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利用螺旋选择性共沉淀法制备手性螺旋聚合物纳米颗粒/氧化石墨烯杂化纳米复合材料。

Helix-sense-selective co-precipitation for preparing optically active helical polymer nanoparticles/graphene oxide hybrid nanocomposites.

机构信息

State Key Laboratory of Chemical Resource Engineering, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

Nanoscale. 2017 May 25;9(20):6877-6885. doi: 10.1039/c7nr02337e.

Abstract

Constructing optically active helical polymer based nanomaterials without using expensive and limited chirally helical polymers has become an extremely attractive research topic in both chemical and materials science. In this study, we prepared a series of optically active helical polymer nanoparticles/graphene oxide (OAHPNs/GO) hybrid nanocomposites through an unprecedented strategy-the co-precipitation of optically inactive helical polymers and chirally modified GO. This approach is named helix-sense-selective co-precipitation (HSSCP), in which the chirally modified GO acted as a chiral source for inducing and further stabilizing the predominantly one-handed helicity in the optically inactive helical polymers. SEM and TEM images show quite similar morphologies of all the obtained OAHPNs/GO nanocomposites; specifically, the chirally modified GO sheets were uniformly decorated with spherical polymer nanoparticles. Circular dichroism (CD) and UV-vis absorption spectra confirmed the preferentially induced helicity in the helical polymers and the optical activity of the nanocomposites. The established HSSCP strategy is thus proven to be widely applicable and is expected to produce numerous functional OAHPNs/GO nanocomposites and even the analogues.

摘要

在化学和材料科学领域,构建无需使用昂贵且有限的手性螺旋聚合物的光学活性螺旋聚合物基纳米材料已成为一个极具吸引力的研究课题。在这项研究中,我们通过一种前所未有的策略——非手性螺旋聚合物和手性修饰氧化石墨烯(GO)的共沉淀,制备了一系列光学活性螺旋聚合物纳米颗粒/GO(OAHPNs/GO)杂化纳米复合材料。这种方法被命名为螺旋手性选择性共沉淀(HSSCP),其中手性修饰的 GO 充当手性源,诱导并进一步稳定非手性螺旋聚合物中主要的单螺旋手性。SEM 和 TEM 图像显示所有获得的 OAHPNs/GO 纳米复合材料具有非常相似的形态;具体来说,手性修饰的 GO 片均匀地装饰着球形聚合物纳米颗粒。圆二色性(CD)和紫外-可见吸收光谱证实了螺旋聚合物中优先诱导的手性和纳米复合材料的光学活性。因此,所建立的 HSSCP 策略被证明具有广泛的适用性,有望产生众多功能化的 OAHPNs/GO 纳米复合材料甚至类似物。

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