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Perowskit‐Solarzellen: atomare Ebene, Schichtqualität und Leistungsfähigkeit der Zellen.
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- Angewandte Chemie, 2018, v. 130, n. 10, p. 2582, doi. 10.1002/ange.201703226
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Perovskite Solar Cells: From the Atomic Level to Film Quality and Device Performance.
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- Angewandte Chemie International Edition, 2018, v. 57, n. 10, p. 2554, doi. 10.1002/anie.201703226
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- Article
Planar Perovskite Solar Cells with High Open‐Circuit Voltage Containing a Supramolecular Iron Complex as Hole Transport Material Dopant.
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- ChemPhysChem, 2018, v. 19, n. 11, p. 1363, doi. 10.1002/cphc.201800032
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Self‐Powered Sensors Enabled by Wide‐Bandgap Perovskite Indoor Photovoltaic Cells.
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- Advanced Functional Materials, 2019, v. 29, n. 42, p. N.PAG, doi. 10.1002/adfm.201904072
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- Article
The Role of Grain Boundaries in Perovskite Solar Cells.
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- Advanced Energy Materials, 2019, v. 9, n. 38, p. N.PAG, doi. 10.1002/aenm.201901489
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Imaging and Mapping Characterization Tools for Perovskite Solar Cells.
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- Advanced Energy Materials, 2019, v. 9, n. 30, p. N.PAG, doi. 10.1002/aenm.201900444
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- Article
Ionic Liquid Control Crystal Growth to Enhance Planar Perovskite Solar Cells Efficiency.
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- Advanced Energy Materials, 2016, v. 6, n. 20, p. n/a, doi. 10.1002/aenm.201600767
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Highly Efficient and Stable Perovskite Solar Cells based on a Low-Cost Carbon Cloth.
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- Advanced Energy Materials, 2016, v. 6, n. 20, p. n/a, doi. 10.1002/aenm.201601116
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Solar Cells: Ionic Liquid Control Crystal Growth to Enhance Planar Perovskite Solar Cells Efficiency (Adv. Energy Mater. 20/2016).
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- Advanced Energy Materials, 2016, v. 6, n. 20, p. n/a, doi. 10.1002/aenm.201670119
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Inverted Current-Voltage Hysteresis in Mixed Perovskite Solar Cells: Polarization, Energy Barriers, and Defect Recombination.
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- Advanced Energy Materials, 2016, v. 6, n. 19, p. n/a, doi. 10.1002/aenm.201600396
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- Article
Constructive Effects of Alkyl Chains: A Strategy to Design Simple and Non-Spiro Hole Transporting Materials for High-Efficiency Mixed-Ion Perovskite Solar Cells.
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- Advanced Energy Materials, 2016, v. 6, n. 13, p. 1, doi. 10.1002/aenm.201502536
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- Article
Enhanced Efficiency and Stability of Perovskite Solar Cells Through Nd-Doping of Mesostructured TiO<sub>2</sub>.
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- Advanced Energy Materials, 2016, v. 6, n. 2, p. n/a, doi. 10.1002/aenm.201501868
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- Article
Understanding the Role of Cesium on Chemical Complexity in Methylammonium‐Free Metal Halide Perovskites.
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- Advanced Energy Materials, 2023, v. 13, n. 33, p. 1, doi. 10.1002/aenm.202202880
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- Article
The Role of Dimensionality on the Optoelectronic Properties of Oxide and Halide Perovskites, and their Halide Derivatives.
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- Advanced Energy Materials, 2022, v. 12, n. 4, p. 1, doi. 10.1002/aenm.202100499
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Frontispiece: Perovskite Solar Cells: From the Laboratory to the Assembly Line.
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- Chemistry - A European Journal, 2018, v. 24, n. 13, p. 1, doi. 10.1002/chem.201881362
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Perovskite Solar Cells: From the Laboratory to the Assembly Line.
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- Chemistry - A European Journal, 2018, v. 24, n. 13, p. 3083, doi. 10.1002/chem.201704507
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- Article
Effects of Alkaline Earth Metal Additives on Methylammonium‐Free Lead Halide Perovskite Thin Films and Solar Cells.
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- Solar RRL, 2022, v. 6, n. 8, p. 1, doi. 10.1002/solr.202100999
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Enhanced electronic properties in mesoporous TiO<sub>2</sub> via lithium doping for high-efficiency perovskite solar cells.
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- Nature Communications, 2016, v. 7, n. 1, p. 10379, doi. 10.1038/ncomms10379
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Globularity-Selected Large Molecules for a New Generation of Multication Perovskites.
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- Advanced Materials, 2017, v. 29, n. 38, p. n/a, doi. 10.1002/adma.201702005
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- Article
High Temperature-Stable Perovskite Solar Cell Based on Low-Cost Carbon Nanotube Hole Contact.
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- Advanced Materials, 2017, v. 29, n. 17, p. n/a, doi. 10.1002/adma.201606398
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- Article
Enhancing Efficiency of Perovskite Solar Cells via N-doped Graphene: Crystal Modification and Surface Passivation.
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- Advanced Materials, 2016, v. 28, n. 39, p. 8681, doi. 10.1002/adma.201602785
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- Article
Unbroken Perovskite: Interplay of Morphology, Electro-optical Properties, and Ionic Movement.
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- Advanced Materials, 2016, v. 28, n. 25, p. 5031, doi. 10.1002/adma.201600624
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State‐of‐the‐Art Electron‐Selective Contacts in Perovskite Solar Cells.
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- Advanced Materials Interfaces, 2018, v. 5, n. 22, p. N.PAG, doi. 10.1002/admi.201800408
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Nanometer Control of Ruddlesden‐Popper Interlayers by Thermal Evaporation for Efficient Perovskite Photovoltaics.
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- Advanced Materials, 2024, v. 36, n. 35, p. 1, doi. 10.1002/adma.202404795
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Interface Reconstruction from Ruddlesden–Popper Structures Impacts Stability in Lead Halide Perovskite Solar Cells (Adv. Mater. 51/2022).
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- Advanced Materials, 2022, v. 34, n. 51, p. 1, doi. 10.1002/adma.202270350
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Interface Reconstruction from Ruddlesden–Popper Structures Impacts Stability in Lead Halide Perovskite Solar Cells.
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- Advanced Materials, 2022, v. 34, n. 51, p. 1, doi. 10.1002/adma.202204726
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- Article
Additive-Free Transparent Triarylamine-Based Polymeric Hole-Transport Materials for Stable Perovskite Solar Cells.
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- ChemSusChem, 2016, v. 9, n. 18, p. 2567, doi. 10.1002/cssc.201600762
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Inside Back Cover: Additive-Free Transparent Triarylamine-Based Polymeric Hole-Transport Materials for Stable Perovskite Solar Cells (ChemSusChem 18/2016).
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- ChemSusChem, 2016, v. 9, n. 18, p. 2715, doi. 10.1002/cssc.201601124
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A New 1,3,4-Oxadiazole-Based Hole-Transport Material for Efficient CH<sub>3</sub>NH<sub>3</sub>PbBr<sub>3</sub> Perovskite Solar Cells.
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- ChemSusChem, 2016, v. 9, n. 7, p. 657, doi. 10.1002/cssc.201501665
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- Article