Electromagnetic and microwave absorption properties of tunable carbonyl iron absorbing materials prepared by self-composite treatment in 2–8 GHz band
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J. Chen | G. Xie | Ningyan Xie | Huimin Wu | Yan Zhu | Xiaoyu Huang
[1] Wenlin Zhang,et al. Preparation of graphene/flaky carbonyl iron/polyurethane foam composites and research on their microwave absorption properties , 2021, Applied Physics A.
[2] Tongmin Wang,et al. FeCoNiCuAl high entropy alloys microwave absorbing materials: Exploring the effects of different Cu contents and annealing temperatures on electromagnetic properties , 2020 .
[3] Hua Li,et al. Fabrication of Co–Zn stannate (CoxZn1-xSnO3) hollow balls based 3D rGO aerogels with excellent electromagnetic wave absorption properties , 2020 .
[4] Ping Li,et al. Electromagnetic wave absorption properties in Ku-band of magnetic iron nitrides prepared by high energy ball milling , 2020, Journal of Magnetism and Magnetic Materials.
[5] Dongmei Zhu,et al. Efficiently enhanced microwave absorption of oriented flaky carbonyl iron&MoS2/polyurethane composite with thin thickness , 2020 .
[6] Jinling Wang,et al. Feasibility of using an S-band GNSS carrier by comparing with L and C bands , 2020, Advances in Space Research.
[7] Hongjing Wu,et al. Porous high entropy alloys for electromagnetic wave absorption , 2020 .
[8] Xijiang Han,et al. Heterogeneous Interface Induced the Formation of Hierarchically Hollow Carbon Microcubes against Electromagnetic Pollution. , 2020, Small.
[9] F. Luo,et al. Novel Fe3-4N@FCI particles with improved microwave absorption and antioxidation properties prepared by surface nitridation method , 2020 .
[10] S. Zhai,et al. Construction of core-shell PPy@MoS2 with nanotube-like heterostructures for electromagnetic wave absorption: Assembly and enhanced mechanism , 2020 .
[11] Jing Ouyang,et al. PANI/BaFe12O19@Halloysite ternary composites as novel microwave absorbent. , 2020, Journal of colloid and interface science.
[12] D. Zang,et al. Sandwich-like Fe3O4/Fe3S4 composites for electromagnetic wave absorption , 2020 .
[13] Wenwen Lai,et al. Effects of Carbonyl Iron Powder (CIP) Content on the Electromagnetic Wave Absorption and Mechanical Properties of CIP/ABS Composites , 2020, Polymers.
[14] Hongjing Wu,et al. High efficiency electromagnetic wave absorber derived from transition metal layered double hydroxides. , 2020, Journal of colloid and interface science.
[15] Liuying Wang,et al. Electromagnetic and microwave absorption properties of iron pentacarbonyl pyrolysis-synthesized carbonyl iron fibers , 2020, RSC advances.
[16] Qin Li,et al. Techniques to enhance magnetic permeability in microwave absorbing materials , 2020 .
[17] Linhua Liu,et al. Generalized laws of Snell, Fresnel and energy balance for a charged planar interface between lossy media , 2020 .
[18] A. Drozdov,et al. Electromagnetic properties and EMI shielding effectiveness of polymer composites reinforced with ferromagnetic particles at microwave frequencies , 2020 .
[19] H. Choi,et al. Enhanced magnetorheological characteristics of hollow magnetite nanoparticle-carbonyl iron microsphere suspension , 2020, Smart Materials and Structures.
[20] Biao Yang,et al. Structuring Hierarchically Porous Architecture in Biomass-Derived Carbon Aerogels for Simultaneously Achieving High Electromagnetic Interference Shielding Effectiveness and High Absorption Coefficient. , 2020, ACS applied materials & interfaces.
[21] H. Mahdavi,et al. Epoxy-based multilayered coating containing carbon nanotube (CNT), silicon carbide (SiC), and carbonyl iron (CI) particles: as efficient microwave absorbing materials , 2020, Journal of Coatings Technology and Research.
[22] F. Luo,et al. Flexible thin microwave absorbing patch: flake carbonyl iron and chopped carbon fibers oriented in resin matrix , 2019, Journal of Materials Science: Materials in Electronics.
[23] F. Yuan,et al. Energy‐absorption performance of composite corrugated plates with corrugated‐shape ditch plug initiator , 2019 .
[24] Hualiang Lv,et al. Investigation and optimization of Fe/ZnFe2O4 as a Wide-band electromagnetic absorber. , 2019, Journal of colloid and interface science.
[25] Sang-young Kim,et al. Design of Radar Absorbing Structures Utilizing Carbon-Based Polymer Composites , 2018 .
[26] Huacheng Jin,et al. Large-scale synthesis and excellent microwave absorption of highly-dispersed Fe nanoparticles via RF thermal plasma , 2018, Materials Research Express.
[27] P. Jin,et al. Influence of graphene nanoplatelet content on the electromagnetic and microwave absorbing properties of BiFeO3/GNP/epoxy composites , 2018, Journal of Nanoparticle Research.
[28] P. Thakur,et al. Control of electromagnetic properties in substituted M-type hexagonal ferrites , 2018, Journal of Alloys and Compounds.
[29] Zhiyong Wang,et al. Preparation of reduced graphene oxide coated flaky carbonyl iron composites and their excellent microwave absorption properties , 2018, RSC advances.
[30] J. Chen,et al. Fabrication and microwave absorption properties of the flaky carbonyl iron/FeSiAl composite in S-band , 2018, Journal of Materials Science: Materials in Electronics.
[31] M. Montazer,et al. A protective polyester fabric with magnetic properties using mixture of carbonyl iron and nano carbon black along with aluminium sputtering , 2018 .
[32] Liyun Tang,et al. Submicron carbonyl iron particles as an efficient microwave absorber in the low frequency band , 2017 .
[33] Luo Kong,et al. Electromagnetic wave absorption properties of a carbon nanotube modified by a tetrapyridinoporphyrazine interface layer , 2017 .
[34] Youwei Du,et al. A permittivity regulating strategy to achieve high-performance electromagnetic wave absorbers with compatibility of impedance matching and energy conservation , 2017 .
[35] Jianjun Jiang,et al. Broadband Microwave Absorption Properties of Ultrathin Composites Containing Edge-Split Square-Loop FSS Embedded in Magnetic Sheets , 2017, IEEE Antennas and Wireless Propagation Letters.
[36] F. Luo,et al. Graphene nanosheet- and flake carbonyl iron particle-filled epoxy–silicone composites as thin–thickness and wide-bandwidth microwave absorber , 2015 .
[37] Eugenio Gorgucci,et al. Attenuation and Differential Attenuation Correction of C-Band Radar Observations Using a Fully Self-Consistent Methodology , 2007, IEEE Geoscience and Remote Sensing Letters.
[38] Yong-Bao Feng,et al. Electromagnetic and absorption properties of carbonyl iron/rubber radar absorbing materials , 2006, IEEE Transactions on Magnetics.
[39] Kevin W. Kobayashi,et al. Ultra-low dc power GaAs HBT S- and C-band low noise amplifiers for portable wireless applications , 1995 .