| Literature DB >> 28854241 |
Patrik Sobolčiak1, Adnan Ali2, Mohammad K Hassan1, Mohamed I Helal2, Aisha Tanvir1, Anton Popelka1, Mariam A Al-Maadeed1,3, Igor Krupa4, Khaled A Mahmoud2,5.
Abstract
Novel 2D Ti3C2Tx (MXene)-reinforced polyvinyl alcohol (PVA) nanofibers have been successfully fabricated by an electrospinning technique. The high aspect ratio, hydrophilic surfaces, and metallic conductivity of delaminated MXene nanosheet render it promising nanofiller for high performance nanocomposites. Cellulose nanocrystals (CNC) were used to improve the mechanical properties of the nanofibers. The obtained electrospun nanofibers had diameter from 174 to 194 nm depending on ratio between PVA, CNC and MXene. Dynamic mechanical analysis demonstrated an increase in the elastic modulus from 392 MPa for neat PVA fibers to 855 MPa for fibers containing CNC and MXene at 25°C. Moreover, PVA nanofibers containing 0.14 wt. % Ti3C2Tx exhibited dc conductivity of 0.8 mS/cm conductivity which is superior compared to similar composites prepared using methods other than electrospinning. Improved mechanical and electrical characteristics of the Ti3C2Tx /CNC/PVA composites make them viable materials for high performance energy applications.Entities:
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Year: 2017 PMID: 28854241 PMCID: PMC5576691 DOI: 10.1371/journal.pone.0183705
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Composition of prepared 15 wt.% PVA solutions.
| Sample | Viscosity | Conductivity | |||
|---|---|---|---|---|---|
| C0M0 | CNC0/ Ti3C2TX 0 | 0 | 0 | 2.33 | 538 |
| C2M0 | CNC0.02/ Ti3C2TX 0 | 0.14 | 0 | 2.64 | 545 |
| C0M2 | CNC0/ Ti3C2TX 0.02 | 0 | 0.14 | 2.47 | 590 |
| C1M1 | CNC0.01/ Ti3C2TX 0.01 | 0.07 | 0.07 | 2.63 | 564 |
* Concentration of fillers related to concentration of PVA solution
Fig 1SEM images of electrospun nanofibers.
A) SEM images of the reinforced PVA nanofibers at different loading of CNC and Ti3C2TX (Table 1), B) dispersion pattern of Ti3C2TX shown by EDS mapping of sample C0M2 where; C (yellow), O (oxygen) and Ti (green).
Fig 22D and 3D AFM phase images of A) C2M0, B) C0M2 and C) C1M1.
Fig 3Dynamic mechanical analysi of electrospun mats.
A) Storage modulus of PVA samples contain CNC and Ti3C2TX fillers; B) tan δ of PVA fibres contain CNC and Ti3C2TX fillers.
Fig 4Mechanical properties of prepared PVA electrospun nanofibers.
Young´s modulus, B) Tensile strength and C) Elongation at break.
Fig 5TGA of PVA electrospun nanofibers containing CNC and Ti3C2TX fillers.
Fig 6DC conductivity vs. frequency at 20°C for the Ti3C2Tx/CNC/PVA nanofiber samples with different composition.
Fig 7Temperature dependence of σdc for the Ti3C2Tx/CNC/PVA nanofiber samples with different composition.
Conduction activation energy for the nanofiber composites.
| Sample | Activation energy (eV) |
|---|---|
| C0M0 | 0.43 |
| C2M0 | 0.52 |
| C0M2 | 0.12 |
| C1M1 | 0.45 |