Journal of Synthetic Crystals, Volume. 49, Issue 12, 2389(2020)
Research Progress on Synthesis of Perovskite Single Crystal
[1] [1] Snaith H J. Perovskites: the emergence of a new era for low-cost, high-efficiency solar cells[J]. The Journal of Physical Chemistry Letters, 2013, 4(21): 3623-3630.
[2] [2] Kojima A, Teshima K, Shirai Y, et al. Organometal halide perovskites as visible-light sensitizers for photovoltaic cells[J]. Journal of the American Chemical Society, 2009, 131(17): 6050.
[3] [3] NREL Best Research-Cell Efficiencies. 2020; Available from: https://www.nrel.gov/pv/assets/pdfs/best-research-cell-efficiencies.20200406.pdf.
[4] [4] Wu C, Chen C, Tao L, et al. Highly efficient perovskite solar cells based on symmetric hole transport material constructed with indaceno 1,2-b:5,6-b′ dithiophene core building block[J]. Journal of Energy Chemistry, 2020, 43: 98-103.
[5] [5] Lian Z, Yan Q, Gao T, et al. Perovskite CH3NH3PbI3(Cl) single crystals: rapid solution growth, unparalleled crystalline quality, and low trap density toward 108 cm-3[J]. Journal of the American Chemical Society, 2016, 138(30): 9409-9412.
[6] [6] Mitzi D B. Templating and structural engineering in organic-inorganic perovskites[J]. Journal of the Chemical Society-Dalton Transactions, 2001(1): 1-12.
[7] [7] Haque M A, Troughton J, Baran D. Processing-performance evolution of perovskite solar cells: from large grain polycrystalline films to single crystals[J]. Advanced Energy Materials, 2020, 10(13): 1902762.
[8] [8] Peng W, Wang L, Murali B, et al. Solution-grown monocrystalline hybrid perovskite films for hole-transporter-free solar cells[J]. Advanced Materials, 2016, 28(17): 3383-3390.
[9] [9] Yue H L, Sung H H, Chen F C. Seeded space-limited crystallization of CH3NH3PbI3 single-crystal plates for perovskite solar cells[J]. Advanced Electronic Materials, 2018, 4(7): 1700655.
[10] [10] Liu Y, Dong Q, Fang Y, et al. Fast growth of thin MAPbI3 crystal wafers on aqueous solution surface for efficient lateral-structure perovskite solar cells[J]. Advanced Functional Materials, 2019, 29(47): 1807707.
[11] [11] Liao W Q, Zhang Y, Hu C L, et al. A lead-halide perovskite molecular ferroelectric semiconductor[J]. Nature Communications, 2015, 6: 7338.
[12] [12] Dang Y, Ju D, Wang L, et al. Recent progress in the synthesis of hybrid halide perovskite single crystals[J]. Cryst Eng Comm, 2016, 18(24): 4476-4484.
[13] [13] Dang Y, Liu Y, Sun Y, et al. Bulk crystal growth of hybrid perovskite material CH3NH3PbI3[J]. Crystengcomm, 2015, 17(3): 665-670.
[14] [14] Lian Z, Yan Q, Lv Q, et al. High-performance planar-type photodetector on (100) facet of MAPbI3 single crystal[J]. Scientific Reports, 2015, 5: 16563.
[15] [15] Dong Q, Fang Y, Shao Y, et al. Electron-hole diffusion lengths > 175 μm in solution-grown CH3NH3PbI3 single crystals[J]. Science, 2015. 347(6225): 967-970.
[16] [16] Liu Y, Zhang Y, Yang Z, et al. Thinness- and shape-controlled growth for ultrathin single-crystalline perovskite wafers for mass production of superior photoelectronic devices[J]. Advanced Materials, 2016, 28(41): 9204-9209.
[17] [17] Saidaminov M I, Abdelhady A L, Murali B, et al. High-quality bulk hybrid perovskite single crystals within minutes by inverse temperature crystallization[J]. Nature Communications, 2015, 6: 7586.
[18] [18] Maculan G, Sheikh A D, Abdelhady A L, et al. CH3NH3PbCl3 single crystals: inverse temperature crystallization and visible-blind UV-photodetector[J]. Journal of Physical Chemistry Letters, 2015, 6(19): 3781-3786.
[19] [19] Dirin D N, Cherniukh I, Yakunin S, et al. Solution-grown CsPbBr3 perovskite single crystals for photon detection[J]. Chemistry of Materials, 2016, 28(23): 8470-8474.
[20] [20] Shi D, Adinolfi V, Comin R, et al. Low trap-state density and long carrier diffusion in organolead trihalide perovskite single crystals[J]. Science, 2015,347(6221): 519-522.
[21] [21] Garibin E, Demidenko A A, Mironov I A, et al. Process for growing of optical fluorite single crystals[P]. 2003.
[22] [22] Stoumpos C C, Malliakas C D, Peters J A, et al. Crystal growth of the perovskite semiconductor CsPbBr3:a new material for high-energy radiation detection[J]. Crystal Growth & Design, 2013. 13(7): 2722-2727.
[23] [23] Peng Z, Guodong Z, Lin L, et al. Anisotropic optoelectronic properties of melt-grown bulk CsPbBr3 single crystal[J]. Journal of Physical Chemistry Letters, 2018, 9(17): 5040-5046.
[24] [24] Cheng Y, Sun Q, Zhang P, et al. The secondary phase particles in cesium lead bromide perovskite crystals: an insight into the formation of matrix-controlled inclusion[J]. Journal of Physical Chemistry Letters, 2020.
[25] [25] Chen Y X, Ge Q Q, Shi Y, et al. General space-confined on-substrate fabrication of thickness-adjustable hybrid perovskite single-crystalline thin films[J]. Journal of the American Chemical Society, 2016, 138(50): 16196-16199.
[26] [26] Zhao J, Kong G, Chen S, et al. Single crystalline CH3NH3PbI3 self-grown on FTO/TiO2 substrate for high efficiency perovskite solar cells[J]. Science Bulletin, 2017, 62(17): 1173-1176.
[27] [27] Gu Z, Huang Z, Li C, et al. A general printing approach for scalable growth of perovskite single-crystal films[J]. Science Advances, 2018. 4(6): 2390.
[28] [28] Alsalloum A Y, Turedi B, Zheng X, et al. Low-temperature crystallization enables 21.9% efficient single-crystal MAPbI3 inverted perovskite solar cells[J]. Acs Energy Letters, 2020, 5(2): 657-662.
[29] [29] Detchprohm T, Hiramatsu K, Amano H, et al. Hydride vapor-phase epitaxial-grpth of a high-quality gan film using a zno buffer layer[J]. Applied Physics Letters, 1992, 61(22): 2688-2690.
[30] [30] Chen J, Fu Y, Samad L, et al. Vapor-phase epitaxial growth of aligned nanowire networks of cesium lead halide perovskites (CsPbX3, X=Cl, Br, I)[J]. Nano Letters, 2017, 17(1): 460-466.
[31] [31] Chen Z, Wang Y, Sun X, et al. Van der waals hybrid perovskite of high optical quality by chemical vapor deposition[J]. Advanced Optical Materials, 2017, 5(21): 1700373.
[32] [32] Zhang Q, Su R, Liu X, et al. High-quality whispering-gallery-mode lasing from cesium lead halide perovskite nanoplatelets[J]. Advanced Functional Materials, 2016. 26(34): 6238-6245.
[33] [33] Chen J, Morrow D J, Fu Y, et al. Single-crystal thin films of cesium lead bromide perovskite epitaxially grown on metal oxide perovskite (SrTiO3)[J]. Journal of the American Chemical Society, 2017, 139(38): 13525-13532.
[34] [34] Chen Z, Dong Q, Liu Y, et al. Thin single crystal perovskite solar cells to harvest below-bandgap light absorption[J]. Nature Communications, 2017, 8(1): 1890.
[35] [35] Chen Z, Turedi B, Alsalloum A Y, et al. Single-crystal MAPbI3 perovskite solar cells exceeding 21% power conversion efficiency[J]. Acs Energy Letters, 2019, 4(6): 1258-1259.
[36] [36] Rao H S, Chen B X, Wang X D, et al. A micron-scale laminar MAPbBr3 single crystal for an efficient and stable perovskite solar cell[J]. Chemical Communications, 2017, 53(37): 5163-5166.
[37] [37] Huang Y, Zhang Y, Sun J, et al. The exploration of carrier behavior in the inverted mixed perovskite single-crystal solar cells[C]. The 5th Conference on New Generation Solar Cells, 2018.
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ZHANG Hanhong, YE Shuai, ZHANG Fan. Research Progress on Synthesis of Perovskite Single Crystal[J]. Journal of Synthetic Crystals, 2020, 49(12): 2389
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Published Online: Jan. 26, 2021
The Author Email: ZHANG Hanhong (z369852h@qq.com)
CSTR:32186.14.