TY - JOUR
T1 - Enhanced nonlinearities using plasmonic nanoantennas
AU - Chen, Pai Yen
AU - Argyropoulos, Christos
AU - Alù, Andrea
AU - Van Hulst, Niek
N1 - Funding Information:
This work has been partially supported by the ARO STTR project “ Dynamically Tunable Metamaterials ” , AFOSR with the YIP award No. FA9550-11-1-0009 and the ONR MURI grant No. N00014-10-1-0942.
Publisher Copyright:
© 2012 Science Wise Publishing & De Gruyter.
PY - 2012/12/1
Y1 - 2012/12/1
N2 - In this paper, we review and discuss how nanoantennas may be used to largely enhance the nonlinear response of optical materials. For single nanoantennas, there have been tremendous advancements in understanding how to exploit the local field enhancement to boost the nonlinear susceptibility at the surface or sharp edges of plasmonic metals. After an overview of the work in this area, we discuss the possibility of controlling the optical nonlinear response using nanocircuit concepts and of significantly enhancing various nonlinear optical processes using planar arrays of plasmonic nanoantennas loaded with Χ(2) or Χ (3) nonlinear optical materials, forming ultrathin, nanometer-scale nonlinear metasurfaces, as optical nanodevices. We describe how this concept may be used to boost the efficiency of nonlinear wave mixing and optical bistability, due to the large local field enhancement at the nonlinear nanoloads associated with the plasmonic features of suitably tailored nanoantenna designs. We finally discuss three exciting applications of the proposed nonlinear metasurface: dramatically-enhanced frequency conversion efficiency,efficient phase-conjugation for super-resolution imaging and large optical bistabilities.
AB - In this paper, we review and discuss how nanoantennas may be used to largely enhance the nonlinear response of optical materials. For single nanoantennas, there have been tremendous advancements in understanding how to exploit the local field enhancement to boost the nonlinear susceptibility at the surface or sharp edges of plasmonic metals. After an overview of the work in this area, we discuss the possibility of controlling the optical nonlinear response using nanocircuit concepts and of significantly enhancing various nonlinear optical processes using planar arrays of plasmonic nanoantennas loaded with Χ(2) or Χ (3) nonlinear optical materials, forming ultrathin, nanometer-scale nonlinear metasurfaces, as optical nanodevices. We describe how this concept may be used to boost the efficiency of nonlinear wave mixing and optical bistability, due to the large local field enhancement at the nonlinear nanoloads associated with the plasmonic features of suitably tailored nanoantenna designs. We finally discuss three exciting applications of the proposed nonlinear metasurface: dramatically-enhanced frequency conversion efficiency,efficient phase-conjugation for super-resolution imaging and large optical bistabilities.
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U2 - 10.1515/nanoph-2012-0016
DO - 10.1515/nanoph-2012-0016
M3 - Review article
AN - SCOPUS:84885671165
SN - 2192-8606
VL - 1
SP - 221
EP - 233
JO - Nanophotonics
JF - Nanophotonics
IS - 3-4
ER -