材料科学                        
                
                                
                        
                            微波食品加热                        
                
                                
                        
                            色散(光学)                        
                
                                
                        
                            吸收(声学)                        
                
                                
                        
                            超材料                        
                
                                
                        
                            宽带                        
                
                                
                        
                            光学                        
                
                                
                        
                            光电子学                        
                
                                
                        
                            复合材料                        
                
                                
                        
                            工程类                        
                
                                
                        
                            电信                        
                
                                
                        
                            物理                        
                
                        
                    
            作者
            
                Ruiyang Tan,Yijie Liu,Weijin Li,Jintang Zhou,Pïng Chen,Ali Zavabeti,Haibo Zeng,Zhengjun Yao            
         
                    
        
    
            
            标识
            
                                    DOI:10.1002/smtd.202301772
                                    
                                
                                 
         
        
                
            摘要
            
            Abstract Efficient electromagnetic waves (EMWs) absorbing materials play a vital role in the electronic era. In traditional research on microwave absorbing (MA) materials, the synergistic modulation of material dispersion and structural dispersion of EMWs by incorporating multi‐scale effects has frequently been overlooked, resulting in an untapped absorption potential. In this study, the material dispersion customization method based on biomass carbon is determined by quantitative analysis. The study carries out thermodynamic modulation of carbon skeleton, micro‐nano porous engineering, and phosphorus atom donor doping in turn. The dielectric properties are improved step by step. In terms of structural dispersion design, inspired by the theory of antenna reciprocity, a Vivaldi antenna‐like absorber is innovatively proposed. With the effective combination of material dispersion and structural dispersion engineering by 3D printing technology, the ultra‐wideband absorption of 36.8 GHz and the angular stability of close to 60 ° under dual polarization are successfully realized. The work breaks the deadlock of mutual constraints between wave impedance and attenuation rate through the dispersion modulation methods on multiple scales, unlocking the potential for designing next‐generation broadband wide‐angle absorbers.
         
            
 
                 
                
                    
                    科研通智能强力驱动
Strongly Powered by AbleSci AI