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手性液晶表面活性剂对还原氧化石墨烯的非共价修饰

Non-covalent modification of reduced graphene oxide by a chiral liquid crystalline surfactant.

作者信息

Lin Pengcheng, Cong Yuehua, Sun Cong, Zhang Baoyan

机构信息

Center for Molecular Science and Engineering, Northeastern University, 3 Wenhua Road, Shenyang 110819, P. R. China.

出版信息

Nanoscale. 2016 Jan 28;8(4):2403-11. doi: 10.1039/c5nr07620j.

Abstract

In order to effectively disperse reduced graphene oxide (RGO) in functional materials and take full advantage of its exceptional physical and chemical properties, a novel and effective approach for non-covalent modification of RGO by a chiral liquid crystalline surfactant (CLCS) consisting of chiral mesogenic units, nematic mesogenic units with carboxyl groups and non-mesogenic units with a polycyclic conjugated structure is firstly established. The polycyclic conjugated structure can anchor onto the RGO surface via π-π interactions, the chiral mesogenic units possess affinity for chiral materials by joining the helical matrix of chiral material and the carboxyl groups in nematic mesogenic units are supposed to form coordination bonds with nano zinc oxide (ZnO) to fabricate functional nano hybrids. The transmittances of CLCS-RGO hybrids exhibit S-shaped nonlinear increase with the increase of wavelength, but the total transmittances from 220 nm to 800 nm show a linear decreasing trend with the increase of RGO content in the CLCS-RGO hybrid. Due to the superior thermal properties of RGO and the interactions between RGO and CLCS, the dispersed RGO can improve the glass transition and increase the thermal stability and decomposition activation energy of CLCS. The intercalation of RGO can decrease the thermochromism temperature and improve the pitch uniformity of CLCS. Furthermore, CLCS can promote the dispersion of RGO in chiral nematic liquid crystals (CNLCs), and the CNLC-RGO-CLCS hybrids present decreased driving voltage and accelerated electro-optical response. The CLCS non-covalently modified RGO can strengthen the photocatalytic degradation of ZnO by suppressing the aggregation of ZnO and RGO.

摘要

为了有效地将还原氧化石墨烯(RGO)分散在功能材料中,并充分利用其优异的物理和化学性质,首先建立了一种新颖有效的方法,通过一种由手性介晶单元、带有羧基的向列型介晶单元和具有多环共轭结构的非介晶单元组成的手性液晶表面活性剂(CLCS)对RGO进行非共价修饰。多环共轭结构可以通过π-π相互作用锚定在RGO表面,手性介晶单元通过加入手性材料的螺旋基质对手性材料具有亲和力,向列型介晶单元中的羧基应该与纳米氧化锌(ZnO)形成配位键以制备功能纳米杂化物。CLCS-RGO杂化物的透光率随波长增加呈现S形非线性增加,但从220nm到800nm的总透光率随CLCS-RGO杂化物中RGO含量的增加呈线性下降趋势。由于RGO的优异热性能以及RGO与CLCS之间的相互作用,分散的RGO可以改善玻璃化转变,提高CLCS的热稳定性和分解活化能。RGO的插层可以降低热致变色温度并改善CLCS的螺距均匀性。此外,CLCS可以促进RGO在手性向列相液晶(CNLCs)中的分散,并且CNLC-RGO-CLCS杂化物呈现出降低的驱动电压和加速的电光响应。CLCS非共价修饰的RGO可以通过抑制ZnO和RGO的聚集来增强ZnO的光催化降解。

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