The exact suppression of backscattering from rotationally symmetric objects requires dual symmetric materials where εr = μr. This prevents their design at many frequency bands, including the optical one, because magnetic materials are not available. Electromagnetically small non-magnetic spheres of large permittivity offer an alternative. They can be tailored to exhibit balanced electric and magnetic dipole polarizabilities a1 = b1, which result in approximate zero backscattering. In this case, the effect is inherently narrowband. Here, we put forward a different alternative that allows broadband functionality: Wavelength-sized spheres made from low permittivity materials. The effect occurs in a parameter regime where approximate duality is...
We predict that real small dielectric particles made of non-magnetic materials present non-conventio...
Copyright © 2015 American Institute of Physics. This article may be downloaded for personal use only...
High-refractive index dielectric nanoparticles may exhibit strong directional forward light scatteri...
Manipulating the excitation of resonant electric and magnetic multipole moments in structured dielec...
International audienceMagnetodielectric small spheres present unusual electromagnetic scattering fea...
Nanoparticles exhibiting zero backscattering but a large scattering cross section in the forward dir...
Metamaterials are known to exhibit a variety of electromagnetic properties nonexisting in nature. We...
Metamaterials are known to exhibit a variety of electromagnetic properties nonexisting in nature. We...
The future of ultra-fast optical communication systems is inevitably connected with progress in opti...
International audienceThe future of ultra-fast optical communication systems is inevitably connected...
Lossless dielectric nanospheres (made of nonmagnetic materials) with relatively low refraction index...
Using carefully arranged electric and magnetic components, we have recently demonstrated that backsc...
Because of its perfect isotropy, an electrically small homogeneous sphere is an important building b...
ABSTRACT: High-refractive index dielectric nanoparticles may exhibit strong directional forward ligh...
Plasmonic nanoparticles have been the focus of much interest in recent years, especially core-shell ...
We predict that real small dielectric particles made of non-magnetic materials present non-conventio...
Copyright © 2015 American Institute of Physics. This article may be downloaded for personal use only...
High-refractive index dielectric nanoparticles may exhibit strong directional forward light scatteri...
Manipulating the excitation of resonant electric and magnetic multipole moments in structured dielec...
International audienceMagnetodielectric small spheres present unusual electromagnetic scattering fea...
Nanoparticles exhibiting zero backscattering but a large scattering cross section in the forward dir...
Metamaterials are known to exhibit a variety of electromagnetic properties nonexisting in nature. We...
Metamaterials are known to exhibit a variety of electromagnetic properties nonexisting in nature. We...
The future of ultra-fast optical communication systems is inevitably connected with progress in opti...
International audienceThe future of ultra-fast optical communication systems is inevitably connected...
Lossless dielectric nanospheres (made of nonmagnetic materials) with relatively low refraction index...
Using carefully arranged electric and magnetic components, we have recently demonstrated that backsc...
Because of its perfect isotropy, an electrically small homogeneous sphere is an important building b...
ABSTRACT: High-refractive index dielectric nanoparticles may exhibit strong directional forward ligh...
Plasmonic nanoparticles have been the focus of much interest in recent years, especially core-shell ...
We predict that real small dielectric particles made of non-magnetic materials present non-conventio...
Copyright © 2015 American Institute of Physics. This article may be downloaded for personal use only...
High-refractive index dielectric nanoparticles may exhibit strong directional forward light scatteri...