Polyurethane with an ionic liquid crosslinker: a new class of super shape memory-like polymers
文献情報
Prasanta Kumar Behera, Prantik Mondal, Nikhil K. Singha
This investigation reports on the synthesis of a new class of ionic liquid crosslinked shape-memory polyurethane (PU-IL) based on polycaprolactone diol and 4,4′-methylenebis(phenyl isocyanate) (MDI), which can overcome the major drawbacks of conventional shape-memory polyurethanes. In this case, the ionic liquid crosslinker in PU-IL exhibited not only a higher shape-recovery ratio (98%), but also showed excellent shape-fixity (98%). In the second cycle of the cyclic tensile test, PU-IL showed almost complete shape recovery while maintaining excellent shape fixity. The higher shape-fixity value in PU-IL was also supported by its higher crystallization and melting enthalpy, as evidenced by DSC analysis. The properties of this PU-IL were compared with those of conventional linear PU having 1,4 butanediol (BDO) as a chain extender as well as of non-ionic crosslinked PU using trimethylolpropane (TMP). Ionic liquid as a crosslinker reduced the glass transition temperature (Tg), whereas the non-ionic crosslinker increased the Tg. Interestingly, the soft segment crystallinity as well as melting enthalpy of PU-IL is higher than that of PU-BDO, whereas no melting or crystallization peak was observed in the DSC thermograms of PU-TMP. The DSC results were supported by DMA analysis. The higher Tg and the absence of a soft domain melting transition indicated complete intermixing of hard and soft phases in PU-TMP, but the ionic interaction in PU-IL restricted this. Inter-domain mixing in PU-TMP was also supported by the absence of a scattering peak in SAXS analysis. FT-IR spectroscopy showed stronger hydrogen bonding in PU-BDO followed by PU-TMP and PU-IL.
関連文献
Co-doped MoS2 nanosheet: a stable and pH-universal electrocatalyst for an efficient hydrogen evolution reaction
Xiaojie Tan, Depeng Zhao, Yuchen Sun, Zhongxin Duan, Xiaowei Wang
DOI: 10.1039/D2CE00951J
Performance enhancement of a self-biased n-ZnO microwire/p-GaN heterojunction ultraviolet photodetector incorporating Ag nanowires
Yulan Xie, Peng Wan, Mingming Jiang, Yang Liu, Daning Shi, Caixia Kan
DOI: 10.1039/D2CE01084D
Water-in-salt electrolytes – molecular insights to the high solubility of lithium-ion salts
Aleksandar Tot, Lars Kloo
DOI: 10.1039/D2CC03062D
Synthesis of glycerol 1,2-carbonate by transesterification of glycerol with dimethyl carbonate using triethylamine as a facile separable homogeneous catalyst
Olga Gómez-Jiménez-Aberasturi, Camilo Ramírez-López, Belén Maestro-Madurga
DOI: 10.1039/C2GC35992H
Uranium extraction from seawater: material design, emerging technologies and marine engineering
Yi Xie, Zeyu Liu, Yiyun Geng, Ning Wang, Yanpei Song, Xiaolin Wang, Jing Chen, Jianchen Wang, Shengqian Ma, Gang Ye
DOI: 10.1039/D2CS00595F
Aza-Michael versus aminolysis reactions of glycerol carbonate acrylate
Nohra Bassam, Candy Laure, Blanco Jean-François, Raoul Yann, Mouloungui Zephirin
DOI: 10.1039/C3GC37054B
A rotatable cathode with tunable steric hindrance for high-performance aluminum organic batteries
Mingshan Han, Qinqin Zhou, Meng Zhang, Jinshu Wang, Fangyan Cui, Yunfei Yang, Jingwen Su, Weiwei Huang, Yuxiang Hu
DOI: 10.1039/D3TA00343D
Efficient electrocatalytic hydrogenation of cinnamaldehyde to value-added chemicals
Henan Chen, Baiyao Liang, Dingyi Zhang, Guanwu Lian, Chenxin Yang, Yun Zhang, Wei Zhao
DOI: 10.1039/D1GC04777A
A new MCM-41 supported HPF6 catalyst for the library synthesis of highly substituted 1,4-dihydropyridines and oxidation to pyridines: report of one-dimensional packing towards LMSOMs and studies on their photophysical properties
Suman Ray, Mike Brown, Asim Bhaumik, Arghya Dutta, Chhanda Mukhopadhyay
DOI: 10.1039/C3GC40441B
こちらもおすすめ
「邻羟基阿托伐他汀内酯标准品」に適用される法規ガイドelinesは何ですか?
CAS番号163217-74-1の「邻羟基阿托伐他汀内酯标准品」は、GHS分類では危険物に分類されず、主にREACH規則とFDA/EPAの管理対象となります。R...
メチル(3R)-3-アミノ-2,3-ジヒドロ-1-ベンゾファンラニン-5-カルボイル酸塩塩酸塩の主な用途は何ですか?
メチル(3R)-3-アミノ-2,3-ジヒドロ-1-ベンゾファンラニン-5-カルボイル酸塩塩酸塩は、医薬品や合成化学の研究に広く用いられます。また、特定の薬物の前...
トランス-4-メチルピロリジン-3-オール塩酸塩はどのように合成されますか?
トランス-4-メチルピロリジン-3-オール塩酸塩は、4-メチルピロリジンの塩酸塩化によって合成されます。一般的な合成方法では、4-メチルピロリジンを塩酸に加えて...
硫雜環丁烷-1,1-二氧化物は安全ですか?
硫雜環丁烷-1,1-二氧化物は安全ではありません。毒性は報告されていませんが、高温下で分解し、可燃性があるため、高圧ガスは注意が必要です。密閉した容器で保管し、...
9-ヒドロキシエリプチシネ塩酸塩はどのように合成されますか?
9-ヒドロキシエリプチシネ塩酸塩は、エリプチシネから塩酸を添加することで合成されます。選択性は高いですが、収率は約70%です。
5-塩素-2-(メチルアミノ)フェニル-(2-塩素フェニル)メタン酮の物理化学的性質は何ですか?
5-塩素-2-(メチルアミノ)フェニル-(2-塩素フェニル)メタン酮のCAS番号は5621-86-3です。この化合物は白色の結晶性粉末で、分子量は415.03で...
1-[2-(4-甲氧基-苯氧基)-乙基]-哌嗪はどのように保存すればよいですか?
1-[2-(4-甲氧基-苯氧基)-乙基]-哌嗪は、直射日光を避けて暗所に、室温(15-25℃)で保管し、密閉容器に入れることで安定性を保つことができます。
2-[3-(4-甲氧基フェニル)プロピル]-4,4,5,5-四メチル-1,3,2-ドイボロロールアンの主な用途は何ですか?
2-[3-(4-甲氧基フェニル)プロピル]-4,4,5,5-四メチル-1,3,2-ドイボロロールアンは、医薬品の合成、有機合成化学、および新材料の研究で使用され...
掲載誌
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.










phosphoryl}methyl 4-methylbenzenesulfonate structure {[3-(Hexadecyloxy)propoxy](hydroxy)phosphoryl}methyl 4-methylbenzenesulfonate structure](https://static.chemtradehub.com/structs/864/864068-45-1-ba7c.webp)



