Fabrication and Spectral Characteristics of Silicon Nanowires for Efficient Solar Energy Harvesting

被引:0
|
作者
Mohammad Kamal Hossain
Billel Salhi
Ayman Mukhaimar
机构
[1] King Fahd University of Petroleum and Minerals (KFUPM),Center of Research Excellence in Renewable Energy (CoRERE), Research Institute
[2] K.A.CARE Energy Research & Innovation Center at Dhahran,School of Engineering
[3] RMIT University,undefined
来源
Plasmonics | 2021年 / 16卷
关键词
Optical characteristics; Silicon nanowire; FDTD simulation; Optical confinement; Solar energy harvesting;
D O I
暂无
中图分类号
学科分类号
摘要
Solar cell utilizes a small portion of solar spectrum leaving higher energy (> band gap, Eg) as thermalization loss and lower energy (< band gap, Eg) as absorption loss. Wavelength-sensitive engineered absorbing layer such as nanometric absorber holds huge potential in this context. Here in this work, a simple and hands-on strategy was devised to grow silicon nanowires (Si-NWs) on silicon wafer. Nanoparticles were achieved in the first step and used as seeds to directed growth of Si-NWs. As-grown Si-NWs with coverage ca. 6.5 × 108/cm2 were characterized through scanning electron microscope. To realize such Si-NWs as nanometric absorber in nanowire solar cell, a three-dimensional finite-difference time-domain simulation has been carried out. Considering the possibility of Si-NWs of different diameters as observed in experimental investigations, Si-NW of 50-, 100-, and 150-nm diameters was chosen in simulation. Two specific wavelengths, 700 and 1100 nm, were in prime focus to understand the characteristics of exciton generation within Si-NW. Confinement in exciton generation rate distribution at 700-nm solar spectrum for Si-NW of 150 nm was found to be most effective, whereas at 1100-nm wavelength Si-NW of 100 nm showed higher exciton generation rate distribution with the nanowire. Exciton generation line profiles along the center and edge were extracted, and comparative analysis was carried out for different diameters of Si-NW at 700- and 1100-nm wavelengths. Such experimental and correlated simulation is indispensable not only to reduce costs but also to understand and improve the cell efficiency using the light-trapping technique.
引用
收藏
页码:1 / 8
页数:7
相关论文
共 50 条
  • [31] Improving Polymer Solar Cell Through Efficient Solar Energy Harvesting
    Chen, Hsiang-Yu
    Xu, Zheng
    Li, Gang
    Yang, Yang
    WOLEDS AND ORGANIC PHOTOVOLTAICS: RECENT ADVANCES AND APPLICATIONS, 2010, : 199 - +
  • [32] Development of silicon nanowires with optimized characteristics and fabrication of radial junction solar cells with &lt; 100 nm amorphous silicon absorber layer
    Ahmed, Nafis
    Ramasamy, P.
    Bhargav, P. Balaji
    Rayerfrancis, Arokiyadoss
    Chandra, Balaji
    MATERIALS SCIENCE IN SEMICONDUCTOR PROCESSING, 2020, 106
  • [33] Electrical Characteristics of Silicon Nanowires Solar Cells with Surface Roughness
    Hussein, Mohamed
    Hameed, Mohamed Farhat O.
    Swillam, Mohamed A.
    Obayya, S. S. A.
    QUANTUM DOTS AND NANOSTRUCTURES: GROWTH, CHARACTERIZATION, AND MODELING XV, 2018, 10543
  • [34] FDTD modeling of solar energy absorption in silicon branched nanowires
    Lundgren, Christin
    Lopez, Rene
    Redwing, Joan
    Melde, Kathleen
    OPTICS EXPRESS, 2013, 21 (09): : A392 - A400
  • [35] Fabrication Characteristics of Silicon Nanowires via the Electrochemical Electroless Etching Method
    Kang, ByeongSu
    Jeong, Chae Hwan
    Kim, Changheon
    Kim, Min-Young
    Choi, Bum Ho
    Lee, Moo Sung
    Kim, Ho-Sung
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2015, 15 (07) : 5291 - 5294
  • [36] Semiconductor Nanowires for Energy Harvesting
    Yu, Yanhao
    Wang, Xudong
    SEMICONDUCTORS AND SEMIMETALS, VOL 94: SEMICONDUCTOR NANOWIRES II: PROPERTIES AND APPLICATIONS, 2016, 94 : 297 - 368
  • [37] Energy Harvesting Using Nanowires?
    Alexe, Marin
    Senz, Stephan
    Schubert, Markus Andreas
    Hesse, Dietrich
    Goesele, Ulrich
    ADVANCED MATERIALS, 2008, 20 (21) : 4021 - +
  • [38] Light Harvesting in Silicon Nanowires Solar Cells by Using Graphene Layer and Plasmonic Nanoparticles
    Elrashidi, Ali
    APPLIED SCIENCES-BASEL, 2022, 12 (05):
  • [39] A simple fabrication process for 20% efficient silicon solar cells
    Hubner, A
    Hampe, C
    Aberle, AG
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 1997, 46 (01) : 67 - 77
  • [40] Fabrication and characterization of 18.6% efficient multicrystalline silicon solar cells
    Narasimha, S
    Rohatgi, A
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 1998, 45 (08) : 1776 - 1783