Sensitive and reliable detection of glass transition of polymers by fluorescent probes based on AIE luminogens
Literature Information
Suping Bao, Qihua Wu, Qiuling Yu, Jing Wang, Guodong Liang
The glass transition of polymers is an immensely-used yet less-understood phenomenon concerning the dynamics of polymer chains in bulk or in confined surroundings, which dictates directly their performances in engineering sectors. Monitoring of the glass transitions or dynamics of polymers is hampered by the lack of facile yet robust methodologies. Herein, we developed a sensitive, reliable and straightforward approach for the detection of glass transitions of polymers using fluorescent probes based on aggregation induced emission (AIE) luminogens. Fluorescence emission of polymers doped with AIE luminogens, including tetraphenylethene (TPE) or its derivatives, showed a sensitive response to the glass transitions of polymers. The sensitivity of fluorescence to glass transition could be optimized by increasing TPE loading. Fluorescence intensity of TPE-doped polymers dropped as much as 25 fold with increasing temperature in the investigated range. The temperature dependence of the fluorescence intensity gave rise to the straightforward determination of the glass transitions of the polymers. Moreover, it is worth mentioning that simply mixing AIE luminogens with polymers, rather than covalently labeling, is possible due to the AIE characteristics of the probes. This significantly facilitated measurements. Given the significant advantages of AIE luminogens as probes, including high and tunable sensitivity, immunity to aggregation, facile operation and simple data processing, fluorescence techniques based on AIE luminogens offer new access for the investigation of the glass dynamics of polymer chains in confined spaces.
Related Literature
Experimental and theoretical study of the rotational reorientation dynamics of 7-animocoumarin derivatives in polar solvents: hydrogen-bonding effects
Panwang Zhou, Peng Song, Jianyong Liu, Keli Han, Guozhong He
DOI: 10.1039/B910043A
Probing chemical disorder in glasses using silicon-29 NMR spectral editing
DOI: 10.1039/B906399D
The impact of monovalent ion force field model in nucleic acids simulations
Agnes Noy, Ignacio Soteras, F. Javier Luque
DOI: 10.1039/B912067J
Infrared–optical double resonance spectroscopic measurements and high level ab initio calculations on a binary complex between phenylacetylene and borane-trimethylamine. Understanding the role of C–H⋯π interactions
Surajit Maity, Robert Sedlak, G. Naresh Patwari
DOI: 10.1039/B911926D
Molecular simulation of conformational transitions in biomolecules using a combination of structure-based potential and empirical valence bond theory
Giuseppe de Marco, Péter Várnai
DOI: 10.1039/B917109F
Sensors for DNA detection: theoretical investigation of the conformational properties of immobilized single-strand DNA
Ivo Cacelli, Alessandro Ferretti, Susanna Monti
DOI: 10.1039/B914386F
Geometric and electronic characteristics of active sites on TiO2-supported Au nano-catalysts: insights from first principles
Siris Laursen, Suljo Linic
DOI: 10.1039/B912641D
You might also like
What is Ethyl 3-cyclohexylpropanoate (CAS: 10094-36-7)?
Ethyl 3-cyclohexylpropanoate is a clear, colorless to light yellow liquid with a...
How should waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl)nicotinic acid (CAS: 34783-31-8) be handled?
Waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl...
How should waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) be handled?
Waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) sho...
What precautions should be taken when handling Chloroac-nle-oh (CAS: 56787-36-1)?
When handling Chloroac-nle-oh (CAS: 56787-36-1), it is essential to wear appropr...
What industries use Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate (CAS: 752244-05-6)?
Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate is primarily used in the...
Are there alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis?
Alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis ...
How should waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) be handled?
Waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) should be managed...
What industries use 1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9)?
1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9) is used in various ...
Are there alternatives to 3-Bromo-5-(N-Boc)aminomethylisoxazole (CAS: 903131-45-3) in synthesis?
There are alternative reagents and compounds that can be used in the synthesis o...
What is Tungsten(IV) oxide (CAS: 12036-22-5)?
Tungsten(IV) oxide, also known as tungsten dioxide, is a chemical compound with ...
Source Journal
Polymer Chemistry

Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.












![2-Bromodibenzo[b,d]furan structure 2-Bromodibenzo[b,d]furan structure](https://static.chemtradehub.com/structs/86-/86-76-0-1814.webp)

