Solution-Processed All-Perovskite Multi-Junction Solar Cells

Fundacio Scito (2019)

Authors:

David McMeekin, Suhas Mahesh, Nakita Noel, Matthew Klug, JongChul Lim, Jonathan Warby, James Ball, Laura Herz, Michael Johnston, Henry Snaith

Solution-processed all-perovskite multi-junction solar cells

Joule Elsevier 3:2 (2019) 387-401

Authors:

David McMeekin, Suhas Mahesh, Nakita Noel, Matthew Klug, Jongchul Lim, Jonathan Warby, James Ball, Laura Herz, Michael Johnston, Henry Snaith

Time-resolved THz spectroscopy of metal-halide perovskite single crystals and polycrystalline thin films

Institute of Electrical and Electronics Engineers (IEEE) 00 (2019) 1-2

Authors:

Chelsea Q Xia, Qianqian Lin, Jay B Patel, Adam D Wright, Timothy W Crothers, Rebecca L Milot, Laura M Herz, Michael B Johnston

Facile synthesis of stable and highly luminescent methylammonium lead halide nanocrystals for efficient light emitting devices

Journal of the American Chemical Society American Chemical Society 141:3 (2019) 1269-1279

Authors:

Yasser Hassan, Olivia J Ashton, JH Park, G Li, Nobuya Sakai, Bernard Wenger, Amir-Abbas Haghighirad, Nakita K Noel, MH Song, BR Lee, RH Friend, HJ Snaith

Abstract:

Metal halide perovskites are promising candidates for use in light emitting diodes (LEDs), due to their potential for color tunable and high luminescence efficiency. While recent advances in perovskite-based light emitting diodes have resulted in external quantum efficiencies exceeding 12.4% for the green emitters, and infrared emitters based on 3D/2D mixed dimensional perovskites have exceeded 20%, the external quantum efficiencies of the red and blue emitters still lag behind. A critical issue to date is creating highly emissive and stable perovskite emitters with the desirable emission band gap to achieve full-color displays and white LEDs. Herein, we report the preparation and characterization of a highly luminescent and stable suspension of cubic-shaped methylammonium lead triiodide (CH3NH3PbI3) perovskite nanocrystals, where we synthesize the nanocrystals via a ligand-assisted reprecipitation technique, using an acetonitrile/methylamine compound solvent system to solvate the ions and toluene as the antisolvent to induce crystallization. Through tuning the ratio of the ligands, the ligand to toluene ratio, and the temperature of the toluene, we obtain a solution of CH3NH3PbI3 nanocrystals with a photoluminescence quantum yield exceeding 93% and tunable emission between 660 and 705 nm. We also achieved red emission at 635 nm by blending the nanocrystals with bromide salt and obtained perovskite-based light emitting diodes with maximum electroluminescent external quantum efficiency of 2.75%.

Mixed Lead-Tin Halide Perovskites for Efficient and Wavelength-Tunable Near-Infrared Light-Emitting Diodes.

Advanced materials (Deerfield Beach, Fla.) 31:3 (2019) e1806105

Authors:

Weiming Qiu, Zhengguo Xiao, Kwangdong Roh, Nakita K Noel, Andrew Shapiro, Paul Heremans, Barry P Rand

Abstract:

Near-infrared (NIR) light-emitting diodes (LEDs), with emission wavelengths between 800 and 950 nm, are useful for various applications, e.g., night-vision devices, optical communication, and medical treatments. Yet, devices using thin film materials like organic semiconductors and lead based colloidal quantum dots face certain fundamental challenges that limit the improvement of external quantum efficiency (EQE), making the search of alternative NIR emitters important for the community. In this work, efficient NIR LEDs with tunable emission from 850 to 950 nm, using lead-tin (Pb-Sn) halide perovskite as emitters are demonstrated. The best performing device exhibits an EQE of 5.0% with a peak emission wavelength of 917 nm, a turn-on voltage of 1.65 V, and a radiance of 2.7 W Sr-1 m-2 when driven at 4.5 V. The emission spectra of mixed Pb-Sn perovskites are tuned either by changing the Pb:Sn ratio or by incorporating bromide, and notably exhibit no phase separation during device operation. The work demonstrates that mixed Pb-Sn perovskites are promising next generation NIR emitters.