Longjiang Deng focuses on Optics, Microwave, Permittivity, Optoelectronics and Metamaterial. His work is dedicated to discovering how Optics, Radar are connected with Magnetic separation and Wideband and other disciplines. He has included themes like Nanocrystalline material, Spinel, Resonance and Analytical chemistry in his Microwave study.
His work carried out in the field of Permittivity brings together such families of science as Composite material, Condensed matter physics, Nuclear magnetic resonance and Electrical resistivity and conductivity. His work on Photonic integrated circuit, Silicon nitride, Silicon and Silicon photonics as part of general Optoelectronics research is often related to Optical isolator, thus linking different fields of science. His research in Metamaterial intersects with topics in Polarization and Plasmon.
His main research concerns Optics, Optoelectronics, Microwave, Composite material and Condensed matter physics. His study in Optoelectronics is interdisciplinary in nature, drawing from both Thin film and Pulsed laser deposition. His work on Reflection loss as part of general Microwave study is frequently linked to Permeability, therefore connecting diverse disciplines of science.
His work deals with themes such as Amorphous solid, Electrical resistivity and conductivity and Permittivity, which intersect with Composite material. The concepts of his Condensed matter physics study are interwoven with issues in Magnetic anisotropy, Nuclear magnetic resonance and Anisotropy. His Infrared study incorporates themes from Emissivity and Analytical chemistry.
His primary areas of investigation include Optoelectronics, Condensed matter physics, Composite material, Photonics and Infrared. His Optoelectronics research includes elements of Broadband and Electrochromic devices. His Condensed matter physics study combines topics in areas such as Monolayer, Scattering, Polarization and Raman spectroscopy.
Longjiang Deng focuses mostly in the field of Composite material, narrowing it down to topics relating to Permittivity and, in certain cases, Adhesive and Electromagnetic radiation. Infrared is a subfield of Optics that he studies. His Optics study also includes fields such as
His primary areas of study are Condensed matter physics, Microwave, Photonics, Polarization and Optoelectronics. His work in the fields of Condensed matter physics, such as Ferromagnetism, overlaps with other areas such as Degeneracy. His work on Reflection loss is typically connected to Acetylene as part of general Microwave study, connecting several disciplines of science.
In the field of Photonics, his study on Photonic integrated circuit and Silicon photonics overlaps with subjects such as Optical isolator. Longjiang Deng combines subjects such as Thermal diffusivity and Electrochromic devices with his study of Optoelectronics. His Dielectric spectroscopy study integrates concerns from other disciplines, such as Composite material and Permittivity.
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Microwave absorbing performances of multiwalled carbon nanotube composites with negative permeability
Longjiang Deng;Mangui Han.
Applied Physics Letters (2007)
Microwave absorbing performances of multiwalled carbon nanotube composites with negative permeability
Longjiang Deng;Mangui Han.
Applied Physics Letters (2007)
Ultrafast charge transfer in MoS 2 /WSe 2 p-n Heterojunction
Bo Peng;Bo Peng;Guannan Yu;Xinfeng Liu;Bo Liu.
2D Materials (2016)
Ultrafast charge transfer in MoS 2 /WSe 2 p-n Heterojunction
Bo Peng;Bo Peng;Guannan Yu;Xinfeng Liu;Bo Liu.
2D Materials (2016)
Ferromagnetic resonance of sputtered yttrium iron garnet nanometer films
Tao Liu;Houchen Chang;Vincent Vlaminck;Yiyan Sun.
Journal of Applied Physics (2014)
Ferromagnetic resonance of sputtered yttrium iron garnet nanometer films
Tao Liu;Houchen Chang;Vincent Vlaminck;Yiyan Sun.
Journal of Applied Physics (2014)
Heterostructured Nanorings of [email protected] Hybrid with Enhanced Microwave Absorption Performance.
Xian Jian;Xiangyun Xiao;Longjiang Deng;Wei Tian.
ACS Applied Materials & Interfaces (2018)
Heterostructured Nanorings of [email protected] Hybrid with Enhanced Microwave Absorption Performance.
Xian Jian;Xiangyun Xiao;Longjiang Deng;Wei Tian.
ACS Applied Materials & Interfaces (2018)
Microwave-absorbing properties of NiCoZn spinel ferrites
JianLiang Xie;JianLiang Xie;Mangui Han;Mangui Han;Liang Chen;Liang Chen;Renxiong Kuang;Renxiong Kuang.
Journal of Magnetism and Magnetic Materials (2007)
Microwave-absorbing properties of NiCoZn spinel ferrites
JianLiang Xie;JianLiang Xie;Mangui Han;Mangui Han;Liang Chen;Liang Chen;Renxiong Kuang;Renxiong Kuang.
Journal of Magnetism and Magnetic Materials (2007)
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