Nanomanipulation and controlled self-assembly of metal nanoparticles and nanocrystals for plasmonics

被引:174
作者
Gwo, Shangjr [1 ,2 ]
Chen, Hung-Ying [1 ]
Lin, Meng-Hsien [1 ]
Sun, Liuyang [3 ]
Li, Xiaoqin [3 ]
机构
[1] Natl Tsing Hua Univ, Dept Phys, Hsinchu 30013, Taiwan
[2] Natl Synchrotron Radiat Res Ctr, Hsinchu 30076, Taiwan
[3] Univ Texas Austin, Dept Phys, Austin, TX 78712 USA
基金
美国国家科学基金会;
关键词
ENHANCED RAMAN-SCATTERING; OPTICAL 2ND-HARMONIC GENERATION; ELECTRON-BEAM MANIPULATION; RESONANCE ENERGY-TRANSFER; CORE-SHELL NANOCRYSTALS; GOLD NANOPARTICLES; SINGLE-MOLECULE; SOLAR-CELLS; FLUORESCENCE ENHANCEMENT; QUANTITATIVE SERS;
D O I
10.1039/c6cs00450d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Localized surface plasmon resonances (LSPRs) associated with metallic nanostructures offer unique possibilities for light concentration beyond the diffraction limit, which can lead to strong field confinement and enhancement in deep subwavelength regions. In recent years, many transformative plasmonic applications have emerged, taking advantage of the spectral and spatial tunability of LSPRs enabled by near-field coupling between constituent metallic nanostructures in a variety of plasmonic metastructures (dimers, metamolecules, metasurfaces, metamaterials, etc.). For example, the ``hot spot'' formed at the interstitial site (gap) between two coupled metallic nanostructures in a plasmonic dimer can be spectrally tuned via the gap size. Capitalizing on these capabilities, there have been significant advances in plasmon enhanced or enabled applications in light-based science and technology, including ultrahigh-sensitivity spectroscopies, light energy harvesting, photocatalysis, biomedical imaging and theranostics, optical sensing, nonlinear optics, ultrahigh-density data storage, as well as plasmonic metamaterials and metasurfaces exhibiting unusual linear and nonlinear optical properties. In this review, we present two complementary approaches for fabricating plasmonic metastructures. We discuss how meta-atoms can be assembled into unique plasmonic metastructures using a variety of nanomanipulation methods based on single-or multiple-probes in an atomic force microscope (AFM) or a scanning electron microscope (SEM), optical tweezers, and focused electron-beam nanomanipulation. We also provide a few examples of nanoparticle metamolecules with designed properties realized in such well-controlled plasmonic metastructures. For the spatial controllability on the mesoscopic and macroscopic scales, we show that controlled self-assembly is the method of choice to realize scalable two-dimensional, and three-dimensional plasmonic metastructures. In the section of applications, we discuss some key examples of plasmonic applications based on individual hot spots or ensembles of hot spots with high uniformity and improved controllability.
引用
收藏
页码:5672 / 5716
页数:45
相关论文
共 485 条
[1]   Large-Area Metasurface Perfect Absorbers from Visible to Near-Infrared [J].
Akselrod, Gleb M. ;
Huang, Jiani ;
Hoang, Thang B. ;
Bowen, Patrick T. ;
Su, Logan ;
Smith, David R. ;
Mikkelsen, Maiken H. .
ADVANCED MATERIALS, 2015, 27 (48) :8028-8034
[2]   ANOMALOUSLY INTENSE RAMAN-SPECTRA OF PYRIDINE AT A SILVER ELECTRODE [J].
ALBRECHT, MG ;
CREIGHTON, JA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1977, 99 (15) :5215-5217
[3]   Tuning the scattering response of optical nanoantennas with nanocircuit loads [J].
Alu, Andrea ;
Engheta, Nader .
NATURE PHOTONICS, 2008, 2 (05) :307-310
[4]   Three-dimensional nanotransmission lines at optical frequencies:: A recipe for broadband negative-refraction optical metamaterials [J].
Alu, Andrea ;
Engheta, Nader .
PHYSICAL REVIEW B, 2007, 75 (02)
[5]   Dynamical theory of artificial optical magnetism produced by rings of plasmonic nanoparticles [J].
Alu, Andrea ;
Engheta, Nader .
PHYSICAL REVIEW B, 2008, 78 (08)
[6]  
Anger Pascal, 2006, Phys Rev Lett, V96, P113002
[7]   Biosensing with plasmonic nanosensors [J].
Anker, Jeffrey N. ;
Hall, W. Paige ;
Lyandres, Olga ;
Shah, Nilam C. ;
Zhao, Jing ;
Van Duyne, Richard P. .
NATURE MATERIALS, 2008, 7 (06) :442-453
[8]  
[Anonymous], NANOTECHNOLOGY
[9]  
[Anonymous], 1990, Cathodoluminescence Microscopy of Inorganic Solids
[10]  
[Anonymous], 2005, REV RES FIELD NANORO