GENERAL INFORMATION
Optical properties of nanostructured materials: a review
J. Nanophoton. 5, 052502 (Aug 10, 2011); http://dx.doi.org/10.1117/1.3609266
Depending on the size of the smallest feature, the interaction of light with structured materials can be very different. This fundamental problem is treated by different theories. If first order theories are sufficient to describe the scattering from low roughness surfaces, second order or even higher order theories must be used for high roughness surfaces. Random surface structures can then be designed to distribute the light in different propagation directions. For complex structures such as black silicon, which reflects very little light, the theory needs further development. When the material is periodically structured, we speak about photonic crystals or metamaterials. Different theoretical approaches have been developed and experimental techniques are rapidly progressing. However, some work still remains to understand the full potential of this field. When the material is structured in dimension much smaller than the wavelength, the notion of complex refractive index must be revisited. Plasmon resonance can be excited by a progressing wave on metallic nanoparticles inducing a shaping of the absorption band and of the dispersion of the extinction coefficient. This addresses the problem of the permittivity of such metallic nanoparticles. The coupling between several metallic nanoparticles induces a field enhancement in the surrounding media, which can increase phenomena like scattering, absorption, luminescence, or Raman scattering. For semiconductor nanoparticles, electron confinement also induces a modulated absorption spectra. The refractive index is then modified. The bandgap of the material is changed because of the discretization of the electron energy, which can be controlled by the nanometers size particles. Such quantum dots behave like atoms and become luminescent. The lifetime of the electron in the excited states are much larger than in continuous energy bands. Electrons in coupled quantum dots behave as they do in molecules. Many applications should be forthcoming in the near future in this field of research.
© 2011 Society of Photo-Optical Instrumentation Engineers (SPIE)
History
Received Jun 08, 2011
Accepted Jun 14, 2011
Published online Aug 10, 2011
Accepted Jun 14, 2011
Published online Aug 10, 2011
Digital Object Identifier
Citation
François Flory, Ludovic Escoubas and Gérard Berginc, "Optical properties of nanostructured materials: a review",
J. Nanophoton. 5, 052502 (Aug 10, 2011); http://dx.doi.org/10.1117/1.3609266
DOWNLOAD ARTICLE
RELATED CONTENT
- P. Giacomo, “Les couches réfléchissantes multidiélectriques appliquées à l'interférométrie de Fabry-Perot. Étude théorique et expérimentale des couches réelles,” Rev. Opt., Theor. Instrum. 35, 317–354 (1956)APPLAB000092000006061112000001.
- E. Kröger and E. Kretschmann, “Scattering of light by slightly rough surfaces on thin films including plasma resonance emission,” Z. Phys. 237, 1–15 (1970). [ISI]
- J. M. Elson and J. M. Bennett, “Relation between the angular dependence of scattering and the statistical properties of optical surfaces,” J. Opt. Soc. Am. 69, 31–47 (1979).
- P. Bousquet, F. Flory, and P. Roche, “Scattering from multilayer thin films: Theory and experiment,” J. Opt. Soc. Am. 71(9), 1115–1123 (1981).
- S. O. Rice, “Reflection of electromagnetic waves from slightly rough surfaces,” Commun. Pure Appl. Math. 4, 351–378 (1951). [ISI]
- A. A. Maradudin, Light Scattering and Nanoscale Surface Roughness, Springer, New York (2007).
- A. Beckmann and A. Spizzichino, The Scattering of Electromagnetic Waves from Rough Surfaces, Pergamon press, New York (1963).
- A. G. Voronovich, Wave Scattering from Rough Surfaces, Springer-Verlag, Berlin (1994).
- E. Bahar, “Full wave solutions for the depolarization of the scattered radiation fields by rough surfaces of arbitrary slopes,” IEEE Trans. Antennas Propag. 29, 443–454 (1981). [ISI]
- J. Shen and A. A. Maradudin, “Multiple scattering of waves from random rough surfaces,” Phys. Rev. B 22, 4234–4240 (1980). [ISI]
- D. P. Winebrenner and A. Ishimaru, “Investigation of a surface field phase-perturbation technique for scattering from rough surfaces,” Radio Sci. 20, 161–170 (1985).
- V. I. Tatarskii, “The expansion of the solution of the rough surface scattering problem in powers of quasi-slopes,” Waves Random Media 3, 127–146 (1993).
- A. G. Voronovich, “Small-slope approximation in wave scattering by rough surfaces,” Sov. Phys. JETP 62, 65–70 (1985).
- A. G. Voronovich, “Small-slope approximation for electromagnetic wave scattering at a rough interface of two dielectric halfspace,” Waves Random Media 4, 337–367 (1994). [Inspec] [ISI]
- G. Berginc, “Small-slope approximation method: A further study of vector wave scattering from two-dimensional surfaces and comparison with experimental data,” Prog. Electromagnetics Res., PIER 37, 251–287 (2002).
- G. Berginc and C. Bourrely, “The small slope approximation method applied to a three dimensional slab with rough boundaries,” PIER 73, 131–211 (2007).
- C. Bourlier and G. Berginc, “Multiple scattering in the high-frequency limit with second-order shadowing function from 2-D anisotropic rough dielectric surfaces: I Theoretical study,” Waves in Random Media 14, 229–252 (2004);, 14, 253–276 (2004).
- G. Berginc and C. Bourrely, “Light scattering from 3D nanoscale disordered media,” PIERS Online 6(8), 730–734 (2010).
- A. A. Maradudin, Ed., Structured Surfaces as Optical Metamaterials, Cambridge University, Cambridge, England (2011).
- P. F. Gray, “Method of forming optical diffusers of simple known statistical properties,” Opt. Acta 25(8), 765–775 (1978). [Inspec] [ISI]
- E. R. Mendez, M. A. Ponce, V. Ruizcortes, and Z. H. Gu, “Photofabrication of one-dimensional rough surfaces for light-scattering experiments,” Appl. Opt. 30(28), 4103–4112 (1991).
- E. R. Mendez, E. E. Garcia-Guerrero, H. M. Escamilla, A. A. Maradudin, T. A. Leskova, and A. V. Shchegrov, “Photofabrication of random achromatic optical diffusers for uniform illumination,” Appl. Opt. 40, 1098–1108 (2001). [MEDLINE]
- E. R. Mendez, T. A. Leskova, A. A. Maradudin, M. Leyva-Lucero, and J. Munoz-Lopez, “The design of two-dimensional random surfaces with specified scattering properties,” J. Opt. A, Pure Appl. Opt. 7, 141–151 (2005).
- E. E. Garcia-Guerrero, E. R. Mendez, and H. M. Escamilla, “Design and fabrication of random phase diffusers for extending the depth of focus,” Opt. Express 15, 910–923 (2007).
- V. Brissonneau, L. Escoubas, F. Flory, G. Berginc, G. Soriano, G. Maire, and H. Giovannini, “Laser assisted fabrication of random rough surfaces for optoelectronics,” to be published in Appl. Surf. Sci. (2011).
- T.-H. Her, R. J. Finlay, C. Wu, S. Deliwala, and E. Mazur, “Microstructuring of silicon with femtosecond laser pulses,” Appl. Phys. Lett. 73, 1673–1675 (1998)APPLAB000073000012001673000001.
- L. L. Ma, Y. C. Zhou, N. Jiang, X. Lu, J. Shao, W. Lu, J. Ge, X. M. Ding, and X. Y. Hou, “Wide-band `black silicon' based on porous silicon,”Appl. Phys. Lett. 88, 171907 (2006)APPLAB000088000017171907000001.
- T. P. Chow, P. A. Maciel, and G. M. Fanelli, “Reactive Ion Etching of Silicon in CCl4 and HCl Plasmas,” J. Electrochem. Soc. 134, 1281–1286 (1987)JESOAN000134000005001281000001. [ISI]
- T. H. Her, R. J. Finlay, C. Wu, and E. Mazur, “Femtosecond laser-induced for-mation of spikes on silicon,” Appl. Phys. A: Mater. Sci. Process. 70(4), 383–385 (2000). [Inspec] [ISI]
- C. Wu, C. H. Crouch, L. Zhao, J. E. Carey, R. Younkin, J. A. Levinson, E. Mazur, R. M. Farrell, P. Gothoskar, and A. Karger, “Near-unity below-band gap absorption by microstructured silicon,” Appl. Phys. Lett. 78, 1850–1852 (2001)APPLAB000078000013001850000001.
- R. Bouffaron, L. Escoubas, J. J. Simon, P. Torchio, F. Flory, G. Berginc, and P. Masclet, “Enhanced antireflecting properties of micro-structured top-flat pyramids,” Opt. Express 16(23), 19304–19309 (2008). [MEDLINE]
- L. Escoubas, R. Bouffaron, V. Brissonneau, J. J. Simon, G. Berginc, F. Flory, and P. Torchio, “Sand-castle bi-periodic pattern for spectral and angular broadening of antireflective properties,” Opt. Lett. 35(9), 1455–1457 (2010).
- C. H. Sun, P. Jiang, and B. Jiang, “Broadband moth-eye antireflection coatings on silicon,” Appl. Phys. Lett. 92, 061112 (2008).
- Y. J. Zhang, W. Li, and K. J. Chen, “Application of two-dimensional polystyrene arrays in the fabrication of ordered silicon pillars,” J. Alloys Compd. 450(1–2), 512–516 (2008).
- Y. J. Zhang, X. H. Wang, Y. X. Wang, H. L. Liu, and J. H. Yang, “Ordered nanostructures array fabricated by nanosphere lithography,” J. Alloys Compd. 452(2), 473–477 (2008). [Inspec]
- H. A. Macleod, Thin-Film Optical Filters, 4th ed., Chemical Rubber, Boca Raton (2010).
- G. Dirks and H. J. Leamy, “Columnar microstructure of optical thin films,” Thin Solid Films 47, 219–222 (1997). [Inspec] [ISI]
- F. Flory and L. Escoubas, “Optical properties of nanostructured thin films,” Prog. Quantum Electron. 28, 89–112 (2004). [Inspec]
- S. Ogura and H. A. Macleod, “Water sorption phenomena in optical thin films,” Thin Solid Films 34, 371–375 (1976). [Inspec] [ISI]
- K. Kinosita and M. Nishibori, “Effects of vacuum exposure on stress and spectral shift of high reflective coatings,” J. Vac. Sci. Technol. 6, 730–733 (1969)JVSTAL000006000004000730000001. [ISI]
- J. C. Maxwell-Garnett, “Colors in metal glasses and in metal films,” Philos. Trans. R. Soc. 203, 385–419 (1904).
- W. L. Bragg and A. B. Pippard, “The form birefringence of macromolecules,” Acta Crystallogr. 6, 865–867 (1953).
- S. Rytov, “Electromagnetic properties of a finely stratified medium,” Sov. Phys. JETP 2, 466–474 (1956). [ISI]
- H. Jänchen, D. Endelema, N. Kaiser, and F. Flory, “Determination of the refractive indices of highly biaxial anisotropic coatings using guided modes,” Pure Appl. Opt. 5(4), 405–415 (1996). [Inspec]
- F. Flory, D. Endelema, E. Pelletier, and I. Hodgkinson, “Anisotropy in thin films. Modelization and measurement of guided and non guided optical properties. Application to TiO2 films,” Appl. Opt. 32(28), 5649–5659 (1993).
- F. Horowitz and H. A. Macleod, “Form birefringence in thin films,” Proc. SPIE 380, 83–87 (1983).
- K. Robbie, M. J. Brett, and A. Lakhtakia, “Chiral sculptured thin films,” Nature 384, 616 (1996).
- A. Lakhtakia and R. Messier, “Sculptured thin films,” Nanometer Structures: Theory, Modeling, and Simulation, A. Lakhtakia, Ed., SPIE Press, Washington, WA (2004).
- A. Lakhtakia and R. Messier, Sculptured Thin Films: Nanoengineered Morphology and Optics, SPIE Press, Washington, WA (2005).
- D. Berreman, “Optics in stratified and anisotropic media: 4×4 matrix formulation,” J. Opt. Soc. Am. 62, 502–510 (1972). [ISI]
- I. Hodgkinson and H. Wu, Birefringent Thin Films and Polarizing Elements, World Scientific, Singapore (1997).
- T. Motohiro and Y. Taga, “Thin film retardation plate by oblique deposition,” Appl. Opt. 28, 2466–2482 (1989).
- F. Flory, L. Escoubas, and B. Lazaridés, “Artificial anisotropy and polarizing filters,” Appl. Opt. 41(16), 3332–3335 (2002). [ISI] [MEDLINE]
- F. Flory, “Characterization: Guided wave techniques,” Thin Films for Optical Systems, F. Flory, ed., Marcel Dekker, New York (1995).
- S. Monneret, P. Huguet-Chantôme, and F. Flory, “m-Lines technique: Prism coupling measurement and discussion of accuracy for homogeneous waveguides,” J. Opt. A, Pure Appl. Opt. 2(3), 188–195 (2000). [Inspec] [ISI]
- J. Massaneda, F. Flory, and E. Pelletier, “Determination of the refractive index of layers in a multilayer stack by guided wave technique,” Appl. Opt. 38, 19, 4177–4181 (1999).
- T. Mazingue, L. Escoubas, L. Spalluto, F. Flory, G. Socol, C. Ristoscu, E. Axente, S. Grigorescu, I. N. Mihailescu, and N. A. Vainos, “Nanostructured ZnO coatings grown by pulsed laser deposition for optical gas sensing of butane,” J. Appl. Phys. 98, 074312 (2005)JAPIAU000098000007074312000001. [ISI]
- D. Kossel, “Analogies between thin-film optics and electron band theory of solids,” J. Opt. Soc. Am. 568, 1434 (1966).
- K. Sakoda, Optical Properties of Photonic Crystals, 2nd ed., Springer-Verlag, Berlin (2004).
- E. M. Purcell, “Spontaneous emission probabilities at radio frequencies,” Phys. Rev. 69, 681 (1946).
- L. Escoubas, E. Drouard, and F. Flory, “Designing waveguide filters with optical thin-film computational tools,” Opt. Commun. 197, 309–316 (2001).
- A. Lakhtakia, Ed., Nanometer Structures: Theory, Modeling, and Simulation, SPIE Press, Washington (2004).
- P. S. Zory, “The origin of quantum wells and the quantum well laser,” in Quantum Well Lasers, C. H. Henry, Jr., Ed., Academic, New York (1993), pp. 1–13.
- H. Schneider and H. Liu, Quantum Well Infrared Photodetectors: Physics and Applications, Springer-Verlag, Berlin (2006).
- M. Bruchez, M. Moronne, P. Gin, S. Weiss, and A. P. Alvistos, “Semiconductor nanocrystals as fluorescent biological labels,” Science 281, 2013–2016 (1998). [MEDLINE]
- S. Nizamoglu, G. Zengin, and H. V. Demir, “Color-converting combinations of nanocrystal emitters for warm-white light generation with high color rendering index,” Appl. Phys. Lett. 92, 031102 (2008)APPLAB000092000003031102000001.
- S. Coe, W. K. Woo, M. Bawendi, and V. Bulovic, “Electroluminescence from single monolayers of nanocrystals in molecular organic devices,” Nature 420, 800–803 (2002).
- W. Shockley and H. J. Queisser, “Detailed balance limit of efficiency of p/n junction solar cells,” J. Appl. Phys. 32, 510–519 (1961).
- P. V. Kamat, “Quantum dot solar cells. Semiconductor nanocrystals as light harvesters,” J. Phys. Chem. C 112, 18737–18753 (2008).
- O. V. Vassiltsova, S. K. Panda, Z. Zhao, M. A. Carpenter, and M. A. Petrukhina, “Ordered fabrication of luminescent multilayered thin films of CdSe quantum dots,” Dalton Trans. 9426–9432 (2009). [MEDLINE]
- S. A. Studenikin, N. Golego, and M. Cocivera, “Fabrication of green and orange photoluminescent, undoped ZnO films using spray pyrolysis,” J. Appl. Phys. 84(4), 2287–2294 (1998)JAPIAU000084000004002287000001.
- F. Flory, Y.-J. Chen, C.-C. Lee, L. Escoubas, J.-J. Simon, P. Torchio, J. Le Rouzo, S. Vedraine, H. Derbal-Habak, I. Shupyk, Y. Didane, and J. Ackermann, “Optical properties of dielectric thin films including quantum dots,” Appl. Opt. 50(9), C129–C134 (2011).
- I. Robel, V. Subramanian, M. Kuno, and P. V. Kamat, “Quantum dot solar cells. Harvesting light energy with CdSe nanocrystals molecularly linked to mesoscopic TiO2 films,” J. Am. Chem. Soc. 128, 2385–2393 (2006). [MEDLINE]
- A. Kongkanand, K. Tvrdy, K. Takechi, M. Kuno, and P. V. Kamat, “Quantum dot solar cells. Tuning photoresponse through size and shape control of CdSe-TiO2 architecture,” J. Am. Chem. Soc. 130, 4007–4015 (2008). [MEDLINE]
- S. Günesa, H. Fritzb, N. S. Neugebauera, S. Sariciftcia, Kumar, and G. D. Scholes, “Hybrid solar cells using PbS nanoparticles,” Sol. Energy Mater. Sol. Cells 91(5), 420–423 (2007). [Inspec]
- T. Jiu, P. Reiss, S. Guillerez, R. de Bettignies, S. Bailly, and F. Chandezon, “Hybrid solar cells based on blends of CdSe nanorods and poly(3-alkylthiophene) nanofibers,” IEEE J Sel Top. Quantum Electron. 16(6), 1619–1626 (2010).
- R. J. Ellingson, M. C. Beard, J. C. Johnson, P. Yu, O. I. Micic, A. J. Nozik, A. Shabaev, and A. L. Efros, “Highly efficient multiple exciton generation in colloidal PbSe and PbS quantum dots,” Nano Lett. 5(5), 865–871 (2005). [MEDLINE]
- H. A. Lorentz, “Über die Beziehungzwischen der Fortpflanzungsgeschwindigkeit des Lichtes der Körperdichte,” Ann. Phys. Lpz. 9, 641–665 (1880).
- L. Lorenz, “Über die Refractionsconstante,” Ann. der Phys. 11, 70–103 (1880).
- M. Born and E. Wolf, Chapter 2 in Principles of Optics, 7th (expanded) ed., Cambridge University, Cambridge, England (1999).
- P. Carpena, V. Gasparian, and M. Ortuño, “Number of bound states of a Krönig-Penney finite-periodic Superlattice,” Eur. Phys. J. B 8, 635–641 (1999). [Inspec] [ISI]
- C. Cohen-Tannoudji, B. Diu, and F. Laloë, Mécanique quantique, Hermann, Paris (1997).
- H. Li, “Refractive index of interdiffused AlGaAs/GaAs quantum well,” J. Appl. Phys. 82(12), 6251–6258 (1997)JAPIAU000082000012006251000001. [ISI]
- S. V. Gaponenko, Optical Properties of Semiconductor Nanocrystals, Cambridge University Press, Cambridge, England (1998).
- E. Kretschmann and H. Raether, “Radiative decay of non-radiative surface plasmons excited by light,” Z. Naturforsch. A 23, 2135 (1968). [Inspec]
- G. Mie, “Beiträge zur optik trüber medien, Speziell Kolloidaler Metallösungen,” Ann. Phys. 330, 377–445 (1908).
- J. A. Polo Jr. and A. Lakhtakia, “Surface electromagnetic waves: A review,” Laser Photonics Rev. 5, 234–246 (2011).
- U. Kreibig and M. Vollmer, Optical Properties of Metal Clusters, Springer-Verlag, Berlin (1995).
- L. Novotny, “Optical antennas tuned to pitch,” Nature 455, 887 (2008).
- K. Kneipp, Y. Wang, H. Kneipp, L. T. Perelman, I. Itzkan, R. R. Dasari, and M. S. Feld, “Single Molecule Detection Using Surface-Enhanced Raman Scattering (SERS),” Phys. Rev. Lett. 78(9), 1667–1670 (1997).
- B-S. Yeo, J. Stadler, T. Schmid, R. Zenobi, and W. Zhang, “Tip-enhanced Raman Spectroscopy—Its status, challenges and future directions,” Chem. Phys. Lett. 472, 1–13 (2009). [Inspec]
- W. L. Barnes, A. Dereux, and T. W. Ebbesen, “Surface plasmon subwavelength optics,” Nature (London) 424, 824–830 (2003).
- B. Liedberg, C. Nylander, and I. Lundström, “Surface plasmon resonance for gas detection and biosensing,” Sens. Actuators 4, 299–304 (1983). [Inspec] [ISI]
- M.-K. Kwon, J.-Y. Kim, B.-H. Kim, I.-K. Park, C.-Y. Cho, C.-C. Byeon, and S.-J. Park, “Surface-plasmon-enhanced light-emitting diodes,” Adv. Mater. 20, 1253–1257 (2008).
- O. Stenzel, A. Stendhal, K. Voigtsberger, and C. Von Borczyskowski, “Enhancement of the photovoltaic conversion efficiency of copper phthalocyanine thin film devices by incorporation of metal clusters,” Sol. Energy Mater. Sol. Cells 37, 337–348 (1995). [ISI]
- D. Derkacs, S. H. Lim, P. Matheu, W. Mar, and E. T. Yu, “Improved performance of amorphous silicon solar cells via scattering from surface plasmon polaritons in nearby metallic nanoparticles,” Appl. Phys. Lett. 89, 093103 (2006).
- S. Pillai, K. R. Catchpole, T. Trupke, and M. A. Green, “Surface plasmon enhanced silicon solar cells,” J. Appl. Phys. 101, 093105 (2007)JAPIAU000101000009093105000001. [ISI]
- R. B. Konda, R. Mundle, H. Mustafa, O. Bamiduro, A. K. Pradhan, U. N. Roy, Y. Cui, and A. Burger, “Surface plasmon excitation via Au nanoparticles in n-CdSe/p-Si heterojunction diodes,” Appl. Phys. Lett. 91, 191111 (2007)APPLAB000091000019191111000001.
- J. Kim, K. Lee, N. Coates, D. Moses, T. Nguyen, M. Dante, and A. Heeger, “Efficient tandem polymer solar cells fabricated by all-solution processing,.” Science 317, 222–225 (2007). [MEDLINE]
- D. Duche, P. Torchio, L. Escoubas, F. Monestier, J. J. Simon, F. Flory, and G. Mathian, “Improving light absorption in organic solar cells by plasmonic contribution,” Sol. Energy Mater. Sol. Cells 93, 1377–1382 (2009). [Inspec]
- S. Vedraine, P. Torchio, D. Duché, F. Flory, J.-J. Simon, J. Le-Rouzo, and L. Escoubas, “Intrinsic absorption of plasmonic structures for organic solar cells,” in Sol. Energy Mater. Sol. Cells 95, S57–S64 (2011).















This Publication
Google Scholar
PubMed