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探索兼具高韧性和高强度的纤维素纳米纸的大延展性。

Exploring Large Ductility in Cellulose Nanopaper Combining High Toughness and Strength.

机构信息

Department of Bioproducts and Biosystems, School of Chemical Engineering, Aalto University P.O. Box 16300, FI-00076 Espoo, Finland.

Center for Materials Forming-CEMEF, MINES ParisTech, PSL Research University, UMR CNRS 7635, CS 10207, 06904 Sophia, Antipolis, France.

出版信息

ACS Nano. 2020 Sep 22;14(9):11150-11159. doi: 10.1021/acsnano.0c02302. Epub 2020 Aug 19.

DOI:10.1021/acsnano.0c02302
PMID:32804482
Abstract

Cellulose nanopaper is a strong lightweight material made from renewable resources with a wide range of potential applications, from membranes to electronic displays. Most studies on nanopaper target high mechanical strength, which compromises ductility and toughness. Herein, we demonstrate the fabrication of highly ductile and tough cellulose nanopaper via mechanical fibrillation of hemicellulose-rich wood fibers and dispersion of the obtained cellulose nanofibrils (CNFs) in an ionic liquid (IL)-water mixture. This treatment allows hemicellulose swelling, which leads to dissociation of CNF bundles into highly disordered long flexible fibrils and the formation of a nanonetwork as supported by cryogenic transmission electron microscopy (cryo-TEM) imaging. Rheology of the suspensions shows a 300-fold increase in storage and loss moduli of CNF-IL-water suspensions, compared to their CNF-water counterparts. The nanopaper prepared by removing the IL-water shows a combination of large elongation (up to 35%), high strength (260 MPa), and toughness as high as 51 MJ/m, because of efficient interfibrillar slippage and energy dissipation in the highly disordered isotropic structure. This work provides a nanostructure-engineered strategy of making ductile and tough cellulose nanopaper.

摘要

纤维素纳米纸是一种由可再生资源制成的高强度轻质材料,具有广泛的潜在应用,从膜到电子显示器。大多数关于纳米纸的研究都针对高机械强度,这会牺牲延展性和韧性。在此,我们通过富含半纤维素的木纤维的机械纤维化以及在离子液体(IL)-水混合物中分散所得到的纤维素纳米纤维(CNF)来制备具有高延展性和韧性的纤维素纳米纸。这种处理允许半纤维素溶胀,从而导致 CNF 束解离成高度无序的长柔性纤维,并通过低温透射电子显微镜(cryo-TEM)成像得到纳米网络的形成。悬浮液的流变学表明,与 CNF-水悬浮液相比,CNF-IL-水悬浮液的储能模量和损耗模量增加了 300 倍。通过去除 IL-水制备的纳米纸由于在高度无序的各向同性结构中有效发生纤维间滑移和能量耗散,表现出高达 35%的大伸长率(up to 35%)、高强度(260 MPa)和高韧性(高达 51 MJ/m)。这项工作提供了一种用于制造柔韧和坚韧的纤维素纳米纸的纳米结构工程策略。

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