新型薄膜太阳能电池
上QQ阅读APP看本书,新人免费读10天
设备和账号都新为新人

参考文献

[1] Zheng L,Zhang D,Ma Y,et al. Morphology control of the perovskite films for efficient solar cells. Dalton T,2015,44(23):10582.

[2] Liang P W,Liao C,Chu C,et al. Additive enhanced crystallization of solution-processed perovskite for highly efficient planar-heterojunction solar cells. Adv Mater,2014,26(22):3748-3754.

[3] Zhao Y,Zhu K. CH3NH3Cl-assisted one-step solution growth of CH3NH3PbI3:structure,charge-carrier dynamics,and photovoltaic properties of perovskite solar cells. J Phys Chem C,2014:118(18):9412-9418.

[4] Shen D,Yu X,Cai X,et al. Understanding the solvent-assisted crystallization mechanism inherent in efficient organic-inorganic halide perovskite solar cells. J Mater Chem A,2014,2(48):20454-20461.

[5] Peak S,Choi N,H Jeong,et al. Improved external quantum efficiency from solution-processed CH3NH3PbI3 perovskite/PC71BM planar heterojunction for high efficiency hybrid solar cells. J Phys Chem C,2014,118(45):25899-25905.

[6] Kim H B,Choi H,Jeong J,et al. Mixed solvents for the optimization of morphology in solution-processed,inverted-type perovskite/fullerene hybrid solar cells. Nanoscale,2014,6(12):6679-6683.

[7] Leijtens T,Lauber B,Eperon G E,et al. The Importance of perovskite pore filling in organometal mixed halide sensitized TiO2-based solar cells. J Phys Chem Lett,2014,5(7):1096.

[8] Wang Q,Shao Y,Dong Q,et al. Large fill-factor bilayer iodine perovskite solar cells fabricated by a low-temperature solution-process. Energy Environ Sci,2014,7(7):2359-2365.

[9] Eperon G E,Burlakov V M,Docampo P,et al. Morphological control for high performance,solution-processed planar heterojunction perovskite solar cells. Adv Funct Mater,2014,24(1):151-157.

[10] Dualeh A,Tetreaulu N,Moehl T,et al. Effect of annealing temperature on film morphology of organic-inorganic hybrid pervoskite solid-state solar cells. Adv Funct Mater,2014,24(21):3250-3258.

[11] Burschka J,pellet N,Moon S J,et al. Sequential deposition as a route to high-performance perovskite-sensitized solar cells. Nature,2013,499(7458):316.

[12] Jeng J Y,Chiang Y F,Lee M H,et al. CH3NH3PbI3 perovskite/fullerene planar-heterojunction hybrid solar cells. Adv Mater,2013,25(27):3727-3732.

[13] Kang R,Kim J E,Yeo J S,et al. Optimized organometal halide perovskite planar hybrid solar cells via control of solvent evaporation rate. J Phys Chem C,2014,118(46):26513-26520.

[14] Fang X,Wu Y,Lu Y,et al. Annealing-free perovskite films based on solvent engineering for efficient solar cells. J Mater Chem C,2017,5(4):842-847.

[15] You J,Yang Y,Hong Z,et al. Moisture assisted perovskite film growth for high performance solar cells. App Phys Lett,2014,105(18):945.

[16] Ren Z,Ng A,Shen Q,et al. Thermal assisted oxygen annealing for high efficiency planar CH3NH3PbI3 perovskite solar cells. Sci Rep,2014,4(4):6752.

[17] Jeng J Y,Chen K C,Chiang T Y,et al. Nickel oxide electrode interlayer in CH3NH3PbI3 perovskite/PCBM planar-heterojunction hybrid solar cells. Adv Mater,2014,26(24):4107.

[18] Guo Y,Liu C,Inoue K,et al. Enhancement in the efficiency of an organic–inorganic hybrid solar cell with a doped P3HT hole-transporting layer on a void-free perovskite active layer. J Mater Chem A,2014,2(34):13827-13830.

[19] Saliba M,Tan K W,Sai H,et al. Influence of thermal processing protocol upon the crystallization and photovoltaic performance of organic-inorganic lead trihalide perovskites. J Phys Chem C,2014,118(30):17171-17177.

[20] Xiao Z,Bi C,Shao Y,et al. Efficient,high yield perovskite photovoltaic devices grown by interdiffusion of solution-processed precursor stacking layers. Ener Envir Sci,2014,7(8):2619-2623.

[21] Liu,D,Gangishetty M K,Kelly T L. Effect of CH3NH3PbI3 thickness on device efficiency in planar heterojunction perovskite solar cells. J Mater Chem A,2014,2(46):19873-19881.

[22] Liu T,Hu Q,Wu J,et al. Mesoporous PbI2 scaffold for high-performance planar heterojunction perovskite solar cells. Adv Energy Mater,2016,6(3).

[23] Zheng L,Ma Y,Chu S,et al. Improved light absorption and charge transport for perovskite solar cells with rough interfaces by sequential deposition. Nanoscale,2014,6:8171-8176.

[24] Im J H,Jang I H,Pellet N,et al. Growth of CH3NH3PbI3 cuboids with controlled size for high-efficiency perovskite solar cells. Nat Nanotechnol,2014,9(11):927.

[25] Jeon N J,Noh J H,Kim Y C,et al. Solvent engineering for high-performance inorganic-organic hybrid perovskite solar cells. Nat Mater,2014,13(9):897.

[26] Jiang Q,Zhang L,Wang H,et al. Enhanced electron extraction using SnO2for high-efficiency planar-structure HC(NH22PbI3-based perovskite solar cells.Nat Energy,2016,2:16177.

[27] Liu M,Johnston M B,Snaith H J. Efficient planar heterojunction perovskite solar cells by vapour deposition. Nature,2013,501(7467):395-443.

[28] Lee M M,Teuscher J,Miyasaka T,et al. Efficient hybrid solar cells based on meso-superstructured organometal halide perovskites. Science,2012,338(6107):643.

[29] Chen C W,Kang H W,Hsiao S Y,et al. Efficient and uniform planar-type perovskite solar cells by simple sequential vacuum deposition. Adv Mater,2014,26(38):6647-6652.

[30] Longo G,Gil L,Degen M J,et al. Perovskite solar cells prepared by flash evaporation. Chem Commun,2015,51(34):7376-7384.

[31] Hu H,Wang D,Zhou Y,et al. Vapour-based processing of hole-conductor-free CH3NH3PbI3 perovskite/C60 fullerene planar solar cells. Rsc Adv,2014,4(55):28964-28967.

[32] Leyden M R,Ono L K,Raga S R,et al. High performance perovskite solar cells by hybrid chemical vapor deposition. J Mater Chem A,2014,2(44):18742-18745.

[33] Stefano R,Di F,Matteocci G F,et al. Perovskite solar cells and large area modules (100 cm2) based on an air flow-assisted PbI2 blade coating deposition process. J Power sources,2015:286-291.

[34] Chen Q,Zhou H,Luo S,et al. Planar heterojunction perovskite solar cells via vapor-assisted solution process. J Am Chem Soc,2014,136(2):622-625.

[35] Song X,Wang W,Sun P,et al. Additive to regulate the perovskite crystal film growth in planar heterojunction solar cells. App Phys Lett,2015,106(3):864.

[36] Li X,MI D,Yi C,et al. Improved performance and stability of perovskite solar cells by crystal crosslinking with alkylphosphonic acid ω-ammonium chlorides. Nature Chem,2015,7(9):703.

[37] Bi D,Yi C,Luo J,et al. Polymer-templated nucleation and crystal growth of perovskite films for solar cells with efficiency greater than 21%. Nature Energy,2016:142.

[38] Ahn N,Son D Y,Jang I H,et al. Highly reproducible perovskite solar cells with average efficiency of 18.3% and best efficiency of 19.7% fabricated via Lewis base adduct of lead (Ⅱ) iodide. J Am Chem Soc,2015,137(27):8696.

[39] Pan J,Mu C,Li Q,et al. Room-temperature,hydrochloride-assisted,one-step deposition for highly efficient and air-stable perovskite solar cells. Adv Mater,2016,28(37):8309-8314.

[40] Wu C G,Chiang C H,Tseng Z L,et al. High efficiency stable inverted perovskite solar cells without current hysteresis. Energy Envir Sci,2015,8(9):2725-2733.

[41] Chiang C H,Nazeeruddin M K,Grätzel M,et al. The synergistic effect of H2O and DMF towards stable and 20% efficiency inverted perovskite solar cells. Energy Envir Sci,2017:10(3):808-817.

[42] Jian H,Tao C. Additive regulated crystallization and film formation of CH3NH3I3-xBrx for highly efficient planar-heterojunction solar cells. J Mater Chem A,2015,3:18514-18520.

[43] W Zhu,Bao C,Li F,et al. A halide exchange engineering for CH3NH3PbI3-xBrx perovskite solar cells with high performance and stability. Nano Energy,2016:17-26.

[44] Stranks S D,Eperon G E,Grancini G,et al. Electron-hole diffusion lengths exceeding 1 micrometer in an organometal trihalide perovskite absorber. Science,2013,342(6156):341.

[45] Xing G,Mathews N,Sun S,et al. Long-range balanced electron-and hole-transport lengths in organic-inorganic CH3NH3PbI3. Science,2013,342(6156):344-347.

[46] Dar M I,Arora N,Gao P,et al. Investigation regarding the role of chloride in organic-inorganic halide perovskites obtained from chloride containing precursors. Nano Lett,2014,14(12):6991-6997.

[47] Tidhar Y,Edri E,Weissman H,et al. Crystallization of methyl ammonium lead halide perovskites:implications for photovoltaic applications. J Am Chem Soc,2014,136(38):13249-13256.

[48] Chen Q,Zhou H,Fang Y,et al. The optoelectronic role of chlorine in CH3NH3PbI3 (Cl)-based perovskite solar cells. Nature Commun,2015,6:7269.

[49] Y Chen,Chen T,Dai L,et al. Layer-by-layer growth of CH3NH3I3-xClx for highly efficient planar heterojunction perovskite solar cells. Adv Mater,2015,27:1053-1059.

[50] Rao H,Ye S,Sun W,et al. A 19.0% efficiency achieved in CuOx-based inverted CH3NH3PbI3xClx solar cells by an effective Cl doping method. Nano Energy,2016,27:51-57.

[51] Yi C,Luo J,Meloni S,et al. Entropic stabilization of mixed a-cation ABX3 metal halide perovskites for high performance perovskite solar cells. Energy Envir Sci,2016,9(2):656-662.

[52] Choi H,Jeong J,Kim H B,et al. Cesium-doped methylammonium lead iodide perovskite light absorber for hybrid solar cells. Nano Energy,2014,7(3):80-85.

[53] Saliba M,Matsui T,Seo J Y,et al. Cesium-containing triple cation perovskite solar cells:improved stability,reproducibility and high efficiency. Energy Envir Sci,2016,9(6):1989.

[54] Xuejie Z,Dong Y,Yang R,et al. Superior stability for perovskite solar cells with 20% efficiency using vacuum co-evaporation. Nanoscale,2017,9 :12316-12323.

[55] Gao P,Grätze M I,Nazeeruddin M K,et al. Organohalide lead perovskites for photovoltaic applications. J Phys Chem Lett,2016,7(5):851.

[56] Boix P P,Nonomura K,Mathews N,et al. Current progress and future perspectives for organic/inorganic perovskite solar cells. Mater Today,2014,17(1):16-23.

[57] Koh T M,Fu K,Yang Y,et al. Formamidinium-containing metal-halide:an alternative material for near-IR absorption perovskite solar cells. J Phys Chem C,2014,118(30):16458-16462.

[58] Yang W S,Noh J H,Jeon N J,et al. High-performance photovoltaic perovskite layers fabricated through intramolecular exchange. Science,2015,348(6240):1234.

[59] Jeon N J,Noh J H,Yang W S,et al. Compositional engineering of perovskite materials for high-performance solar cells. Nature,2015,517(7535):476.

[60] Zhang Y,Grancini G,Feng Y,et al. Optimization of stable quasi-cubic FAxMA1xPbI3 perovskite structure for solar cells with efficiency beyond 20%. ACS Energy Lett,2017,2:802-806.

[61] Hao F,Stoumpos C C,Cao D H,et al. Lead-free solid-state organic-inorganic halide perovskite solar cells. Nat Photonics,2014,8(8):489-494.

[62] Im J,Stoumpos C C,Jin H,et al. Antagonism between spin–orbit coupling and steric effects causes anomalous band gap evolution in the perovskite photovoltaic materials CH3NH3Sn1–xPbxI3. J Phys Chem Lett,2015,6(17):3503-3509.

[63] Yamada K,Nakada K,Takeuchi Y,et al. Tunable perovskite semiconductor CH3NH3SnX3(X:Cl,Br,or I) characterized by X-ray and DTA. B Chem Soc of Jpn,2011,84(9):926-932.

[64] Chiarella F,Zappettini A,Licci F,et al. Combined experimental and theoretical investigation of optical,structural,and electronic properties of CH3NH3SnX3 thin films (X = Cl,Br). Phys rev b,2008,77(4):5129.

[65] Hao F,Stoumpos C C,Chang R P H,et al. Anomalous band gap behavior in mixed Sn and Pb perovskites enables broadening of absorption spectrum in solar cells. J Am Chem Soc,2014,136(22):8094-8103.

[66] Gate L F. Comparison of the photon diffusion model and Kubelka-Munk equation with the exact solution of the radiative transport equation. App Optics,1974,13(2):236.

[67] Scaife D E,Weller P F,Fisher W G. Crystal preparation and properties of cesium tin (Ⅱ) trihalides. Journal of Solid State Chemistry,1974,9(3):308-314.

[68] Yamada K,Funabiki S,Horimoto H,et al. Structural phase transitions of the polymorphs of CsSnI3 by means of rietveld analysis of the X-ray diffraction. Chem Lett,1991,20(5):801-804.

[69] Chung I,Song J H,Im J,et al. CsSnI3:Semiconductor or Metal? High electrical conductivity and strong near-infrared photoluminescence from a single material. high hole mobility and phase-transitions. J Am Chem Soc,2012,134(20):8579-8587.

[70] Kumar M H,Dharani S,Leong W L,et al. Lead-free halide perovskite solar cells with high photocurrents realized through vacancy modulation. Adv Mater,2014,26(41):7122-7127.

[71] Chung I,Song J H,Jin J,et al. ChemInform abstract:CsSnI3:semiconductor or Metal? High electrical conductivity and strong near-infrared photoluminescence from a single material. High hole mobility and phase-transitions. J Am Chem Soc,2012,134(20):8579-8587.

[72] Qiu X,Cao B,Yuan S,et al. From unstable CsSnI3 to air-stable Cs2SnI6:A lead-free perovskite solar cell light absorber with bandgap of 1.48eV and high absorption coefficient. Sol Energ Mat Sol C,2017,159:227-234.

[73] Seo D K,Gupta N,Whangbo M H,et al. Pressure-induced changes in the structure and band gap of CsGeX3(X=Cl,Br)studied by electronic band structure calculations. Inorg Chem,1998,37(3):407.

[74] Thiele G,Rotter H W,Schmidt K D. Kristall strukturen und Phasen transformationen von Caesiumtri halogen ogermanaten(Ⅱ)CsGeX3(X=Cl,Br,I). Z Anorg Allg Chem,1987,545(2):148-156.

[75] Stoumpos C C,Frazer L,Clark D J,et al. Hybrid germanium iodide perovskite semiconductors:active lone pairs,structural distortions,direct and indirect energy gaps,and strong nonlinear optical properties. J Am Chem Soc,2015,137(21):6804-6819.

[76] Thirumal K,Ding H,Yan C,et al. Lead-free germanium iodide perovskite materials for photovoltaic application. J Mater Chem A,2015,3(47):23829-23832.

[77] Chen F S. Optically induced change of refractive indices in LiNbO3 and LiTaO3. J App Phys,1969,40(8):3389-3396.

[78] Choi T,Lee S,Choi Y J,et al. Switchable ferroelectric diode and photovoltaic effect in BiFeO3. Science,2009,324(5923):63-66.

[79] Yang S Y,Martin L W,Byrnes S J,et al. Photovoltaic effects in BiFeO3. App Phys Lett,2009,95(6):355.

[80] Qu T L,Zhao Y G,Xie D,et al. Resistance switching and white-light photovoltaic effects in BiFeO3/Nb-SrTiO3 heterojunctions. App Phys Lett,2011,98(17):173507.

[81] Guo Y,Guo B,Dong W,et al. Evidence for oxygen vacancy or ferroelectric polarization induced switchable diode and photovoltaic effects in BiFeO3 based thin films. Nanotechnology,2013,24(27):275201.

[82] Bhatnagar A,Chaudhuri A R,Kim Y H,et al. Role of domain walls in the abnormal photovoltaic effect in BiFeO3. Nat Comm,2013,4(4):2835.

[83] Mcclure E T,Ball M R,Windl W,et al. ChemInform abstract:Cs2AgBiX6(X:Br,Cl):new visible light absorbing,lead-free halide perovskite semiconductors. Chem Mater,2016,28(5),1348-1354.

[84] Volonakis G,Filip M R,Haghighirad A A,et al. Lead-free halide double perovskites via heterovalent substitution of noble metals. J Phys Chem Letters,2016,7(7):1254.

[85] Xiao Z,Meng W,Wang J,et al. Thermodynamic stability and defect chemistry of bismuth based lead-free double perovskites. Chemsuschem,2016,9(18):2628-2633.

[86] Slavney A H,Hu T,Lindenberg A M,et al. A Bismuth-halide double perovskite with long carrier recombination lifetime for photovoltaic applications. J Am Chem Soc,2016,138(7):2138.

[87] Gou G,Young J,Liu X,et al. Interplay of cation ordering and ferroelectricity in perovskite tin iodides:designing a polar halide perovskite for photovoltaic applications. Inorg Chem,2017,56(1):26-32.

[88] Saparov B,Sun J P,Meng W,et al. Thin-film deposition and characterization of a Sn-deficient perovskite derivative Cs2SnI6. Chem Mater,2016,28(7):2315–2322.

[89] Lehner A J,Fabini D H,eVans H A,et al. Crystal and electronic structures of complex bismuth iodides A3Bi2I9(A=K,Rb,Cs)related to perovskite:aiding the rational design of photovoltaics. Chem Mater,2015,27(20):7137-7148.

[90] Park B W,Philippe B,Zhang X,et al. Bismuth based hybrid perovskites A3Bi2I9(A:methylammonium or cesium)for solar cell application. Adv Mater,2015,27(43):6806.

[91] Fang X,Ding J,Yuan N,et al. Graphene quantum dot incorporated perovskite films:passivating grain boundaries and facilitating electron extraction. Physical Chemistry Chemical Physics,2017,19(8):6057-6063.

[92] Ma Z,Peng S,Wu Y,et al. Air-stable layered bismuth-based perovskite-like materials:structures and semiconductor properties. Physica B,2017,526.

[93] Kim Y,Yang Z,Jain A,et al. Pure cubic-phase hybrid iodobismuthates AgBi2I7 for thin-film photovoltaics. Angew Chem int edit,2016,55(33):9586-9590.

[94] Johansson M B,Zhu H,Johansson E M J. Extended photo-conversion spectrum in low-toxic bismuth halide perovskite solar cells. J Phys Chem Lett,2016,7(17):3467.