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      Graphene‐Based Composites Combining Both Excellent Terahertz Shielding and Stealth Performance

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          Abstract

          Strong terahertz‐response material which exhibits both excellent terahertz shielding and stealth performance is promising in practical applications of terahertz technology. Here, ultralight graphene foam (GF) and multiwalled carbon nanotubes/multiwalled graphene foam (MGF) have been first demonstrated to achieve both superior terahertz shielding and stealth performance due to the dominant absorption loss with negligible reflection. The terahertz shielding effectiveness values of GF and MGF, both 3 mm thick, reach up to 74 and 61 dB. Meanwhile, their average terahertz reflection loss values are achieved up to 23 and 30 dB, respectively, which are the best results in existing broadband terahertz shielding/stealth materials. Importantly, their qualified absorption bandwidths (reflection loss value larger than 10 dB) cover the entire measured frequency band of 0.1–1.6 THz. Furthermore, the quantitative relationships between the terahertz shielding effectiveness, reflection loss, and material parameters are accurately established, which should facilitate the material design for terahertz shielding and stealth. Comprehensively considering the important indicators of density, bandwidth, and intensity, the specific average terahertz shielding coefficient and the specific average terahertz absorption performance are achieved up to 1.1 × 10 5 and 3.6 × 10 4 dB cm 3 g −1, respectively, which is over thousands of times larger than other kinds of materials reported previously.

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          Most cited references48

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          Raman spectroscopy of carbon nanotubes

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            Broadband and tunable high-performance microwave absorption of an ultralight and highly compressible graphene foam.

            The broadband and tunable high-performance microwave absorption properties of an ultralight and highly compressible graphene foam (GF) are investigated. Simply via physical compression, the microwave absorption performance can be tuned. The qualified bandwidth coverage of 93.8% (60.5 GHz/64.5 GHz) is achieved for the GF under 90% compressive strain (1.0 mm thickness). This mainly because of the 3D conductive network.
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              Perfect metamaterial absorber.

              We present the design for an absorbing metamaterial (MM) with near unity absorbance A(omega). Our structure consists of two MM resonators that couple separately to electric and magnetic fields so as to absorb all incident radiation within a single unit cell layer. We fabricate, characterize, and analyze a MM absorber with a slightly lower predicted A(omega) of 96%. Unlike conventional absorbers, our MM consists solely of metallic elements. The substrate can therefore be optimized for other parameters of interest. We experimentally demonstrate a peak A(omega) greater than 88% at 11.5 GHz.
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                Author and article information

                Contributors
                Journal
                Advanced Optical Materials
                Advanced Optical Materials
                Wiley
                2195-1071
                2195-1071
                December 2018
                October 21 2018
                December 2018
                : 6
                : 23
                Affiliations
                [1 ] National Institute for Advanced Materials Tianjin Key Laboratory of Metal and Molecule Based Material Chemistry Key Laboratory of Functional Polymer Materials Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) School of Materials Science and Engineering Nankai University Tianjin 300350 China
                [2 ] Institute of Modern Optics Nankai University Tianjin 300350 China
                [3 ] State Key Laboratory and Institute of Elemento‐Organic Chemistry Centre of Nanoscale Science and Technology and Key Laboratory of Functional Polymer Materials College of Chemistry Nankai University Tianjin 300071 China
                Article
                10.1002/adom.201801165
                98846332-9654-4b19-94ed-976b042843cd
                © 2018

                http://onlinelibrary.wiley.com/termsAndConditions#vor

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