REFERENCES

1. Cao, W.; Wang, X.; Yuan, J.; Wang, W.; Cao, M. Temperature dependent microwave absorption of ultrathin graphene composites. J. Mater. Chem. C. 2015, 3, 10017-22.

2. Wang, X.; Ma, T.; Shu, J.; Cao, M. Confinedly tailoring Fe3O4 clusters-NG to tune electromagnetic parameters and microwave absorption with broadened bandwidth. Chem. Eng. J. 2018, 332, 321-30.

3. Du, Y.; Liu, Y.; Wang, A.; Kong, J. Research progress and future perspectives on electromagnetic wave absorption of fibrous materials. iScience 2023, 26, 107873.

4. Ran, S.; Sun, K.; Zhao, M.; et al. Metal-organic framework derived carbon-based composites for high-performance microwave absorption. Adv. Compos. Hybrid. Mater. 2025, 8, 1077.

5. Hao, B.; Chai, Z.; Li, M.; et al. Design of mesoscopic metacomposites for electromagnetic wave absorption: enhancing performance and gaining mechanistic insights. Soft. Sci. 2025, 5, 39.

6. Wang, C.; Murugadoss, V.; Kong, J.; et al. Overview of carbon nanostructures and nanocomposites for electromagnetic wave shielding. Carbon 2018, 140, 696-733.

7. Zhang, Y.; Wang, X.; Cao, M. Confinedly implanted NiFe2O4-rGO: cluster tailoring and highly tunable electromagnetic properties for selective-frequency microwave absorption. Nano. Res. 2018, 11, 1426-36.

8. Zeng, X.; Zhao, C.; Yin, Y.; et al. Construction of NiCo2O4 nanosheets-covered Ti3C2Tx MXene heterostructure for remarkable electromagnetic microwave absorption. Carbon 2022, 193, 26-34.

9. Wen, L.; Guan, L.; Zhang, J.; et al. Defect engineering boosts microwave absorption in TaxNb1-xC nanowires. Rare. Met. 2025, 44, 2577-88.

10. Ren, S.; Pan, S.; Jin, Y.; et al. Magnetoelectric characterisation of SrFe12O19@MoS2 composites with high microwave absorption performance. Ceram. Int. 2025, 51, 10184-92.

11. Kim, S.; Kim, S.; Yoon, Y.; Lee, K. Magnetic, dielectric, and microwave absorbing properties of iron particles dispersed in rubber matrix in gigahertz frequencies. J. Appl. Phys. 2005, 97, 10F905.

12. Gao, B.; Qiao, L.; Wang, J.; et al. Microwave absorption properties of the Ni nanowires composite. J. Phys. D. Appl. Phys. 2008, 41, 235005.

13. Liu, Y.; Geng, W.; Wang, L.; et al. Designing MXene hydrogels for flexible and high-efficiency electromagnetic wave absorption using digital light processing 3D printing. Chem. Eng. J. 2025, 505, 159489.

14. He, Y.; Su, Q.; Liu, D.; et al. Surface engineering strategy for MXene to tailor electromagnetic wave absorption performance. Chem. Eng. J. 2024, 491, 152041.

15. Zhan, B.; Qi, X.; Yang, J.; et al. Advancing microwave absorption: innovative strategies spanning nano-micro engineering to metamaterial design. Nano. Res. 2025, 18, 94907209.

16. Zhao, J.; Gu, Z.; Zhang, Q. Stacking MoS2 flower-like microspheres on pomelo peels-derived porous carbon nanosheets for high-efficient X-band electromagnetic wave absorption. Nano. Res. 2024, 17, 1607-15.

17. Wu, N.; Shen, Z.; Ma, Y.; et al. Three-dimensional lightweight melamine foams modified by MXene sheets and CoNi alloys towards multifunctional microwave absorption. Nano. Res. 2025, 18, 94907121.

18. Zhang, J.; Xia, L.; Yang, L.; et al. Ti3C2Tx MXene nanobelts with alkali ion intercalation: dual-purpose for enhanced lithium-ion batteries and microwave absorption. Carbon 2025, 237, 120148.

19. Wang, D.; Ping, T.; Du, Z.; Liu, X.; Zhang, Y. Lessons from nature: advances and perspectives in bionic microwave absorption materials. Nanomicro. Lett. 2024, 17, 100.

20. Ma, Z.; Yang, K.; Li, D.; et al. The electron migration polarization boosting electromagnetic wave absorption based on Ce atoms modulated yolk@shell FexN@NGC. Adv. Mater. 2024, 36, e2314233.

21. Zhang, Z.; Kong, Y.; Zhang, J.; Hou, J.; Cao, M.; Wang, X. Recent progress of microwave absorption motivated by metal single atoms anchored on two-dimensional materials. Carbon 2025, 235, 120095.

22. Hao, B.; Zhang, Y.; Si, H.; et al. Multiscale design of dielectric composites for enhanced microwave absorption performance at elevated temperatures. Adv. Funct. Mater. 2025, 35, 2423897.

23. Sun, X.; Wu, Z.; Tan, X.; et al. In situ “work‐invaliding‐awakened” of reduced graphene oxide/SiO2 bilayer aerogels for broadband microwave absorption based on thermally reduced reconstructed carbon networks. Adv. Funct. Mater. 2025, 35, e12145.

24. Li, Q.; Liu, L.; Kimura, H.; et al. Interfacical polarization dominant rGO aerogel decorated with molybdenum sulfide towards lightweight and high-performance electromagnetic wave absorber. Carbon 2025, 231, 119738.

25. Shu, R.; Xu, L.; Guan, Y. Preparation of cellulose derived carbon/reduced graphene oxide composite aerogels for broadband and efficient microwave dissipation. J. Colloid. Interface. Sci. 2024, 675, 401-10.

26. Li, J.; Xu, Z.; Li, T.; et al. Multifunctional antimony tin oxide/reduced graphene oxide aerogels with wideband microwave absorption and low infrared emissivity. Compos. Part. B. Eng. 2022, 231, 109565.

27. He, M.; Zhang, K.; Qiu, H.; et al. Low-frequency microwave absorption composites. Adv. Sci. 2025, 12, e11580.

28. Chen, X.; Wang, W.; Su, R.; Huang, Y.; Li, Y.; He, R. 3D-printed electromagnetic microwave absorption structures: a comprehensive review. J. Mater. Chem. A. 2025, 13, 22240-70.

29. Zeng, X.; Cheng, X.; Yu, R.; Stucky, G. D. Electromagnetic microwave absorption theory and recent achievements in microwave absorbers. Carbon 2020, 168, 606-23.

30. Liu, J.; Pan, Y.; Yu, L.; et al. MoS2-based composites for microwave absorption mechanism-oriented structural optimization and design perspectives. Carbon 2025, 238, 120233.

31. Ma, Y.; Wei, S.; Liu, R.; Sun, L.; Wang, W. A review on MXene-based microwave absorption composites: engineering, component optimization and structure regulation. J. Mater. Chem. C. 2024, 12, 9068-93.

32. Jiang, W.; Jiang, D.; Huang, Y.; Jiang, B. Strategies to construct conductive structures of polymer-based electromagnetic wave attenuation composites. J. Mater. Chem. A. 2024, 12, 4383-96.

33. Han, M.; Lan, D.; Zhang, Z.; et al. Micro-sized hexapod-like CuS/Cu9S5 hybrid with broadband electromagnetic wave absorption. J. Mater. Sci. Technol. 2025, 214, 302-12.

34. Jian, S.; Wu, X.; Yu, H.; Wang, L. Enhancing strategies of MOFs-derived materials for microwave absorption: review and perspective. Adv. Colloid. Interface. Sci. 2025, 338, 103412.

35. Chu, W.; Wang, K.; Liu, S.; Chen, Y.; Li, H.; Liu, H. Tailorable effective microwave absorption bandwidth of chitosan-derived carbon-based aerogel under different compression. Mater. Res. Bull. 2024, 177, 112857.

36. Wang, K.; Chu, W.; Li, H.; Chen, Y.; Cai, Y.; Liu, H. Ferromagnetic Ti3CNCl2-decorated RGO aerogel: from 3D interconnecting conductive network construction to ultra-broadband microwave absorber with thermal insulation property. J. Colloid. Interface. Sci. 2021, 604, 402-14.

37. Wu, Z.; Huang, J.; Zeng, X. Dual magnetic particles modified carbon nanosheets in CoFe/Co@NC heterostructure for efficient electromagnetic synergy. Soft. Sci. 2024, 4, 42.

38. Chu, W.; Wang, K.; Li, H.; Chen, Y.; Liu, H. Harvesting yolk-shell nanocomposites from Fe-MIL-101 self-template in NaCl/KCl molten salt environment for high-performance microwave absorber. Chem. Eng. J. 2022, 430, 133112.

39. Wang, K.; Chu, W.; Chen, Y.; Li, H.; Liu, H. Maintaining electromagnetic interference shielding and flame-retardant performance of recycled carbon fiber-reinforced composites under multiple pyrolysis recycles. Compos. Sci. Technol. 2024, 248, 110470.

40. Wang, K.; Chen, C.; Zheng, Q.; et al. Multifunctional recycled carbon fiber-Ti3C2Tx MXene paper with superior electromagnetic interference shielding and photo/electro-thermal conversion performances. Carbon 2022, 197, 87-97.

41. Shen, Z.; Lan, D.; Cong, Y.; Lian, Y.; Wu, N.; Jia, Z. Tailored heterogeneous interface based on porous hollow In-Co-C nanorods to construct adjustable multi-band microwave absorber. J. Mater. Sci. Technol. 2024, 181, 128-37.

42. Ren, X.; Zhen, M.; Meng, F.; Meng, X.; Zhu, M. Progress, challenges and prospects of biomass-derived lightweight carbon-based microwave-absorbing materials. Nanomaterials 2025, 15, 553.

43. Hao, Z.; Zhou, J.; Lin, S.; et al. Customized heterostructure of transition metal carbides as high-efficiency and anti-corrosion electromagnetic absorbers. Carbon 2024, 228, 119323.

44. Wu, Z.; Huang, J.; Tan, Y.; Deng, X.; Zeng, X. Transition/rare earth metal co-modified SiC for low-frequency and high-temperature electromagnetic response. J. Adv. Ceram. 2025, 14, 9221164.

45. Liu, A.; Xu, X.; Qiu, H.; et al. Bioinspired hollow heterostructure fillers for enhanced electromagnetic interference shielding in polyimide aerogels. InfoMat 2025, 7, e70060.

46. Naqvi, S. T. A.; Singh, C.; Godara, S. K. Functionalization and synthesis of biomass and its composites as renewable, lightweight and eco-efficient microwave-absorbing materials: a review. J. Alloys. Compd. 2023, 968, 171991.

47. Mei, J.; Luo, J.; Zhao, T.; et al. Morphology engineering of MIL-88A-derived 0D/1D/2D nanocomposites toward wideband microwave absorption. J. Mater. Sci. Technol. 2025, 226, 65-75.

48. Cao, R.; Qiu, Y.; Zhao, X.; et al. Carbon-CoFe2O4 composite with hierarchical porous structure for efficient microwave absorption. Diam. Relat. Mater. 2025, 157, 112542.

49. Wang, L.; Huang, M.; Rao, L.; et al. Atomically polarization regulation in molybdenum disulfide nanosheets via phase transition engineering for superior electromagnetic wave dissipation. Adv. Funct. Mater. 2025, 35, 2507569.

50. Zhang, Y.; Yu, H.; Wang, L.; et al. Research progress on conductive polymer-based microwave absorption materials: from materials design to functionalities and applications. Mater. Horiz. 2025, 12, 10029-58.

51. Chen, J.; Zhang, J.; Wang, X.; et al. Alkalized chemical scissors form honeycomb MXene for enhanced microwave absorption performance. J. Alloys. Compd. 2025, 1036, 181872.

52. Huang, J.; Xu, Z.; Chen, Z.; Liu, Z.; Yuan, G. Preparation of FeSiMn composites and study on the microwave absorption performance. J. Alloys. Compd. 2025, 1021, 179641.

53. Shu, R.; Guan, Y.; Liu, B. Preparation of nitrogen-doped reduced graphene oxide/zinc ferrite@nitrogen-doped carbon composite for broadband and highly efficient electromagnetic wave absorption. J. Mater. Sci. Technol. 2025, 214, 16-26.

54. Li, J.; Lan, D.; Cheng, Y.; et al. Constructing mixed-dimensional lightweight magnetic cobalt-based composites heterostructures: an effective strategy to achieve boosted microwave absorption and self-anticorrosion. J. Mater. Sci. Technol. 2024, 196, 60-70.

55. Wang, G.; Gao, Z.; Wan, G.; Lin, S.; Yang, P.; Qin, Y. High densities of magnetic nanoparticles supported on graphene fabricated by atomic layer deposition and their use as efficient synergistic microwave absorbers. Nano. Res. 2014, 7, 704-16.

56. Zhao, B.; Lan, D.; Zhang, M.; Liu, L.; Wu, N.; Yao, S. Multiphase interface engineering based on porous manganous oxide toward broad-band microwave absorption. Mater. Res. Bull. 2024, 171, 112621.

57. Zhang, S.; Zheng, J.; Lv, C.; et al. Synergistic enhancement of defect-induced polarization and built-in electric field effect in carbon hybrids towards efficient electromagnetic wave absorption. Carbon 2025, 234, 120037.

58. Xie, L.; Liu, R.; Jiang, X.; et al. Carbon induced multiple interfaces and in-situ formed defects in oxidation of Co toward enhancing microwave absorption performances. Carbon 2025, 238, 120272.

59. Ren, J.; Shi, P.; Zu, X.; et al. Challenges and future prospects of the 2D material-based composites for microwave absorption. Nanoscale 2025, 17, 13622-45.

60. Guo, Z.; Zhang, X.; Lv, C.; et al. Advantageous synergistic strategy to construct Ni@C/PC composites for efficient electromagnetic wave absorption. Carbon 2025, 234, 120010.

61. Tariq, M. R.; Ahmad, M.; Naik, M.; Khan, I.; Zhang, B. A comprehensive review of the advancement of transition metal oxide nanocomposites for microwave absorption. Coord. Chem. Rev. 2025, 533, 216535.

62. Zhou, Z.; Lan, D.; Ren, J.; et al. Controllable heterogeneous interfaces and dielectric modulation of biomass-derived nanosheet metal-sulfide complexes for high-performance electromagnetic wave absorption. J. Mater. Sci. Technol. 2024, 185, 165-73.

63. Jiang, B.; Shang, J.; Zhang, F.; et al. Electrospinning fabrication of hollow C@TiO2/Fe3C nanofibers composites for excellent wave absorption at a low filling content. Chem. Eng. J. 2024, 495, 153663.

64. Hu, J.; Jiang, J.; Li, Q.; et al. Metal–organic framework-based composites for dual functionalities: advances in microwave absorption and flame retardancy. J. Compos. Sci. 2025, 9, 121.

65. Wu, D.; Fan, C.; Luo, W.; Jin, Y.; He, Q.; Wang, Y. Enhanced interfacial polarization loss induced by hollow engineering of hollow alloyed CoFe-ZIF nanocages/carbon nanofibers for efficient microwave absorption. Inorg. Chem. Front. 2025, 12, 3083-97.

66. Zhang, D.; He, W.; Quan, G.; et al. Sterculia lychnophora seed-derived porous carbon@CoFe2O4 composites with efficient microwave absorption performance. Appl. Surf. Sci. 2023, 607, 155027.

67. Xia, Y.; Gao, W.; Gao, C. A review on graphene‐based electromagnetic functional materials: electromagnetic wave shielding and absorption. Adv. Funct. Mater. 2022, 32, 2204591.

68. Ding, H.; Hu, B.; Wang, Y.; Du, Y. Current progress and frontiers in three-dimensional macroporous carbon-based aerogels for electromagnetic wave absorption: a review. Nanoscale 2024, 16, 21731-60.

69. Wang, H.; Xiao, J.; Qi, X.; et al. Microstructural optimization and non-metallic doping strategy to develop mesoporous N-doped carbon hollow nanospheres for strong and broadband microwave absorption. J. Mater. Sci. Technol. 2026, 247, 55-63.

70. Qiao, J.; Song, Q.; Zhang, X.; et al. Enhancing interface connectivity for multifunctional magnetic carbon aerogels: an in situ growth strategy of metal-organic frameworks on cellulose nanofibrils. Adv. Sci. 2024, 11, e2400403.

71. Zeng, X.; Peng, X.; Ning, Y.; Jiang, X.; Yu, R.; Zhang, X. 3D multifunctional porous pine carbon aerogels coupled with highly dispersed CoFe nanoparticles for robust electromagnetic wave response. J. Mater. Sci. Technol. 2024, 192, 6-18.

72. Ai, Y.; Xing, R.; Ren, N.; et al. Biomass-derived hierarchical carbon frameworks enable robust microwave absorption. Matter 2025, 8, 102289.

73. Zhao, L.; Zhuang, Q.; Hu, G.; Zhang, B.; Pan, S. Ni/porous carbon-based composite derived from poplar wood with ultrabroad band microwave absorption performance. ECS. J. Solid. State. Sci. Technol. 2024, 13, 021004.

74. Gou, G.; Hua, W.; Liu, K.; Cheng, F.; Xie, X. Bimetallic MOF@wood-derived hierarchical porous carbon composites for efficient microwave absorption. Diam. Relat. Mater. 2024, 141, 110688.

75. Cui, A.; Miao, Y.; Wang, C.; et al. NiFe2O4/Ni3Fe nanoparticles Decorate wood carbon strategies for efficient electromagnetic absorption. Chem. Eng. J. 2025, 507, 160354.

76. Cui, C.; Geng, L.; Jiang, S.; et al. Architecture design of a bamboo cellulose/Nb2CTx MXene/ZIF-67-derived lightweight Co/Nb2CTx/carbon aerogel for highly efficient electromagnetic wave absorption, thermal insulation, and flame retardant. Ind. Eng. Chem. Res. 2023, 62, 8297-311.

77. Shen, M.; Li, X.; Qi, J.; et al. Magnetic metal-loaded wood carbon aerogel composites for electromagnetic shielding and microwave absorption. Compos. Part. A. Appl. Sci. Manuf. 2025, 198, 109070.

78. Xiao, J.; Wen, B.; Liu, X.; et al. In-situ growth of carbon nanotubes for the modification of wood-derived biomass porous carbon to achieve efficient Low/Mid-Frequency electromagnetic wave absorption. J. Colloid. Interface. Sci. 2024, 676, 33-44.

79. Cheng, Y.; Zhao, H.; Lv, H.; Shi, T.; Ji, G.; Hou, Y. Lightweight and flexible cotton aerogel composites for electromagnetic absorption and shielding applications. Adv. Elect. Mater. 2020, 6, 1900796.

80. Huang, X.; Wang, Y.; Lou, Z.; Chen, Y.; Li, Y.; Lv, H. Porous, magnetic carbon derived from bamboo for microwave absorption. Carbon 2023, 209, 118005.

81. Chang, Q.; Xie, Z.; Long, C.; Feng, X.; Shi, B.; Wu, H. Magnetic hierarchically porous biomass carbon for realizing broadband and strong absorption of electromagnetic wave. Ceram. Int. 2023, 49, 27015-23.

82. Li, Z.; Liang, J.; Wei, Z.; et al. Lightweight foam-like nitrogen-doped carbon nanotube complex achieving highly efficient electromagnetic wave absorption. J. Mater. Sci. Technol. 2024, 168, 114-23.

83. Yu, J.; Luo, H.; Wang, Z.; et al. Surface morphology of magnetic carbon foam regulated electromagnetic properties for microwave absorption. J. Alloys. Compd. 2024, 971, 172757.

84. Yu, J.; Luo, H.; Lv, S.; et al. Facile fabrication of melamine/MXene/FeNi‐PBA composite derived multi‐interface magnetic carbon foam for high‐efficiency microwave absorption. Adv. Elect. Mater. 2025, 11, 2400265.

85. Jia, T.; Qi, X.; Wang, L.; et al. Constructing mixed-dimensional lightweight flexible carbon foam/carbon nanotubes-based heterostructures: an effective strategy to achieve tunable and boosted microwave absorption. Carbon 2023, 206, 364-74.

86. Rong, H.; Song, H.; Gao, T.; Li, Y.; Zhao, R.; Zhang, X. Ultralight melamine foam derived metal nanoparticles encapsulated CNTs/porous carbon composite for electromagnetic absorption. Synth. Met. 2023, 294, 117306.

87. Zhu, X.; Dong, Y.; Xiang, Z.; et al. Morphology-controllable synthesis of polyurethane-derived highly cross-linked 3D networks for multifunctional and efficient electromagnetic wave absorption. Carbon 2021, 182, 254-64.

88. Lou, Z.; Li, R.; Wang, P.; et al. Phenolic foam-derived magnetic carbon foams (MCFs) with tunable electromagnetic wave absorption behavior. Chem. Eng. J. 2020, 391, 123571.

89. Shao, G.; Yang, Y.; Jia, S.; et al. Covalent organic framework‐amplified polarization loss in ultralight Schottky heterojunction aerogels for low‐frequency electromagnetic wave absorption. Adv. Funct. Mater. 2025, e16078.

90. Guo, Y.; Wang, D.; Tian, Y.; et al. FeCo alloy nanoparticle decorated cellulose based carbon aerogel as a low-cost and efficient electromagnetic microwave absorber. J. Mater. Chem. C. 2021, 10, 126-34.

91. Yang, P.; Wang, L.; Ruan, H.; et al. Heterogeneous interface engineering and directional tuning electromagnetic parameters of MXene/Fe NPs absorbers for precise low-frequency microwave absorption. Nano. Res. 2025, 18, 94907783.

92. Zhu, C.; An, X.; Wang, J.; Chen, Y.; Nan, K.; Wang, Y. Dimensional design of cellulose aerogels with Schottky contact for efficient microwave absorption. Small 2025, 21, e2411743.

93. Wang, B.; Nan, K.; Rao, H.; Chen, Y.; Pei, R.; Wang, Y. Integrated design of multifunctional lightweight magnetic cellulose-based aerogel with 1D/2D/3D hierarchical network for efficient microwave absorption. Compos. Commun. 2024, 49, 101987.

94. Su, X.; Wang, J.; Liu, T.; et al. Controllable atomic migration in microstructures and defects for electromagnetic wave absorption enhancement. Adv. Funct. Mater. 2024, 34, 2403397.

95. Liu, F.; Cai, Z.; Li, Z.; et al. Chitosan/MXene/Co3O4-derived composite aerogels with hierarchically porous structure for electromagnetic wave absorption. Appl. Surf. Sci. 2025, 689, 162550.

96. Ren, X.; Huang, L.; Yuan, H.; et al. Sodium alginate derived SiC-carbon composite aerogel for effective microwave absorption. J. Magn. Magn. Mater. 2024, 596, 171970.

97. Xiang, L.; Pan, D.; Lei, J.; et al. Sodium alginate aerogel derived SiC@Co-C 3D network enhances electromagnetic wave absorption and thermal conductivity of PDMS based composite. Int. J. Biol. Macromol. 2025, 306, 141539.

98. Jiang, Y.; Cheng, H.; Liu, X.; Ai, Y.; He, A.; Nie, H. High-performance honeycomb porous microwave absorbers: gelatin-based carbon nanotube/nickel nanowire aerogels. J. Alloys. Compd. 2025, 1010, 177341.

99. Zhou, X.; Wang, B.; Jia, Z.; et al. Dielectric behavior of Fe3N@C composites with green synthesis and their remarkable electromagnetic wave absorption performance. J. Colloid. Interface. Sci. 2021, 582, 515-25.

100. Liu, J.; Zhang, S.; Qu, D.; et al. Defects-rich heterostructures trigger strong polarization coupling in sulfides/carbon composites with robust electromagnetic wave absorption. Nanomicro. Lett. 2024, 17, 24.

101. Luo, Z.; Gu, W.; He, J.; Shen, L.; Ji, G. Construction of dielectric and magnetic coupling cobalt salt/chitosan derived Co/C hybrid aerogels for high-performance infrared/radar compatible applications. Ceram. Int. 2024, 50, 45427-37.

102. Peng, L.; Yu, H.; Chen, C.; et al. Tailoring dense, orientation-tunable, and interleavedly structured carbon-based heat dissipation plates. Adv. Sci. 2023, 10, e2205962.

103. Guo, Y.; Duan, Y.; Liu, X.; et al. Construction of rGO/MOF-derived CNTs aerogel with multiple losses for multi-functional efficient electromagnetic wave absorber. Carbon 2024, 230, 119591.

104. Cao, K.; Ye, W.; Fang, Y.; Zhang, Y.; Zhao, R.; Xue, W. Construction of three-dimensional porous network Fe-rGO aerogels with monocrystal magnetic Fe3O4@C core-shell structure nanospheres for enhanced microwave absorption. Mater. Today. Phys. 2024, 42, 101383.

105. Nguyen, L. T.; Goh, C. J.; Bai, T.; Ong, R. H.; Goh, X. Y.; Duong, H. M. Scalable fabrication of lightweight carbon nanotube aerogel composites for full X-band electromagnetic wave absorption. Carbon 2024, 219, 118811.

106. Wang, P.; Fan, D.; Gai, L.; et al. Synthesis of graphene oxide-mediated high-porosity Ni/C aerogels through topological MOF deformation for enhanced electromagnetic absorption and thermal management. J. Mater. Chem. A. 2024, 12, 8571-82.

107. Shu, Y.; Zhao, T.; Li, X.; et al. Enhancing electromagnetic wave absorption and hydrophobicity/heat insulation properties of coral-like Co/CoO/RGO aerogels through pore structure regulation. Carbon 2023, 213, 118278.

108. Shi, T.; Yao, Y.; Li, Y.; Lu, S.; Qin, W.; Wu, X. Inner phase hybridization engineering of core-shell structure confined in graphene scroll for boosting electromagnetic wave absorption. Chem. Eng. J. 2023, 455, 140683.

109. Wang, H.; Liu, D.; Zhang, K.; et al. Shape memory HCNTs/PANI/WPU aerogels as dynamically tunable microwave absorbers in response to mechanical deformation. J. Alloys. Compd. 2025, 1036, 181930.

110. Fei, Y.; Wang, X.; Yuan, M.; Liang, M.; Chen, Y.; Zou, H. Co nanoparticles encapsulated in carbon nanotubes decorated carbon aerogels toward excellent microwave absorption. Ind. Eng. Chem. Res. 2022, 61, 1684-93.

111. Li, X.; Zhu, L.; Kasuga, T.; Nogi, M.; Koga, H. Chitin-derived-carbon nanofibrous aerogel with anisotropic porous channels and defective carbon structures for strong microwave absorption. Chem. Eng. J. 2022, 450, 137943.

112. Li, X.; Zhu, L.; Kasuga, T.; Nogi, M.; Koga, H. Frequency-tunable and absorption/transmission-switchable microwave absorber based on a chitin-nanofiber-derived elastic carbon aerogel. Chem. Eng. J. 2023, 469, 144010.

113. Zhi, D.; Li, T.; Qi, Z.; et al. Core-shell heterogeneous graphene-based aerogel microspheres for high-performance broadband microwave absorption via resonance loss and sequential attenuation. Chem. Eng. J. 2022, 433, 134496.

114. Cui, Y.; Yang, K.; Wang, J.; Shah, T.; Zhang, Q.; Zhang, B. Preparation of pleated RGO/MXene/Fe3O4 microsphere and its absorption properties for electromagnetic wave. Carbon 2021, 172, 1-14.

115. Yu, C.; Guo, J.; Lv, S.; Jiang, X. Modified zirconia fiber/reduced graphene oxide composite aerogels with exceptional mechanical and microwave absorption properties for harsh-environment applications. Chem. Eng. J. 2023, 468, 143850.

116. Liang, L.; Li, Q.; Yan, X.; et al. Multifunctional Magnetic Ti3C2Tx MXene/graphene aerogel with superior electromagnetic wave absorption performance. ACS. Nano. 2021, 15, 6622-32.

117. Chen, Y.; Gai, L.; Hu, B.; et al. Directional three-dimensional macroporous carbon foams decorated with WC1-x nanoparticles derived from salting-out protein assemblies for highly effective electromagnetic absorption. Nanomicro. Lett. 2025, 18, 71.

118. Wang, J.; Xia, M.; Sun, J.; et al. Hybrid bilayers of carbon/NiBr2 anchoring on FeSiB surface for enhanced microwave absorption coupling with smart discoloration. Rare. Met. 2025, 44, 489-502.

119. Lin, X.; Wang, C.; Zhang, C.; et al. Asymmetric gradient-structured PPy@bacterial nanocellulose aerogels enable broadband microwave absorption via synergistic polarization-conduction loss. Chem. Eng. J. 2025, 520, 166529.

120. Zhang, J.; Zhang, Z.; Liu, L.; et al. Dual-gradient Mo2C-decorated rGO aerogels for enhanced electromagnetic wave absorption. J. Alloys. Compd. 2025, 1010, 177683.

121. Hang, T.; Zhou, L.; Li, Z.; et al. Constructing gradient reflection and scattering porous framework in composite aerogels for enhanced microwave absorption. Carbohydr. Polym. 2024, 329, 121777.

122. Pan, H.; Yin, X.; Xue, J.; Cheng, L.; Zhang, L. In-situ synthesis of hierarchically porous and polycrystalline carbon nanowires with excellent microwave absorption performance. Carbon 2016, 107, 36-45.

123. Xu, J.; Ma, Z.; Yang, P.; Zhu, C.; Chen, Y. 3D hierarchically ordered porous carbon frameworks/Co nanoparticles for Broadening electromagnetic wave absorption bandwidth. Carbon 2025, 233, 119916.

124. Zhang, M.; Ling, H.; Wang, T.; et al. An equivalent substitute strategy for constructing 3D ordered porous carbon foams and their electromagnetic attenuation mechanism. Nanomicro. Lett. 2022, 14, 157.

125. Xiao, J.; Wen, B.; Li, J.; et al. Engineering of N doped carbon@FeCo alloy hollow spheres: remarkable mid-frequency electromagnetic wave absorption performance exhibited by unique porous and wrinkled surface structure. J. Alloys. Compd. 2024, 1008, 176595.

126. Chen, J.; Wu, S.; Guanxu, Q.; et al. Modulation of pore size to enhance electromagnetic wave absorption in 3D ordered macroporous materials. J. Mater. Sci. Mater. Electron. 2025, 36, 14123.

127. Xu, R.; Xu, D.; Zeng, Z.; Liu, D. CoFe2O4/porous carbon nanosheet composites for broadband microwave absorption. Chem. Eng. J. 2022, 427, 130796.

128. Li, F.; Bi, Z.; Kimura, H.; et al. Energy- and cost-efficient salt-assisted synthesis of nitrogen-doped porous carbon matrix decorated with nickel nanoparticles for superior electromagnetic wave absorption. Adv. Compos. Hybrid. Mater. 2023, 6, 710.

129. Wei, Q.; Huang, Y.; Dong, L.; et al. Fe3O4 nanoparticles embedded into pyridinic-N-rich carbon nanohoneycomb with strong dx2-Pz orbital hybridization for high-performance electromagnetic wave absorption. ACS. Appl. Mater. Interfaces. 2024, 16, 38414-28.

130. Guo, R.; Zheng, Q.; Wang, L.; Fan, Y.; Jiang, W. Porous N-doped Ni@SiO2/graphene network: three-dimensional hierarchical architecture for strong and broad electromagnetic wave absorption. J. Mater. Sci. Technol. 2022, 106, 108-17.

131. Wu, Y.; Wang, G.; Yuan, X.; Fang, G.; Li, P.; Ji, G. Heterointerface engineering in hierarchical assembly of the Co/Co(OH)2@carbon nanosheets composites for wideband microwave absorption. Nano. Res. 2023, 16, 2611-21.

132. Hu, R.; Luo, J.; Wen, H.; et al. Enhanced electromagnetic energy conversion in an entropy‐driven dual‐magnetic system for superior electromagnetic wave absorption. Adv. Funct. Mater. 2025, 35, 2418304.

133. Zhang, X.; Zheng, Q.; Chen, W.; et al. Nanoarchitectonics of RGO-wrapped CNF/GO aerogels with controlled pore structures by PVA-assisted freeze-casting approach for efficient sound and microwave absorption. Chemistry 2023, 29, e202202714.

134. Li, Y.; Yun, K.; Yi, X.; et al. Reduced graphene oxide-based magnetoelectric composites for efficient microwave absorption: state of the art and prospects. Carbon 2025, 244, 120719.

135. Tian, Y.; Zhi, D.; Li, T.; et al. Graphene-based aerogel microspheres with annual ring-like structures for broadband electromagnetic attenuation. Chem. Eng. J. 2023, 464, 142644.

136. Li, Y.; Guo, S.; Li, Y.; et al. Electrostatic-spinning construction of HCNTs@Ti3C2Tx MXenes hybrid aerogel microspheres for tunable microwave absorption. Rev. Adv. Mater. Sci. 2023, 62, 20230339.

137. Wu, F.; Hu, P.; Hu, F.; et al. Multifunctional MXene/C aerogels for enhanced microwave absorption and thermal insulation. Nanomicro. Lett. 2023, 15, 194.

138. Zhang, Y.; Xie, Y.; Yang, W.; Wu, G.; Chen, S.; Wang, Y. Multidimensional and hierarchical design of biomass-derived carbon nanofiber networks for efficient microwave absorption. Colloids. Surf. A. Physicochem. Eng. Asp. 2024, 696, 134270.

139. Liu, X.; Ma, W.; Yang, T.; et al. Multilevel heterogeneous interfaces enhanced polarization loss of 3D-printed graphene/NiCoO2/selenides aerogels for boosting electromagnetic energy dissipation. ACS. Nano. 2024, 18, 10184-95.

140. Liu, X.; Zheng, B.; Hua, Y.; et al. Ultralight MXene/rGO aerogel frames with component and structure controlled electromagnetic wave absorption by direct ink writing. Carbon 2024, 230, 119650.

141. Jiang, B.; Shang, J.; Li, N.; Wang, Y.; Hu, Z.; Yu, J. Aramid honeycomb composites filled with rGO/BC aerogel for broadband microwave absorption and multifunctional applications. Compos. Commun. 2025, 58, 102512.

142. Wang, Z. Y.; Li, Z. C.; Li, B.; et al. Functional carbon springs enabled dynamic tunable microwave absorption and thermal insulation. Adv. Mater. 2024, 36, e2412605.

143. Zhao, H.; Yang, X.; Sun, J.; et al. Biomass-derived oriented carbon aerogels with integrated high-performance microwave absorption and thermal insulation. J. Mater. Sci. Technol. 2025, 226, 196-204.

144. Wei, H.; Lei, T.; Li, W. Lightweight, flexible, heat resistant and thermal insulating aramid nanofiber/magnetic carbon nanotube interpenetrating network aerogel for microwave absorption in complex environments. Carbon 2024, 225, 119115.

145. Wang, R.; Xu, H.; Chu, G.; et al. Rigid and lightweight CoFe2O4/carbon nanofibers/polyimide composite aerogel with anisotropic structure for efficient microwave absorption and thermal insulation. Compos. Sci. Technol. 2026, 273, 111422.

146. Yu, C.; Lin, D.; Guo, J.; et al. Ultralight three-layer gradient-structured MXene/reduced graphene oxide composite aerogels with broadband microwave absorption and dynamic infrared camouflage. Small 2024, 20, e2401755.

147. Nie, W.; Wang, B.; Wu, W.; et al. In situ growth medium entropy alloy nanoparticles on the ordered structure carbon nanofiber aerogel for enhanced microwave absorption and infrared stealth properties. Small 2025, 21, e2503955.

148. Li, S.; Sun, Y.; Meng, F.; Jiang, X.; Yu, H. Lightweight Fe3O4/Fe/C/rGO multifunctional aerogel for efficient microwave absorption, electromagnetic interference shielding, hydrophobicity and thermal insulation. Chem. Eng. J. 2024, 498, 155405.

149. Liu, T.; Huang, L.; Wang, X.; Li, Y.; Yuan, Y. A rare-earth oxide@carbon nanofiber aerogel for self-cleaning, infrared thermal camouflage and high-efficiency microwave absorption. J. Mater. Res. Technol. 2023, 25, 2676-89.

150. Tang, Y.; Shao, S.; Guo, C.; et al. Multifunctional ultralight magnetic Fe3O4@SiO2/Ti3C2T/rGO aerogel with efficient electromagnetic wave absorption and thermal management properties. Carbon 2024, 228, 119314.

151. Hou, Y.; Liu, Z.; Wang, Q.; et al. Magnetic graphene composite aerogel for highly efficient electromagnetic wave absorption and anti-corrosion. J. Mater. Sci. Technol. 2026, 251, 1-10.

152. Zhang, K.; Liu, Y.; Li, X.; Wang, X.; Liu, J.; Liu, X. All-dielectric ultra-broadband microwave absorbing aerogel with optimized dielectric dispersion via dielectric relaxation time regulation. Adv. Mater. 2025, 37, e2506386.

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