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Increasing Alkyl Chain Length in a Series of Layered Metal–Organic Frameworks Aids Ultrasonic Exfoliation to Form Nanosheets
Author(s) -
David J. Ashworth,
Thomas M. Roseveare,
Andreas Schneemann,
Max Flint,
Irene Dominguez Bernáldes,
Pia Vervoorts,
Roland A. Fischer,
Lee Brammer,
Jonathan A. Foster
Publication year - 2019
Publication title -
inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 233
eISSN - 1520-510X
pISSN - 0020-1669
DOI - 10.1021/acs.inorgchem.9b01128
Subject(s) - chemistry , exfoliation joint , metal organic framework , alkyl , ultrasonic sensor , series (stratigraphy) , long chain , chain (unit) , metal , polymer chemistry , chemical engineering , nanotechnology , polymer science , organic chemistry , acoustics , graphene , materials science , adsorption , engineering , paleontology , physics , astronomy , biology
Metal-organic framework nanosheets (MONs) are attracting increasing attention as a diverse class of two-dimensional materials derived from metal-organic frameworks (MOFs). The principles behind the design of layered MOFs that can readily be exfoliated to form nanosheets, however, remain poorly understood. Here we systematically investigate an isoreticular series of layered MOFs functionalized with alkoxy substituents in order to understand the effect of substituent alkyl chain length on the structure and properties of the resulting nanosheets. A series of 2,5-alkoxybenzene-1,4-dicarboxylate ligands (O 2 CC 6 H 2 (OR) 2 CO 2 , R = methyl-pentyl, 1 - 5 , respectively) was used to synthesize copper paddle-wheel MOFs. Rietveld and Pawley fitting of powder diffraction patterns for compounds Cu( 3 - 5 )(DMF) showed they adopt an isoreticular series with two-dimensional connectivity in which the interlayer distance increases from 8.68 Å (R = propyl) to 10.03 Å (R = pentyl). Adsorption of CO 2 by the MOFs was found to increase from 27.2 to 40.2 cm 3 g -1 with increasing chain length, which we attribute to the increasing accessible volume associated with increasing unit-cell volume. Ultrasound was used to exfoliate the layered MOFs to form MONs, with shorter alkyl chains resulting in higher concentrations of exfoliated material in suspension. The average height of MONs was investigated by AFM and found to decrease from 35 ± 26 to 20 ± 12 nm with increasing chain length, with the thinnest MONs observed being only 5 nm, corresponding to five framework layers. These results indicate that careful choice of ligand functionalities can be used to tune nanosheet structure and properties, enabling optimization for a variety of applications.

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