A Combination of Boron Nitride Nanotubes and Cellulose Nanofibers for the Preparation of a Nanocomposite with High Thermal Conductivity
Комбинация нитрид-бора-нанотрубок и целлюлозных нанофибрилл для получения нанокомпозита с высокой теплопроводностью
2017-04-12
SCID: 54.1/6jmfh7av
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boron nitride nanotubescellulose nanofibersnanocomposite (25.0 wt% BNNT)thermal conductivity (21.39 W m–1 K–1)thermal interface materials / flexible printed circuit board
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Abstract (AI)
With the current development of modern electronics toward miniaturization, high-degree integration and multifunctionalization, considerable heat is accumulated, which results in the thermal failure or even explosion of modern electronics. The thermal conductivity of materials has thus attracted much attention in modern electronics. Although polymer composites with enhanced thermal conductivity are expected to address this issue, achieving higher thermal conductivity (above 10 W m –1 K –1 ) at filler loadings below 50.0 wt % remains challenging. Here, we report a nanocomposite consisting of boron nitride nanotubes and cellulose nanofibers that exhibits high thermal conductivity (21.39 W m –1 K –1 ) at 25.0 wt % boron nitride nanotubes. Such high thermal conductivity is attributed to the high intrinsic thermal conductivity of boron nitride nanotubes and cellulose nanofibers, the one-dimensional structure of boron nitride nanotubes, and the reduced interfacial thermal resistance due to the strong interaction between the boron nitride nanotubes and cellulose nanofibers. Using the as-prepared nanocomposite as a flexible printed circuit board, we demonstrate its potential usefulness in electronic device-cooling applications. This thermally conductive nanocomposite has promising applications in thermal interface materials, printed circuit boards or organic substrates in electronics and could supplement conventional polymer-based materials.
Key Findings
1
A nanocomposite of boron nitride nanotubes (BNNTs) and cellulose nanofibers (CNFs) achieves high thermal conductivity of 21.39 W m–1 K–1 at 25.0 wt% BNNTs.
2
High thermal conductivity arises from BNNTs' and CNFs' high intrinsic thermal conductivities and the one-dimensional structure of BNNTs.
3
Reduced interfacial thermal resistance, due to strong interaction between BNNTs and CNFs, contributes significantly to the composite's thermal performance.
4
The prepared nanocomposite can be used as a flexible printed circuit board, demonstrating potential for electronic device cooling applications.
5
This thermally conductive nanocomposite is a promising alternative for thermal interface materials, printed circuit boards, or organic substrates in electronics, supplementing conventional polymer materials.
Research Object
Nanocomposite consisting of boron nitride nanotubes and cellulose nanofibers
Research Subject
High thermal conductivity (thermal transport performance) achieved at 25.0 wt% boron nitride nanotubes, and the mechanisms enabling it (intrinsic conductivities, 1D BNNT structure, reduced interfacial thermal resistance due to strong BNNT–cellulose interactions) for use in electronic cooling applications
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2017-04-12
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