| Literature DB >> 35518320 |
B Tyler White1, John M Migliore1,2, Emmanuel U Mapesa3, Josh D Wolfgang1, Joshua Sangoro3, Timothy E Long1.
Abstract
Polyurea elastomers are utilized for a myriad of applications ranging from coatings and foams to dielectric materials for capacitors and actuators. However, current synthetic methods for polyureas rely on highly reactive isocyanates, solvents, and catalysts, which collectively pose serious safety considerations. This report details the synthesis and characterization of melt processible, poly(tetramethylene oxide) (PTMO)-based segmented polyurea elastomers utilizing an isocyanate-, solvent-, and catalyst-free approach. Dynamic mechanical analysis and differential scanning calorimetry suggested microphase separation between the hard and soft segments. Tensile analysis revealed high strain at break for all segmented copolymers between 340 and 770%, and tunable modulus between 0.76 and 29.5 MPa. Dielectric spectroscopy revealed that the composition containing 20 wt% hard segment offered the highest permittivity at 10.6 (1 kHz, 300 K) of the segmented copolymers, indicating potential as a dielectric elastomer. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35518320 PMCID: PMC9054001 DOI: 10.1039/d0ra02369h
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Isocyanate-free synthesis of segmented polyureas utilizing melt polycondensation.
Fig. 1Stepwise isothermal TGA revealing the hard segment composition of the segmented polyureas.
Summary of thermal properties for PTMO-based, segmented polyureas
| DEOEU content (wt%) | TGA | DSC | DMA | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
|
|
| Wt loss (%) |
| Wt loss (%) |
|
|
|
| Δ |
| |
| 0 | 384 | — | — | — | — | −76 | 23 | — | — | 45.5 | −56 |
| 5 | 352 | — | 6 | 365 | 94 | −76 | 15 | — | — | 36.0 | −53 |
| 10 | 335 | 316 | 12 | 351 | 88 | −76 | 12 | — | — | 28.9 | −50 |
| 20 | 323 | 300 | 20 | 371 | 80 | −76 | 14 | 92 | 129 | 20.7 | −60 |
| 30 | 326 | 311 | 34 | 373 | 66 | −76 | 10 | 94 | 129 | 6.23 | −56 |
| 100 | 311 | 311 | 90 | 383 | 10 | 21 | 123 | 139 | — | — | 26 |
Stepwise isothermal TGA, 10 °C min−1, N2.
Second heating cycle, −120 to 180 °C, 10 °C min−1, He.
Oscillatory tension mode, 1 Hz, 0.1% strain, 3 °C min−1.
Temperature ramp, 10 °C min−1, N2.
Determined from first heat.
Fig. 2(A) DSC 2nd heating scans for segmented polyureas containing various amounts of DEOEU hard segment. The curves are shifted vertically for clarity. (B) 1st and 2nd heating scans for DEOEU homopolymer and (C) ΔHm for the soft segment melting endotherm as a function of hard segment incorporation.
Fig. 3DMA heating trace of segmented polyurea copolymers.
Fig. 4(A) Engineering stress vs. strain for segmented polyureas (B) stress and strain at break as a function of hard segment content and (C) five-cycle mechanical hysteresis and instantaneous set for segmented polyureas.
Summary of tensile properties for PTMO-based, segmented polyureas
| DEOEU content (wt%) | Modulus (MPa) | Ultimate stress (MPa) | Strain at break (%) | Mechanical hysteresis (%) | Instantaneous set (%) | ||||
|---|---|---|---|---|---|---|---|---|---|
| Cycle 1 | Cycle 2 | Cycle 3 | Cycle 4 | Cycle 5 | |||||
| 5 | 0.76 ± 0.16 | 1.1 ± 0.10 | 640 ± 11 | 32 | 29 | 29 | 28 | 28 | 30 |
| 10 | 4.35 ± 0.29 | 3.8 ± 0.90 | 690 ± 110 | 72 | 53 | 46 | 44 | 42 | 80 |
| 20 | 4.54 ± 0.54 | 7.4 ± 1.9 | 770 ± 83 | 73 | 42 | 36 | 33 | 31 | 65 |
| 30 | 29.5 ± 1.13 | 14 ± 1.3 | 340 ± 29 | 78 | 46 | 39 | 35 | 33 | 95 |
Fig. 5(A) Dielectric permittivity (ε′) as a function of frequency for the synthesized polyureas. (B) Permittivity and dielectric loss (ε′′) as a function of frequency for the polyurea containing 20 wt% hard segment. (C) Comparison of dielectric permittivity and dielectric loss at a frequency of 1 kHz.
Summary of dielectric properties for the segmented polyureas at a frequency of 1 kHz
| Hard segment content (wt%) |
|
| tan |
|---|---|---|---|
| 0 | 8.09 | 7.36 | 1.12 |
| 5 | 2.81 | 1.41 | 0.50 |
| 10 | 5.47 | 9.26 | 1.69 |
| 20 | 10.6 | 3.20 | 0.30 |
| 30 | 4.80 | 3.31 | 0.69 |
| 100 | 3.27 | 0.13 | 4.00 × 10−3 |