Publicaciones en las que colabora con Samrana Kazim (99)

2023

  1. Amplifying the Performance and Stability of Perovskite Solar Cells Using Fluorinated Salt as the Surface Passivator

    Energy Technology, Vol. 11, Núm. 1

  2. Fluorinated- and non-fluorinated-diarylamine-Zn(ii) and Cu(ii) phthalocyanines as symmetrical vs. asymmetrical hole selective materials

    Journal of Materials Chemistry C, Vol. 11, Núm. 24, pp. 8243-8253

  3. Interface tweaking of perovskite solar cells with carbon nitride-based 2D materials

    Nano Energy, Vol. 109

  4. Lead-sulfur interaction induced damp and water stability in pure formamidinium lead triiodide

    Cell Reports Physical Science, Vol. 4, Núm. 8

  5. Low Switching Power Neuromorphic Perovskite Devices with Quick Relearning Functionality

    Advanced Electronic Materials, Vol. 9, Núm. 8

  6. Molecular Tailoring of Pyridine Core-Based Hole Selective Layer for Lead Free Double Perovskite Solar Cells Fabrication

    ACS Applied Energy Materials, Vol. 6, Núm. 15, pp. 7955-7964

  7. Overcoming Limitations in Water-Ethanol Sprayed Superstrate Solar Cells by Compositional Engineering of Cu2CdSn(S,Se)4

    ACS Applied Materials and Interfaces, Vol. 15, Núm. 21, pp. 25684-25692

  8. Performance and Degradation in Silicon PV Systems Under Outdoor Conditions in Relation to Reliability Aspects of Silicon PV Modules - Summary of Results of COST Action PEARL PV

    Conference Record of the IEEE Photovoltaic Specialists Conference

  9. Probing proton diffusion as a guide to environmental stability in powder-engineered FAPbI3 and CsFAPbI3 perovskites

    Cell Reports Physical Science, Vol. 4, Núm. 3

  10. Uncovering the Role of Electronic Doping in Lead-free Perovskite (CH3NH3)2CuCl4-xBrx and Solar Cells Fabrication

    ChemSusChem, Vol. 16, Núm. 11

2022

  1. Advances in 4D Printing of Shape-Memory Materials: Current Status and Developments

    Shape Memory Composites Based on Polymers and Metals for 4D Printing: Processes, Applications and Challenges (Springer International Publishing), pp. 1-27

  2. Automated Machine Learning Approach in Material Discovery of Hole Selective Layers for Perovskite Solar Cells

    Energy Technology

  3. Dimers of diethynyl-conjugated zinc-phthalocyanine as hole selective layers for perovskite solar cell fabrication

    Journal of Materials Chemistry C, Vol. 10, Núm. 33, pp. 11975-11982

  4. Erratum: The impact of fluorine atoms on a triphenylamine-based dopant-free hole-selective layer for perovskite solar cells (J. Mater. Chem. C (2022) 10 (476–484) DOI: 10.1039/D1TC04972K)

    Journal of Materials Chemistry C

  5. Impact of Polymeric Hole-Selective Layers on Chemical Inductance in Inverted Perovskite Solar Cells

    Energy Technology, Vol. 10, Núm. 11

  6. Interface engineering of a hole-transport layer/perovskite with low-band-gap 2D-carbon nitrides for solar cell fabrication

    Sustainable Energy and Fuels, Vol. 7, Núm. 3, pp. 763-768

  7. Leverage of Pyridine Isomer on Phenothiazine Core: Organic Semiconductors as Selective Layers in Perovskite Solar Cells

    ACS Applied Materials and Interfaces, Vol. 14, Núm. 4, pp. 5729-5739

  8. Microstrain and Urbach Energy Relaxation in FAPbI3-Based Solar Cells through Powder Engineering and Perfluoroalkyl Phosphate Ionic Liquid Additives

    ACS Applied Materials and Interfaces, Vol. 14, Núm. 21, pp. 24546-24556