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碳表面共价有机框架微晶的成像与分析:一种纳米晶片状COF/纳米管杂化物

Imaging and analysis of covalent organic framework crystallites on a carbon surface: a nanocrystalline scaly COF/nanotube hybrid.

作者信息

Weare Benjamin L, Lodge Rhys W, Zyk Nikolai, Weilhard Andreas, Housley Claire L, Strutyński Karol, Melle-Franco Manuel, Mateo-Alonso Aurelio, Khlobystov Andrei N

机构信息

School of Chemistry, University of Nottingham, Nottingham, NG7 2RD, UK.

出版信息

Nanoscale. 2021 Apr 14;13(14):6834-6845. doi: 10.1039/d0nr08973g. Epub 2021 Apr 6.

Abstract

Synthesis of covalent organic frameworks (COFs) is well-advanced but understanding their nanoscale structure and interaction with other materials remains a significant challenge. Here, we have developed a methodology for the detailed imaging and analysis of COF crystallites using carbon nanotube substrates for COF characterisation. Detailed investigation using powder X-ray diffraction, infrared spectroscopy, mass spectrometry and scanning electron microscopy in conjunction with a local probe method, transmission electron microscopy (TEM), revealed details of COF growth and nucleation at the nanoscale. A boronate ester COF undergoes preferential growth in the a-b crystallographic plane under solvothermal conditions. Carbon nanotubes were found to not impact the mode of COF growth, but the crystallites on nanotubes were smaller than COF crystallites not on supports. COF crystalline regions with sizes of tens of nanometres exhibited preferred orientation on nanotube surfaces, where the c-axis is oriented between 50 and 90° relative to the carbon surface. The COF/nanotube hybrid structure was found to be more complex than the previously suggested concentric core-shell model and can be better described as a nanocrystalline scaly COF/nanotube hybrid.

摘要

共价有机框架(COF)的合成技术已经相当成熟,但了解其纳米级结构以及与其他材料的相互作用仍然是一项重大挑战。在此,我们开发了一种方法,用于使用碳纳米管基底对COF微晶进行详细成像和分析,以表征COF。通过粉末X射线衍射、红外光谱、质谱和扫描电子显微镜,并结合局部探针方法——透射电子显微镜(TEM)进行详细研究,揭示了COF在纳米尺度上的生长和成核细节。一种硼酸酯COF在溶剂热条件下在a - b晶面优先生长。发现碳纳米管不会影响COF的生长模式,但纳米管上的微晶比无支撑的COF微晶更小。尺寸为几十纳米的COF晶体区域在纳米管表面呈现择优取向,其中c轴相对于碳表面的取向角度在50°至90°之间。发现COF/纳米管杂化结构比之前提出的同心核壳模型更为复杂,并且可以更好地描述为纳米晶鳞片状COF/纳米管杂化物。

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