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一种放大的阳光响应形状记忆生物复合材料的研制:氮化钛(TiN)纳米颗粒对生物基苯并恶嗪/环氧树脂共聚物的影响。

Development of a magnified sunlight responsive shape memory bio-composite: effects of titanium nitride (TiN) nanoparticles on a bio-based benzoxazine/epoxy copolymer.

作者信息

Joseph Anandraj, Lawan Ibrahim, Charoensuk Krittapas, Luengrojanakul Panuwat, Mora Phattarin, Ahn Cheol-Hee, Rimdusit Sarawut

机构信息

Center of Excellence in Polymeric Materials for Medical Practice Devices, Department of Chemical Engineering, Faculty of Engineering, Chulalongkorn University Bangkok 10330 Thailand

Department of Chemical Engineering, Faculty of Engineering, Srinakharinwirot University Nakhonnayok 26120 Thailand.

出版信息

Nanoscale Adv. 2024 Jul 12;6(17):4407-4416. doi: 10.1039/d4na00360h. eCollection 2024 Aug 20.

Abstract

This study uniquely explored the effects of loading titanium nitride (TiN) nanoparticles in a bio-based benzoxazine/epoxy copolymer on the shape memory performance of the resulting composite using normal and magnified sunlight irradiation stimuli scenarios. Additionally, the effects of loading the TiN nanoparticles in the copolymer on light absorbance capacity, thermal stability, visco-elastic properties, and tensile properties of the composites were analysed. Results reveal that the different loading amounts (1 to 7 wt%) of TiN dispersed well within the copolymer matrix and produced excellent composite samples (TiN-1(wt%), TiN-3(wt%), TiN-5(wt%), and TiN-7(wt%)). Interestingly, the obtained samples were found to exhibit improved light absorbance in the wavelength range of 200-900 nm, giving the samples greater sunlight absorbing capacity. Moreover, the thermal stability of the composites increases with an increase in the loading amount; for instance, the initial degradation temperature increased from 316 °C to 324 °C. Meanwhile, visco-elastic and tensile properties increased and reached the optimum for TiN-5(wt%), where 3.1 GPa and 10.4 MPa were recorded as storage modulus and tensile stress, respectively. Consequent to these improvements in the properties of the composites, the shape memory performance of the composites was positively impacted. For instance, average shape fixity ratio, shape recovery ratio, and recovery time of 95%, 96%, and 38 seconds, respectively, were achieved with TiN-7(wt%), which represents 19%, 17%, and 38% improvements, respectively, compared to when the neat copolymer (TiN-0(wt%)) was used using magnified sunlight irradiation stimulus. Overall, this finding provides the basis for the utilization of magnified sunlight irradiation stimulus to achieve excellent shape memory performance with TiN-filled polymer composites.

摘要

本研究独特地探索了在生物基苯并恶嗪/环氧共聚物中负载氮化钛(TiN)纳米颗粒,在正常和放大阳光照射刺激场景下对所得复合材料形状记忆性能的影响。此外,还分析了在共聚物中负载TiN纳米颗粒对复合材料的吸光能力、热稳定性、粘弹性和拉伸性能的影响。结果表明,不同负载量(1至7 wt%)的TiN在共聚物基体中分散良好,并制备出了优异的复合材料样品(TiN-1(wt%)、TiN-3(wt%)、TiN-5(wt%)和TiN-7(wt%))。有趣的是,发现所得样品在200-900 nm波长范围内表现出改善的吸光性,使样品具有更大的阳光吸收能力。此外,复合材料的热稳定性随着负载量的增加而提高;例如,初始降解温度从316℃升高到324℃。同时,粘弹性和拉伸性能有所提高,在TiN-5(wt%)时达到最佳,其储能模量和拉伸应力分别记录为3.1 GPa和10.4 MPa。由于复合材料性能的这些改善,其形状记忆性能受到了积极影响。例如,使用放大阳光照射刺激时,TiN-7(wt%)的平均形状固定率、形状恢复率和恢复时间分别达到95%、96%和38秒,与使用纯共聚物(TiN-0(wt%))相比,分别提高了19%、17%和38%。总体而言,这一发现为利用放大阳光照射刺激实现TiN填充聚合物复合材料优异的形状记忆性能提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b51/11334992/bae660e4d5d1/d4na00360h-f1.jpg

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