Mohata Shibani, Dey Kaushik, Bhunia Surojit, Thomas Neethu, Gowd E Bhoje, Ajithkumar Thalasseril G, Reddy C Malla, Banerjee Rahul
Department of Chemical Sciences, Indian Institute of Science Education and Research, Kolkata, Mohanpur 741246, India.
Centre for Advanced Functional Materials, Indian Institute of Science Education and Research, Kolkata, Mohanpur 741246, India.
J Am Chem Soc. 2022 Jan 12;144(1):400-409. doi: 10.1021/jacs.1c10263. Epub 2021 Dec 29.
Empowered by crystalline ordered structures and homogeneous fabrication techniques, covalent organic frameworks (COFs) have been realized with uniform morphologies and isotropic properties. However, such homogeneity often hinders various surface-dependent properties observed in asymmetric nanostructures. The challenge remains to induce heterogeneity in COFs by creating an asymmetric superstructure such as a Janus thin film. In this regard, we propose a versatile yet straightforward interfacial layer-grafting strategy to fabricate free-standing Janus-type COF-graphene thin films. Herein, two-dimensional graphene sheets were utilized as the suitable grafter due to the possibility of noncovalent interactions between the layers. The versatility of the approach was demonstrated by fabricating two distinct Janus-type films, with the COF surface interwoven with nanofibers and nanospheres. The Janus-type films showcase opposing surface morphologies originating from graphene sheets and COF nanofibers or nanospheres, preserving the porosity (552-600 m g). The unique surface chemistries of the constituent layers further endow the films with orthogonal mechanical properties, as confirmed by the nanoindentation technique. Interestingly, the graphene sheets favor the Janus-type assembly of COF nanofibers over the nanospheres. This is reflected in the better nanomechanical properties of COF-graphene films ( = 300-1200 MPa; = 15-60 MPa) compared to the COF-graphene films ( = 11-14 MPa; = 2-5 MPa). These results indicate a direct relationship between the mechanical properties and homo/heterogeneity of Janus-type COF films.
凭借晶体有序结构和均匀制造技术,共价有机框架(COF)已实现具有均匀形态和各向同性特性。然而,这种均匀性常常阻碍在不对称纳米结构中观察到的各种表面依赖性特性。通过创建诸如双面薄膜之类的不对称超结构来在COF中引入异质性仍然是一个挑战。在这方面,我们提出了一种通用且直接的界面层接枝策略来制备独立的双面型COF-石墨烯薄膜。在此,二维石墨烯片由于层间存在非共价相互作用的可能性而被用作合适的接枝体。通过制备两种不同的双面型薄膜证明了该方法的通用性,其中COF表面与纳米纤维和纳米球交织在一起。双面型薄膜展示了源自石墨烯片和COF纳米纤维或纳米球的相反表面形态,保留了孔隙率(552 - 600 m g)。通过纳米压痕技术证实,组成层独特的表面化学性质进一步赋予薄膜正交的力学性能。有趣的是,石墨烯片相比于纳米球更有利于COF纳米纤维的双面型组装。这体现在与COF-纳米球薄膜( = 11 - 14 MPa; = 2 - 5 MPa)相比,COF-石墨烯薄膜具有更好的纳米力学性能( = 300 - 1200 MPa; = 15 - 60 MPa)。这些结果表明了双面型COF薄膜的力学性能与均质性/异质性之间的直接关系。