Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments

Abstract Anion‐dependent differences in the electromechanical energy harvesting capability of perovskite halides have not been experimentally demonstrated thus far. Herein, anion‐dependent piezoelectricity and bending‐driven power generation in high‐quality methylammonium lead halide MAPbX3 (X = I,...

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Main Authors: Da Bin Kim, Kyeong Su Jo, Kwan Sik Park, Yong Soo Cho
Format: Article
Language:English
Published: Wiley 2023-02-01
Series:Advanced Science
Subjects:
Online Access:https://doi.org/10.1002/advs.202204462
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author Da Bin Kim
Kyeong Su Jo
Kwan Sik Park
Yong Soo Cho
author_facet Da Bin Kim
Kyeong Su Jo
Kwan Sik Park
Yong Soo Cho
author_sort Da Bin Kim
collection DOAJ
description Abstract Anion‐dependent differences in the electromechanical energy harvesting capability of perovskite halides have not been experimentally demonstrated thus far. Herein, anion‐dependent piezoelectricity and bending‐driven power generation in high‐quality methylammonium lead halide MAPbX3 (X = I, Br, and Cl) thin films are explored; additionally, anisotropic in situ strain is imposed to improve energy harvesting under tensile bending. After applying the maximum in situ strain of −0.73% for all the halide thin films, the MAPbI3 thin‐film harvester exhibited a peak voltage/current of ≈23.1 V/≈1703 nA as the best values, whereas MAPbBr3 and MAPbCl3 demonstrated ≈5.6 V/≈176 nA and ≈3.3 V/≈141 nA, respectively, under identical bending conditions. Apart from apparent ferroelectricity of tetragonal MAPbI3, origin of the piezoelectricity in both cubic MAPbBr3 and MAPbCl3 is explored as being related to organic–inorganic hydrogen bonding, lattice distortion, and ionic migration, with experimental supports of effective piezoelectric coefficient and grain boundary potential. Conclusively, piezoelectricity of the cubic halides is assumed to be due to their soft polarity modes and relatively low elastic modulus with vacancies contributing to space‐charge polarization. In the case of ferroelectric MAPbI3, the distortion of PbI6 octahedra and atomic displacement within each octahedron are quantitatively estimated.
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spelling doaj.art-c6a08c4b3531407da3c7e1c4f904729e2023-09-12T14:40:47ZengWileyAdvanced Science2198-38442023-02-01104n/an/a10.1002/advs.202204462Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural AdjustmentsDa Bin Kim0Kyeong Su Jo1Kwan Sik Park2Yong Soo Cho3Department of Materials Science and Engineering Yonsei University Seoul 03722 Republic of KoreaDepartment of Materials Science and Engineering Yonsei University Seoul 03722 Republic of KoreaDepartment of Materials Science and Engineering Yonsei University Seoul 03722 Republic of KoreaDepartment of Materials Science and Engineering Yonsei University Seoul 03722 Republic of KoreaAbstract Anion‐dependent differences in the electromechanical energy harvesting capability of perovskite halides have not been experimentally demonstrated thus far. Herein, anion‐dependent piezoelectricity and bending‐driven power generation in high‐quality methylammonium lead halide MAPbX3 (X = I, Br, and Cl) thin films are explored; additionally, anisotropic in situ strain is imposed to improve energy harvesting under tensile bending. After applying the maximum in situ strain of −0.73% for all the halide thin films, the MAPbI3 thin‐film harvester exhibited a peak voltage/current of ≈23.1 V/≈1703 nA as the best values, whereas MAPbBr3 and MAPbCl3 demonstrated ≈5.6 V/≈176 nA and ≈3.3 V/≈141 nA, respectively, under identical bending conditions. Apart from apparent ferroelectricity of tetragonal MAPbI3, origin of the piezoelectricity in both cubic MAPbBr3 and MAPbCl3 is explored as being related to organic–inorganic hydrogen bonding, lattice distortion, and ionic migration, with experimental supports of effective piezoelectric coefficient and grain boundary potential. Conclusively, piezoelectricity of the cubic halides is assumed to be due to their soft polarity modes and relatively low elastic modulus with vacancies contributing to space‐charge polarization. In the case of ferroelectric MAPbI3, the distortion of PbI6 octahedra and atomic displacement within each octahedron are quantitatively estimated.https://doi.org/10.1002/advs.202204462energy harvesterMAPbI3perovskite halidepiezoelectricitystrain engineering
spellingShingle Da Bin Kim
Kyeong Su Jo
Kwan Sik Park
Yong Soo Cho
Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments
Advanced Science
energy harvester
MAPbI3
perovskite halide
piezoelectricity
strain engineering
title Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments
title_full Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments
title_fullStr Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments
title_full_unstemmed Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments
title_short Anion‐Dependent Polarization and Piezoelectric Power Generation in Hybrid Halide MAPbX3 (X = I, Br, and Cl) Thin Films with Out‐of‐Plane Structural Adjustments
title_sort anion dependent polarization and piezoelectric power generation in hybrid halide mapbx3 x i br and cl thin films with out of plane structural adjustments
topic energy harvester
MAPbI3
perovskite halide
piezoelectricity
strain engineering
url https://doi.org/10.1002/advs.202204462
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