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Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials

[Image: see text] Two- and three-dimensional lead-halide perovskite (LHP) materials are novel semiconductors that have generated broad interest owing to their outstanding optical and electronic properties. Characterization and understanding of their atomic structure and structure–property relationsh...

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Autores principales: Piveteau, Laura, Morad, Viktoriia, Kovalenko, Maksym V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7677932/
https://www.ncbi.nlm.nih.gov/pubmed/32986955
http://dx.doi.org/10.1021/jacs.0c07338
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author Piveteau, Laura
Morad, Viktoriia
Kovalenko, Maksym V.
author_facet Piveteau, Laura
Morad, Viktoriia
Kovalenko, Maksym V.
author_sort Piveteau, Laura
collection PubMed
description [Image: see text] Two- and three-dimensional lead-halide perovskite (LHP) materials are novel semiconductors that have generated broad interest owing to their outstanding optical and electronic properties. Characterization and understanding of their atomic structure and structure–property relationships are often nontrivial as a result of the vast structural and compositional tunability of LHPs as well as the enhanced structure dynamics as compared with oxide perovskites or more conventional semiconductors. Nuclear magnetic resonance (NMR) spectroscopy contributes to this thrust through its unique capability of sampling chemical bonding element-specifically ((1/2)H, (13)C, (14/15)N, (35/37)Cl, (39)K, (79/81)Br, (87)Rb, (127)I, (133)Cs, and (207)Pb nuclei) and locally and shedding light onto the connectivity, geometry, topology, and dynamics of bonding. NMR can therefore readily observe phase transitions, evaluate phase purity and compositional and structural disorder, and probe molecular dynamics and ionic motion in diverse forms of LHPs, in which they can be used practically, ranging from bulk single crystals (e.g., in gamma and X-ray detectors) to polycrystalline films (e.g., in photovoltaics, photodetectors, and light-emitting diodes) and colloidal nanocrystals (e.g., in liquid crystal displays and future quantum light sources). Herein we also outline the immense practical potential of nuclear quadrupolar resonance (NQR) spectroscopy for characterizing LHPs, owing to the strong quadrupole moments, good sensitivity, and high natural abundance of several halide nuclei ((79/81)Br and (127)I) combined with the enhanced electric field gradients around these nuclei existing in LHPs as well as the instrumental simplicity. Strong quadrupole interactions, on one side, make (79/81)Br and (127)I NMR rather impractical but turn NQR into a high-resolution probe of the local structure around halide ions.
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spelling pubmed-76779322020-11-20 Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials Piveteau, Laura Morad, Viktoriia Kovalenko, Maksym V. J Am Chem Soc [Image: see text] Two- and three-dimensional lead-halide perovskite (LHP) materials are novel semiconductors that have generated broad interest owing to their outstanding optical and electronic properties. Characterization and understanding of their atomic structure and structure–property relationships are often nontrivial as a result of the vast structural and compositional tunability of LHPs as well as the enhanced structure dynamics as compared with oxide perovskites or more conventional semiconductors. Nuclear magnetic resonance (NMR) spectroscopy contributes to this thrust through its unique capability of sampling chemical bonding element-specifically ((1/2)H, (13)C, (14/15)N, (35/37)Cl, (39)K, (79/81)Br, (87)Rb, (127)I, (133)Cs, and (207)Pb nuclei) and locally and shedding light onto the connectivity, geometry, topology, and dynamics of bonding. NMR can therefore readily observe phase transitions, evaluate phase purity and compositional and structural disorder, and probe molecular dynamics and ionic motion in diverse forms of LHPs, in which they can be used practically, ranging from bulk single crystals (e.g., in gamma and X-ray detectors) to polycrystalline films (e.g., in photovoltaics, photodetectors, and light-emitting diodes) and colloidal nanocrystals (e.g., in liquid crystal displays and future quantum light sources). Herein we also outline the immense practical potential of nuclear quadrupolar resonance (NQR) spectroscopy for characterizing LHPs, owing to the strong quadrupole moments, good sensitivity, and high natural abundance of several halide nuclei ((79/81)Br and (127)I) combined with the enhanced electric field gradients around these nuclei existing in LHPs as well as the instrumental simplicity. Strong quadrupole interactions, on one side, make (79/81)Br and (127)I NMR rather impractical but turn NQR into a high-resolution probe of the local structure around halide ions. American Chemical Society 2020-09-28 2020-11-18 /pmc/articles/PMC7677932/ /pubmed/32986955 http://dx.doi.org/10.1021/jacs.0c07338 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Piveteau, Laura
Morad, Viktoriia
Kovalenko, Maksym V.
Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials
title Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials
title_full Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials
title_fullStr Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials
title_full_unstemmed Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials
title_short Solid-State NMR and NQR Spectroscopy of Lead-Halide Perovskite Materials
title_sort solid-state nmr and nqr spectroscopy of lead-halide perovskite materials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7677932/
https://www.ncbi.nlm.nih.gov/pubmed/32986955
http://dx.doi.org/10.1021/jacs.0c07338
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