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Chapter 11 • Hybrid Organic–Inorganic Metal Halide Perovskite Solar Cells  253



                   [105] Hashmi SG, Martineau d, Li X, Ozkan M, Tiihonen A, dar MI, et al: Air processed inkjet infiltrated
                     carbon based printed perovskite solar cells with high stability and reproducibility, Adv Mater Technol
                     2:1600183, 2017.
                   [106] Bera A, Wu K, Sheikh A, Alarousu E, Mohammed OF, Wu T: Perovskite oxide SrTiO 3  as an efficient
                     electron transporter for hybrid perovskite solar cells, J Phys Chem C 118:28494–28501, 2014.
                   [107] Baena JPC, Steier L, Tress W, Saliba M, Neutzner S, Matsui T, et al: Highly efficient planar perovskite
                     solar cells through band alignment engineering, Energy Environ Sci 8:2928–2934, 2015.
                  [108] Liu J, Gao C, Luo L, ye Q, He X, Ouyang L, et al: Low-temperature, solution processed metal sulfide as an
                     electron transport layer for efficient planar perovskite solar cells, J Mater Chem A 3:11750–11755, 2015.
                   [109] Wang L, Fu W, Gu Z, Fan C, yang X, Li H, et al: Low temperature solution processed planar hetero-
                     junction perovskite solar cells with a CdSe nanocrystal as an electron transport/extraction layer, J
                     Mater Chem C 2:9087–9090, 2014.
                   [110] Wang JT-W, Ball JM, Barea EM, Abate A, Alexander-Webber JA, Huang J, et al: Low-temperature pro-
                     cessed electron collection layers of graphene/TiO 2  nanocomposites in thin film perovskite solar
                     cells, Nano Lett 14:724–730, 2013.
                   [111] Chiang C-H, Tseng Z-L, Wu C-G: Planar heterojunction perovskite/PC 71 BM solar cells with enhanced
                     open-circuit voltage via a (2/1)-step spin-coating process, J Mater Chem A 2:15897–15903, 2014.
                   [112] docampo P, Ball JM, darwich M, Eperon GE, Snaith HJ: Efficient organometal trihalide perovskite
                     planar-heterojunction solar cells on flexible polymer substrates, Nat Commun:4, 2013.
                   [113] Li H, Fu K, Hagfeldt A, Grätzel M, Mhaisalkar SG, Grimsdale AC: A simple 3,4-ethylenedioxythio-
                     phene based hole-transporting material for perovskite solar cells, Angew Chem Int Ed 53:4085–4088,
                     2014.
                   [114] yu Z, Sun L: Recent progress on hole- transporting materials for emerging organometal halide
                     perovskite solar cells, Adv Energy Mater:5, 2015.
                   [115] Christians JA, Fung RC, Kamat PV: An inorganic hole conductor for organo-lead halide perovskite
                     solar cells. Improved hole conductivity with copper iodide, J Am Chem Soc 136:758–764, 2013.
                   [116] Jung JW, Chueh CC, Jen AKy: A low-temperature, solution-processable, Cu-doped nickel oxide hole-
                     transporting layer via the combustion method for high-performance thin-film perovskite solar cells,
                     Adv Mater 27:7874–7880, 2015.
                   [117] Kwon U, Kim B-G, Nguyen dC, Park J-H, Ha Ny, Kim S-J, et al: Solution-Processible crystalline NiO
                     nanoparticles for high-performance planar perovskite photovoltaic cells, Sci Rep:6, 2016.
                   [118] Qin P, Tanaka S, Ito S, Tetreault N, Manabe K, Nishino H, et al: Inorganic hole conductor-based lead
                     halide perovskite solar cells with 12.4% conversion efficiency, Nat Commun:5, 2014.
                   [119] ye S, Sun W, Li y, yan W, Peng H, Bian Z, et al: CuSCN-based inverted planar perovskite solar cell with
                     an average PCE of 15.6%, Nano Lett 15:3723–3728, 2015.
                   [120] Huckaba AJ, Sanghyun P, Grancini G, Bastola E,  Taek CK, younghui L, et  al: Exceedingly cheap
                     perovskite solar cells using iron pyrite hole transport materials, ChemistrySelect 1:5316–5319, 2016.
                   [121] Niu G, Li W, Meng F, Wang L, dong H, Qiu y: Study on the stability of CH 3 NH 3 PbI 3  films and the ef-
                     fect of post-modification by aluminum oxide in all-solid-state hybrid solar cells, J Mater Chem A
                     2:705-710, 2014.
                   [122] Conings B, drijkoningen J, Gauquelin N, Babayigit A, d’Haen J, d’Olieslaeger L, et al: Intrinsic ther-
                     mal instability of methylammonium lead trihalide perovskite, Adv Energy Mater:5, 2015.
                   [123] Chiang CH, Nazeeruddin MK, Gratzel M, Wu C-G: The synergistic effect of H 2 O and dMF towards
                     stable and 20% efficiency inverted perovskite solar cells, Energy Environ Sci 10:808–817, 2017.
                   [124] Hashmi SG, Tiihonen A, Martineau d, Ozkan M, Vivo P, Kaunisto K, et al: Long term stability of air
                     processed inkjet infiltrated carbon-based printed perovskite solar cells under intense ultra-violet
                     light soaking, J Mater Chem A 5:4797–4802, 2017.
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