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173篇 您的检索式:作者名="Engheta"
    题名 作者 年代 出处 被引量
1The fast multipole method (FMM) for electromagnetic scattering problems 显示文摘ENGHETA N MURPHY W D ROKHLIN V VASSILIOU M S 1992IEEE Transactions on Antennas and Propagation1992,40,6:1
2Pairing an epsilon-negative slab with a mu-negative slab: resonance, tunneling and transparency显示文摘Alu A Engheta N 2003IEEE Trans AP2003,51,10:1
3The fast multipole method (FMM) for electromagnetic scattering problem 显示文摘Engheta N Murphy W D Rorhlin V 1992IEEE Transactions on Antennas and Propagation1992,40,6:1
4Thin absorbing screens using metamaterial surfaces显示文摘Nader Engheta 2002IEEE Antennas Propagation Soc Int Sympo- sium2002,2,:1
5Momentum considerations inside near-zero index materials显示文摘Near-zero index (NZI) materials, i.e., materials having a phase refractive index close to zero, are known to enhance or inhibit light-matter interactions. Most theoretical derivations of fundamental radiative processes rely on energetic considerations and detailed balance equations, but not on momentum considerations. Because momentum exchange should also be incorporated into theoretical models, we investigate momentum inside the three categories of NZI materials, i.e., inside epsilon-and-mu-near-zero (EMNZ), epsilon-near-zero (ENZ) and mu-near-zero (MNZ) materials. In the context of Abraham–Minkowski debate in dispersive materials, we show that Minkowski-canonical momentum of light is zero inside all categories of NZI materials while Abraham-kinetic momentum of light is zero in ENZ and MNZ materials but nonzero inside EMNZ materials. We theoretically demonstrate that momentum recoil, transfer momentum from the field to the atom and Doppler shift are inhibited in NZI materials. Fundamental radiative processes inhibition is also explained due to those momentum considerations inside three-dimensional NZI materials. Absence of diffraction pattern in slits experiments is seen as a consequence of zero Minkowski momentum. Lastly, consequence on Heisenberg inequality, microscopy applications and on the canonical momentum as generator of translations are discussed. Those findings are appealing for a better understanding of fundamental light-matter interactions at the nanoscale as well as for lasing applications.Michaël Lobet Iñigo Liberal Larissa Vertchenko Andrei VLavrinenko Nader Engheta Eric Mazur 2022Light(Science & Applications)2022,11,8:1
6Far-field subdiffraction optical microscopy using metamaterial crystals: Theory and simulations 显示文摘Salandrino A Engheta N 2006Physical Review B2006,74,07:1
7Transformation optics using gra- phene 显示文摘Vakil A Engheta N 2011Science2011,332,6035:1
8Pairing an epsilon-negative slab with a mu-negative slab: resonance, tunneling and transparency显示文摘Alu A Engheta N 2003IEEE Trans on An- tennas Propag2003,51,:1
9A Reeiprncal Phase Shifter Using Navel Pseudnehiral or Omega Medium 显示文摘Saadoum M M I Engheta N 1992Mieowave and Optical Teehnlogy Letters1992,,5:1
10Circuits with light at nanoscales: optical nanocir- cuits inspired by metamaterials显示文摘Engheta N 2007Science2007,317,5845:1
11The fast multipole method (FMM) for electromagnetic scattering problems 显示文摘Engheta N Murphy W D Rokhlin V 1992IEEE Transaction on Antennas Propagation1992,40,2:1
12Optical spectrometer at the nanoscale using optical Yagi-Uda nanoantennas 显示文摘Li J Salandrino A Engheta N 2009Physical Review B2009,79,19:1
13On the role of fractional calculus in electromagnetic theory显示文摘 1997IEEE Antennas and Propagation Magazine1997,39,4:1
14Pairing an epsilon-negative slab with a mu- negative slab:resonance, tunneling and transparency显示文摘Alu A Engheta N 2003IEEE Transactions on Antennas and Propagation2003,51,10:1
15All Optical Metamaterial Circuit Board at the Nanoscale显示文摘Andrea Alu Nader Engheta 2009Phys Rev Lett2009,103,14:1
16Chiroshield: A Salisbury/dallenbach shield alternative 显示文摘Jaggard D L Engheta N Liu J 1990Electronics Letters1990,2,17:1
17Design of matched zero-index metamaterials using nonmagnetic inclusions in epsilon near-zero media显示文摘Silveirinha M G Engheta N 2007Phy RevB2007,76,24:1
18Tunneling of electromagnetic energy through subwavelength channels and bends using e near-zero materials 显示文摘Silveirinha M G Engheta N 2006PhysRev Lett2006,97,15:1
19Pairing an epsilon-negative slab with a mu-negative slab:resonance,tunneling and transparency显示文摘ALU A ENGHETA N 2003IEEE Trans Antennas Propag2003,51,10:1
20Transformation optics using graphene 显示文摘A Vakil N Engheta 2011Science2011,332,6035:1
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