Effect of Temperature and Pressure on Diffraction of Photonic Crystals of Microgel Suspensions

被引:2
|
作者
Tata, B. V. R. [1 ]
Joshi, R. G. [1 ]
Brijitta, J. [1 ]
机构
[1] Indira Gandhi Ctr Atom Res, Condensed Matter Phys Div, Kalpakkam 603102, Tamil Nadu, India
关键词
Photonic crystals; Thermo-responsive microgel; Size polydispersity; osmotic pressure; UV-visible spectroscopy;
D O I
10.1063/1.3646774
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
At suitable conditions, sub-micron sized colloidal particles self assemble into crystalline arrays (known as colloidal crystals) with lattice constants in the visible range. These crystals exhibit Bragg diffraction of visible light, as certain frequencies cannot propagate through, hence can serve as photonic crystals. Highly diffracting photonic crystals (PCs) can be prepared through colloidal route by self-assembly of monodisperse particles. However size polydispersity (SPD) is inherent to all colloidal suspensions: hard-sphere, charge stabilized and stimuli responsive microgels. Disorder introduced by temperature and SPD have important implications on optical properties of these crystals. First and second-type disorder in these crystals are known to arise from thermal motion and SPD, respectively. In the case of photonic crystals prepared through hard-sphere or charge stabilized suspensions, the SPD should be less than 11% and is not tunable. Thermo-responsive microgels particles in aqueous medium are known to offer wide tunability of particle size by varying temperature and pressure. However the influence of these parameters on SPD is not reported and this talk discusses several new results obtained from dynamic light scattering, confocal laser scanning microscopy and UV-visible spectroscopy techniques on photonic crystals of poly(N-isopropylacrylamide) (PNIPAM) stimuli-responsive microgel particles. Here we show that osmotic pressure not only compresses particles but also decreases SPD significantly, resulting in self-assembly of ordered structure of microgel particles, which otherwise remain disordered at ambient conditions due to high size polydispersity. The Bragg peak of PNIPAM microgels crystals, recorded using UV-visible spectroscopy, are found to exhibit a blue shift upon increasing the osmotic pressure and are understood to arise from the increase in the number density as well as due to decrease in particle size.
引用
收藏
页数:4
相关论文
共 50 条
  • [21] Frequency Doubling by Nonlinear Diffraction in Nonlinear Photonic Crystals
    Saltiel, Solomon M.
    Neshev, Dragomir N.
    Krolikowski, Wieslaw
    Arie, Ady
    Kivshar, Yuri S.
    ICTON: 2009 11TH INTERNATIONAL CONFERENCE ON TRANSPARENT OPTICAL NETWORKS, VOLS 1 AND 2, 2009, : 584 - +
  • [22] Diffraction properties of two-dimensional photonic crystals
    von Freymann, G
    Koch, W
    Meisel, DC
    Wegener, M
    Diem, M
    Garcia-Martin, A
    Pereira, S
    Busch, K
    Schilling, J
    Wehrspohn, RB
    Gösele, U
    APPLIED PHYSICS LETTERS, 2003, 83 (04) : 614 - 616
  • [23] DIRECTED DIFFRACTION IN ONE-DIMENSIONAL PHOTONIC CRYSTALS
    Kurilkina, S.
    Belyi, V.
    Mukhurov, N.
    Min'ko, A.
    PHYSICS, CHEMISTRY AND APPLICATIONS OF NANOSTRUCTURES: REVIEWS AND SHORT NOTES, 2013, : 90 - 93
  • [24] Diffraction inhibition in two-dimensional photonic crystals
    Zhang, Lingling
    Zhan, Qiwen
    Zhang, Jiayu
    Cui, Yiping
    OPTICS LETTERS, 2011, 36 (05) : 651 - 653
  • [25] Domain mapping of inverse photonic crystals by laser diffraction
    Sinitskii, Alexander
    Abramova, Vera
    Laptinskaya, Tatyana
    Tretyakov, Yuri D.
    PHYSICS LETTERS A, 2007, 366 (4-5) : 516 - 522
  • [26] Controlling diffraction of optical beams using photonic crystals
    Momeni, B
    Adibi, A
    PHOTONIC CRYSTAL MATERIALS AND DEVICES II, 2004, 5360 : 355 - 363
  • [27] Optical properties and diffraction effects in opal photonic crystals
    Balestreri, Alessandra
    Andreani, Lucio Claudio
    Agio, Mario
    PHYSICAL REVIEW E, 2006, 74 (03)
  • [28] Faraday effect of photonic crystals
    Koerdt, C
    Rikken, GLJA
    Petrov, EP
    APPLIED PHYSICS LETTERS, 2003, 82 (10) : 1538 - 1540
  • [29] Pendellosung effect in photonic crystals
    Savo, S.
    Di Gennaro, E.
    Miletto, C.
    Andreone, A.
    Dardano, P.
    Moretti, L.
    Mocella, V.
    OPTICS EXPRESS, 2008, 16 (12): : 9097 - 9105
  • [30] Borrmann effect in photonic crystals
    Novikov, V. B.
    Murzina, T. V.
    OPTICS LETTERS, 2017, 42 (07) : 1389 - 1392