Large optical nonlinearity of ITO nanorods for sub-picosecond all-optical modulation of the full-visible spectrum

被引:107
作者
Guo, Peijun [1 ]
Schaller, Richard D. [2 ,3 ]
Ocola, Leonidas E. [2 ]
Diroll, Benjamin T. [2 ]
Ketterson, John B. [4 ]
Chang, Robert P. H. [1 ]
机构
[1] Northwestern Univ, Dept Mat Sci & Engn, 2220 Campus Dr, Evanston, IL 60208 USA
[2] Argonne Natl Lab, Ctr Nanoscale Mat, 9700 South Cass Ave, Lemont, IL 60439 USA
[3] Northwestern Univ, Dept Chem, 2145 Sheridan Rd, Evanston, IL 60208 USA
[4] Northwestern Univ, Dept Phys & Astron, 2145 Sheridan Rd, Evanston, IL 60208 USA
关键词
SURFACE-PLASMON RESONANCE; OXIDE; NANOSTRUCTURES; NANOCRYSTALS; DYNAMICS; GOLD; METAMATERIALS; METASURFACES; NANOWIRES; GRAPHENE;
D O I
10.1038/ncomms12892
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Nonlinear optical responses of materials play a vital role for the development of active nanophotonic and plasmonic devices. Optical nonlinearity induced by intense optical excitation of mobile electrons in metallic nanostructures can provide large-amplitude, dynamic tuning of their electromagnetic response, which is potentially useful for all-optical processing of information and dynamic beam control. Here we report on the sub-picosecond optical nonlinearity of indium tin oxide nanorod arrays (ITO-NRAs) following intraband, on-plasmon-resonance optical pumping, which enables modulation of the full-visible spectrum with large absolute change of transmission, favourable spectral tunability and beam-steering capability. Furthermore, we observe a transient response in the microsecond regime associated with slow lattice cooling, which arises from the large aspect-ratio and low thermal conductivity of ITO-NRAs. Our results demonstrate that all-optical control of light can be achieved by using heavily doped wide-bandgap semiconductors in their transparent regime with speed faster than that of noble metals.
引用
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页数:10
相关论文
共 51 条
[1]   Hotspot-mediated ultrafast nonlinear control of multifrequency plasmonic nanoantennas [J].
Abb, Martina ;
Wang, Yudong ;
de Groot, C. H. ;
Muskens, Otto L. .
NATURE COMMUNICATIONS, 2014, 5
[2]   All-Optical Control of a Single Plasmonic Nanoantenna-ITO Hybrid [J].
Abb, Martina ;
Albella, Pablo ;
Aizpurua, Javier ;
Muskens, Otto L. .
NANO LETTERS, 2011, 11 (06) :2457-2463
[3]   Large optical nonlinearity of indium tin oxide in its epsilon-near-zero region [J].
Alam, M. Zahirul ;
De Leon, Israel ;
Boyd, Robert W. .
SCIENCE, 2016, 352 (6287) :795-797
[4]  
Aouani H, 2014, NAT NANOTECHNOL, V9, P290, DOI [10.1038/NNANO.2014.27, 10.1038/nnano.2014.27]
[5]  
Arbabi A, 2015, NAT NANOTECHNOL, V10, P937, DOI [10.1038/nnano.2015.186, 10.1038/NNANO.2015.186]
[6]   Thermal transport properties of polycrystalline tin-doped indium oxide films [J].
Ashida, Toru ;
Miyamura, Amica ;
Oka, Nobuto ;
Sato, Yasushi ;
Yagi, Takashi ;
Taketoshi, Naoyuki ;
Baba, Tetsuya ;
Shigesato, Yuzo .
JOURNAL OF APPLIED PHYSICS, 2009, 105 (07)
[7]   Surface plasmon-polariton amplifiers and lasers [J].
Berini, Pierre ;
De Leon, Israel .
NATURE PHOTONICS, 2012, 6 (01) :16-24
[8]   Low-Loss Plasmonic Metamaterials [J].
Boltasseva, Alexandra ;
Atwater, Harry A. .
SCIENCE, 2011, 331 (6015) :290-291
[9]   Silicon nanowires as efficient thermoelectric materials [J].
Boukai, Akram I. ;
Bunimovich, Yuri ;
Tahir-Kheli, Jamil ;
Yu, Jen-Kan ;
Goddard, William A., III ;
Heath, James R. .
NATURE, 2008, 451 (7175) :168-171
[10]  
Brongersma ML, 2014, NAT MATER, V13, P451, DOI [10.1038/NMAT3921, 10.1038/nmat3921]