Quadrupole-Enhanced Raman Scattering

被引:44
作者
Hastings, Simon P. [1 ,2 ]
Swanglap, Pattanawit [3 ]
Qian, Zhaoxia [2 ]
Fang, Ying [3 ]
Park, So-Jung [2 ,4 ]
Link, Stephan [3 ]
Engheta, Nader [1 ,5 ]
Fakhraai, Zahra [2 ]
机构
[1] Univ Penn, Dept Phys, Philadelphia, PA 19104 USA
[2] Univ Penn, Dept Chem, Philadelphia, PA 19104 USA
[3] Rice Univ, Dept Chem, Houston, TX 77005 USA
[4] Ewha Womans Univ, Dept Chem & Nano Sci, Global Top Program 5, Seoul 120750, South Korea
[5] Univ Penn, Dept Elect & Syst Engn, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
SERS; spiky nanoshells; QERS; quadrupole resonance; plasmon resonance; Raman spectroscopy; SURFACE-PLASMON RESONANCE; SILVER NANOPARTICLES; SPECTROSCOPY; EXCITATION; POLARIZATION; GROWTH;
D O I
10.1021/nn5022346
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Dark, nonradiating plasmonic modes are important in the Raman enhancement efficiency of nanostructures. However, it is challenging to engineer such hotspots with predictable enhancement efficiency through synthesis routes. Here, we demonstrate that spiky nanoshells have designable quadrupole resonances that efficiently enhance Raman scattering with unprecedented reproducibility on the single particle level. The efficiency and reproducibility of Quadrupole Enhanced Raman Scattering (QERS) is due to their heterogeneous structure, which broadens the quadrupole resonance both spatially and spectrally. This spectral breadth allows for simultaneous enhancement of both the excitation and Stokes frequencies. The quadrupole resonance can be tuned by simple modifications of the nanoshell geometry. The combination of tunability, high efficiency, and reproducibility makes these nanoshells an excellent candidate for applications such as biosensing, nanoantennaes, and photovoltaics.
引用
收藏
页码:9025 / 9034
页数:10
相关论文
共 37 条
[1]   Directivity Enhanced Raman Spectroscopy Using Nanoantennas [J].
Ahmed, Aftab ;
Gordon, Reuven .
NANO LETTERS, 2011, 11 (04) :1800-1803
[2]   DEPENDENCE OF VIBRATIONAL RAMAN INTENSITY ON WAVELENGTH OF INCIDENT LIGHT [J].
ALBRECHT, AC ;
HUTLEY, MC .
JOURNAL OF CHEMICAL PHYSICS, 1971, 55 (09) :4438-&
[3]  
[Anonymous], ADV CHEM PHYS
[4]   Rationally designed nanostructures for surface-enhanced Raman spectroscopy [J].
Banholzer, Matthew J. ;
Millstone, Jill E. ;
Qin, Lidong ;
Mirkin, Chad A. .
CHEMICAL SOCIETY REVIEWS, 2008, 37 (05) :885-897
[5]   Multifaceted prismatic silver nanoparticles: synthesis by chloride-directed selective growth from thiolate-protected clusters and SERS properties [J].
Cathcart, Nicole ;
Kitaev, Vladimir .
NANOSCALE, 2012, 4 (22) :6981-6989
[6]   Nanoporous Membranes with Mixed Nanoclusters for Raman-Based Label-Free Monitoring of Peroxide Compounds [J].
Chang, Sehoon ;
Ko, Hyunhyub ;
Singamaneni, Srikanth ;
Gunawidjaja, Ray ;
Tsukruk, Vladimir V. .
ANALYTICAL CHEMISTRY, 2009, 81 (14) :5740-5748
[7]   Directional emission from a single plasmonic scatterer [J].
Coenen, Toon ;
Arango, Felipe Bernal ;
Koenderink, A. Femius ;
Polman, Albert .
NATURE COMMUNICATIONS, 2014, 5
[8]   Gold Nanoparticle Based Label-Free SERS Probe for Ultrasensitive and Selective Detection of Trinitrotoluene [J].
Dasary, Samuel S. R. ;
Singh, Anant Kumar ;
Senapati, Dulal ;
Yu, Hongtao ;
Ray, Paresh Chandra .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (38) :13806-13812
[9]   Surface-Enhanced Raman Spectroscopy and Homeland Security: A Perfect Match? [J].
Golightly, Rebecca S. ;
Doering, William E. ;
Natan, Michael J. .
ACS NANO, 2009, 3 (10) :2859-2869
[10]   Plasmon resonances of a gold nanostar [J].
Hao, Feng ;
Nehl, Colleen L. ;
Hafner, Jason H. ;
Nordlander, Peter .
NANO LETTERS, 2007, 7 (03) :729-732