A novel plasmonic coupling mechanism in non-aligned metallic nanorod homodimers

Alsawafta M (2022c) Metallic spherical heterotrimer systems for plasmonic-based improvement in hyper-Raman scattering. Nanotechnology-IOP. https://doi.org/10.1088/1361-6528/ac8681

Article  Google Scholar 

Alsawafta M, Badilescu S, Paneri A, Truong V-V, Packirisamy M (2011) Gold-Poly(methyl methacrylate) nanocomposite films for plasmonic biosensing applications. Polymers 3:1833–1848

CAS  Article  Google Scholar 

Alsawafta M (2022a) Effect of non-alignment on nearfield coupling, charge density and sensitivity to the host medium of a gold nanorod homodimer. J Mater Sci 57:02671

Article  Google Scholar 

Alsawafta M (2022b) The plasmonic coupling in transversely shifted symmetric Au nanocube trimer: new coupling mechanism and plasmonic scaling trend. Chemical Physical Letter 803:139875

CAS  Article  Google Scholar 

Alsawafta M (2022d) Anisotropic metallic heterotrimer systems for ultrahigh plasmonic-based improvement in hyper-Raman scattering signal. Nanotechnology-IOP. 33:465702

Article  Google Scholar 

Alsawafta M, Wahbeh M, Truong V-V (2012) Simulated optical properties of gold nanocubes and nanobars by discrete dipole approximation. J Nanomater. https://doi.org/10.1155/2012/283230

Article  Google Scholar 

Alsawafta M, Wahbeh M, Truong V-V (2012) Theoretical study of optical properties of metallic ellipsoidal nanoparticles by discreet dipole approximation. J Nanomater. https://doi.org/10.1155/2012/457968

Article  Google Scholar 

Danckwerts M, Novotny L (2007) Optical frequency mixing at coupled gold nanoparticles. Phys Rev Lett 98:026104

Article  Google Scholar 

Funston AM, Novo C, Davis TJ, Mulvaney P (2009) Plasmon coupling of gold nanorods at short distances and in different geometries. Nano Lett 9:1651–1658

CAS  Article  Google Scholar 

Gunnarsson L et al (2005) Confined plasmons in nanofabricated single silver particle pairs: experimental observations of strong interparticle interactions. J Phys Chem B 109:1079–1087

CAS  Article  Google Scholar 

Hooshmanda N, El-Sayed MA (2019) Collective multipole oscillations direct the plasmonic coupling at the nanojunction interfaces. PNAS 116:19299–19304

Article  Google Scholar 

Jain PK, Eustis S, El-Sayed MA (2006) Plasmon coupling in nanorod assemblies: optical absorption, discrete dipole approximation simulation, and exciton-coupling model. J Phys Chem B 110:18243–18253

CAS  Article  Google Scholar 

Johnson PB, Christy RW (1972) Optical constants of the noble metals. Phys Rev B 6:4370

CAS  Article  Google Scholar 

Liao L et al (2012) A novel slurry for chemical mechanical polishing of single crystal diamond. Appl Surf Sci 564:150431

Article  Google Scholar 

Liu X (2018) Colloidal plasmonic nanoparticles for ultrafast optical switching and laser pulse generation. Front Mater 5:59

Article  Google Scholar 

Lu Y et al (2015) Analysis of asymmetric dipoles interacting in heterogeneous metal nanorod dimers. Plasmonics 10:1325–1330

CAS  Article  Google Scholar 

Nordlander P, Oubre C, Prodan E, Li K, Stockman MI (2004) Plasmon hybridization in nanoparticle dimers. Nano Lett 4:899–903

CAS  Article  Google Scholar 

Packard BZ, Toptygin DD, Komoriya A, Brand L (1998) Intramolecular resonance dipole−dipole interactions in a profluorescent protease substrate. J Phys Chem B 102:752

CAS  Article  Google Scholar 

Prodan E, Radloff C, Halas NJ, Nordlander P (2003) A Hybridization model for the plasmon response of complex nanostructures. Science 302:419–422

CAS  Article  Google Scholar 

Rechberger W et al (2003) Optical properties of two interacting gold nanoparticles. Opt Commun 220:137–141

CAS  Article  Google Scholar 

Salek Maghsoudi A, Hassani S, Mirnia K, Abdollahi M (2021) Recent advances in nanotechnology-based biosensors development for detection of arsenic lead, mercury and cadmium. Int J Nanomed 16:803–832

Article  Google Scholar 

Toftul ID, Kornovan DF, Petrov MI (2020) Self-trapped nanoparticle binding via waveguide mode. ACS Photonics 7:114–119

CAS  Article  Google Scholar 

Wang B et al (2018) New deformation-induced nanostructure in silicon. Nano Lett 18:4611–4617

CAS  Article  Google Scholar 

Xia W et al (2020) Green chemical mechanical polishing of sapphire wafers using a novel slurry. Nanoscale 12:22518–22526

Article  Google Scholar 

Zhang Z et al (2009) Photoluminescence enhancement induced by nanoparticles from La2O3 and CeO2 doped diamond-like carbon films. J Alloy Compd 476:318–323

CAS  Article  Google Scholar 

Zhang Z et al (2015) Changes in surface layer of silicon wafers from diamond scratching. CIRP Ann Manuf Technol 64:349–352

Article  Google Scholar 

Zhang Z et al (2017) Ultrahigh hardness on a face-centered cubic metal. Appl Surf Sci 416:891–900

CAS  Article  Google Scholar 

Zhang Z et al (2018) A novel approach of chemical mechanical polishing for a titanium alloy using an environment-friendly slurry. Appl Surf Sci 427:409–415

CAS  Article  Google Scholar 

Zhang Z et al (2019) Environment friendly chemical mechanical polishing of copper. Appl Surf Sci 5:467–468

Article  Google Scholar 

Zhang Z, Liao L, Wang X, Xie W, Guo D (2020) Development of a novel chemical mechanical polishing slurry and its polishing mechanisms on a nickel alloy. Appl Surf Sci 506:144670

CAS  Article  Google Scholar 

Zhang Z et al (2022) Origin and evolution of a crack in silicon induced by a single grain grinding. J Manuf Process 75:617–626

Article  Google Scholar 

留言 (0)

沒有登入
gif