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由正交石墨烯和氮化硼纳米带构建的超弹性、高导电性、超疏水且强大电磁屏蔽的混合气凝胶。

Superelastic, Highly Conductive, Superhydrophobic, and Powerful Electromagnetic Shielding Hybrid Aerogels Built from Orthogonal Graphene and Boron Nitride Nanoribbons.

作者信息

Feng Lei, Wei Peng, Song Qiang, Zhang Jiaxu, Fu Qiangang, Jia Xiaohua, Yang Jin, Shao Dan, Li Yong, Wang Sizhe, Qiang Xinfa, Song Haojie

机构信息

School of Materials Science and Engineering, Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, Shaanxi University of Science and Technology, Xi'an 710021, PR China.

State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, PR China.

出版信息

ACS Nano. 2022 Oct 25;16(10):17049-17061. doi: 10.1021/acsnano.2c07187. Epub 2022 Sep 29.

Abstract

Three-dimensional (3D) elastic aerogels enable diverse applications but are usually restricted by their low thermal and electrical transfer efficiency. Here, we demonstrate a strategy for fabricating the highly thermally and electrically conductive aerogels using hybrid carbon/ceramic structural units made of hexagonal boron nitride nanoribbons (BNNRs) with in situ-grown orthogonally structured graphene (OSG). High-aspect-ratio BNNRs are first interconnected into a 3D elastic and thermally conductive skeleton, in which the horizontal graphene layers of OSG provide additional hyperchannels for electron and phonon conduction, and the vertical graphene sheets of OSG greatly improve surface roughness and charge polarization ability of the entire skeleton. The resulting OSG/BNNR hybrid aerogel exhibits very high thermal and electrical conductivity (up to 7.84 W m K and 340 S m, respectively) at a low density of 45.8 mg cm, which should prove to be vastly advantageous as compared to the reported carbonic and/or ceramic aerogels. Moreover, the hybrid aerogel possesses integrated properties of wide temperature-invariant superelasticity (from -196 to 600 °C), low-voltage-driven Joule heating (up to 42-134 °C at 1-4 V), strong hydrophobicity (contact angel of up to 156.1°), and powerful broadband electromagnetic interference (EMI) shielding effectiveness (reaching 70.9 dB at 2 mm thickness), all of which can maintain very well under repeated mechanical deformations and long-term immersion in strong acid or alkali solution. Using these extraordinary comprehensive properties, we prove the great potential of OSG/BNNR hybrid aerogel in wearable electronics for regulating body temperature, proofing water and pollution, removing ice, and protecting human health against EMI.

摘要

三维(3D)弹性气凝胶具有多种应用,但通常受其低热导率和电导率的限制。在此,我们展示了一种使用由六方氮化硼纳米带(BNNRs)与原位生长的正交结构石墨烯(OSG)制成的混合碳/陶瓷结构单元来制造高导热和导电气凝胶的策略。高纵横比的BNNRs首先相互连接成三维弹性和导热骨架,其中OSG的水平石墨烯层为电子和声子传导提供了额外的超通道,而OSG的垂直石墨烯片极大地提高了整个骨架的表面粗糙度和电荷极化能力。所得的OSG/BNNR混合气凝胶在低密度45.8 mg/cm³下表现出非常高的热导率和电导率(分别高达7.84 W m⁻¹ K⁻¹和340 S m⁻¹),与报道的碳质和/或陶瓷气凝胶相比,这应具有极大优势。此外,该混合气凝胶具有宽温度不变超弹性(从-196至600°C)、低电压驱动焦耳热(在1 - 4 V下高达42 - 134°C)、强疏水性(接触角高达156.1°)和强大的宽带电磁干扰(EMI)屏蔽效能(在2 mm厚度时达到70.9 dB)等综合性能,所有这些性能在反复机械变形以及长期浸泡在强酸或强碱溶液中时都能保持良好。利用这些非凡的综合性能,我们证明了OSG/BNNR混合气凝胶在可穿戴电子产品中用于调节体温、防水防污、除冰以及保护人体健康免受EMI影响方面具有巨大潜力。

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