High efficiency MAPbI3-xClx perovskite solar cell via interfacial passivation

Similar documents
Supporting Information

Supporting Information

Supporting Information. High Efficiency Inverted Planar Perovskite Solar Cells with Solution-Processed. NiOx Hole Contact

Highly Efficient Flexible Perovskite Solar Cells Using Solution-Derived NiO x Hole Contacts

Pyridine-functionalized Fullerene Additive Enabling Coordination. Bulk Heterojunction Solar Cells

Efficient Inorganic Perovskite Light-Emitting Diodes with Polyethylene Glycol Passivated Ultrathin CsPbBr 3 Films

Supporting Information

Supporting Information

Low-temperature-processed inorganic perovskite solar cells via solvent engineering with enhanced mass transport

Electronic Supplementary Information

General Synthesis of Graphene-Supported. Bicomponent Metal Monoxides as Alternative High- Performance Li-Ion Anodes to Binary Spinel Oxides

Super Flexible, High-efficiency Perovskite Solar Cells Employing Graphene Electrodes: Toward Future Foldable Power Sources

Supporting Information. Rubidium Doping for Enhanced Performance of Highly Efficient Formamidinium-Based Perovskite Light-Emitting Diodes

Supporting Information

Graphene Size-dependent Modulation of Graphene Framework Contributing to Superior. Thermal Conductivity of Epoxy Composite

Supporting Information

Photocarrier Recombination and Injection Dynamics in Long-Term Stable Lead-Free CH 3 NH 3 SnI 3 Perovskite Thin Films and Solar Cells

Supporting Information for

Electronic Supplementary Information

Growth of Nanosized Single Crystals for Efficient

Kinetically-Enhanced Polysulfide Redox Reactions by Nb2O5. Nanocrystal for High-Rate Lithium Sulfur Battery

High Bending Durability of Efficient Flexible Perovskite Solar Cells Using Metal Oxide Electron Transport Layer

Supporting Information

Supplementary Materials for

bifunctional electrocatalyst for overall water splitting

Materials Chemistry A

Supporting Information

Supporting Information

Halide-Rich Synthesized Cesium Lead Bromide Perovskite Nanocrystals for Light-Emitting Diodes with Improved Performance

Supplementary Information

Self-floating nanostructural Ni-NiO x /Ni foam for solar thermal water evaporation

Highly doped and exposed Cu(I)-N active sites within graphene towards. efficient oxygen reduction for zinc-air battery

Electronic Supplementary Information. Benjia Dou,, Vanessa L. Pool, Michael F. Toney *,, Maikel F.A.M. van Hest *,

Facile synthesis of accordion-like Ni-MOF superstructure for highperformance

Self-assembled pancake-like hexagonal tungsten oxide with ordered mesopores for supercapacitors

Supporting Information. Co 4 N Nanosheets Assembled Mesoporous Sphere as a Matrix for Ultrahigh Sulfur Content Lithium Sulfur Batteries

Encapsulating perovskite solar cells to withstand damp heat and thermal cycling Figure S1

Hierarchical MoO 2 /Mo 2 C/C Hybrid Nanowires for High-Rate and. Long-Life Anodes for Lithium-Ion Batteries. Supporting Information

Electronic Supplementary information (ESI) for. High-Performance Electrothermal and Anticorrosive Transparent

Title of file for HTML: Supplementary Information Description: Supplementary Figures and Supplementary References

Supporting Information

Supporting Information

Engineering of Hollow Core-Shell Interlinked Carbon Spheres for Highly Stable Lithium-Sulfur Batteries

The Current Status of Perovskite Solar Cell Research at UCLA

Supporting Information. Engineering Two-Dimensional Mass-Transport Channels

A Scalable Synthesis of Few-layer MoS2. Incorporated into Hierarchical Porous Carbon. Nanosheets for High-performance Li and Na Ion

Solvent-Assisted Thermal-Pressure Strategy for. as High-Performance Perovskite Photodetectors

Electronic Supplementary Information

Synergistic Improvements in Stability and Performance of Lead Iodide Perovskite Solar Cells Incorporating Salt Additives

Efficient removal of typical dye and Cr(VI) reduction using N-doped

Science and Technology, Dalian University of Technology, Dalian , P. R. China b

SUPPORTING INFORMATION

Flexible Asymmetrical Solid-state Supercapacitors Based on Laboratory Filter Paper

Highly Stretchable and Transparent Thermistor Based on Self-Healing Double. Network Hydrogel

Supporting Information. Robust Bioinspired Graphene Film via π-π Cross-linking

Supporting Information. Zn 2 SnO 4 -based photoelectrodes for organolead halide perovskite solar cells

and Technology, Luoyu Road 1037, Wuhan, , P. R. China. *Corresponding author. ciac - Shanghai P. R.

Supporting Information. Bi-functional Catalyst with Enhanced Activity and Cycle Stability for. Rechargeable Lithium Oxygen Batteries

Nanochannel-Assisted Perovskite Nanowires: Growth Mechanisms. to Photodetector Applications

Metal-Organic Framework Derived Iron Sulfide-Carbon Core-Shell Nanorods as a Conversion-Type Battery Material

Supporting Information

Supporting Information

Efficiency Enhancement in Polymer Solar Cell Using Solution-processed Vanadium Oxide Hole Transport Layer

Photovoltaic Enhancement Due to Surface-Plasmon Assisted Visible-Light. Absorption at the Inartificial Surface of Lead Zirconate-Titanate Film

Supporting Information. Carbon nanofibers by pyrolysis of self-assembled perylene diimide derivative gels as supercapacitor electrode materials

Hole Selective NiO Contact for Efficient Perovskite Solar Cells with Carbon Electrode

Supporting Information

Photo of the mass manufacture of the Fe-rich nanofiber film by free-surface electrospinning technique

Please do not adjust margins. Electronic supplementary information

Supplementary Information

Thickness-tunable Core-shell Nanoparticles Encapsulated in Sandwich-like Carbon

Mechanically-stacked Perovskite/CIGS Tandem Solar Cells with Efficiency of 23.9% and Reduced Oxygen Sensitivity

Supporting Information

In-Situ Fabrication of CoS and NiS Nanomaterials Anchored on. Reduced Graphene Oxide for Reversible Lithium Storage

Hierarchical Nanocomposite by Integrating Reduced Graphene Oxide and Amorphous Carbon with Ultrafine MgO Nanocrystallites for Enhanced CO 2 Capture

Graphene Aerogel Composites Derived From Recycled. Cigarette Filter for Electromagnetic Wave Absorption

Electronic Supplementary Information

Supporting Information

Post-Healing of Defects: Alternative Way for Passivation of Carbon-Based Mesoscopic Perovskite Solar Cells via Hydrophobic Ligand Coordination

Supplementary Materials for

Supporting Information

Supporting Information. Ce 3+ -Doping to Modulate Photoluminescence Kinetics for Efficient CsPbBr 3 Nanocrystals Based Light-Emitting Diodes

Perovskite solar cells

Supplementary Information

Hierarchically mesoporous carbon nanopetal based electrodes for flexible. Electronic Supplementary Information

Perovskite Solar Cells Powered Electrochromic Batteries for Smart. Windows

Supporting Information

Severe Morphological Deformation of Spiro- Temperature

Multicomponent (Mo, Ni) metal sulfide and selenide microspheres with empty nanovoids as anode materials for Na-ion batteries

Tuning the Shell Number of Multi-Shelled Metal Oxide. Hollow Fibers for Optimized Lithium Ion Storage

Hole-transport material-free perovskite-based solar cells

Supporting Information

Co-vacancy-rich Co 1 x S nanosheets anchored on rgo for high-efficiency oxygen evolution

Electronic Supplementary Information

Large-Scale Multifunctional Electrochromic-Energy Storage Device Based on Tungsten Trioxide Monohydrate Nanosheets and Prussian White

Carbon Dots Modified Mesoporous Organosilica as an Adsorbent for the. Removal of 2, 4-Dichlorophenol and Heavy Metal Ions

Novel Inorganic-Organic Perovskites for Solution Processed Photovoltaics. PIs: Mike McGehee and Hema Karunadasa

Hydrothermally Activated Graphene Fiber Fabrics for Textile. Electrodes of Supercapacitors

Enhanced photocurrent of ZnO nanorods array sensitized with graphene. quantum dots

Revelation of the Excellent Intrinsic Activity. Evolution Reaction in Alkaline Medium

Transcription:

Electronic Supplementary Material (ESI) for Nanoscale. This journal is The Royal Society of Chemistry 2018 Supporting Information High efficiency MAPbI3-xClx perovskite solar cell via interfacial passivation By Sijian Yuan +, Jiao Wang +, Kunlong Yang +, Pengfei Wang +, Xin Zhang +, Yiqiang Zhan + * and Lirong Zheng & * Sijian Yuan, Jiao Wang,Pengfei Wang, Xin Zhang, Prof. Yiqiang Zhan State Key Laboratory of ASIC and System, SIST, Fudan University, 200433, Shanghai, China E-mail: yqzhan@fudan.edu.cn Kunlong Yang, Prof. Lirong Zheng Royal Inst Technol KTH, ipack VINN Excellence Ctr, S-16440, Stockholm, Sweden E-mail: lrzheng@fudan.edu.cn Figure s1. The XRD of perovskite fabricated on different thickness LiF.

Figure s2. The PL lifetime of perovskite fabricated on different thickness LiF. From the PL result, different devices show almost the same PL life time. It is well known that the PL life time are mainly determined by the perovskite bulk properties and the interfacial carrier transport. While the passivated the interfacial traps have small effect to the perovskite bulk properties, and also, it cannot enhance the interfacial carrier transport dramatically. So the PL life time shows few difference. Figure s3. The IV of the LiTFSI device compared with 0.7 nm PbF 2 and 0.7 nm LiF Devices.

Supplementary Table 1. Performance of reported perovskite solar cellls based on SnO 2 electronic transport layer. Voc Jsc FF Eff Perovskite SnO 2 processing (V) (ma*cm -2 ) (%) (%) types tempure ( ) 1 1.112 22.8 75.78 19.21 CH 3 NH 3 PbI 3 200 2 1.147 22.03 77.4 19.56 Cs 0.056 FA 0.76 MA 0.15 PbI 2.42 Br 0.4 180 3 1.144 22.64 74.0 19.17 (FAPbI 3 ) 0.875 (CsPbBr 3 ) 0.125 250 4 1.023 21.19 67.8 14.69 CH 3 NH 3 PbI 3 500 5 1.145 22.5 73.9 19.05 Cs 0.056 FA 0.76 MA 0.15 PbI 2.42 Br 0.4 180 8 6 1.07 22.8 70 17.0 (FAPbI 3 ) 0.875 (CsPbBr 3 ) 0.125 450 7 1.13 22.58 78 19.8 (FAPbI 3 ) 0.85 (MAPbBr 3 ) 0.15 250 8 1.06 21.4 67 15.3 CH 3 NH 3 PbI 3 Photonic Anneal 9 1.08 22.55 71 17.29 CH 3 NH 3 PbI 3 95 10 1.04 21.2 71.2 14.5 CH 3 NH 3 PbI 3 550 11 1.10 22.03 74.6 18.77 CH 3 NH 3 PbI 3 250 12 1.06 21.94 61.73 14.36 CH 3 NH 3 PbI 3-x C lx 180 13 1.12 22.43 79.62 20.42 CH 3 NH 3 PbI 3 150 14 1.03 22.31 79 18.16 CH 3 NH 3 PbI 3 450 15 1.19 22.2 78.7 20.8 (FAPbI 3 ) 0.875 (MAPbBr 3 ) 0.125 180 Our 1.16 21.7 73.1 18.3 CH 3 NH 3 PbI 3 8

References (1) Xiong, L.; Qin, M.; Chen, C.; Wen, J.; Yang, G.; Guo, Y.; Ma, J.; Zhang, Q.; Qin, P.; Li, S. Fully High Temperature Processed SnO2 as Blocking Layer and Scaffold for Efficient, Stable, and Hysteresis Free Mesoporous Perovskite Solar Cells. Adv Funct Mater 2018, 28 (10), 1706276. (2) Yu, H.; Yeom, H. I.; Lee, J. W.; Lee, K.; Hwang, D.; Yun, J.; Ryu, J.; Lee, J.; Bae, S.; Kim, S. K. Superfast Room Temperature Activation of SnO2 Thin Films via Atmospheric Plasma Oxidation and Their Application in Planar Perovskite Photovoltaics. Adv Mater 2018, 30 (10), 1704852. (3) Jung, K. H.; Seo, J. Y.; Lee, S.; Shin, H.; Park, N. G. Solution-Processed SnO2 Thin Film for a Hysteresis- Free Planar Perovskite Solar Cell with a Power Conversion Efficiency of 19.2%. J Mater Chem A 2017, 5, 24790. (4) Rao, H.; Chen, B.; Li, W.; Xu, Y.; Chen, H.; Kuang, D.; Su, C. Improving the Extraction of Photogenerated Electrons with SnO2 Nanocolloids for Efficient Planar Perovskite Solar Cells. Adv Funct Mater 2016, 25 (46), 7200 7207. (5) Yang, G.; Chen, C.; Yao, F.; Chen, Z.; Zhang, Q.; Zheng, X.; Ma, J.; Lei, H.; Qin, P.; Xiong, L. Effective Carrier-Concentration Tuning of SnO2 Quantum Dot Electron-Selective Layers for High-Performance Planar Perovskite Solar Cells. Adv Mater 2018, 30 (14), 1706023. (6) Roose, B.; Johansen, C. M.; Dupraz, K.; Jaouen, T.; Aebi, P.; Steiner, U.; Abate, A. Ga-Doped SnO2 Mesoporous Contact for UV Stable Highly Efficient Perovskite Solar Cells. J Mater Chem A 2017, 6, 1850. (7) Lee, Y.; Paek, S.; Cho, K. T.; Oveisi, E.; Gao, P.; Lee, S.; Park, J. S.; Zhang, Y.; Humphry-Baker, R.; Asiri, A. M. Enhanced Charge Collection with Passivation of the Tin Oxide Layer in Planar Perovskite Solar Cells. J Mater Chem A 2017, 5, 12729. (8) Zhu, M.; Liu, W.; Ke, W.; Clark, S.; Secor, E. B.; Song, T. Bin; Kanatzidis, M. G.; Li, X.; Hersam, M. C. Millisecond-Pulsed Photonically-Annealed Tin Oxide Electron Transport Layers for Efficient Perovskite

Solar Cells. J Mater Chem A 2017, 5 (46), 24110. (9) Zuo, L.; Chen, Q.; De, M. N.; Hsieh, Y. T.; Chen, H.; Sun, P.; Chang, S. Y.; Zhao, H.; Dong, S.; Yang, Y. Tailoring the Interfacial Chemical Interaction for High-Efficiency Perovskite Solar Cells. Nano Lett 2016, 17 (1), 269. (10) Huang, L.; Sun, X.; Li, C.; Xu, J.; Xu, R.; Du, Y.; Ni, J.; Cai, H.; Li, J.; Hu, Z. UV-Sintered Low- Temperature Solution-Processed SnO2 as Robust Electron Transport Layer for Efficient Planar Heterojunction Perovskite Solar Cells. ACS Appl Mater Interfaces 2017, 9, 21909. (11) Yang, G.; Lei, H.; Hong, T.; Zheng, X.; Ma, J.; Qin, L.; Ke, W.; Chen, Z.; Xiong, L.; Qin, P. Reducing Hysteresis and Enhancing Performance of Perovskite Solar Cells Using Low Temperature Processed Y Doped SnO2 Nanosheets as Electron Selective Layers. Small 2017, 13 (2), 201601769. (12) Xiong, L.; Qin, M.; Yang, G.; Guo, Y.; Lei, H.; Liu, Q.; Ke, W.; Tao, H.; Qin, P.; Li, S. Performance Enhancement of High Temperature SnO2-Based Planar Perovskite Solar Cells: Electrical Characterization and Mechanism Understanding. J Mater Chem A 2016, 4 (21), 8374. (13) Wang, C.; Xiao, C.; Yu, Y.; Zhao, D.; Awni, R. A.; Grice, C. R.; Ghimire, K.; Constantinou, I.; Liao, W.; Cimaroli, A. J. Understanding and Eliminating Hysteresis for Highly Efficient Planar Perovskite Solar Cells. Adv Energy Mater 2017, 7, 1700414. (14) Dong, Q.; Wang, M.; Zhang, Q.; Chen, F.; Zhang, S.; Bian, J.; Ma, T.; Wang, L.; Shi, Y. Discontinuous SnO 2 Derived Blended-Interfacial-Layer in Mesoscopic Perovskite Solar Cells: Minimizing Electron Transfer Resistance and Improving Stability. Nano Energy 2017, 38, 358. (15) Anaraki, E. H.; Kermanpur, A.; Steier, L.; Domanski, K.; Matsui, T.; Tress, W.; Saliba, M.; Abate, A.; Grätzel, M.; Hagfeldt, A. Highly Efficient and Stable Planar Perovskite Solar Cells by Solution-Processed Tin Oxide. Energy Environ Sci 2016, 9 (10), 3128.