Integration of Si Heterojunction Solar Cells with III-V Solar Cells by the Pd Nanoparticle Array-Mediated "Smart Stack" Approach

被引:7
作者
Mizuno, Hidenori [2 ]
Makita, Kikuo [1 ]
Sai, Hitoshi [1 ]
Mochizuki, Toshimitsu [2 ]
Matsui, Takuya [1 ]
Takato, Hidetaka [2 ]
Muller, Ralph [3 ]
Lackner, David [3 ]
Dimroth, Frank [3 ]
Sugaya, Takeyoshi [1 ]
机构
[1] Natl Inst Adv Ind Sci & Technol, Global Zero Emiss Res Ctr, Tsukuba, Ibaraki 3058568, Japan
[2] Natl Inst Adv Ind Sci & Technol, Fukushima Renewable Energy Inst, Renewable Energy Res Ctr, Koriyama, Fukushima 9630298, Japan
[3] Fraunhofer Inst Solar Energy Syst ISE, D-79110 Freiburg, Germany
关键词
palladium; nanoparticle; III-V; silicon; tandem; multijunction; solar cell; block copolymer; self-assembly; GAAS; EFFICIENCY;
D O I
10.1021/acsami.1c22458
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper describes the way to fabricate two-terminal tandem solar cells using Si heterojunction (SHJ) bottom cells and GaAs-relevant III-V top cells by "smart stack", an approach enabling the series connection of dissimilar solar cells through Pd nanoparticle (NP) arrays. It was suggested that placing the Pd NP arrays directly on typical SHJ cells results in poor tandem performance because of the insufficient electrical contacts and/or deteriorated passivation quality of the SHJ cells. Therefore, hydrogenated nanocrystalline Si (nc-Si:H) layers were introduced between Pd NPs and SHJ cells to improve the electrical contacts and preserve the passivation quality. Such nc-Si:H-capped SHJ cells were integrated with InGaP/AlGaAs double-junction cells, and a certified efficiency of 27.4% (under AM 1.5 G) was achieved. In addition, this paper addresses detailed analyses of the 27.4% cell. It was revealed that the cell had a relatively large gap at the smart stack interface, which limited the short-circuit current density (thereby the efficiency) of the cell. Therefore, higher efficiency would be expected by reducing the interfacial gap distance, which is governed by the height of the Pd NPs.
引用
收藏
页码:11322 / 11329
页数:8
相关论文
共 50 条
  • [1] Cu Nanoparticle Array-Mediated III-V/Si Integration: Application in Series-Connected Tandem Solar Cells
    Mizuno, Hidenori
    Makita, Kikuo
    Mochizuki, Toshimitsu
    Tayagaki, Takeshi
    Sugaya, Takeyoshi
    Takato, Hidetaka
    ACS APPLIED ENERGY MATERIALS, 2020, 3 (04) : 3445 - 3453
  • [2] High-efficiency III-V//Si tandem solar cells enabled by the Pd nanoparticle array-mediated "smart stack" approach
    Mizuno, Hidenori
    Makita, Kikuo
    Tayagaki, Takeshi
    Mochizuki, Toshimitsu
    Sugaya, Takeyoshi
    Takato, Hidetaka
    APPLIED PHYSICS EXPRESS, 2017, 10 (07)
  • [3] III-V//Si multijunction solar cells with 30% efficiency using smart stack technology with Pd nanoparticle array
    Makita, Kikuo
    Mizuno, Hidenori
    Tayagaki, Takeshi
    Aihara, Taketo
    Oshima, Ryuji
    Shoji, Yasushi
    Sai, Hitoshi
    Takato, Hidetaka
    Mueller, Ralph
    Beutel, Paul
    Lackner, David
    Benick, Jan
    Hermle, Martin
    Dimroth, Frank
    Sugaya, Takeyoshi
    PROGRESS IN PHOTOVOLTAICS, 2020, 28 (01): : 16 - 24
  • [4] A Brief Review on III-V/Si Tandem Solar Cells
    Yu, Sheng
    Rabelo, Matheus
    Yi, Junsin
    TRANSACTIONS ON ELECTRICAL AND ELECTRONIC MATERIALS, 2022, 23 (04) : 327 - 336
  • [5] III-V//CuxIn1-yGaySe2 multijunction solar cells with 27.2% efficiency fabricated using modified smart stack technology with Pd nanoparticle array and adhesive material
    Makita, Kikuo
    Kamikawa, Yukiko
    Mizuno, Hidenori
    Oshima, Ryuji
    Shoji, Yasushi
    Ishizuka, Shogo
    Mueller, Ralph
    Beutel, Paul
    Lackner, David
    Benick, Jan
    Hermle, Martin
    Dimroth, Frank
    Sugaya, Takeyoshi
    PROGRESS IN PHOTOVOLTAICS, 2021, 29 (08): : 887 - 898
  • [6] Design and Growth of III-V on Si Microwire Array Tandem Solar Cells
    Chen, Christopher T.
    Turner-Evans, Daniel B.
    Emmer, Hal
    Aloni, Shaul
    Atwater, Harry A.
    2013 IEEE 39TH PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC), 2013, : 3397 - 3401
  • [7] Dual-junction GaAs solar cells and their application to smart stacked III-V//Si multijunction solar cells
    Sugaya, Takeyoshi
    Tayagaki, Takeshi
    Aihara, Taketo
    Makita, Kikuo
    Oshima, Ryuji
    Mizuno, Hidenori
    Nagato, Yuki
    Nakamoto, Takashi
    Okano, Yoshinobu
    APPLIED PHYSICS EXPRESS, 2018, 11 (05)
  • [8] Designing III-V multijunction solar cells on silicon
    Connolly, James P.
    Mencaraglia, Denis
    Renard, Charles
    Bouchier, Daniel
    PROGRESS IN PHOTOVOLTAICS, 2014, 22 (07): : 810 - 820
  • [9] III-V multijunction solar cells for concentrating photovoltaics
    Cotal, Hector
    Fetzer, Chris
    Boisvert, Joseph
    Kinsey, Geoffrey
    King, Richard
    Hebert, Peter
    Yoon, Hojun
    Karam, Nasser
    ENERGY & ENVIRONMENTAL SCIENCE, 2009, 2 (02) : 174 - 192
  • [10] Indium zinc oxide mediated wafer bonding for III-V/Si tandem solar cells
    Tamboli, Adele C.
    Essig, Stephanie
    Horowitz, Kelsey A. W.
    Woodhouse, Michael
    van Hest, Maikel F. A. M.
    Norman, Andrew G.
    Steiner, Myles A.
    Stradins, Paul
    2015 IEEE 42ND PHOTOVOLTAIC SPECIALIST CONFERENCE (PVSC), 2015,