Polymer architecture dictates thermoreversible gelation in engineered emulsions stabilised with branched copolymer surfactants
文献信息
M. A. da Silva, D. Murnane, L. Porcar, C. A. Dreiss, M. T. Cook
The generation of materials that switch from a liquid to gel state upon warming can enable new healthcare technologies with improved functionality, such as in situ gel-forming materials for drug delivery to topical or parenteral sites. The majority of these materials are aqueous polymer solutions, which then suffer from an inability to solubilise hydrophobic drugs. This study investigates the generation of thermoresponsive “engineered emulsions” which are low-viscosity emulsions at low temperature and switch to a gel state upon warming. This is achieved by the synthesis of novel branched copolymer surfactants (BCS) containing di(ethylene glycol) methyl ether methacrylate (DEGMA) as a thermoresponsive component giving a lower critical solution temperature (LCST). The copolymers were employed as emulsifiers to prepare 1 : 1 dodecane:water emulsion systems. The effect of polymer architecture is shown to be intimately linked to the rheology of these systems, where branching, elevation of molecular weight, and the presence of hydrophobic end groups is demonstrated to be commensurate with gel formation upon heating. Mechanisms of gel formation were probed by small-angle neutron scattering, which demonstrated that the branched copolymer surfactants formed oblate ellipsoids in solution that grew anisotropically with temperature, forming larger disk-like nanoparticles. The formation of these elongated particles leads to thickening of the emulsions, whilst connectivity of the aggregates and BCS at the oil–water interface is required for gel formation to occur. Overall, the study provides design principles for this novel class of thermoresponsive material with great potential in healthcare, cosmetic, and energy applications.
期刊推荐

Current Opinion in Colloid & Interface Science

Russian Journal of Applied Chemistry

Russian Journal of General Chemistry

Acta Materialia

New Journal of Chemistry

Drug Discovery Today

Organic Process Research & Development

Russian Journal of Bioorganic Chemistry

Journal of Natural Medicines

Russian Journal of Coordination Chemistry
相关文献
Synthesis of core cross-linked star polystyrene with functional end groups and self-assemblies templated by breath figures
Liang-Wei Zhu, Wu Yang, Ling-Shu Wan, Zhi-Kang Xu
DOI: 10.1039/C4PY00491D
Synthesis of a multimodal molecular imaging probe based on a hyperbranched polymer architecture
Barbara E. Rolfe, Karine Mardon
DOI: 10.1039/C4PY00513A
Synthesis of 3-, 4-, 5-, 6-, 7-, 8-, 9-, 10-, 11-, and 12-armed star-shaped poly(styrene oxide) Ru(ii) complexes by a click-to-chelate approach
Yougen Chen, Nao Xiao, Toshifumi Satoh, Toyoji Kakuchi
DOI: 10.1039/C4PY00314D
Synthesis of triphenylamine based polysiloxane as a blue phosphorescent host
Dianming Sun, Zhaomin Yang, Xiaoli Sun, Huihui Li, Zhongjie Ren, Junteng Liu, Dongge Ma, Shouke Yan
DOI: 10.1039/C4PY00450G
DNA molecular recognition of intercalators affects aggregation of a thermoresponsive polymer
Yuuki Sugawara, Takanori Tamaki, Takeo Yamaguchi
DOI: 10.1039/C4PY00600C
Galactosylated reduction and pH dual-responsive triblock terpolymer Gal-PEEP-a-PCL-ss-PDMAEMA: a multifunctional carrier for the targeted and simultaneous delivery of doxorubicin and DNA
Yang Zhang, Jinlin He, Dongling Cao, Mingzu Zhang, Peihong Ni
DOI: 10.1039/C4PY00538D
Synthesis and chiral recognition ability of helical polyacetylenes bearing helicene pendants
Hiroki Iida, Tomoko Yamaguchi, Koutarou Hayashi, Daisuke Kumano, Jeanne Crassous, Nicolas Vanthuyne, Christian Roussel, Eiji Yashima
DOI: 10.1039/C4PY00692E
Synthesis and characterization of isosorbide-based polyphosphonates as biobased flame-retardants
Timothy C. Mauldin, Jeffrey W. Gilman, John R. Shields, Dylan J. Boday
DOI: 10.1039/C4PY00591K
Co-delivery of 5-fluorocytosine and cytosine deaminase into glioma cells mediated by an intracellular environment-responsive nanovesicle
Yuanyuan Yuan, Shudong Lin, Du Cheng, Xiaoying Wang, Qing Jiang, Xintao Shuai
DOI: 10.1039/C4PY00291A
New method for the synthesis of fully aliphatic telechelic α,ω-dihydroxy-polyisobutylene
Marcela Castano, Matthew L. Becker
DOI: 10.1039/C4PY00569D
您可能还喜欢
什么是2,6-二溴-4,8-双[(2-乙基己基)氧基]苯并[1,2-b:4,5-b']二噻吩(CAS号:1226782-13-3)?
2,6-二溴-4,8-双[(2-乙基己基)氧基]苯并[1,2-b:4,5-b']二噻吩是一种有机化合物,分子式为C23H32Br2O2S2。该化合物具有芳香性和...
木聚硫钠(CAS号:37319-17-8)的物理化学性质是什么?
木聚硫钠通常为无色或白色结晶性粉末,具有吸湿性。其分子量约为121.11 g/mol。木聚硫钠易溶于水,不溶于醇类和其他非极性溶剂。在酸性或碱性溶液中,木聚硫钠...
2-甲氧基-4-(三氟甲基)苄溴, JRD(CAS号:886500-59-0)适用哪些法规指南?
该化合物在合成、储存和运输过程中需遵循《全球化学品统一分类和标签制度》(GHS)的健康、环境和物理危险分类。在欧洲还需符合《化学品注册、评估、授权和限制》(RE...
1,4-Diazoniabicyclo[2.2.2]octane-1,4-disulfinate(CAS号:119752-83-9)的主要用途是什么?
1,4-二氮杂双环[2.2.2]辛烷-1,4-二硫酸二酯主要用于有机合成中的保护基团,特别是在保护胺基和硫醇基方面具有广泛应用。此外,它还用于一些特殊化学反应的...
如何处理含有4-(Bromomethyl)-2-fluorobenzenesulphonamide(CAS号:1645275-47-3)的废料?
含有4-(Bromomethyl)-2-fluorobenzenesulphonamide的废液应首先进行中和处理,以降低pH值,避免对环境造成腐蚀性影响。随后...
Loureiriol(CAS号:479195-44-3)的物理化学性质是什么?
Loureiriol是一种天然化合物,其分子式为C15H22O4。Loureiriol为无色结晶性粉末,具有较高的熔点和良好的热稳定性。其相对分子质量为262....
在合成中是否有3-氨基苯甲酰苯胺(CAS号:14315-16-3)的替代品?
在合成过程中,可以考虑使用类似结构的化合物作为3-氨基苯甲酰苯胺的替代品,例如N-苯基-3-氰基苯胺或N-苯基-3-硝基苯胺等,这些化合物具有相似的化学性质,可...
4-异氰酰苯基硼酸频哪醇酯(CAS号:380430-64-8)的市场或研究趋势如何?
4-异氰酰苯基硼酸频哪醇酯主要应用于有机合成、药物化学和材料科学领域。随着绿色化学的发展,该化合物因其高效的官能团转化能力和环境友好性而受到越来越多的关注。近年...
如何储存3β-乙酰氧基-7,25-甘遂二烯-24(R)-醇(CAS号:1352001-09-2)?
3β-乙酰氧基-7,25-甘遂二烯-24(R)-醇应储存在阴凉、干燥、通风良好的地方,避免直接光照。储存容器应密封,防止空气中的水分和氧气影响化合物的稳定性。建...
如何储存4-氟-2-甲基-1H-吲哚(CAS号:1260383-51-4)?
应将4-氟-2-甲基-1H-吲哚存放在阴凉、干燥、通风良好的地方,避免直接暴露在光照下。容器应密封,避免与空气中的水蒸气接触。建议在避光、温度不超过25℃的环境...
来源期刊
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.



![(R)-N-[(S)-1-[2-(Diphenylphosphino)phenyl]ethyl]-2-methylpropane-2-sulfinamide structure (R)-N-[(S)-1-[2-(Diphenylphosphino)phenyl]ethyl]-2-methylpropane-2-sulfinamide structure](https://cnstatic.chemtradehub.com/structs/159/1595319-98-4-33e7.webp)
![5,10-Dihydroindeno[2,1-a]indene structure 5,10-Dihydroindeno[2,1-a]indene structure](https://cnstatic.chemtradehub.com/structs/654/6543-29-9-71ca.webp)