Synergistically enhanced heat conductivity-microwave absorption capabilities of g-C3N4@Fe@C hollow micro-polyhedra via interface and composition modulation

被引:82
作者
Fan, Baoxin [1 ]
Xing, Lu [1 ]
Yang, Kaixia [1 ]
Zhou, Fanjie [1 ]
He, Qianmei [1 ]
Tong, Guoxiu [1 ]
Wu, Wenhua [1 ]
机构
[1] Zhejiang Normal Univ, Coll Chem & Life Sci, Key Lab Minist Educ Adv Catalysis Mat, Jinhua 321004, Peoples R China
关键词
Heat conductivity; Microwave absorption capability; Synergistic enhancement mechanism; Modulation of interface and composition; g-C3N4@Fe@C hollow micro-polyhedra; ELECTROMAGNETIC-WAVE ABSORPTION; CARBON NANOTUBE COMPOSITES; THERMAL-CONDUCTIVITY; RAMAN-SPECTROSCOPY; DOPED GRAPHENE; BORON-NITRIDE; NANOCRYSTALS; G-C3N4; FE3O4; WATER;
D O I
10.1016/j.cej.2022.138492
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Heat-conducting, microwave absorption-electric insulation integrated materials (HCMWAEIIMs) have received considerable attention with wide application of miniaturized and highly integrated modern electronics. Currently, the synergistic enhancement of heat conductivity, microwave absorption, and electrical insulation is restricted by some inevitable contradictions among them. In response to this issue, the g-C3N4@Fe@C HMPs were first synthesized as advanced HCMWAEIIMs via a salt-template-assisted freeze-drying calcination and pyrolysis route. The interfaces and composition of the g-C3N4@Fe@C HMPs can be facilely modulated via controlling just the Fe(CO)(5) vol Controlling the interfaces and composition of the g-C3N4@Fe@C HMPs can efficiently adjust their thermal, electrical, and microwave-absorbing properties. Inlaying g-C3N4 HMP surfaces with Fe@C CSNPs can not only improve their permeability and matching capabilities but also create an effective phonon transfer route for the enhancement of the heat conductivity and electrical conductivity. Results show that the g-C3N4@Fe@C HMPs have higher heat conductivity (1.81 W/(m.K)), better electric insulation (0.04852 S/m), larger ABW/d values (3.58 similar to 4.48 GHz/mm), higher absorption (-41.18 similar to -51.62 dB), and thinner films (1.8 similar to 1.9 mm) than most of previously reported materials. Overall, our work provides a simple and effective strategy for designing advanced multifunctional fillers with potential applications in modern electronics.
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页数:12
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