Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.

Halide vacancies and associated metallic lead (Pb°) observed at the surface and deep inside macroscopic organolead trihalide perovskite crystals is removed through a facile and noninvasive treatment. Indeed, Br2 vapor is shown to passivate Br-vacancies and associated Pb° in the bulk of macroscopic c...

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Main Authors: Ahmad R Kirmani, Ahmed E Mansour, Chen Yang, Rahim Munir, Ahmed M El-Zohry, Omar F Mohammed, Aram Amassian
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0230540
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spelling doaj-a3b48bed99294874b6bf9336656667872021-03-03T21:37:42ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-01153e023054010.1371/journal.pone.0230540Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.Ahmad R KirmaniAhmed E MansourChen YangRahim MunirAhmed M El-ZohryOmar F MohammedAram AmassianHalide vacancies and associated metallic lead (Pb°) observed at the surface and deep inside macroscopic organolead trihalide perovskite crystals is removed through a facile and noninvasive treatment. Indeed, Br2 vapor is shown to passivate Br-vacancies and associated Pb° in the bulk of macroscopic crystals. Controlling the exposure time can markedly improve the overall stoichiometry for moderate exposures or introduce excessive bromide for long exposures, resulting in p-doping of the crystals. In the low dose passivation regime, Hall effect measurements reveal a ca. 3-fold increase in carrier mobility to ca. 15 cm2V-1s-1, while the p-doping increases the electrical conductivity ca. 10000-fold, including a 50-fold increase in carrier mobility to ca. 150 cm2V-1s-1. The ease of diffusion of Br2 vapor into macroscopic crystals is ascribed to the porosity allowed in rapidly grown crystals through aggregative processes of the colloidal sol during growth of films and macroscopic crystals. This process is believed to form significant growth defects, including open voids, which may be remnants of the escaping solvent at the solidification front. These results suggest that due to the sol-gel-like nature of the growth process, macroscopic perovskite crystals reported in this study are far from perfect and point to possible pathways to improving the optoelectronic properties of these materials. Nevertheless, the ability of the vapor-phase approach to access and tune the bulk chemistry and properties of nominally macroscopic perovskite crystals provides interesting new opportunities to precisely manipulate and functionalize the bulk properties of hybrid perovskite crystals in a noninvasive manner.https://doi.org/10.1371/journal.pone.0230540
collection DOAJ
language English
format Article
sources DOAJ
author Ahmad R Kirmani
Ahmed E Mansour
Chen Yang
Rahim Munir
Ahmed M El-Zohry
Omar F Mohammed
Aram Amassian
spellingShingle Ahmad R Kirmani
Ahmed E Mansour
Chen Yang
Rahim Munir
Ahmed M El-Zohry
Omar F Mohammed
Aram Amassian
Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
PLoS ONE
author_facet Ahmad R Kirmani
Ahmed E Mansour
Chen Yang
Rahim Munir
Ahmed M El-Zohry
Omar F Mohammed
Aram Amassian
author_sort Ahmad R Kirmani
title Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
title_short Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
title_full Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
title_fullStr Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
title_full_unstemmed Facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
title_sort facile and noninvasive passivation, doping and chemical tuning of macroscopic hybrid perovskite crystals.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description Halide vacancies and associated metallic lead (Pb°) observed at the surface and deep inside macroscopic organolead trihalide perovskite crystals is removed through a facile and noninvasive treatment. Indeed, Br2 vapor is shown to passivate Br-vacancies and associated Pb° in the bulk of macroscopic crystals. Controlling the exposure time can markedly improve the overall stoichiometry for moderate exposures or introduce excessive bromide for long exposures, resulting in p-doping of the crystals. In the low dose passivation regime, Hall effect measurements reveal a ca. 3-fold increase in carrier mobility to ca. 15 cm2V-1s-1, while the p-doping increases the electrical conductivity ca. 10000-fold, including a 50-fold increase in carrier mobility to ca. 150 cm2V-1s-1. The ease of diffusion of Br2 vapor into macroscopic crystals is ascribed to the porosity allowed in rapidly grown crystals through aggregative processes of the colloidal sol during growth of films and macroscopic crystals. This process is believed to form significant growth defects, including open voids, which may be remnants of the escaping solvent at the solidification front. These results suggest that due to the sol-gel-like nature of the growth process, macroscopic perovskite crystals reported in this study are far from perfect and point to possible pathways to improving the optoelectronic properties of these materials. Nevertheless, the ability of the vapor-phase approach to access and tune the bulk chemistry and properties of nominally macroscopic perovskite crystals provides interesting new opportunities to precisely manipulate and functionalize the bulk properties of hybrid perovskite crystals in a noninvasive manner.
url https://doi.org/10.1371/journal.pone.0230540
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