OPTICALLY ACTIVE SI SURFACES

被引:0
|
作者
Kuznicki, Zbigniew T. [1 ]
Bigot, Jean-Yves [2 ]
机构
[1] ENSPS Pole API Parc Innovat, Photon Syst Lab, Blvd Sebastien Brant,BP 10413, F-67400 Illkirch Graffenstaden, France
[2] ULP, CNRS, Inst Phys & Chim Mat, UMR 7504, F-67034 Strasbourg, France
关键词
D O I
暂无
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The optoelectronics and photonics properties of silicon are fundamentally influenced by the density of carriers present near the sample surface. One way of generating very large densities of such carriers is to confine them in a Si nanolayer made by implantation followed by a suitable thermal treatment. In that way, one can photo-generate a two dimensional (2D) plasma which modifies the complex refractive index of the nanolayer. Our work describes the modification of the reflection and absorption induced by incident light in the same devices when varying their electronic passivation. The different studied samples contain a buried amorphous substructure and are distinguishable exclusively by the thickness of the SiO2 covering layer. The measurements of the different samples show large differences in their absorption coefficients. The absorption coefficient a measured at 450 nm for a Si sample with a thin passivation layer is alpha similar to 4.0x10(4) cm(-1) that is nearly 5 times lower than a sample which is processed with a complementary passivation alpha similar to 1.8x10(5) cm(-1). In both cases average flux of photons (10(15) s(-1) cm(-2)) is the same. This result confirms the role of the free-carrier population, induced by the incident light, which is confined near the surface. In the conventional modeling of the absorption only the surface recombination rate governed by the thickness of the SiO2 covering layers has to be taken into account [1]. In the present work, we show that the carrier confinement also plays an important role. Such results are very interesting in the context of optoelectronics and photonics silicon nanostructured devices.
引用
收藏
页码:162 / +
页数:3
相关论文
共 50 条
  • [11] On the generation of optically active Er centers in Si light emitting diodes
    Jantsch, W
    Lanzerstorfer, S
    Palmetshofer, L
    Stepikhova, M
    Kocher, G
    Preier, H
    PHYSICA B-CONDENSED MATTER, 1999, 273-4 : 330 - 333
  • [12] Optically active Si:Er layers grown by the sublimation MBE method
    Stepikhova, M
    Andreev, A
    Andreev, B
    Krasil'nik, Z
    Shmagin, V
    Kuznetsov, V
    Rubtsova, R
    Jantsch, W
    Ellmer, H
    Palmetshofer, L
    Preier, H
    Karpov, Y
    Piplits, K
    Hutter, H
    ACTA PHYSICA POLONICA A, 1998, 94 (03) : 549 - 554
  • [13] Optically active substoichiometric Si3N4 μ-cavities
    Ferrarese Lupi, Federico
    Navarro-Urrios, Daniel
    Monserrat, Josep
    Dominguez, Carlos
    Pellegrino, Paolo
    Garrido, Blas
    PHYSICA STATUS SOLIDI C: CURRENT TOPICS IN SOLID STATE PHYSICS, VOL 8, NO 3, 2011, 8 (03): : 1060 - 1065
  • [14] Cooperative C-F•••Si interaction in optically active helical polysilanes
    Kim, SY
    Saxena, A
    Kwak, G
    Fujiki, M
    Kawakami, Y
    CHEMICAL COMMUNICATIONS, 2004, (05) : 538 - 539
  • [15] The optically active center of Er-doped Si produced by laser ablation
    Ishii, M
    Komuro, S
    Morikawa, T
    Aoyagi, Y
    Oyanagi, H
    Ishikawa, T
    Ueki, T
    JOURNAL OF SYNCHROTRON RADIATION, 1999, 6 : 477 - 479
  • [16] The optically active center of Er-doped Si produced by laser ablation
    Ishii, Masashi
    Komuro, Shuji
    Morikawa, Takitaro
    Aoyagi, Yoshinobu
    Oyanagi, Hiroyuki
    Ishikawa, Tetsuya
    Ueki, Tatzuo
    Journal of Synchrotron Radiation, 1999, 6 (03): : 477 - 479
  • [17] Chemical active centers at surfaces of Si-based materials
    Kiv, AE
    Litovchenko, VG
    Fuks, D
    Golovanov, VV
    Lisovskyy, IP
    Maximova, TI
    NANOSTRUCTURED MATERIALS AND COATINGS FOR BIOMEDICAL AND SENSOR APPLICATIONS, 2003, 102 : 333 - 341
  • [18] REACTIONS OF OPTICALLY ACTIVE HETEROHELICENES - SYNTHESIS OF AN OPTICALLY ACTIVE UNDECAHETEROHELICENE
    WYNBERG, H
    GROEN, MB
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1970, 92 (22) : 6664 - &
  • [19] Properties of optically active Si:Er and Si1-xGex layers grown by the sublimation MBE method
    Stepikhova, MV
    Andreev, BA
    Shmagin, VB
    Krasil'nik, ZF
    Kuznetsov, VP
    Shengurov, VG
    Svetlov, SP
    Jantsch, W
    Palmetshofer, L
    Ellmer, H
    THIN SOLID FILMS, 2000, 369 (1-2) : 426 - 430
  • [20] Wave surfaces and wave velocities in optics of non-absorbing optically active media
    Furs, A. N.
    Barkovsky, L. M.
    JOURNAL OF OPTICS, 2010, 12 (01)