Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (10): 100293.doi: 10.1016/j.actphy.2026.100293
• ARTICLE • Previous Articles Next Articles
Xinmeng Huang1, Haoran Zhang1,*(
), Mengxin Liu1, Ying Miao1, Zhenxi Yu1, Qi Wu2, Lei Pan1,*(
)
Received:2026-02-13
Revised:2026-03-30
Accepted:2026-03-30
Published:2026-09-03
Contact:
bettypan@nuaa.edu.cn (Lei Pan)Email: haoranzhang@nuaa.edu.cn (Haoran Zhang)
Xinmeng Huang, Haoran Zhang, Mengxin Liu, Ying Miao, Zhenxi Yu, Qi Wu, Lei Pan. A densified conductive network of carbon nanotube-bridged vertical ZnO arrays for enhanced electromagnetic interference shielding, mechanical, and thermal properties of carbon fiber/polymer composites[J]. Acta Phys. -Chim. Sin. 2026, 42(10), 100293. doi: 10.1016/j.actphy.2026.100293
Fig 1
Fabrication and Characterization of the composite. (a) Schematic illustration of the fabrication process for the f-CNTs/ZnO@CF/EP composite. (b) Proposed mechanism of the hierarchical interfacial modification. Representative SEM images showing the surface evolution of (c) pristine CF, (d) PDA/CF, (e) ZnO@CF, and (f) f-CNTs/ZnO@CF. (g) XRD patterns and (h) FTIR spectra of the prepared samples: pristine CF, PDA/CF, f-CNTs/CF, ZnO-3@CF, h-CNTs/ZnO@CF, and f-CNTs-2/ZnO@CF."
Fig 2
Surface morphology and properties of the modified CFs. (a1–f1) SEM images and (a2–f2) corresponding three-dimensional height maps from LSCM of (a) pristine CF, (b) PDA/CF, (c) f-CNTs/CF, (d) ZnO-3@CF, (e) h-CNTs/ZnO@CF, and (f) f-CNTs-2/ZnO@CF. (g) Dispersion stability of CNT suspensions with and without dispersant after two weeks. (h) Arithmetic mean roughness (Sa), (i) Contact angles, and (j) Line chart of water contact angle over time of different CF samples."
Fig 3
Mechanical performance and fracture morphology of the composites. (a) Interlaminar shear load-deflection curves, (b) ILSS, (c) flexural load-deflection curves, and (d) flexural strength and modulus of different CF/EP composites. Fracture surfaces after interlaminar shear testing: (e1, e2) CF/EP and (f1, f2) f-CNTs-2/ZnO@CF/EP. Fracture surfaces after flexural testing: (g1, g2) CF/EP and (h1, h2) f-CNTs-2/ZnO@CF/EP. Radial fracture surface after flexural testing: (i1, i2) CF/EP and (j1, j2) f-CNTs-2/ZnO@CF/EP."
Fig 4
EMI shielding performance of the composites. (a) Electrical conductivities of different CF/EP composites. (b) Total SE curves of different CF/EP composites in the X-band, (c) corresponding average values of SET, SEA, and SER values, and (d) R and A power coefficients. (e) Comparison of SEA and SET between the f-CNTs-3/ZnO@CF/EP composite and other reported shielding materials [60–67]. (f) Practical shielding demonstration: an LED bulb powered wirelessly by a Tesla coil remains illuminated without shielding (top) and is extinguished when shielded by the f-CNTs-3/ZnO@CF/EP composite (down). (g) Schematic illustrating the proposed EMI shielding mechanism of f-CNTs-2/ZnO@CF/EP composite."
Fig 5
Thermal conduction performance of the composites. (a) Schematic diagrams illustrating the through-plane thermal conduction pathways in different CF/EP composites. (b) Measured through-plane thermal conductivity. (c) Mechanism of thermal enhancement in the f-CNTs-2/ZnO@CF/EP composite, depicting the "line-plane" conductive network. (d) Schematic of the experimental setup for evaluating through-plane thermal conduction. Temporal evolution of surface temperature during the (e) heating and (f) cooling processes, with corresponding (g) infrared thermal images at selected time points."
Fig 6
Active heating performance of the composite. (a) Schematic of the Joule heating mechanism of the composites. (b) Corresponding photographs and infrared thermal images of the composites under varying applied voltages, (c) Time-dependent temperature profiles of f-CNTs-2/ZnO@CF/EP during Joule heating at different voltages. (d) Temperature cycling stability over 120 on-off cycles at 2 V. (e) Schematic of the photothermal testing setup under simulated solar irradiation. (f) Temperature evolution and corresponding thermal images under different light intensities (0.5–2.0 suns)."
Fig 7
Evaluation of the composite as a TIM. (a) Photograph and (b) schematic of the experimental setup, where the f-CNTs-2/ZnO@CF/EP composite is placed between a heater and a heat sink. (c) Diagram of the primary heat-transfer path within the cooling system. (d) Time-series infrared thermal images and (e) the corresponding temperature profiles during heating and cooling for the CF/EP and f-CNTs-2/ZnO@CF/EP TIMs. (f) Steady-state temperatures at different input voltages. (g) Long-term heating stability at 10 V. (h) Temperature stability over 120 on-off cycles at 8 V. (i) Radar chart comparing the overall performance of CF/EP and f-CNTs-2/ZnO@CF/EP composites."
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