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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Construction of crosslinked chitosan/nitrogen-doped graphene quantum dot nanocomposite for hydroxyapatite biomimetic mineralization
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Construction of crosslinked chitosan/nitrogen-doped graphene quantum dot nanocomposite for hydroxyapatite biomimetic mineralization

机译:交联壳聚糖/氮掺杂石墨烯量子点纳米复合材料的构建羟基磷灰石仿矿物矿化

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Crosslinked Chitosan/nitrogen doped-graphene quantum dot nanocomposites (CCS/NGQD NC) with 10 wt% of glutaraldehyd as crosslinker were fabricated under ultrasonic cavitation. Structure and physicochemical properties of the prepared nanocomposites (NC) were systematically characterized by a number of techniques. The swelling capacity of the crosslinked films in the simulated intestinal (pH 7.4) media was evaluated. However, rate of water ingress of specimens was nearly same, but, the CCS/NGQD NC 8 wt% showed the more water absorption ability than the CCS. Bioactivity of the CCS and CCS/NGQD NCs were evaluated by studying their ability to form of apatite on their surface after soaking in a simulated body fluid (SBF) for 30 days. In images of field emission scan electron microscopy, small island-like agglomerated apatite deposited on the sample surface. Also, the pH fluctuation displayed that the hydroxyapatite was formed on the surface of the samples after one month of immersion in SBF. The finding showed that the CCS/NGQD NCs immersed into SBF had a better apatite forming bioactivity compared with the CCS, which may be due to the high surface area, adequate function groups and appropriate swelling of the NCs. Such improved behaviors of CCS/NGQD NCs may have potential use in the bone tissue engineering. (C) 2018 Elsevier B.V. All rights reserved.
机译:在超声波空化下制造具有10wt%的戊二醛的交联壳聚糖/氮掺杂 - 石墨烯量子点纳米复合材料(CCS / NgQD NC),其作为交联剂的交联剂。制备纳米复合材料(NC)的结构和物理化学性质通过许多技术进行了系统地表征。评估了模拟肠道(pH7.4)培养基中交联膜的膨胀容量。然而,样品的进水速率几乎相同,但是,CCS / NGQD NC 8wt%显示出比CCs更多的吸水能力。通过在浸泡在模拟体液(SBF)浸泡30天后,通过研究它们在其表面上形成磷灰石的能力来评估CCS和CCS / NGQD NC的生物活性。在场发射扫描电子显微镜的图像中,沉积在样品表面上的小岛状附聚磷灰石。而且,在浸入SBF的一个月后,在样品的表面上形成羟基磷灰石在样品的表面上形成的pH波动。该发现表明,与CCS相比,浸入SBF中的CCS / NGQD NCS具有更好的磷灰石形成生物活性,这可能是由于高表面积,足够的函数组和NCS的适当肿胀。这种改进的CCS / NGQD NC的行为可能在骨组织工程中具有潜在的用途。 (c)2018年elestvier b.v.保留所有权利。

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