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·24 工程科学学报,第42卷,第1期 [16]Da P M.Zheng G F.Tailoring interface of lead-halide perovskite nanorod arrays for highly stable and efficient perovskite solar solar cells.Nano Res,2017,10(5):1471 cells.Electrochim Acta,2018,283:1134 [17]Gholipour S,Saliba M.From exceptional properties to stability [34]Tavakoli MM,Yadav P,Tavakoli R,et al.Surface engineering of challenges of perovskite solar cells.Small,2018,14(46):1802385 TiO,ETL for highly efficient and hysteresis-less planar perovskite [18]Pang S P,Hu H,Zhang J L,et al.NH2CH=NH2Pbl::an alternative solar cell (21.4%)with enhanced open-circuit voltage and stabi- organolead iodide perovskite sensitizer for mesoscopic solar cells. lity.Adv Energy Mater,2018,8(23):1800794 Chem Mater,2014,26(3):1485 [35]Mahmoudi T,Wang Y S,Hahn Y B.Stability enhancement in [19]Jeon N J,Noh J H,Yang W S,et al.Compositional engineering of perovskite solar cells with perovskite/silver-graphene composites perovskite materials for high-performance solar cells.Nature, in the active layer.ACS Energy Len,019,4(1):235 2015,517(7535):476 [36]Li Z,Xiao C X,Yang Y,et al.Extrinsic ion migration in [20]Saliba M,Matsui T,Seo J Y,et al.Cesium-containing triple cation perovskite solar cells.Energy Emviron Sci,2017,10(5):1234 perovskite solar cells:improved stability,reproducibility and high [37]Wei D,Ma F S,Wang R,et al.Ion-migration inhibition by the efficiency.Energy Environ Sci,2016,9(6):1989 cation-t interaction in perovskite materials for efficient and stable [21]Shi Z J,Guo J,Chen Y H,et al.Lead-free organic-inorganic perovskite solar cells.Ady Mater,2018,30(31):1707583 hybrid perovskites for photovoltaic applications:recent advances [38]Liu L,Huang S,Lu Y,et al.Grain-boundary "patches"by in situ and perspectives.Ady Mater,2017,29(16):1605005 conversion to enhance perovskite solar cells stability.Ad Mater, [22]Jokar E,Chien C H,Fathi A,et al.Slow surface passivation and 2018,30(29):1800544 crystal relaxation with additives to improve device performance [39]Tsai H,Asadpour R,Blancon J C,et al.Design principles for and durability for tin-based perovskite solar cells.Energy Emviron electronic charge transport in solution-processed vertically stacked Sc,2018,11(9):2353 2D perovskite quantum wells.Nat Commun,2018,9:2130 [23]Xiao Z W,Song Z N,Yan Y F.From lead halide perovskites to [40]Chen P,Bai Y,Wang S C,et al.In situ growth of 2D perovskite lead-free metal halide perovskites and perovskite derivatives.Ad capping layer for stable and efficient perovskite solar cells.Adv Ma1er,2019,31(47):1803792 Funct Mater,.2018,28(17):1706923 [24]Li M,Wang Z K.Zhuo M P,et al.Pb-Sn-Cu temary organome- [41]Lin Y,Bai Y,Fang Y J,et al.Enhanced thermal stability in tallic halide perovskite solar cells.Ad Mater,2018,30(20) perovskite solar cells by assembling 2D/3D stacking structures.J 1800258 Phys Chem Lett,2018,9(3):654 [25]Saliba M,Correa-Baena J P,Gratzel M,et al.Perovskite solar [42]Thote A,Jeon I,Lee J W,et al.Stable and reproducible 2D/3D cells:from the atomic level to film quality and device formamidinium-lead-iodide perovskite solar cells.ACSAppl Ener performance.Angew Chem Int Ed,2018,57(10):2554 gy Mater,2019,2(4:2486 [26]Eperon G E,StranksSD.Menelaou C.et al.Formamidinium lead [43]Lee J W,Dai Z H,Han T H,et al.2D perovskite stabilized phase trihalide:a broadly tunable perovskite for efficient planar pure formamidinium perovskite solar cells.Nat Comm,2018,9: heterojunction solar cells.Energy Emviron Sci,2014.7(3):982 3021 [27]Chen Q,Zhou H P,Fang Y H,et al.The optoelectronic role of [44]Li M H,Yeh H S,Chiang Y H,et al.Highly efficient 2D/3D chlorine in CH:NH,Pbl (CI)-based perovskite solar cells.Nar hybrid perovskite solar cells via low-pressure vapor-assisted Commun,2015,6:7269 solution process.Adv Mater,2018,30(30):1801401 [28]Conings B,Drijkoningen J,Gauquelin N,et al.Intrinsic thermal [45]Smith I C,Hoke E T,Solis-Ibarra D,et al.A layered hybrid instability of methylammonium lead trihalide perovskite.Ad perovskite solar-cell absorber with enhanced moisture stability. Energy Mater,2015,5(15):1500477 Angew Chem Int Ed,2014,53(42):11232 [29]Huang J B,Tan S Q,Lund P D,et al.Impact of H2O on organic- [46]Quan L N,Yuan M J,Comin R,et al.Ligand-stabilized reduced- inorganic hybrid perovskite solar cells.Energy Emviron Sci,2017, dimensionality perovskites.JAm Chem Soc,2016,138(8):2649 10(11):2284 [47]Seok S I,Gratzel M,Park N G.Methodologies toward highly [30]Eperon G E,Habisreutinger S N,Leijtens T,et al.The importance efficient perovskite solar cells.Small,2018,14(20):1704177 of moisture in hybrid lead halide perovskite thin film fabrication. [48]Li L,Chen Y H,Liu Z H,et al.The additive coordination effect on 4 CS Nano,2015,9(9:9380 hybrids perovskite crystallization and high-performance solar cell. [31]Fu Q X,Tang X L,Huang B,et al.Recent progress on the long- Ady Mater,,2016,28(44):9862 term stability of perovskite solar cells.Adv Sci,2018,5(5) [49]Huang P H,Wang Y H,Ke J C,et al.The effect of solvents on the 1700387 performance of CH3NH3Pbl3 perovskite solar cells.Energies, [32]Jeon N J,Na H,Jung E H,et al.A fluorene-terminated hole- 2017,10(5):599 transporting material for highly efficient and stable perovskite [50]Han F,Luo J S,Malik HA,et al.A functional sulfonic additive for solar cells.Nat Energy,2018,3:682 high efficiency and low hysteresis perovskite solar cells.J Power [33]Zhang C X,Deng X S,Zheng J F,et al.Solution-synthesized SnO2 So1rces,2017,359:577Da P M, Zheng G F. Tailoring interface of lead-halide perovskite solar cells. Nano Res, 2017, 10(5): 1471 [16] Gholipour  S,  Saliba  M.  From  exceptional  properties  to  stability challenges of perovskite solar cells. Small, 2018, 14(46): 1802385 [17] Pang S P, Hu H, Zhang J L, et al. NH2CH═NH2PbI3 : an alternative organolead iodide perovskite sensitizer for mesoscopic solar cells. Chem Mater, 2014, 26(3): 1485 [18] 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 [19] Saliba M, Matsui T, Seo J Y, et al. Cesium-containing triple cation perovskite solar cells: improved stability, reproducibility and high efficiency. Energy Environ Sci, 2016, 9(6): 1989 [20] Shi  Z  J,  Guo  J,  Chen  Y  H,  et  al.  Lead-free  organic−inorganic hybrid  perovskites  for  photovoltaic  applications:  recent  advances and perspectives. Adv Mater, 2017, 29(16): 1605005 [21] Jokar E, Chien C H, Fathi A, et al. Slow surface passivation and crystal  relaxation  with  additives  to  improve  device  performance and durability for tin-based perovskite solar cells. Energy Environ Sci, 2018, 11(9): 2353 [22] Xiao Z W, Song Z N, Yan Y F. From lead halide perovskites to lead-free metal halide perovskites and perovskite derivatives. Adv Mater, 2019, 31(47): 1803792 [23] Li M, Wang Z K, Zhuo M P, et al. Pb–Sn‒Cu ternary organome￾tallic  halide  perovskite  solar  cells. Adv Mater,  2018,  30(20): 1800258 [24] Saliba  M,  Correa-Baena  J  P,  Grätzel  M,  et  al.  Perovskite  solar cells:  from  the  atomic  level  to  film  quality  and  device performance. Angew Chem Int Ed, 2018, 57(10): 2554 [25] Eperon G E, Stranks S D, Menelaou C, et al. Formamidinium lead trihalide:  a  broadly  tunable  perovskite  for  efficient  planar heterojunction solar cells. Energy Environ Sci, 2014, 7(3): 982 [26] Chen  Q,  Zhou  H  P,  Fang  Y  H,  et  al.  The  optoelectronic  role  of chlorine  in  CH3NH3PbI3 (Cl)-based  perovskite  solar  cells. Nat Commun, 2015, 6: 7269 [27] Conings  B,  Drijkoningen  J,  Gauquelin  N,  et  al.  Intrinsic  thermal instability  of  methylammonium  lead  trihalide  perovskite. Adv Energy Mater, 2015, 5(15): 1500477 [28] Huang J B, Tan S Q, Lund P D, et al. Impact of H2O on organic– inorganic hybrid perovskite solar cells. Energy Environ Sci, 2017, 10(11): 2284 [29] Eperon G E, Habisreutinger S N, Leijtens T, et al. The importance of moisture in hybrid lead halide perovskite thin film fabrication. ACS Nano, 2015, 9(9): 9380 [30] Fu Q X, Tang X L, Huang B, et al. Recent progress on the long￾term  stability  of  perovskite  solar  cells. Adv Sci,  2018,  5(5): 1700387 [31] Jeon  N  J,  Na  H,  Jung  E  H,  et  al.  A  fluorene-terminated  hole￾transporting  material  for  highly  efficient  and  stable  perovskite solar cells. Nat Energy, 2018, 3: 682 [32] [33] Zhang C X, Deng X S, Zheng J F, et al. Solution-synthesized SnO2 nanorod  arrays  for  highly  stable  and  efficient  perovskite  solar cells. Electrochim Acta, 2018, 283: 1134 Tavakoli M M, Yadav P, Tavakoli R, et al. Surface engineering of TiO2 ETL for highly efficient and hysteresis‒less planar perovskite solar  cell  (21.4%)  with  enhanced  open ‒circuit  voltage  and  stabi￾lity. Adv Energy Mater, 2018, 8(23): 1800794 [34] Mahmoudi  T,  Wang  Y  S,  Hahn  Y  B.  Stability  enhancement  in perovskite solar cells with perovskite/silver –graphene composites in the active layer. ACS Energy Lett, 2019, 4(1): 235 [35] Li  Z,  Xiao  C  X,  Yang  Y,  et  al.  Extrinsic  ion  migration  in perovskite solar cells. Energy Environ Sci, 2017, 10(5): 1234 [36] Wei  D,  Ma  F  S,  Wang  R,  et  al.  Ion-migration  inhibition  by  the cation-π interaction in perovskite materials for efficient and stable perovskite solar cells. Adv Mater, 2018, 30(31): 1707583 [37] Liu L, Huang S, Lu Y, et al. Grain-boundary “patches” by in situ conversion to enhance perovskite solar cells stability. Adv Mater, 2018, 30(29): 1800544 [38] Tsai  H,  Asadpour  R,  Blancon  J  C,  et  al.  Design  principles  for electronic charge transport in solution-processed vertically stacked 2D perovskite quantum wells. Nat Commun, 2018, 9: 2130 [39] Chen P, Bai Y, Wang S C, et al. In situ growth of 2D perovskite capping  layer  for  stable  and  efficient  perovskite  solar  cells. Adv Funct Mater, 2018, 28(17): 1706923 [40] Lin  Y,  Bai  Y,  Fang  Y  J,  et  al.  Enhanced  thermal  stability  in perovskite solar cells by assembling 2D/3D stacking structures. J Phys Chem Lett, 2018, 9(3): 654 [41] Thote  A,  Jeon  I,  Lee  J  W,  et  al.  Stable  and  reproducible  2D/3D formamidinium–lead–iodide perovskite solar cells. ACS Appl Ener￾gy Mater, 2019, 2(4): 2486 [42] Lee J W, Dai Z H, Han T H, et al. 2D perovskite stabilized phase￾pure formamidinium perovskite solar cells. Nat Commun, 2018, 9: 3021 [43] Li  M  H,  Yeh  H  S,  Chiang  Y  H,  et  al.  Highly  efficient  2D/3D hybrid  perovskite  solar  cells via low-pressure  vapor-assisted solution process. Adv Mater, 2018, 30(30): 1801401 [44] Smith  I  C,  Hoke  E  T,  Solis-Ibarra  D,  et  al.  A  layered  hybrid perovskite  solar-cell  absorber  with  enhanced  moisture  stability. Angew Chem Int Ed, 2014, 53(42): 11232 [45] Quan L N, Yuan M J, Comin R, et al. Ligand-stabilized reduced￾dimensionality perovskites. J Am Chem Soc, 2016, 138(8): 2649 [46] Seok  S  I,  Grätzel  M,  Park  N  G.  Methodologies  toward  highly efficient perovskite solar cells. Small, 2018, 14(20): 1704177 [47] Li L, Chen Y H, Liu Z H, et al. The additive coordination effect on hybrids perovskite crystallization and high-performance solar cell. Adv Mater, 2016, 28(44): 9862 [48] Huang P H, Wang Y H, Ke J C, et al. The effect of solvents on the performance  of  CH3NH3PbI3 perovskite  solar  cells. Energies, 2017, 10(5): 599 [49] Han F, Luo J S, Malik H A, et al. A functional sulfonic additive for high efficiency and low hysteresis perovskite solar cells. J Power Sources, 2017, 359: 577 [50] · 24 · 工程科学学报,第 42 卷,第 1 期
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