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Issue 15, 2015
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Artificial nacre-like papers based on noncovalent functionalized boron nitride nanosheets with excellent mechanical and thermally conductive properties

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Abstract

Inspired by the nano/microscale hierarchical structure and the precise inorganic/organic interface of natural nacre, we fabricated artificial nacre-like papers based on noncovalent functionalized boron nitride nanosheets (NF-BNNSs) and poly(vinyl alcohol) (PVA) via a vacuum-assisted self-assembly technique. The artificial nacre-like papers exhibit excellent tensile strength (125.2 MPa), on a par with that of the natural nacre, and moreover display a 30% higher toughness (2.37 MJ m−3) than that of the natural nacre. These excellent mechanical properties result from an ordered ‘brick-and-mortar’ arrangement of NF-BNNSs and PVA, in which the long-chain PVA molecules act as the bridge to link NF-BNNSs via hydrogen bonds. The resulting papers also render high thermal conductivity (6.9 W m−1 K−1), and reveal their superiority as flexible substrates to support light-emitting-diode chips. The combined mechanical and thermal properties make the materials highly desirable as flexible substrates for next-generation commercial portable electronics.

Graphical abstract: Artificial nacre-like papers based on noncovalent functionalized boron nitride nanosheets with excellent mechanical and thermally conductive properties

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Publication details

The article was received on 12 Jan 2015, accepted on 15 Feb 2015 and first published on 19 Feb 2015


Article type: Paper
DOI: 10.1039/C5NR00228A
Author version available: Download Author version (PDF)
Citation: Nanoscale, 2015,7, 6774-6781
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    Artificial nacre-like papers based on noncovalent functionalized boron nitride nanosheets with excellent mechanical and thermally conductive properties

    X. Zeng, L. Ye, S. Yu, H. Li, R. Sun, J. Xu and C. Wong, Nanoscale, 2015, 7, 6774
    DOI: 10.1039/C5NR00228A

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