Crystallization-Arrested Viscoelastic Phase Separation in Semiconducting Polymer Gels AITranslate
Abstract AITranslate
Through a combination of rheological characterization and temperature-variable imaging methods, a novel gelation pathway in dilute solutions of a semiconducting polymer to achieve interconnected, crystalline networks with hierarchical porosity is reported. Upon rapid cooling, solutions of regioregular poly(3-hexylthiophene) in ortho-dichlorobenzene formed thermoreversible gels. Confocal microscopy revealed cooling-induced structural rearrangement to progress through viscoelastic phase separation (VPS), which arrested prematurely during the formation of micron-sized solvent-rich “holes” due to interchain crystallization. Cryogen-based scanning electron microscopy uncovered an interfibrillar network exhibiting nanosized pores. These networks formed to equal gel strengths when a third component, either small molecule phenyl-C61-butyric acid methyl ester or noncrystallizing regiorandom, poly(3-hexylthiophene), was added to the solution. Organic solar cells deposited with active layers from phase-separated solutions displayed 45% higher efficiency compared to reference cells. The demonstrated ability to arrest VPS enables control over the morphology of porous materials for applications ranging from membrane filtration to plastic foam manufacturing.
KeyWords AITranslate
Basic Information:
DOI:https://doi.org/10.1021/acsapm.8b00195
Chinese Library Classification Number:
Citation Information:
Through a combination of rheological characterization and temperature-variable imaging methods, a novel gelation pathway in dilute solutions of a semiconducting polymer to achieve interconnected, crystalline networks with hierarchical porosity is reported. Upon rapid cooling, solutions of regioregular poly(3-hexylthiophene) in ortho-dichlorobenzene formed thermoreversible gels. Confocal microscopy revealed cooling-induced structural rearrangement to progress through viscoelastic phase separation (VPS), which arrested prematurely during the formation of micron-sized solvent-rich “holes” due to interchain crystallization. Cryogen-based scanning electron microscopy uncovered an interfibrillar network exhibiting nanosized pores. These networks formed to equal gel strengths when a third component, either small molecule phenyl-C61-butyric acid methyl ester or noncrystallizing regiorandom, poly(3-hexylthiophene), was added to the solution. Organic solar cells deposited with active layers from phase-separated solutions displayed 45% higher efficiency compared to reference cells. The demonstrated ability to arrest VPS enables control over the morphology of porous materials for applications ranging from membrane filtration to plastic foam manufacturing.
quote
| GB/T 7714-2015 | [1] Jing He, Xiaoqing Kong, Yuhao Wang, et al. ACS Applied Polymer Materials, 2019(1). DOI:10.1021/acsapm.8b00195. |
| MLA | [1] Jing He, et al., ACS Applied Polymer Materials, no. 1, 2019, https://doi.org/10.1021/acsapm.8b00195. |
| APA | [1] Jing He, Xiaoqing Kong, Yuhao Wang, Michael Delaney, Dilhan M. Kalyon, & Stephanie S. Lee. (2019). ACS Applied Polymer Materials(1). https://doi.org/10.1021/acsapm.8b00195 |
| IEEE | [1] Jing He, Xiaoqing Kong, Yuhao Wang, Michael Delaney, Dilhan M. Kalyon, and Stephanie S. Lee, ACS Applied Polymer Materials, no. 1, 2019, doi: 10.1021/acsapm.8b00195. keywords: {viscoelastic phase separation;gelation;rheology;polymer crystallization;organic photovoltaics;cryoSEM;confocal microscopy} |
