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Nannan Wu

Researcher at Shandong University of Science and Technology

Publications -  39
Citations -  2791

Nannan Wu is an academic researcher from Shandong University of Science and Technology. The author has contributed to research in topics: Reflection loss & Composite number. The author has an hindex of 20, co-authored 31 publications receiving 1632 citations. Previous affiliations of Nannan Wu include Shandong University & University of Tennessee.

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Achieving superior electromagnetic wave absorbers through the novel metal-organic frameworks derived magnetic porous carbon nanorods

TL;DR: In this article, a rod-shape composites with Fe-containing magnetic nanoparticles (Fe3O4, Fe3C and Fe NPs) embedded into nano-porous carbon (NPC) through pyrolysis of Fe-based metal-organic frameworks (MOFs).
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Hierarchically porous Co/C nanocomposites for ultralight high-performance microwave absorption

TL;DR: In this paper, Co/C nanocomposites with Co nanoparticles uniformly distributed in amorphous carbon sheets are prepared by a freezing dry and carbothermic reduction process.
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Enhanced Electromagnetic Wave Absorption of Three-Dimensional Porous Fe3O4/C Composite Flowers

TL;DR: In this article, the authors proposed a 3D porous Fe3O4/C composite flowers with an average size of 4-6 μm and an optimal reflection loss (RL) value of −54.6 dB at 5.7 GHz at a thin thickness of 4.27 mm.
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Review on the electromagnetic interference shielding properties of carbon based materials and their novel composites: Recent progress, challenges and prospects

TL;DR: In this paper, a review of recent achievements for carbon materials with different microstructures as electromagnetic interference shielding materials (ESMs) and microwave absorption materials (MAMs) during the past five years is presented.
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Ultrathin high-performance electromagnetic wave absorbers with facilely fabricated hierarchical porous Co/C crabapples

TL;DR: In this paper, the hierarchical porous cobalt (Co)/carbon (C) crabapples, lab-made via a facile solvothermal reaction coupled with a following carbon reduction treatment, provided 90% EMW absorption over a broad bandwidth of 5.9 GHz at 2.0 mm thickness.