Modification of the fluorinated tin oxide/electron-transporting material interface by a strong reductant and its effect on perovskite solar cell efficiency
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Jay B. Patel | Nakita K. Noel | S. Barlow | S. Marder | N. Koch | M. Johnston | L. Herz | H. Snaith | M. Riede | Berthold Wegner | Giulio Mazzotta | Rebecca B. M. Hill | Federico Pulvirenti
[1] Huanping Zhou,et al. An amino-substituted perylene diimide polymer for conventional perovskite solar cells , 2017 .
[2] Dong Uk Lee,et al. Iodide management in formamidinium-lead-halide–based perovskite layers for efficient solar cells , 2017, Science.
[3] Jay B. Patel,et al. Crystallization Kinetics and Morphology Control of Formamidinium–Cesium Mixed‐Cation Lead Mixed‐Halide Perovskite via Tunability of the Colloidal Precursor Solution , 2017, Advanced materials.
[4] Shahzad Ahmad,et al. Vacuum deposited perovskite solar cells employing dopant-free triazatruxene as the hole transport material , 2017 .
[5] Jay B. Patel,et al. Influence of Interface Morphology on Hysteresis in Vapor‐Deposited Perovskite Solar Cells , 2017 .
[6] Henry J. Snaith,et al. A low viscosity, low boiling point, clean solvent system for the rapid crystallisation of highly specular perovskite films , 2017 .
[7] A. Jen,et al. A Low‐Temperature, Solution‐Processable Organic Electron‐Transporting Layer Based on Planar Coronene for High‐performance Conventional Perovskite Solar Cells , 2016, Advanced materials.
[8] Henk J. Bolink,et al. Efficient vacuum deposited p-i-n and n-i-p perovskite solar cells employing doped charge transport layers , 2016 .
[9] S. Marder,et al. Cross-Linkable Fullerene Derivatives for Solution-Processed n–i–p Perovskite Solar Cells , 2016 .
[10] Hongzheng Chen,et al. Morphology control of planar heterojunction perovskite solar cells with fluorinated PDI films as organic electron transport layer , 2016 .
[11] Ming-Yu Kuo,et al. Hexaazatrinaphthylene Derivatives: Efficient Electron-Transporting Materials with Tunable Energy Levels for Inverted Perovskite Solar Cells. , 2016, Angewandte Chemie.
[12] Y. Fu,et al. New generation perovskite solar cells with solution-processed amino-substituted perylene diimide derivative as electron-transport layer , 2016 .
[13] S. Barlow,et al. Effective Work Function Reduction of Practical Electrodes Using an Organometallic Dimer , 2016 .
[14] Mingkui Wang,et al. Amino‐Functionalized Conjugated Polymer as an Efficient Electron Transport Layer for High‐Performance Planar‐Heterojunction Perovskite Solar Cells , 2016 .
[15] W. Jo,et al. A perylene diimide-based non-fullerene acceptor as an electron transporting material for inverted perovskite solar cells , 2016 .
[16] Reinhard Schwödiauer,et al. Flexible high power-per-weight perovskite solar cells with chromium oxide-metal contacts for improved stability in air. , 2015, Nature Materials.
[17] H. Snaith,et al. Out shining silicon. , 2015, Scientific American.
[18] Konrad Wojciechowski,et al. C60 as an Efficient n-Type Compact Layer in Perovskite Solar Cells. , 2015, The journal of physical chemistry letters.
[19] Dongmei Li,et al. Interfaces in perovskite solar cells. , 2015, Small.
[20] Talha M. Khan,et al. Organometallic dimers: application to work-function reduction of conducting oxides. , 2015, ACS applied materials & interfaces.
[21] C. Brabec,et al. Interface Engineering of Perovskite Hybrid Solar Cells with Solution-Processed Perylene–Diimide Heterojunctions toward High Performance , 2015 .
[22] S. Barlow,et al. Dimers of nineteen-electron sandwich compounds: crystal and electronic structures, and comparison of reducing strengths. , 2014, Chemistry.
[23] Sandeep Kumar Pathak,et al. Performance and Stability Enhancement of Dye‐Sensitized and Perovskite Solar Cells by Al Doping of TiO2 , 2014 .
[24] Norbert Koch,et al. Organic semiconductor density of states controls the energy level alignment at electrode interfaces , 2014, Nature Communications.
[25] Norbert Koch,et al. Band‐Bending in Organic Semiconductors: the Role of Alkali‐Halide Interlayers , 2014, Advanced materials.
[26] Sandeep Kumar Pathak,et al. Overcoming ultraviolet light instability of sensitized TiO2 with meso-superstructured organometal tri-halide perovskite solar cells , 2013, Nature Communications.
[27] N. Koch,et al. Role of charge transfer, dipole-dipole interactions, and electrostatics in Fermi-level pinning at a molecular heterojunction on a metal surface , 2013 .
[28] S. Barlow,et al. n-Doping of organic electronic materials using air-stable organometallics: a mechanistic study of reduction by dimeric sandwich compounds. , 2012, Chemistry.
[29] S. Mehraeen,et al. Ultralow doping in organic semiconductors: evidence of trap filling. , 2012, Physical review letters.
[30] Talha M. Khan,et al. A Universal Method to Produce Low–Work Function Electrodes for Organic Electronics , 2012, Science.
[31] N. Koch,et al. Gold work function reduction by 2.2 eV with an air-stable molecular donor layer , 2008 .
[32] W. R. Salaneck,et al. Integer charge transfer at the tetrakis(dimethylamino)ethylene/Au interface , 2008 .
[33] F. Flores,et al. Energy level alignment at metal/organic semiconductor interfaces: "pillow" effect, induced density of interface states, and charge neutrality level. , 2007, The Journal of chemical physics.
[34] P. Heremans,et al. Effect of doping on the density-of-states distribution and carrier hopping in disordered organic semiconductors , 2005 .
[35] Xianjie Liu,et al. Leuco Crystal Violet as a Dopant for n-Doping of Organic Thin Films of Fullerene C60 , 2004 .
[36] Norbert Koch,et al. Electronic structure and electrical properties of interfaces between metals and π-conjugated molecular films , 2003 .
[37] R. Hudej,et al. Electrical conductivity in metal/3,4,9,10-perylenetetracarboxylic dianhydride/metal structures , 2003 .
[38] K. Seki,et al. ENERGY LEVEL ALIGNMENT AND INTERFACIAL ELECTRONIC STRUCTURES AT ORGANIC/METAL AND ORGANIC/ORGANIC INTERFACES , 1999 .
[39] Stephen R. Forrest,et al. Ultrathin Organic Films Grown by Organic Molecular Beam Deposition and Related Techniques. , 1997, Chemical reviews.
[40] Heinz Langhals,et al. Cyclic Carboxylic Imide Structures as Structure Elements of High Stability. Novel Developments in Perylene Dye Chemistry , 1995 .
[41] P. Maitlis,et al. Electrochemical generation of 19- and 20-electron rhodocenium complexes and their properties , 1993 .