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Large freestanding 2D covalent organic framework nanofilms exhibiting high strength and stiffness
被引:24
|作者:
Pantano, M. F.
[1
]
Missale, E.
[1
]
Gazzato, L.
[2
]
Pilot, R.
[2
,3
]
Sedona, F.
[2
]
Speranza, G.
[4
,5
,6
,7
]
Frasconi, M.
[2
]
机构:
[1] Univ Trento, Dept Civil Environm & Mech Engn, Via Mesiano 77, I-38123 Trento, Italy
[2] Univ Padua, Dept Chem Sci, Via Marzolo 1, I-35131 Padua, Italy
[3] Consorzio INSTM, Via G Giusti 9, I-50121 Florence, Italy
[4] Fdn Bruno Kessler, Ctr Mat & Microsyst, Via Sommar 18, I-38123 Trento, Italy
[5] Ist Foton & Nanotecnol, Via Cascata 56-C, I-38123 Povo, Trento, Italy
[6] Consiglio Nazl Ric IFN CNR, Via Cascata 56-C, I-38123 Povo, Trento, Italy
[7] Univ Trento, Dept Ind Engn, Via Sommar 9, I-38123 Trento, Italy
关键词:
2D COF;
Interfacial polymerization;
Thin films;
Nanomechanics;
Imine chemistry;
ELASTIC PROPERTIES;
IMINE;
MONOLAYER;
D O I:
10.1016/j.mtchem.2022.101007
中图分类号:
O6 [化学];
学科分类号:
0703 ;
摘要:
Two-dimensional covalent organic frameworks (2D COFs) represent an ideal platform to develop novel technological applications. The integration of 2D COFs into thin-film device architectures requires a deep knowledge of their mechanical performance, especially as large-area ultrathin films. Here, we report the synthesis, transfer, and mechanical characterization of large-area freestanding 2D COF films with nanometer thicknesses. Imine-linked COF nanofilms are prepared by condensation reaction at air-water interface, which provides freestanding, uniform centimeter-scale 2D COF films with controlled thickness. The developed procedure enables the direct transfer of the synthetized large-area COF nanofilm onto patterned substrates for mechanical characterization. Tensile tests are performed on freestanding 2D COF films with 85 nm thickness and with a testing area as large as 0.3 mm(2). The measured strength of the COF nanofilms is 188 +/- 57 MPa, while the Young's modulus is 37 +/- 15 GPa. Our findings not only demonstrate the high stiffness and strength of COF nanofilms over a large-area, which make them suitable for applications where high mechanical performance is required, but also pave the way for a fundamental understanding of the relationship between the structures and macroscopic mechanical properties of 2D COFs. Thus, the method that we developed herein will enable a broad exploration of the properties of large-area 2D COFs that will guide their engineering design toward the development of novel COF-based devices. (C) 2022 Elsevier Ltd. All rights reserved.
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