Lightweight, Superelastic Yet Thermoconductive Boron Nitride Nanocomposite Aerogel for Thermal Energy Regulation
Article
Article Title | Lightweight, Superelastic Yet Thermoconductive Boron Nitride Nanocomposite Aerogel for Thermal Energy Regulation |
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ERA Journal ID | 35029 |
Article Category | Article |
Authors | Wang, Jieming (Author), Liu, Dan (Author), Li, Quanxiang (Author), Chen, Cheng (Author), Chen, Zhiqiang (Author), Song, Pingan (Author), Hao, Jian (Author), Li, Yingwei (Author), Fakhrhoseini, Sobhan (Author), Naebe, Minoo (Author), Wang, Xungai (Author) and Lei, Weiwei (Author) |
Journal Title | ACS Nano |
Journal Citation | 13 (7), pp. 7860-7870 |
Number of Pages | 11 |
Year | 2019 |
Publisher | American Chemical Society |
Place of Publication | United States |
ISSN | 1936-0851 |
1936-086X | |
Digital Object Identifier (DOI) | https://doi.org/10.1021/acsnano.9b02182 |
Web Address (URL) | https://pubs.acs.org/doi/abs/10.1021/acsnano.9b02182 |
Abstract | Conventional three-dimensional (3D) thermal conductors or heat sinks are normally bulky solids with high density, which is cumbersome and not portable to satisfy current demands for soft and flexible electronic devices. To address this issue, here, a lightweight, superelastic yet thermally conductive boron nitride (BN) nanocomposite aerogel is designed by a facile freeze-drying method. The attained aerogel constituting of tailored interconnected binary inorganic–organic network structure exhibits low bulk density (6.5 mg cm–3) and outstanding mechanical performances for compression, clotting, and stretching. Meanwhile, the aerogel has promising thermal stability and high thermal conductivity over wide temperature ranges (30–300 °C), validating the application even in extremely hot environments. Moreover, the aerogel can serve as a lightweight and elastic heat conductor for the enhancement of thermal energy harvest. Interestingly, during alternate strain loading/unloading under heating, the superelasticity and the anisotropy of thermal conductive transduction make the aerogel enable the elastic thermal energy capture and dynamic regulation. Therefore, our findings provide a potential use for the thermally conductive aerogel in future green energy applications. |
Keywords | functional BN nanosheets; aerogel; high temperature thermal conductive; thermal management; dissipated heat regulation |
Contains Sensitive Content | Does not contain sensitive content |
ANZSRC Field of Research 2020 | 401605. Functional materials |
401602. Composite and hybrid materials | |
Public Notes | Files associated with this item cannot be displayed due to copyright restrictions. |
Byline Affiliations | Deakin University |
Centre for Future Materials | |
Jiangsu Normal University, China | |
Institution of Origin | University of Southern Queensland |
Funding source | Australian Research Council (ARC) Grant ID FT190100188 |
https://research.usq.edu.au/item/q6116/lightweight-superelastic-yet-thermoconductive-boron-nitride-nanocomposite-aerogel-for-thermal-energy-regulation
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