Temperature optimization of NiO hole transport layer prepared by atomic layer deposition

被引:9
|
作者
Farva, Umme [1 ]
Kim, Jeha [1 ]
机构
[1] Cheongju Univ, Dept Energy Convergence Engn, Cheongju 28505, South Korea
关键词
Atomic layer deposition; Substrate temperature; NiO thin Film; Chemical composition; Optical transmittance; Electrical properties; RAY PHOTOELECTRON-SPECTROSCOPY; NICKEL-OXIDE; THIN-FILMS; HIGHLY EFFICIENT; PROGRESS; ENERGY; STATE;
D O I
10.1016/j.vacuum.2022.111674
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Atomic layer deposited (ALD) nickel oxide (NiO) thin film is frequently utilized as a hole transport layer (HTL) for perovskite solar cells (PSCs). Particularly nickel(II) 1-dimethylamino-2-methyl-2-butoxide (Ni(dmamb)2) precursor and ozone reactant are used for NiO film deposition. The substrate temperature effect on the stoi-chiometric composition for oxygen vacancies defects and electrical properties such as mobility is crucial, affecting further device performance. In the present study, NiO thin films are grown using the ALD method at a substrate temperature range between 180 to 250 degrees C on SiO2/Si substrates. Next, the effect of substrate tem-perature on the film composition, valence levels, nickel oxidation states, oxygen vacancies, and electrical properties was systematically examined, not to mention film growth, thickness, morphology, crystallinity, and optical properties. At 180 degrees C, the film growth rate was 0.017 nm/cycle, which was increased to 0.025 nm/cycle at 250 degrees C. All grown NiO films exhibited polycrystalline cubic crystal orientation, and the (200) plane simul-taneously Ni3+ phase coexists with the Ni2+ phase. Furthermore, the electrical resistivity and mobility increased from 2.36 - 3.24 x 102 omega.cm and 9.6-21.9 cm2V- -1 with substrate temperatures of 180 degrees C-230 degrees C. The prepared NiO films were optically transparent, >70% in the visible region, and the Ultraviolet photoelectron spectroscopy (UPS) study revealed that the variation in the valance band and conduction bands critically depended on the growth temperature. Thus, our findings reveal that the chemical and electrical characteristics of deposited NiO thin film are precisely influenced by substrate temperature; it will also offer considerable promise for developing NiO HTL concerning PSCs device improvement.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Low-temperature performance of yttria-stabilized zirconia prepared by atomic layer deposition
    Jang, Dong Young
    Kim, Ho Keun
    Kim, Jun Woo
    Bae, Kiho
    Schlupp, Meike V. F.
    Park, Suk Won
    Prestat, Michel
    Shim, Joon Hyung
    JOURNAL OF POWER SOURCES, 2015, 274 : 611 - 618
  • [42] Study of the aluminum doping of zinc oxide films prepared by atomic layer deposition at low temperature
    Genevee, Pascal
    Donsanti, Frederique
    Renou, Gilles
    Lincot, Daniel
    APPLIED SURFACE SCIENCE, 2013, 264 : 464 - 469
  • [43] Iron oxide grown by low-temperature atomic layer deposition
    Selvaraj, Seenivasan
    Moon, Hee
    Yun, Ju-Young
    Kim, Do-Heyoung
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2016, 33 (12) : 3516 - 3522
  • [44] Temperature dependence of the sticking coefficient in atomic layer deposition
    Rose, M.
    Bartha, J. W.
    Endler, I.
    APPLIED SURFACE SCIENCE, 2010, 256 (12) : 3778 - 3782
  • [45] Characterization of dielectric layers grown at low temperature by atomic layer deposition
    Gieraltowska, Sylwia
    Wachnicki, Lukasz
    Witkowski, Bartlomiej S.
    Mroczynski, Robert
    Dluzewski, Piotr
    Godlewski, Marek
    THIN SOLID FILMS, 2015, 577 : 97 - 102
  • [46] Radical enhanced atomic layer deposition of titanium dioxide
    Niskanen, Antti
    Arstila, Kai
    Leskela, Markku
    Ritala, Mikko
    CHEMICAL VAPOR DEPOSITION, 2007, 13 (04) : 152 - 157
  • [47] Room-Temperature Atomic Layer Deposition of Platinum
    Mackus, Adriaan J. M.
    Garcia-Alonso, Diana
    Knoops, Harm C. M.
    Bol, Ageeth A.
    Kessels, Wilhelmus M. M.
    CHEMISTRY OF MATERIALS, 2013, 25 (09) : 1769 - 1774
  • [48] Atomic layer deposition for biosensing applications
    Graniel, Octavio
    Weber, Matthieu
    Balme, Sebastien
    Miele, Philippe
    Bechelany, Mikhael
    BIOSENSORS & BIOELECTRONICS, 2018, 122 : 147 - 159
  • [49] Atomic Layer Deposition for the Photoelectrochemical Applications
    Pastukhova, Nadiia
    Mavric, Andraz
    Li, Yanbo
    ADVANCED MATERIALS INTERFACES, 2021, 8 (07):
  • [50] Coating strategies for atomic layer deposition
    Hu, Liang
    Qi, Weihong
    Li, Yejun
    NANOTECHNOLOGY REVIEWS, 2017, 6 (06) : 527 - 547