Publications/Patents

2025
Naresh-Kumar Pendyala, Ankita Kolay, Yallam Naidu Ponnada, Antonio Guerrero, and Lioz. Etgar. 2/19/2025. “Evolving Solar Cell Manufacturing: The Promising Outlook ofOpen-Air Perovskite Printing.” Sustainable Energy Fuels, 2025, Accepted .
publishedd5se00002e.pdf
Tehila Wallach and Lioz. Etgar. 2/4/2025. “Highly transparent and semi-transparent perovskites and their applications.” Appl. Phys. Rev., 2025, 12, 011314.
011314_1_5.0237977.pdf
Ben Aizenshtein, Tejasvini Sharma, Soumitra Satapathi, and lioz etgar. 2025. “Carrier Dynamics Relaxation in Highly Monodisperse CsPbBr3 Perovskite Quantum Dots: The Role of Quantum Confinement.” The Journal of Physical Chemistry LettersThe Journal of Physical Chemistry Letters, Pp. 8915 - 8922. Publisher's Version
Moria Lighthouse, Tehila Wallach, Eliyahu Goldstein, Tal Medichi, Doron Azulay, Ouriel Yossef Bliah, Shlomo Magdassi, Oded Millo, and lioz etgar. 2025. “Flexible Piezoelectric Pressure Sensors Utilizing Low-Dimensional Perovskite-PVDF Composite.” Journal of Materials Chemistry C, Pp. - . Publisher's Version Abstract
Technological advancements drive demand for smart, flexible, and sustainable devices capable of integration into daily life. Pressure sensors, particularly those utilizing halide perovskites, face key challenges in sensitivity, stability, and integration with soft systems. This study focuses on the investigation of quasi two-dimensional (2D) perovskite pressure sensors, where the perovskite is embedded within a Polyvinylidene fluoride (PVDF) polymer matrix, and protected by Polydimethylsiloxane (PDMS) polymer layer. The improvement in the performance of the pressure sensors is achieved through the optimization of solvent composition, perovskite:PVDF ratio, and the thickness of the PDMS layer, with a deep understanding of the morphological structure's influence on piezoelectric properties. Our perovskite layer achieves a high piezoelectric coefficient (d33) of 31.26 pm/V, surpassing previously reported values for halide perovskites. Unlike previous studies, we systematically investigate the correlation between PDMS thickness and piezoelectric response, identifying a critical thickness threshold (~23 μm) beyond which sensing is suppressed. The devices demonstrate pressure sensitivity in the absence of any external power source and maintaining reliable performance for 1,000 cycles and up to 60 days in ambient conditions. Successful integration of the sensors into soft robotic gripper while also demonstrating sensitivity to various weights highlights their potential for applications in fields such as soft robotics, and healthcare.
Yaniv Damatov, Tal Binyamin, lioz etgar, and Oded Shoseyov. 2025. “Keratin-Based Skin-Tone Camouflage Coating for Aesthetic Integration of Perovskite Solar Cells.” Advanced Materials InterfacesAdvanced Materials InterfacesAdv. Mater. Interfaces, n/a, n/a, Pp. e00723. Publisher's Version Abstract
Abstract Perovskite solar cells (PSCs) offer high power conversion efficiency and low-cost fabrication, yet their use in wearable and consumer-facing technologies is limited by aesthetic constraints. This study introduces keratin-based coatings as skin-tone camouflage layers that preserve photovoltaic performance. Inspired by the stratum corneum, three formulations are developed: pure keratin (KER), keratin?melanin (KML), and keratin?KerMel (KKM), the latter incorporating synthetic melanin-mimetic particles. These coatings may serve as UV-protective top layers for PSCs. Characterization revealed that KKM exhibited nanoscale uniformity and enhanced durability, contributing to superior light management. KML showed the strongest UV-blocking capacity but reduced transparency, while KER offered high transparency with limited protection. Mechanical testing confirmed the robustness of all coatings, with tensile strengths of ≈3 MPa (KML), ≈2.5 MPa (KKM), and ≈1.7 MPa (KER). The KKM coating achieved a power conversion efficiency of ≈12%, compared to ≈15% in the uncoated reference, and outperformed both KER (≈10%) and KML (≈8%). Stability testing showed KKM retained ≈79% of its initial performance after 14 days, exceeding KER and KML, though slightly below the uncoated device. These results highlight keratin-based coatings as viable materials for merging functionality and aesthetics in renewable energy and biomedical applications.
Ben Aizenshtein, Rivka Gartner, Ido Hadar, Eli Kraisler, and lioz etgar. 2025. “Lead-Free CsMnCl3 Nanoparticles with Tunable Dual Fluorescence for Light-Emitting Applications.” Chemistry of MaterialsChemistry of Materials, 37, 20, Pp. 8178 - 8186. Publisher's Version
Pablo F. Betancur, Maayan Sohmer, Iván Mora-Seró, lioz etgar, and Pablo P. Boix. 2025. “Working Mechanisms of Triple-Oxide Mesoporous Hole-Transport-Layer-Free Printable Perovskite Solar Cells via Impedance Spectroscopy.” The Journal of Physical Chemistry LettersThe Journal of Physical Chemistry Letters, Pp. 8410 - 8417. Publisher's Version
2024
Adva Shpatz Dayan, Avi Schneider, Doron Azulay, Yossi Paltiel, and Etgar Lioz. 8/26/2024. “Polarized Emission in Chiral Quasi-2D PerovskiteLight-Emitting Diode.” Adv. Optical Mater., 2024, 2401205, Pp. 1-9.
advanced_optical_materials_-_2024_-_shpatz_dayan_-_polarized_emission_in_chiral_quasi-2d_perovskite_light-emitting_diode.pdf
Maayan Sohmer-Tal and Lioz. Etgar. 8/22/2024. “Mesoscopic fully printable perovskite lightemittingdiodes in the near infra-red region.” J. Mater. Chem. C, 2024, Advance Article, DOI: 10.1039/d4tc02355b.
d4tc02355b.pdf
Apurba De, Soumyadip Bhunia, Yichao Cai, Tal Binyamin, lioz etgar, and Sanford Ruhman. 7/15/2024. “Spectator Exciton Effects in Nanocrystals III: Unveiling theStimulated Emission Cross Section in Quantum Confined CsPbBr3 Nanocrystals.” Journal of the American Chemical Society , 2024, 146, Pp. 20241-20250.
de_et_al._-_2024_-_spectator_exciton_effects_in_nanocrystals_iii_unv.pdf
Stav Rahmany, Adva Shpatz Dayan, Małgorzata Wierzbowska, Amanda Jiamin Ong, Yun Li, Shlomo Magdassi, Alfred Iing Yoong Tok, and Lioz. Etgar. 3/14/2024. “The Impact of Piezoelectricity in Low Dimensional Metal Halide Perovskite.” ACS Energy Lett, 2024, 9, Pp. 1527–1536.
proof-3.pdf
Muzhi Li, Samuel Johnson, Lidon Gil-Escrig, Maayan Sohmer, Carlos A. Figueroa Morales, Hongki Kim, Siraj Sidhik, Aditya Mohite, Xiwen Gong, Lioz. Etgar, Henk J. Bolink, Axel Palmstrom, Michael D. McGeheeb, and Nicholas Rolston. 3/12/2024. “Strategies to improve the mechanical robustness of metal halide perovskite solar cells.” Energy Adv, 2024, 3, Pp. 273–280.
d3ya00377a.pdf
Idan Cohen, Małgorzata Wierzbowska, Ben Aizenshtein, and Etgar Lioz. 2024. “Tracking the dimensionality transition from a threedimensional single crystal to a two dimensional perovskite.” ChemNanoMat, 2024, e202300625.
chemnanomat_-_2024_-_cohen_-_tracking_the_dimensionality_transition_from_a_three_dimensional_single_crystal_to_a_two-3.pdf
2023
Shir Yudco, Juan Bisquert, and Lioz. Etgar. 12/15/2023. “Enhanced LED Performance by Ion Migration in Multiple QuantumWell Perovskite.” J. Phys. Chem. Lett, 2023, 14, Pp. 11610-11617.
yudco-et-al-2023-enhanced-led-performance-by-ion-migration-in-multiple-quantum-well-perovskite.pdf
Shir Yudco and Lioz. Etgar. 12/12/2023. “Ruddlesden–Popper and Dion–Jacobson Perovskites in Multiple Quantum Wells Light-Emitting Diodes.” Adv. Optical Mater., 2023, 2302592, Pp. 1-8.
etgar_et_al.-advanced_optical_materials_-_2023_-_yudco_-_ruddlesden_popper_and_dion_jacobson_perovskites_in_multiple_quantum_wells.pdf
Yun Li, Ronn Goei, Amanda Jiamin Ong, Yiming Zou, Adva Shpatz Dayan, Stav Rahmany, lioz etgar, and Alfred Iing Yoong Tok. 11/9/2023. “Atomic Layer Deposition of Piezoelectric Materials: A Timely Review.” Atomic Layer Deposition of Piezoelectric Materials: A Timely Review, Materials Today Energy, https://doi.org/10.1016/j.mtener.11/9/2023. 101457.
1-s2.0-s2468606923002137-main.pdf
Adva Shpatz Dayan and Lioz. Etgar. 11/6/2023. “Role of Mixed-Cation Perovskites in Hole Conductor-Free PerovskiteSolar Cells.” ACS Appl. Energy Mater, https://doi.org/10.1021/acsaem.3c01857.
shpatz-dayan-etgar-2023-role-of-mixed-cation-perovskites-in-hole-conductor-free-perovskite-solar-cells.pdf
Bat-El Cohen, Ron Alafi, Jonathan Beinglass, Adva Shpatz Dayan, Oren Goldberg, Shachar Gold, Isaac Balberg, Leeor Kronik, lioz etgar, Oded Millo, and Doron Azulay. 11/3/2023. “In-gap States and Carrier Recombination in Quasi-2D Perovskite Films.” Sol. RRL, 2023, 2300813, Pp. 1-8.
solar_rrl_-_2023_-_cohen_-_in-gap_states_and_carrier_recombination_in_quasi-2d_perovskite_films.pdf
Michael Saliba, Eva Unger, Etgar Lioz, Jingshan Luo, and T. Jesper Jacobsson. 9/7/2023. “A systematic discrepancy between the shortcircuit current and the integrated quantumefficiency in perovskite solar cells.” Nature Communications, 2023,14, 5445.
s41467-023-41263-0.pdf
Hannah Funk, Tal Binyamin, Etgar Lioz, Oleksandra Shargaieva, Thomas Unold, Alberto Eljarrat, Christoph T. Koch, and Daniel Abou-Ras. 9/6/2023. “Phase Segregation Mechanismsin Mixed-Halide CsPb(BrxI1−x)3 Nanocrystalsin Dependence of Their Sizes and Their Initial [Br]:[I] Ratios.” ACS Mater, DOI: 10.1021/acsmaterialsau.3c00056.
acsmaterialsau.3c00056.pdf

Pages