| Literature DB >> 30966546 |
Syang-Peng Rwei1, Whe-Yi Chiang2, Tun-Fun Way3, Huynh Nguyen Anh Tuan4, Ya-Chin Chang5.
Abstract
In this work, a smart copolymer,Entities:
Keywords: LCST; N-isopropylacrylamide; UCST; itaconamic acid; re-dissolved behavior; smart polymer; soluble-insoluble-soluble transition; thermo- and pH-Sensitivity
Year: 2018 PMID: 30966546 PMCID: PMC6415441 DOI: 10.3390/polym10050512
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Scheme 1RAFT polymerization of N-isopropylacrylamide (NIPAAm monomer) and itaconamic acid (IAM co-monomer).
Figure 11H NMR spectra of the nipam monomer, the IAM comonomer, Pnipam and P(nipam-co-IAM).
Figure 21H NMR spectra of Pnipam and poly(nipam-co-IAM) at 60 °C obtained with a 600 MHz NMR spectrometer.
Figure 3FTIR spectra of nipam, IAM monomers, atactic Pnipam (P-noLA) and P(nipam-co-IAM) (I-8 noLA).
Figure 4FTIR spectra of P(nipam-co-IAM) with and without stereo-control.
Properties of P(nipam-co-IAM) by reversible addition-fragmentation chain-transfer (RAFT).
| Sample ID | Lewis AcidXX [Y(OTf)3]0 | Tacticity/% | Mn/104 | Mw/Mn | Particle Diameter/nm | |
|---|---|---|---|---|---|---|
| Conc./M (mol L−1) | m | r | In 25 °C | |||
| P_noLA | - | 49 | 51 | 11.2 | 1.48 | 155.3 ± 7.9 |
| I_8 noLA | - | 48 | 52 | 4.01 | 1.91 | 216.2 ± 8.7 |
| I_12 noLA | - | 48 | 52 | 3.77 | 1.99 | 268.4 ± 44.3 |
| P Y | 6 × 10−3 | 53 | 47 | 9.16 | 1.33 | 71.0 ± 1.8 |
| I_8 Y | 6 × 10−3 | 52 | 48 | 3.11 | 1.86 | 332.2 ± 19.6 |
| I_12 Y | 6 × 10−3 | 53 | 47 | 3.05 | 1.87 | 402.3 ± 28.1 |
Scheme 2The mechanism of the effect of IAM comonomer on copolymerization.
Figure 5Plots of transmittance vs. temperature of 1 wt % aqueous solutions of Pnipam and P(nipam-co-IAM) synthesized without stereo-control in buffer solutions of (a) pH = 4, (b) pH = 5, (c) pH = 6, (d) pH = 7, (e) pH = 8 and (f) pH = 10.
Figure 6Plots of transmittance vs. temperature of 1 wt % aqueous solutions of Pnipam and P(nipam-co-IAM) synthesized with stereo-control in buffer solutions of (a) pH = 4, (b) pH = 5, (c) pH = 6, (d) pH = 7, (e) pH = 8 and (f) pH = 10.
Figure 7Plots of transmittance vs. temperature of 1 wt % aqueous solutions of Pnipam in buffer solutions of pH = 4~10 synthesized (a) without and (b) with stereo-control.
Figure 8Plots of transmittance vs. temperature of 1 wt % aqueous solutions of P(nipam-co-IAM) (I-8) in buffer solutions of pH = 4~10 (a) without and (b) with stereo-control.
Figure 9Determined lower critical solution temperature (LCSTs) (°C) of Pnipam and P(nipam-co-IAM) in various buffer solutions of pH = 4~10.
Figure 10Proposed structures of P(nipam-co-IAM) in the buffer solutions with pH = 4 and 10.
Figure 11Proposed phase separation mechanism of 1 wt % aqueous solution of the atactic-like and the isotactic-like P(nipam-co-IAM) in the buffer solutions.