Morphological Control of Polymer Spherulites via Manipulating Radial Lamellar Organization upon Evaporative Crystallization: A Mini Review
Abstract
:1. Introduction
2. Morphological Control of Various Spherulites of Achiral Orthorhombic PCL
2.1. Manipulating the Stacking of Radial Lamellae to Prepare Concentric Ringed Spherulites
2.2. Modulating the Periodic Orienatation of Radial Lamellae to Produce PCL Extinction-Banded Spherulites
3. Tuning Radial Lamellar Organization to Construct Diverse PCL24.5k-b-PEO5.0k Spherulites
4. Collaborative Tuning of Lamellar Packing and Orientation to Yield a Nested Ring-Banded Pattern
5. Structural Evolution and Dynamic of Ring-Banded Spherulites via Evaporative Crystallization
5.1. Nontraditionally-Concentric Ringed Spherulites
5.2. Classical Extinction Banded Spherulites
6. Crystallization Mechanisms of Different Ring-Banded Spherulites upon Solution Evaporation
6.1. Rhythmic Crystal Growth Mechanism under Evaporative Crystallization
6.2. Solvent Evaporation Assisted Enhancing Model for Lamellar Twisting
7. Conclusions and Outlooks
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Solutions | Mn (kg·mol−1) | Structural Feature of Polymer |
---|---|---|
PCL11.3k 1/toluene | 11.3 | Orthorhombic, low Mn |
PCL42.5k/toluene | 42.5 | Orthorhombic, middle Mn |
PCL84.4k/toluene | 84.4 | Orthorhombic, high Mn |
PCL24.5k-b-PEO5.0k/toluene | CL: 24.5 EO: 5.0 | Orthorhombic, introducing a small amount of the second block |
PEA10.0k/tetrahydrofuran | 10.0 | Monoclinic: chain tilt |
Initial Solution Concentration (mg·mL−1) 1 | Average Radial Growth Rate (nm·s−1) | ||
---|---|---|---|
Concentrci Ringed Spherulites | Extinction Banded Spherulites | ||
PCL11.3k | PCL24.5k-b-PEO5.0k | PCL84.4k | |
5 | 266 | 107 | 0.95 × 103 |
10 | 181 | 66 | 0.83 × 103 |
20 | 65 | 30 | 0.72 × 103 |
40(50 for PCL84.4k) | 44 | - | 0.61 × 103 |
100 | - | - | 0.56 × 103 |
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Li, Y.; Wang, Z.; He, T. Morphological Control of Polymer Spherulites via Manipulating Radial Lamellar Organization upon Evaporative Crystallization: A Mini Review. Crystals 2017, 7, 115. https://doi.org/10.3390/cryst7040115
Li Y, Wang Z, He T. Morphological Control of Polymer Spherulites via Manipulating Radial Lamellar Organization upon Evaporative Crystallization: A Mini Review. Crystals. 2017; 7(4):115. https://doi.org/10.3390/cryst7040115
Chicago/Turabian StyleLi, Yiguo, Zongbao Wang, and Tianbai He. 2017. "Morphological Control of Polymer Spherulites via Manipulating Radial Lamellar Organization upon Evaporative Crystallization: A Mini Review" Crystals 7, no. 4: 115. https://doi.org/10.3390/cryst7040115
APA StyleLi, Y., Wang, Z., & He, T. (2017). Morphological Control of Polymer Spherulites via Manipulating Radial Lamellar Organization upon Evaporative Crystallization: A Mini Review. Crystals, 7(4), 115. https://doi.org/10.3390/cryst7040115