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Absorption of light in InP nanowire arrays 被引量:2

Absorption of light in InP nanowire arrays
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摘要 An understanding of the absorption of light is essential for efficient photovoltaic and photodetection applications with III-V nanowire arrays. Here, we correlate experiments with modeling and verify experimentally the predicted absorption of light in InP nanowire arrays for varying nanowire diameter and length. We find that 2,000 nm long nanowires in a pitch of 400 nm can absorb 94% of the incident light with energy above the band gap and, as a consequence, light which in a simple ray-optics description would be travelling between the nanowires can be efficiently absorbed by the nanowires. Our measurements demonstrate that the absorption for long nanowires is limited by insertion reflection losses when light is coupled from the air top-region into the array. These reflection losses can be reduced by introducing a smaller diameter to the nanowire-part closest to the air top-region. For nanowire arrays with such a nanowire morphology modulation, we find that the absorptance increases monotonously with increasing diameter of the rest of the nanowire.
出处 《Nano Research》 SCIE EI CAS CSCD 2014年第6期816-823,共8页 纳米研究(英文版)
关键词 indium phosphide SEMICONDUCTOR NANOWIRE absorption of light 纳米线阵列 吸收率 磷化铟 反射损失 光电探测 光学器件 区域耦合 直径
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参考文献28

  • 1Wallentin, J.; Anttu, N.; Asoli, D.; Huffman, M.; ,berg, I.; Magnusson, M. H.; Siefer, G.; Fuss-Kailuweit, P.; Dimroth, F.; Witzigmann, B., et al. InP nanowire array solar cells achieving 13.8% efficiency by exceeding the ray optics limit.Science 2013, 339, 1057-1060.
  • 2Mariani, G.; Wong, P.-S.; Katzenmeyer, A. M.; L6onard, F.; Shapiro, J.; Huffaker, D. L. Patterned radial GaAs nanopillar solar cells. Nano Lett. 2011, 11, 2490-2494.
  • 3Goto, H.; Nosaki, K.; Tomioka, K.; Hara, S., Hiruma, K.; Motohisa, J.; Fukui, T. Growth of core-shell InP nanowires for photovoltaic application by selective-area metal organic vapor phase epitaxy. Appl. Phys. Express 2009, 2, 035004.
  • 4Cui, Y. C.; Wang, J.; Plissard, S. R.; Cavalli, A.; Vu, T. T. T.; van Veldhoven, R. P. J.; Gao, L.; Trainor, M.; Verheijen, M. A.; Haverkort, J. E. M., et al. Efficiency enhancement of InP nanowire solar cells by surface cleaning. Nano Lett. 2013, 13, 4113-4117.
  • 5Vj, L.; Oh, J.; Nayak, A. P.; Katzenmeyer, A. M.; Gilchrist, K. H.; Grego, S.; Kobayashi, N. P.; Wang, S.-Y.; Talin, A. A.; Dhar, N. K., et al. A perspective on nanowire photo- detectors: Current status, future challenges, and opportunities. IEEE J. SeL Top. Quant. Electron. 2011, 17, 1002- 1032.
  • 6Svensson, J.; Anttu, N.; Vainorius, N.; Borg, B. M.; Wernersson, L.-E. Diameter-dependent photocurrent in InAsSb nanowire infrared photodetectors. Nano Lett. 2013, 13, 1380-1385.
  • 7Kismer, G.; G6sele, U. Stress and dislocations at cross- sectional heterojunctions in a cylindrical nanowire. Philos. Mag. 2004, 84, 3803 -3824.
  • 8Gudiksen, M. S.; Lauhon, L. J.; Wang, J. F.; Smith, D. C.; Lieber, C. M. Growth of nanowire superlattice structures for nanoscale photonics and electronics. Nature 2002, 415, 617-620.
  • 9Bj6rk, M. T.; Ohlsson, B. J.; Sass, T.; Persson, A. I.; Thelander, C.; Magnusson, M. H.; Deppert, K.; Wallenberg, L. R.; Samuelson, L. One-dimensional steeplechase for electrons realized. Nano Lett. 2002, 2, 87-89.
  • 10Wu, Y. Y.; Fan, R.; Yang, P. D. Block-by-block growth of single-crystalline Si/SiGe superlattice nanowires. Nano Lett. 2002, 2, 83- 86.

同被引文献17

  • 1朱慧群,丁瑞钦,胡怡.氢对GaAs薄膜的钝化作用[J].光子学报,2006,35(8):1194-1198. 被引量:4
  • 2GARNETT E C, BRONGERSMA M L, CUI Y,et al. Nanowire solar cells[J]. Annual Review of Materials Research, 2011, 41: 269-295.
  • 3ZHU J, YU Z, BURKHARD G F, et al. Optical absorption enhancement in amorphous silicon nanowire and nanoconearrays[J]. Nano Letters, 2008, 9(1): 279-282.
  • 4KELZENBERGM D, BOETTCHES W, PETYKIEWICZJ A,et al. Enhanced absorption and carrier collection in Si wire arrays for photovoltaic applications[J]. Nature Materials, 2010, 9(3): 239-244.
  • 5GOTO H, NOSAKI K, TOMIOKA K, et al. Growth of core-shell InP nanowires for photovoltaic application by selective-area metal organic vapor phase epitaxy[J]. Applied Physics Express, 2009, 2(3): 035004.
  • 6LI H H, YANG P Y, CHIOU S M,et al. A novel coaxial-structured amorphous-silicon pin solar cell with Al-doped ZnOnanowires[J]. Electron Device Letters, 2011, 32(7): 928-930.
  • 7MARIANI G, ZHOU Z, SCOFIELD A,et al. Direct-bandgap epitaxial core-multishell nano pillar photovoltaics featuring Subwavelength optical concentrators[J]. Nano Letters,2013, 13(4): 1632-1637.
  • 8WALLENTIN J, ANTTU N, ASOLI D,et al. InP nanowire array solar cells achieving 13.8% efficiency by exceeding the ray optics limit[J]. Science, 2013, 339(6123): 1057-1060.
  • 9YAO M, HUANG N, CONG S,et al. GaAs nanowire array solar cells with axial p-i-n junctions[J]. Nano Letters, 2014, 14(6): 3293-3303.
  • 10CHEN Zhong-shi, WANG He-lin, SUI Cheng-hua, et al. Analysis of dispersion and loss characteristics of photonic crystal fiber with quantum dots film[J]. Acta Photonica Sinica, 2013, 43(S1): 0106006.

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