4.7 Article

Chiral plasmonics of self-assembled nanorod dimers

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SCIENTIFIC REPORTS
卷 3, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep01934

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资金

  1. National Natural Science Foundation of China [21071066, 91027038, 21101079, 21175034]
  2. Key Programs from MOST [2012BAC01B07, 2012BAD29B05, 2012AA06A303, 2012BAD29B04, 2011BAK10B07, 2011BAK10B05, 2010AA06Z302, 2010DFB3047]
  3. Natural Science Foundation of Jiangsu Province, MOE [BE2011626, BK2010001, BK2010141]
  4. Center for Solar and Thermal Energy Conversion
  5. Energy Frontier Research Center
  6. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-SC0000957]
  7. NSF [ECS-0601345, EFRI-BSBA 0938019, CBET 0933384, CBET 0932823, CBET 1036672, DMR-9871177]
  8. ARO MURI [W911NF-12-1-0407]
  9. Robert A. Welch Foundation [C-1664]
  10. Natural Science Foundation of Jiangsu Province, MOF

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Chiral nanoscale photonic systems typically follow either tetrahedral or helical geometries that require four or more different constituent nanoparticles. Smaller number of particles and different chiral geometries taking advantage of the self-organization capabilities of nanomaterials will advance understanding of chiral plasmonic effects, facilitate development of their theory, and stimulate practical applications of chiroplasmonics. Here we show that gold nanorods self-assemble into side-by-side orientated pairs and ladders'' in which chiral properties originate from the small dihedral angle between them. Spontaneous twisting of one nanorod versus the other one breaks the centrosymmetric nature of the parallel assemblies. Two possible enantiomeric conformations with positive and negative dihedral angles were obtained with different assembly triggers. The chiral nature of the angled nanorod pairs was confirmed by 4 pi full space simulations and the first example of single-particle CD spectroscopy. Self-assembled nanorod pairs and ladders'' enable the development of chiral metamaterials, (bio) sensors, and new catalytic processes.

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