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首页> 外文期刊>ACS nano >Reduced Graphene Oxide-Reinforced Polymeric Films with Excellent Mechanical Robustness and Rapid and Highly Efficient Healing Properties
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Reduced Graphene Oxide-Reinforced Polymeric Films with Excellent Mechanical Robustness and Rapid and Highly Efficient Healing Properties

机译:石墨烯氧化物增强聚合物薄膜,具有优异的机械稳健性和快速且高效的愈合性能

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The fabrication of nanofiller-reinforced intrinsic healable polymer composite films with both excellent mechanical robustness and highly efficient healability is challenging because the mobility of the polymer chains is suppressed by the incorporated nanofillers. In this study, we exploit the reversible host guest interactions between nanofillers and the matrix polymer films and report the fabrication of intrinsically healable, reduced graphene oxide (RGO)-reinforced polymer composite films capable of conveniently and repeatedly healing cuts of several tens of micrometers wide. The healable films can be prepared via layer-by-layer assembly of poly(acrylic acid) (PAA) with complexes of branched poly(ethylenimine) grafted with ferrocene (bPEI-Fc) and RGO nanosheets modified with beta-cyclodextrin (RGO-CD) (denoted as bPEI-Fc&RGO-CD). The as-prepared PAA/bPEI-Fc&RGO-CD films are mechanically robust with a Young's modulus of 17.2 +/- 1.9 GPa and a hardness of 1.00 +/- 0.30 GPa. The healing process involves two steps: (i) healing of cuts in an oxidation condition in which the host guest interactions between bPEI-Fc and RGO-CD nanosheets are broken and the cuts on the films are healed; and (ii) reconstruction of host guest interactions between bPEI-Fc and RGO-CD nanosheets via reduction to restore the original mechanical robustness of the films.
机译:具有优异的机械稳健性和高效愈合性的纳米填充增强的内在可愈合的聚合物复合膜的制造是具有挑战性的,因为聚合物链的迁移率被掺入的纳米填充物抑制。在这项研究中,我们利用纳米填充物和基质聚合物薄膜之间的可逆宿主的相互作用,并报告了本质上可愈合,石墨烯氧化物(RGO)的制备 - 强迫聚合物复合膜,能够方便,反复愈合几十微米的切割宽度。可渗透薄膜可以通过聚(丙烯酸)(PAA)的层组装来制备,其与嫁接用二茂铁(BPEI-FC)的支聚(乙基亚胺)的复合物和用β-环糊精(RGO-CD)改性的Rgo Nanosheets )(表示为BPEI-FC&RGO-CD)。制备的PAA / BPEI-FC&RGO-CD薄膜具有机械稳健,杨氏模量为17.2 +/- 1.9 GPA,硬度为1.00 +/- 0.30 GPA。愈合过程涉及两个步骤:(i)在氧化条件下切割的愈合,其中BPEI-Fc和rgo-CD纳米片之间的主机相互作用被破坏,并且膜上的切口愈合; (ii)通过减少重建BPEI-FC和RGO-CD纳米片之间的主人客人交互,以恢复薄膜的原始机械稳健性。

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