Near-field enhancement of optical second harmonic generation in hybrid gold-lithium niobate nanostructures

被引:12
作者
Ali, Rana Faryad [1 ]
Busche, Jacob A. [2 ]
Kamal, Saeid [1 ]
Masiello, David J. [2 ]
Gates, Byron D. [1 ]
机构
[1] Simon Fraser Univ, Dept Chem & LABS 4D, Burnaby, BC V5A1S6, Canada
[2] Univ Washington, Dept Chem, Seattle, WA 98195 USA
基金
美国国家科学基金会; 加拿大自然科学与工程研究理事会; 加拿大创新基金会;
关键词
NONLINEAR OPTICS; CONVERSION;
D O I
10.1038/s41377-023-01092-8
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Nanophotonics research has focused recently on the ability of nonlinear optical processes to mediate and transform optical signals in a myriad of novel devices, including optical modulators, transducers, color filters, photodetectors, photon sources, and ultrafast optical switches. The inherent weakness of optical nonlinearities at smaller scales has, however, hindered the realization of efficient miniaturized devices, and strategies for enhancing both device efficiencies and synthesis throughput via nanoengineering remain limited. Here, we demonstrate a novel mechanism by which second harmonic generation, a prototypical nonlinear optical phenomenon, from individual lithium niobate particles can be significantly enhanced through nonradiative coupling to the localized surface plasmon resonances of embedded gold nanoparticles. A joint experimental and theoretical investigation of single mesoporous lithium niobate particles coated with a dispersed layer of similar to 10 nm diameter gold nanoparticles shows that a similar to 32-fold enhancement of second harmonic generation can be achieved without introducing finely tailored radiative nanoantennas to mediate photon transfer to or from the nonlinear material. This work highlights the limitations of current strategies for enhancing nonlinear optical phenomena and proposes a route through which a new class of subwavelength nonlinear optical platforms can be designed to maximize nonlinear efficiencies through near-field energy exchange.
引用
收藏
页数:12
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[1]   Lithium niobate particles with a tunable diameter and porosity for optical second harmonic generation [J].
Ali, Rana Faryad ;
Gates, Byron D. .
RSC ADVANCES, 2021, 12 (02) :822-833
[2]   One-pot synthesis of sub-10 nm LiNbO3 nanocrystals exhibiting a tunable optical second harmonic response [J].
Ali, Rana Faryad ;
Bilton, Matthew ;
Gates, Byron D. .
NANOSCALE ADVANCES, 2019, 1 (06) :2268-2275
[3]   Synthesis of Lithium Niobate Nanocrystals with Size Focusing through an Ostwald Ripening Process [J].
Ali, Rana Faryad ;
Gates, Byron D. .
CHEMISTRY OF MATERIALS, 2018, 30 (06) :2028-2035
[4]  
Bohren C., 1998, Absorption and Scattering of Light by Small Particles
[5]   Harmonic generation at the nanoscale [J].
Bonacina, Luigi ;
Brevet, Pierre-Francois ;
Finazzi, Marco ;
Celebrano, Michele .
JOURNAL OF APPLIED PHYSICS, 2020, 127 (23)
[6]   Sensing with Multipolar Second Harmonic Generation from Spherical Metallic Nanoparticles [J].
Butet, Jeremy ;
Russier-Antoine, Isabelle ;
Jonin, Christian ;
Lascoux, Noelle ;
Benichou, Emmanuel ;
Brevet, Pierre-Francois .
NANO LETTERS, 2012, 12 (03) :1697-1701
[7]   Size-dependent second-harmonic generation from gold nanoparticles [J].
Capretti, Antonio ;
Pecora, Emanuele F. ;
Forestiere, Carlo ;
Dal Negro, Luca ;
Miano, Giovanni .
PHYSICAL REVIEW B, 2014, 89 (12)
[8]   Single Laser Pulse Effects on Suspended-Au-Nanoparticle Size Distributions and Morphology [J].
Cavicchi, Richard E. ;
Meier, Douglas C. ;
Presser, Cary ;
Prabhu, Vivek M. ;
Guha, Suvajyoti .
JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (20) :10866-10875
[9]   Deterministic Down-Converter and Continuous Photon-Pair Source within the Bad-Cavity Limit [J].
Chang, Yue ;
Gonzalez-Tudela, Alejandro ;
Sanchez Munoz, Carlos ;
Navarrete-Benlloch, Carlos ;
Shi, Tao .
PHYSICAL REVIEW LETTERS, 2016, 117 (20)
[10]   Hybrid KTP-Plasmonic Nanostructures for Enhanced Nonlinear Optics at the Nanoscale [J].
Chauvet, Nicolas ;
de Corny, Maeliss Ethis ;
Jeannin, Mathieu ;
Laurent, Guillaume ;
Huant, Serge ;
Gacoin, Thierry ;
Dantelle, Geraldine ;
Nogues, Gilles ;
Bachelier, Guillaume .
ACS PHOTONICS, 2020, 7 (03) :665-672