
  article-title: Recent progress in the preparation, characterization, and applications of nanofibers and nanofiber membranes via electrospinning/interfacial polymerization
  publication-title: J Appl Polym Sci
– volume: 59
  start-page: 1413
  issue: 14
  year: 2007
  end-page: 1433
  article-title: Nanofiber technology: designing the next generation of tissue engineering scaffolds
  publication-title: Adv Drug Deliver Rev
– volume: 41
  start-page: 43
  year: 2007
  end-page: 195
  article-title: Electrospinning of nanofibers from polymer solutions and melts
  publication-title: Adv Appl Mech
– volume: 131
  start-page: 34
  year: 2017
  end-page: 49
  article-title: Stability analysis of an electrospinning jet of polymeric fluids
  publication-title: Polymer
– volume: 21
  start-page: 13159
  issue: 35
  year: 2011
  end-page: 13162
  article-title: Fabrication of one dimensional superfine polymer fibers by double-spinning
  publication-title: J Mater Chem
– volume: 9
  start-page: 1
  issue: 1
  year: 2014
  end-page: 13
  article-title: Self-assembling peptide nanofiber hydrogels for central nervous system regeneration
  publication-title: Front Mater Sci
– volume: 34
  start-page: 535
  issue: 5
  year: 2003
  end-page: 552
  article-title: Coaxial jets generated from electrified Taylor cones. Scaling Laws
  publication-title: J Aerosol Sci
– volume: 273
  start-page: 502
  year: 2015
  end-page: 510
  article-title: Centrifugal spinning: a novel approach to fabricate porous carbon fibers as binder-free electrodes for electric double-layer capacitors
  publication-title: J Power Source
– volume: 14
  start-page: 941
  issue: 6
  year: 2013
  end-page: 949
  article-title: A novel method for manufacturing nanofibers
  publication-title: Fiber Polym
– volume: 33
  start-page: 4283
  issue: 12
  year: 2009
  end-page: 4302
  article-title: The trajectory and stability of a spiralling liquid jet: viscous theory
  publication-title: Appl Math Model
– volume: 97
  start-page: 428
  year: 2016
  end-page: 439
  article-title: Nanofiber diameter in electrospinning of polymer solutions: model and experiment
  publication-title: Polymer
– volume: 185
  start-page: 12
  year: 2014
  end-page: 21
  article-title: Electrospinning of polymeric nanofibers for drug delivery applications
  publication-title: J Control Release
– volume: 49
  start-page: 2387
  issue: 10
  year: 2008
  end-page: 2425
  article-title: Electrospinning jets and polymer nanofibers
  publication-title: Polymer
– volume: 49
  start-page: 3834
  issue: 12
  year: 2013
  end-page: 3845
  article-title: Parameter study and characterization for polyacrylonitrile nanofibers fabricated via centrifugal spinning process
  publication-title: Europ Polym J
– volume: 82
  start-page: 129
  issue: 2
  year: 2011
  end-page: 147
  article-title: Recent advances in nanofibre fabrication techniques
  publication-title: Text Res J
– volume: 14
  start-page: 226
  issue: 5
  year: 2011
  end-page: 229
  article-title: Self crimped and aligned fibers
  publication-title: Mater Today
– volume: 25
  start-page: 84
  issue: 9
  year: 2011
  end-page: 88
  article-title: Application development of electrospun nanofibers
  publication-title: Mater Rev
– volume: 5
  start-page: e239
  issue: 8
  year: 2011
  end-page: e243
  article-title: A simple and high production rate manufacturing method for submicron polymer fibres
  publication-title: J Tissue Eng Regenerat Med
– volume: 113
  start-page: 98
  year: 2018
  end-page: 105
  article-title: Developing lignin-based bio-nanofibers by centrifugal spinning technique
  publication-title: Int J Biol Macromol
– volume: 17
  start-page: 1123
  issue: 4
  year: 2006
  end-page: 1127
  article-title: Electrospinning of polymer nanofibres from multiple jets on a porous tubular surface
  publication-title: Nanotechnology
– volume: 1015
  start-page: 170
  year: 2014
  end-page: 176
  article-title: Recent advances in centrifugal spinning preparation of nanofibers
  publication-title: Adv Mater Res
– volume: 69
  start-page: 93
  year: 2015
  end-page: 101
  article-title: Experimental and numerical study on isolated and non-isolated jet behavior through centrifuge spinning system
  publication-title: Int J Multiphase Flow
– ident: bibr30-1558925019867517
  doi: 10.1515/POLYENG.2008.28.1-2.55
– ident: bibr33-1558925019867517
  doi: 10.1039/c1jm12240a
– ident: bibr7-1558925019867517
  doi: 10.1016/j.jconrel.2014.04.018
– volume-title: Melt and solution centrifugal spinning device for preparing non-woven
  year: 2007
  ident: bibr41-1558925019867517
– volume-title: Centrifugal spinneret
  year: 1924
  ident: bibr39-1558925019867517
– volume-title: Production of very fine polymer fibres
  year: 1990
  ident: bibr40-1558925019867517
– ident: bibr28-1558925019867517
  doi: 10.1016/j.polymer.2017.10.019
– ident: bibr44-1558925019867517
  doi: 10.1016/S1369-7021(11)70118-3
– ident: bibr48-1558925019867517
  doi: 10.4028/www.scientific.net/AMR.1015.170
– ident: bibr8-1558925019867517
  doi: 10.1515/ntrev-2015-0065
– ident: bibr63-1558925019867517
  doi: 10.1007/s10570-015-0564-8
– ident: bibr62-1558925019867517
  doi: 10.1016/j.camwa.2012.03.019
– ident: bibr25-1558925019867517
  doi: 10.1063/1.1408260
– ident: bibr49-1558925019867517
  doi: 10.1016/j.ijbiomac.2018.02.047
– ident: bibr26-1558925019867517
  doi: 10.1116/1.2363403
– volume: 10
  start-page: 664
  year: 2012
  ident: bibr61-1558925019867517
  publication-title: J Comput Theor
– ident: bibr10-1558925019867517
  doi: 10.1515/polyeng-2014-0297
– ident: bibr29-1558925019867517
  doi: 10.1016/j.polymer.2016.05.045
– ident: bibr9-1558925019867517
  doi: 10.1002/macp.201000211
– ident: bibr20-1558925019867517
  doi: 10.1007/12_2011_141
– ident: bibr15-1558925019867517
  doi: 10.1039/c2cs35083a
– ident: bibr24-1558925019867517
  doi: 10.1002/app.31059
– ident: bibr50-1558925019867517
  doi: 10.1016/j.ceramint.2018.03.239
– volume: 30
  start-page: 44
  issue: 2
  year: 2016
  ident: bibr4-1558925019867517
  publication-title: Mater Rev
– ident: bibr6-1558925019867517
  doi: 10.1007/s10853-013-7705-y
– ident: bibr12-1558925019867517
  doi: 10.1016/j.polymer.2016.02.029
– ident: bibr23-1558925019867517
  doi: 10.1016/j.biotechadv.2010.01.004
– volume: 28
  start-page: 711
  issue: 5
  year: 2016
  ident: bibr27-1558925019867517
  publication-title: Progr Chem
– ident: bibr32-1558925019867517
  doi: 10.1088/0957-4484/17/4/046
– volume: 25
  start-page: 84
  issue: 9
  year: 2011
  ident: bibr3-1558925019867517
  publication-title: Mater Rev
– ident: bibr2-1558925019867517
  doi: 10.1016/j.progpolymsci.2013.02.001
– ident: bibr59-1558925019867517
  doi: 10.1016/j.eurpolymj.2013.09.017
– ident: bibr54-1558925019867517
  doi: 10.1039/c3nr33423f
– ident: bibr65-1558925019867517
  doi: 10.1016/j.ijmultiphaseflow.2014.10.005
– ident: bibr17-1558925019867517
  doi: 10.1016/j.polymer.2008.02.002
– ident: bibr37-1558925019867517
  doi: 10.1007/s10971-011-2475-y
– ident: bibr16-1558925019867517
  doi: 10.1016/S1359-0294(03)00004-9
– ident: bibr43-1558925019867517
  doi: 10.1002/term.421
– ident: bibr18-1558925019867517
  doi: 10.1016/j.apsusc.2018.05.211
– ident: bibr22-1558925019867517
  doi: 10.1088/0957-4484/12/3/329
– ident: bibr47-1558925019867517
  doi: 10.1016/S0021-8502(03)00021-1
– volume: 25
  start-page: 84
  issue: 9
  year: 2011
  ident: bibr35-1558925019867517
  publication-title: Mater Rev
– ident: bibr34-1558925019867517
  doi: 10.1016/S0008-6223(99)00148-7
– ident: bibr14-1558925019867517
  doi: 10.1177/0040517511424524
– volume: 35
  start-page: 1
  issue: 6
  year: 2014
  ident: bibr31-1558925019867517
  publication-title: J Text Res
– ident: bibr51-1558925019867517
  doi: 10.1016/j.ijnonlinmec.2017.03.004
– ident: bibr19-1558925019867517
  doi: 10.1016/j.addr.2007.04.020
– ident: bibr53-1558925019867517
  doi: 10.1002/app.36843
– ident: bibr5-1558925019867517
  doi: 10.1016/j.addr.2007.04.022
– ident: bibr45-1558925019867517
  doi: 10.1007/s12221-013-0941-6
– ident: bibr13-1558925019867517
  doi: 10.1063/1.4769886
– ident: bibr38-1558925019867517
  doi: 10.1007/s11706-015-0274-z
– ident: bibr56-1558925019867517
  doi: 10.1016/j.ssi.2015.12.020
– ident: bibr57-1558925019867517
  doi: 10.1016/j.jallcom.2016.06.089
– ident: bibr42-1558925019867517
  doi: 10.1021/nl101355x
– ident: bibr55-1558925019867517
  doi: 10.1016/j.cplett.2017.11.041
– ident: bibr64-1558925019867517
  doi: 10.1021/nl080124q
– ident: bibr36-1558925019867517
  doi: 10.1016/j.memsci.2009.07.005
– ident: bibr60-1558925019867517
  doi: 10.1016/j.apm.2009.03.011
– ident: bibr11-1558925019867517
  doi: 10.1016/S0065-2156(07)41002-X
– ident: bibr58-1558925019867517
  doi: 10.1016/j.msec.2014.06.011
– ident: bibr46-1558925019867517
  doi: 10.1063/1.3662015
– ident: bibr52-1558925019867517
  doi: 10.1002/marc.201300339
– ident: bibr1-1558925019867517
  doi: 10.1016/j.progpolymsci.2017.03.002
– ident: bibr21-1558925019867517
  doi: 10.1016/j.jpowsour.2014.09.130
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Snippet Among the traditional methods for nanofiber fabrication, their inherent defects limit their application in industry. This work presents a simple and novel...
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Title A review on nanofiber fabrication with the effect of high-speed centrifugal force field
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