共 67 条
Synchronously enhanced electromagnetic wave absorption and heat conductance capabilities of flower-like porous γ-Al2O3@Ni@C composites
被引:51
作者:
Fu, Kang
[1
]
Liu, Xinyu
[1
]
Yang, Yujia
[1
]
Wang, Zijian
[1
]
Zhou, Wanyi
[1
]
Tong, Guoxiu
[1
]
Wang, Xiaojuan
[1
]
Wu, Wenhua
[1
]
机构:
[1] Zhejiang Normal Univ, Coll Chem & Life Sci, Minist Educ Adv Catalysis Mat, Key Lab, Jinhua 321004, Peoples R China
关键词:
gamma-Al2O3@Ni@C composites;
Flower-like porous structure;
Electromagnetic wave absorption;
Heat conductance;
Synchronous enhancement mechanism;
BINDING-ENERGY SHIFTS;
MICROWAVE-ABSORPTION;
FESIAL/AL2O3;
COMPOSITES;
GRAPHENE;
ALUMINA;
CONDUCTIVITY;
CLUSTERS;
OXIDE;
D O I:
10.1016/j.cej.2023.141318
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
Efficient multifunction materials with strong electromagnetic wave (EMW) absorption and high thermal conductance play a pivotal role in addressing the heat accumulation and EM interference problems in miniaturized and integrated electronics. However, incompatibility between EMW absorption and heat conductance makes their simultaneous improvement a major challenging issue. In this work, flower-like porous gamma-Al2O3@Ni@C composites are successfully formulated via a hydrothermal-soaking-calcining route. The original findings of the concerted improvement in EMW absorption and heat conductance are reported. By controlling [Ni2+] and sintering temperature (T-s), the interfaces, components, and defects are modified to achieve synergistic enhancement in the performance of the target composites. Results show that the gamma-Al2O3@Ni@C composites formed at [Ni2+] = 2.0 M and T-s = 700 degrees C present an optimal thermal conductance of 2.84 W/(m center dot K) at a low filling ratio of 30 % due to the phonon/electron relay transmiss on in the 3D network of unique flower-like porous structures, clearly superior to gamma-Al2O3 and most of the other gamma-Al2O3-based composites. Meanwhile, the composites synchronously present a broad absorption band (4.24 GHz, beyond 90 % damping over 15.75 similar to 18.00 GHz) and strong absorption (-42.43 dB) relative to a 1.7 mm-thick specimen owing to the enhanced damping coefficient and EM parameters. The outstanding properties exhibited by the flower-like porous gamma-Al2O3@Ni@C composites suggest that they have promising prospects for application in EMW absorption and thermal management.
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页数:14
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