PVDF/PS/HDPE/MWCNTs/Fe3O4 nanocomposites: Effective and lightweight electromagnetic interference shielding material through the synergetic effect of MWCNTs and Fe3O4 nanoparticles

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' PVDF/PS/HDPE/MWCNTs/Fe3O4 nanocomposites: Effective and lightweight electromagnetic interference shielding material through the synergetic effect of MWCNTs and Fe3O4 nanoparticles' 의 참고문헌

  • Ultralow percolation thresholds in ternary cocontinuous polymer blends
    J. Zhang [2007]
  • Thermal, dielectric and microwave absorption properties of polyaniline-CoFe 2 O 4 nanocomposites
    N. Gandhi [2011]
  • The EMI shielding effectiveness of PC/ABS/nickel-coatedcarbon-fibre composites
    C.Y. Huang [2000]
  • Temperature dependent microwave attenuation behavior for carbon-nanotube/silica composites
    B. Wen [2013]
  • Tailoring the impact behavior of polyamide 6 ternary blends via a hierarchical coreeshell structure in situ formed in melt mixing
    R. Dou [2015]
  • Tailor-made distribution of nanoparticles in blend structure toward outstanding electromagnetic interference shielding
    S. Biswas [2015]
  • Synthesis of poly(methyl methacrylate) stabilized colloidal zero-valence metallic nanoparticles
    Z. Guo [2006]
  • Synthesis of ferrofluid based nanoarchitectured polypyrrole composites and its application for electromagnetic shielding
    S. Varshney [2014]
  • Studies on graphite based conductive paint coatings
    S.S. Azim [2006]
  • Structuring tri-continuous structure multiphase composites with ultralow conductive percolation threshold and excellent electromagnetic shielding effectiveness using simple melt mixing
    R. Dou [2016]
  • Simultaneous improvement in structural properties and microwave shielding of polymer blends with carbon nanotubes
    S. Biswas [2016]
  • Polymer/carbon based composites as electromagnetic interference (EMI) shielding materials
  • Multi-wall carbon nanotubes decorated with ZnO nanocrystals: mild solution-process synthesis and highly efficient microwave absorption properties at elevated temperature
    M.-M. Lu [2014]
  • MnO2 decorated graphene nanoribbons with superior permittivity and excellent microwave shielding properties
    T.K. Gupta [2014]
  • Microwave absorbers designed from PVDF/SAN blends containing multiwall carbon nanotubes anchored cobalt ferrite via a pyrene derivative
    S. Biswas [2015]
  • Microwave Absorption and EMI Shielding Behavior of Nanocomposites Based on Intrinsically Conducting Polymers, Graphene and Carbon Nanotubes
    P. Saini [2012]
  • Mesocarbon microsphere composites with Fe3O4nanoparticles for outstanding electromagnetic interference shielding effectiveness
    R. Dhawan [2015]
  • Lightweight, multifunctional polyetherimide/graphene@ Fe3O4 composite foams for shielding of electromagnetic pollution
    B. Shen [2013]
  • Intrinsically Conducting Polymer-based Blends and Composites for Electromagnetic Interference Shielding: Theoretical and Experimental Aspects
    P. Saini [2015]
  • Insight into the formation of a continuous sheath structure for the PS phase in tri-continuous PVDF/PS/HDPE blends
    R. Dou [2016]
  • Improved electromagnetic interference shielding response of poly(aniline)-coated fabrics containing dielectric and magnetic nanoparticles
    P. Saini [2012]
  • Impressive transmission mode electromagnetic interference shielding parameters of graphene-like nanocarbon/polyurethane nanocomposites for short range tracking countermeasures
    A. Kumar [2015]
  • High permittivity polyaniline-barium titanate nanocomposites with excellent electromagnetic interference shielding response
    P. Saini [2013]
  • Graphene-Fe3O4 nanohybrids: synthesis and excellent electromagnetic absorption properties
    T. Wang [2013]
  • Formation mechanism, electronic properties & microwave shielding by nano-structured polyanilines prepared by template free route using surfactant dopants
    P. Saini [2013]
  • Ferroferric oxide/multiwalled carbon nanotube vs polyaniline/ferroferric oxide/multiwalled carbon nanotube multiheterostructures for highly effective microwave absorption
    M.S. Cao [2012]
  • Excellent electromagnetic interference shielding effectiveness of chemically reduced graphitic oxide paper at 101 GHz*
    P. Saini [2016]
  • Excellent electromagnetic interference shielding and mechanical properties of high loading carbonnanotubes/polymer composites designed using melt recirculation equipped twin-screw extruder
    P. Verma [2015]
  • Enhanced microwave shielding and mechanical properties of high loading MWCNTeepoxy composites
    B.P. Singh [2013]
  • Enhanced microwave absorption behavior of polyaniline-CNT/polystyrene blend in 12.4-18.0GHz range
    P. Saini [2011]
  • Enhanced electromagnetic interference shielding efficiency of polystyrene/graphene composites with magnetic Fe 3 O 4 nanoparticles
    Y. Chen [2015]
  • Enhanced electromagnetic interference shielding effectiveness of polyaniline functionalized carbon nanotubes filled polystyrene composites
    P. Saini [2013]
  • Engineering nanostructured polymer blends with controlled nanoparticle location for excellent microwave absorption: a compartmentalized approach
    S. Biswas [2015]
  • Electromagnetic interference shielding using continuous carbon-fiber carbon-matrix and polymer-matrix composites
    X. Luo [1999]
  • Electromagnetic interference shielding of graphene/epoxy composites
    J. Liang [2009]
  • Electromagnetic interference shielding effectiveness of carbon materials
  • Electromagnetic interference shielding effectiveness of carbon black and carbon fibre filled EVA and NR based composites
    N.C. Das [2000]
  • Electromagnetic interference (EMI) shielding of single-walled carbon nanotube epoxy composites
    N. Li [2006]
  • Electromagnetic and microwave absorption properties of (Co2+-Si4+) substituted barium hexaferrites and its polymer composite
    S.M. Abbas [2007]
  • Electrical and magnetic properties of polyaniline/Fe3O4 nanostructures
    Y. Long [2005]
  • Electrical Properties and Electromagnetic Interference Shielding Response of Electrically Conducting Thermosetting Nanocomposites
  • Elastomer foam nanocomposites for electromagnetic dissipation and shielding applications
    A. Fletcher [2010]
  • Effect of the MWCNTs selective localization on the dielectric properties for PVDF/PS/HDPE ternary blends with in situ formed coreeshell structure
    S.-l. Li [2016]
  • EMI shielding performance of nanocomposites with MWCNTs, nanosized Fe 3 O 4 and Fe
    Y. Liu [2014]
  • Double-shelled yolkeshell microspheres with Fe3O4 cores and SnO2 double shells as high-performance microwave absorbers
    J. Liu [2012]
  • Dispersion of fillers and the electrical conductivity of polymer blends filled with carbon black
    M. Sumita [1991]
  • Designing of carbon nanotube/polymer composites using melt recirculation approach: effect of aspect ratio on mechanical, electrical and EMI shielding response
    P. Verma [2015]
  • Design of electrical conductive composites: tuning the morphology to improve the electrical properties of graphene filled immiscible polymer blends
    C. Mao [2012]
  • Control of multiwall carbon nanotubes dispersion in polyamide6 matrix: an assessment through electrical conductivity
  • Conjugated Polymer-based Blends, Copolymers, and Composites: Synthesis, Properties, and Applications
    P. Saini [2015]
  • Conductive carbon nanofiber-polymer foam structures
    Y. Yang [2005]
  • Carbon nanotube-CdS core-shell nanowires with tunable and high-efficiency microwave absorption at elevated temperature
    M. Lu [2015]
  • Assembled Fe3O4 nanoparticles on graphene for enhanced electromagnetic wave losses
    P.F. Guan [2012]
  • Anisotropic multilayer conductive networks in carbon nanotubes filled polyethylene/polypropylene blends obtained through high speed thin wall injection molding
    F. Yu [2013]
  • 3D Fe3O4 nanocrystals decorating carbon nanotubes to tune electromagnetic properties and enhance microwave absorption capacity
    Y.-H. Chen [2015]