Analysis and optimisation of the glass/TCO/MZO stack for thin film CdTe solar cells

被引:31
|
作者
Bittau, Francesco [1 ]
Potamialis, Christos [1 ]
Togay, Mustafa [1 ]
Abbas, Ali [1 ]
Isherwood, Patrick J. M. [1 ]
Bowers, Jake W. [1 ]
Walls, John M. [1 ]
机构
[1] Loughborough Univ, CREST, Wolfson Sch Mech Elect & Mfg Engn, Loughborough LE11 3TU, Leics, England
基金
英国工程与自然科学研究理事会;
关键词
CdTe; Chalcogenide; Thin-film photovoltaic; Magnesium zinc oxide; Transparent conductive oxide; Radio frequency sputter deposition; OPTICAL-PROPERTIES; BAND ALIGNMENT;
D O I
10.1016/j.solmat.2018.07.019
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
Magnesium-doped Zinc Oxide (MZO) films have recently been proposed as a transparent buffer layer for thin film CdTe solar cells. In this study, the band gap of MZO buffer layers was tuned for CdTe solar cells by increasing the substrate temperature during deposition. Films were deposited by radio-frequency magnetron sputtering. Devices incorporating an optimised MZO buffer layer deposited at 300 degrees C with a band gap of 3.70 eV yielded a mean efficiency of 12.5% and a highest efficiency of 13.3%. Transmission electron microscopy showed that MZO films are uniformly deposited on the transparent conductive oxide (TCO) layer surface. The favourable band alignment seems to positively counterbalance the low doping level of the MZO layer and its high lattice mismatch with CdTe. Titanium-doped indium oxide, tin-doped indium oxide and aluminium-doped zinc oxide TCOs were also used as alternatives to fluorine-doped tin oxide (FTO), in combination with MZO films. The use of titanium-doped indium oxide and tin-doped indium oxide TCOs did not improve the device efficiency achieved compared with FTO, however using aluminium-doped zinc oxide coupled with a boro-aluminosilicate glass substrate the mean and highest efficiencies were further improved to 12.6% and 13.4% respectively.
引用
收藏
页码:15 / 22
页数:8
相关论文
共 50 条
  • [21] Processing options for CdTe thin film solar cells
    McCandless, BE
    Dobson, KD
    SOLAR ENERGY, 2004, 77 (06) : 839 - 856
  • [22] Extraction and analysis of TCO coated glass from waste amorphous silicon thin film solar module
    Kumar, Sushil
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2023, 253
  • [23] Combinatorial study of MZO emitters for CdTe-based solar cells
    Samoilenko, Yegor
    Yeung, Gavin
    Zakutayev, Andriy
    Reese, Matthew O.
    Wolden, Colin A.
    2019 IEEE 46TH PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC), 2019, : 2498 - 2502
  • [24] The analysis of CdS thin film at the processes of manufacturing CdS/CdTe solar cells
    Chun, S.
    Jung, Y.
    Kim, J.
    Kim, D.
    JOURNAL OF CRYSTAL GROWTH, 2011, 326 (01) : 152 - 156
  • [25] Design Optimization of CdTe Thin Film Solar Cells from Numerical Analysis
    Khan, N. A.
    Rahman, K. S.
    Haque, F.
    Dhar, N.
    Islam, M. A.
    Akhtaruzzaman, M.
    Sopian, K.
    Amin, N.
    2014 INTERNATIONAL CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING (ICECE), 2014, : 508 - 511
  • [26] CdTe thin film solar cells with reduced CdS film thickness
    Krishnakumar, V.
    Han, J.
    Klein, A.
    Jaegermann, W.
    THIN SOLID FILMS, 2011, 519 (21) : 7138 - 7141
  • [27] Front and Back Interface Recombination of MZO/CdTe/Te Solar Cells
    Huss, Alexandra M.
    Drayton, Jennifer A.
    Sites, James R.
    2018 IEEE 7TH WORLD CONFERENCE ON PHOTOVOLTAIC ENERGY CONVERSION (WCPEC) (A JOINT CONFERENCE OF 45TH IEEE PVSC, 28TH PVSEC & 34TH EU PVSEC), 2018, : 3703 - 3708
  • [28] Flexible CdTe/CdS solar cells on thin glass substrates
    Seo, Won-Oh
    Kim, Donghwan
    Kim, Jihyun
    OPTICS EXPRESS, 2015, 23 (07): : A316 - A321
  • [29] Oxygen incorporation into CdS/CdTe thin film solar cells
    Gorji, Nima E.
    OPTICAL AND QUANTUM ELECTRONICS, 2015, 47 (08) : 2445 - 2453
  • [30] Wet chemical etched CdTe thin film solar cells
    Chun, Seungju
    Lee, Seunghun
    Jung, Younghun
    Bae, Jong Seong
    Kim, Jihyun
    Kim, Donghwan
    CURRENT APPLIED PHYSICS, 2013, 13 (01) : 211 - 216