| Literature DB >> 35683973 |
Jihoon Park1, Je-Yeon Jung1, Hyun-Woo Shin2, Jong-Wan Park2, Joona Bang1, June Huh1,3.
Abstract
We computationally investigate the conformational behavior, "bridging" chain, between different the phase-separated domains vs "looping" chain on the same domain, for two chain architectures of ABA triblock copolymers, one with a linear architecture (L-TBC) and the other with comb architecture (C-TBC) at various segregation regimes using dissipative particle dynamics (DPD) simulations. The power-law relation between the bridge fraction (Φ) and the interaction parameter (χ) for C-TBC is found to be Φ∼χ-1.6 in the vicinity of the order-disorder transition (χODT), indicating a drastic conversion from the bridge to the loop conformation. When χ further increases, the bridge-loop conversions slow down to have the power law, Φ∼χ-0.18, approaching the theoretical power law Φ∼χ-1/9 predicted in the strong segregation limit. The conformational assessment conducted in the present study can provide a strategy of designing optimal material and processing conditions for triblock copolymer either with linear or comb architecture to be used for thermoplastic elastomer or molecular nanocomposites.Entities:
Keywords: bridge conformation; comb polymer; loop conformation; triblock copolymer
Year: 2022 PMID: 35683973 PMCID: PMC9183157 DOI: 10.3390/polym14112301
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.967
Figure 1Illustration of (a) bridge and loop conformation for ABA linear triblock copolymer (L-TBC), (b) those of ABA comb triblock copolymer (C-TBC) in the phase-separated domains, and (c) the chain architecture of C-TBC investigated in this study. In (a,b), the red-colored regions and the blue-colored region are the A- and the B-domain, respectively, and the dashed line in the B-domain represents the midplane.
The list of the DPD parameters used in the present study.
| Parameter | Value | Unit 1 | Equations |
|---|---|---|---|
|
| 25.0 |
| (2) |
|
| 4.5 |
| (3) and (4) |
|
| 100.0 |
| (6) |
|
| 0.7 |
| (6) |
1 The basic units for length, mass, and energy are set to be R = 1, m = 1, and k = 1, respectively.
Figure 2The order parameter versus the interaction parameter for the C-TBC with . The open circles and filled circles represent the points where the disordered and the ordered phases are stable, respectively, and the blue solid line is fit to a three-parameter sigmoidal function. The inset images show the two example structures simulated at the disordered and ordered region.
The chain architectures of triblock copolymers simulated in this study and the list of the values at ODT, and the domain spacing, L, for these triblock copolymers in molten state.
| Architecure |
|
|
|
|
|---|---|---|---|---|
| L-TBC | 48 | 1 | 1.08 | 8.26 ± 0.19 |
| C-TBC | 32 | 2 | 0.99 | 8.18 ± 0.26 |
| C-TBC | 24 | 4 | 0.77 | 8.17 ± 0.16 |
| C-TBC | 16 | 8 | 0.72 | 8.26 ± 0.18 |
1 measured at MN = 150.
Figure 3for (a) L-TBC (i.e., ) with and for (b) C-TBC with and at various values. The for (a,b) were and , respectively.
Figure 4The fractions of bridge conformation, , versus for the simulated L-TBC and C-TBC samples. The vertical dashed lines represent the for the corresponding copolymer samples.