Universidad de Cantabria ON LIGHT SCATTERING BY NANOPARTICLES WITH CONVENTIONAL AND NON-CONVENTIONAL
... In Figure 5.3, we show the spatial distribution of the scattered intensity by a nanoparticle (R = 0.01λ) with optical constants (, µ) = (−2.01 + 0.1i, −2.01 + 0.1i) fulfilling the zerobackward scattering condition. The values for and µ are chosen close to the electric and magnetic resonances beca ...
... In Figure 5.3, we show the spatial distribution of the scattered intensity by a nanoparticle (R = 0.01λ) with optical constants (, µ) = (−2.01 + 0.1i, −2.01 + 0.1i) fulfilling the zerobackward scattering condition. The values for and µ are chosen close to the electric and magnetic resonances beca ...
Antenna and Plasmonic Properties of Scanning Probe Tips at Optical
... illuminated by two different excitation frequencies in the optical and Terahertz (THz) regimes with the wavelengths of 630 nm and 0.3 mm, respectively. The dependence of field enhancement on apex radius, tip geometry, radiation wavelengths, tip and sample materials at optical and THz regimes is inve ...
... illuminated by two different excitation frequencies in the optical and Terahertz (THz) regimes with the wavelengths of 630 nm and 0.3 mm, respectively. The dependence of field enhancement on apex radius, tip geometry, radiation wavelengths, tip and sample materials at optical and THz regimes is inve ...
The mutual energy current interpretation for quantum mechanics
... advanced potential. These two potentials together produce the mutual energy current or referred as M-current. Hence light is not a wave and not particles, it is M-current. Light energy current is often described as a surface integral of Poynting vector. This energy current can be referred as P-curre ...
... advanced potential. These two potentials together produce the mutual energy current or referred as M-current. Hence light is not a wave and not particles, it is M-current. Light energy current is often described as a surface integral of Poynting vector. This energy current can be referred as P-curre ...
electric-force-and-field
... PREVIEW Electric charge is the fundamental quantity that underlies all electrical phenomena. There are two types of charges, positive and negative, and like charges repel each other, and unlike charges attract each other. A conductor is a material through which charge can easily flow due to a large ...
... PREVIEW Electric charge is the fundamental quantity that underlies all electrical phenomena. There are two types of charges, positive and negative, and like charges repel each other, and unlike charges attract each other. A conductor is a material through which charge can easily flow due to a large ...