scholarly journals Enhanced Second Harmonic Generation in Double‐Resonance Colloidal Metasurfaces

2020 ◽  
Vol 30 (51) ◽  
pp. 2006826
Author(s):  
Yuan Zeng ◽  
Haoliang Qian ◽  
Matthew J. Rozin ◽  
Zhaowei Liu ◽  
Andrea R. Tao
2018 ◽  
Vol 28 (51) ◽  
pp. 1870367
Author(s):  
Yuan Zeng ◽  
Haoliang Qian ◽  
Matthew J. Rozin ◽  
Zhaowei Liu ◽  
Andrea R. Tao

2019 ◽  
Vol 9 (16) ◽  
pp. 3381 ◽  
Author(s):  
Domenico de Ceglia ◽  
Luca Carletti ◽  
Maria Antonietta Vincenti ◽  
Costantino De Angelis ◽  
Michael Scalora

We investigate the enhancement of second-harmonic generation in cylindrical GaAs nanowires. Although these nanostructures confine light in two dimensions, power conversion efficiencies on the order of 10 − 5 with a pump peak intensity of ~ 1   GW / cm 2 are possible if the pump and the second-harmonic fields are coupled to the Mie-type resonances of the nanowire. We identify a large range of nanowire radii in which a double-resonance condition, i.e., both the pump and the second-harmonic fields excite normal modes of the nanowire, induces a high-quality-factor peak of conversion efficiency. We show that second-harmonic light can be scattered with large efficiency even if the second-harmonic photon energy is larger than 1.42 eV, i.e., the electronic bandgap of GaAs, above which the material is considered opaque. Finally, we evaluate the efficiency of one-photon absorption of second-harmonic light and find that resonant GaAs nanowires absorb second-harmonic light in the near-field region almost at the same rate at which they radiate second-harmonic light in the far-field region.


1996 ◽  
Vol 05 (03) ◽  
pp. 591-601
Author(s):  
V. BERGER

Doubly resonant second harmonic generation (SHG) in a monolithic cavity is theoretically analysed. Using a non birefringent material as non linear medium, it is shown that both the double resonance condition and the phase matching condition between the two counter propagating second harmonic intracavity waves can be satisfied with a cavity length equal to the coherence length of the non linear process, and with well designed mirror phases. It is also shown theoretically how the double resonance can be maintained with only one tuning parameter. A SHG cavity enhancement of a few tens of thousands may be achieved at double resonance.


Author(s):  
M. Ethis de Corny ◽  
L. Olgeirsson ◽  
M. Jeannin ◽  
N. Chauvet ◽  
G. Laurent ◽  
...  

2018 ◽  
Vol 28 (51) ◽  
pp. 1803019 ◽  
Author(s):  
Yuan Zeng ◽  
Haoliang Qian ◽  
Matthew J. Rozin ◽  
Zhaowei Liu ◽  
Andrea R. Tao

Author(s):  
Jose Antonio Antonio Medina Vazquez ◽  
Evelyn Yamel González Ramírez ◽  
Jose Guadalupe Murillo

Abstract In this work, we study a composite zinc oxide photonic crystal that includes a meso-cavity coupled to a photonic crystal L3 microcavity to obtain a double resonance effect and second-harmonic generation conversion efficiency as high as 468 W-1. This exceptional conversion efficiency was attributed to the high quality-factors Q found in the fundamental and second-harmonic modes whose values were of the order of 105 and 106, respectively. Since the L3 microcavity plays a relevant role in the second-harmonic generation of the composite photonic crystal, we performed a calculation of its photonic band structure to observe the induced modes in its bandgap. Furthermore, we also found that the resonant mode adjusted to the frequency of the second-harmonic exhibits high Purcell factors of the order of 105. Hence, in a semiconductor material, it can be easily enhanced the light emission at the second harmonic frequency using an adequate driving fundamental frequency light beam. These results can stimulate the engineering of photonic nanostructures in semiconductor materials to achieve highly efficient non-linear effects with applications in cavity Quantum Electrodynamics.


1992 ◽  
Vol 139 (2) ◽  
pp. 133 ◽  
Author(s):  
N.M. Lawandy ◽  
T.J. Driscoll ◽  
C.L. Adler ◽  
N.M. Lawandy

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