Linear and nonlinear optical characterization of self-assembled, large-area gold nanosphere metasurfaces with sub-nanometer gaps

被引:14
|
作者
Fontana, Jake [1 ]
Maldonado, Melissa [2 ]
Charipar, Nicholas [1 ]
Trammell, Scott A. [1 ]
Nita, Rafaela [1 ]
Naciri, Jawad [1 ]
Pique, Alberto [1 ]
Ratna, Banahalli [1 ]
Gomes, Anderson S. L. [2 ]
机构
[1] Naval Res Lab, 4555 Overlook Ave SW, Washington, DC 20375 USA
[2] Univ Fed Pernambuco, Dept Fis, BR-50670901 Recife, PE, Brazil
来源
OPTICS EXPRESS | 2016年 / 24卷 / 24期
关键词
NEGATIVE-INDEX METAMATERIALS; HIGH REFRACTIVE-INDEX; PLASMONIC METASURFACE; VISIBLE WAVELENGTHS; DIFFRACTION LIMIT; NANOPARTICLES; SUPERLATTICES; ELLIPSOMETRY; ABSORPTION; MONOLAYERS;
D O I
10.1364/OE.24.027360
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We created centimeter-scale area metasurfaces consisting of a quasi-hexagonally close packed monolayer of gold nanospheres capped with alkanethiol ligands on glass substrates using a directed self-assembly approach. We experimentally characterized the morphology and the linear and nonlinear optical properties of metasurfaces. We show these metasurfaces, with interparticle gaps of 0.6 nm, are modeled well using a classical (without charge transfer) description. We find a large dispersion of linear refractive index, ranging from values less than vacuum, 0.87 at 600 nm, to Germanium-like values of 4.1 at 880 nm, determined using spectroscopic ellipsometry. Nonlinear optical characterization was carried out using femtosecond Z-scan and we observe saturation behavior of the nonlinear absorption (NLA) and nonlinear refraction (NLR). We find a negative NLR from these metasurfaces two orders of magnitude larger (n(2,sat) = -7.94x10(-9) cm(2)/W at I-sat,I-n2 = 0.43 GW/cm(2)) than previous reports on gold nanostructures at similar femtosecond time scales. We also find the magnitude of the NLA comparable to the largest values reported (beta(2,sat) = -0.90x10(5) cm/GW at I-sat,I-beta 2 = 0.34 GW/cm(2)). Precise knowledge of the index of refraction is of crucial importance for emerging dispersion engineering technologies. Furthermore, utilizing this directed self-assembly approach enables the nanometer scale resolution required to develop the unique optical response and simultaneously provides high-throughput for potential device realization. (C) 2016 Optical Society of America
引用
收藏
页码:27360 / 27370
页数:11
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