Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Khanbareh, Hamideh

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (19/19 displayed)

  • 2024Porous Structure Enhances the Longitudinal Piezoelectric Coefficient and Electromechanical Coupling Coefficient of Lead-Free (Ba0.85Ca0.15)(Zr0.1Ti0.9)O36citations
  • 2024Porous structure enhances the longitudinal piezoelectric coefficient and electromechanical coupling coefficient of lead‐free (Ba 0.85 Ca 0.15 )(Zr 0.1 Ti 0.9 )O 36citations
  • 2024Temperature-Dependent Ferroelectric Properties and Aging Behavior of Freeze-Cast Bismuth Ferrite-Barium Titanate Ceramics7citations
  • 2024Temperature-Dependent Ferroelectric Properties and Aging Behavior of Freeze-Cast Bismuth Ferrite–Barium Titanate Ceramics7citations
  • 2024Exploring Lead-Free Materials for Screen-Printed Piezoelectric Wearable Devices2citations
  • 2023Enhancing Neural Stem Cell Stimulation with Structured Piezoelectric Composites4citations
  • 2022Innovative piezo-active composites and their structure - Property relationships13citations
  • 2022Piezoelectric materials and systems for tissue engineering and implantable energy harvesting devices for biomedical applications52citations
  • 2021Additively manufactured BaTiO63citations
  • 2021Additively manufactured BaTiO3 composite scaffolds: a novel strategy for load bearing bone tissue engineering applications63citations
  • 2021Additively manufactured BaTiO3 composite scaffolds63citations
  • 2020Harnessing Plasticity in an Amine-Borane as a Piezoelectric and Pyroelectric Flexible Film44citations
  • 2019Piezoelectric performance of PZT-based materials with aligned porosity::experiment and modelling11citations
  • 2019Experimental studies on effective properties and related parameters of piezo-particulate compositescitations
  • 2019Piezo-active compositescitations
  • 2019Modified energy harvesting figures of merit for stress- and strain-driven piezoelectric systems80citations
  • 2019Modelling of the composite structure formation during dielectrophoresiscitations
  • 2019Piezoelectric performance of PZT-based materials with aligned porosity:11citations
  • 2018Understanding the effect of porosity on the polarisation-field response of ferroelectric materials127citations

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Haswell, Geoff
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Qin, Jingyu
2 / 2 shared
Davies, Philip R.
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Li, Zihe
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Han, Guifang
2 / 2 shared
Bowen, Christopher R.
13 / 96 shared
Wolverson, Daniel
2 / 23 shared
Roscow, James
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Bowen, Chris
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Bjørnetun Haugen, Astri
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Narayan, Bastola
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Wang, Bing
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Hall, David
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Haugen, Astri Bjørnetun
1 / 7 shared
Tsikriteas, Zois Michail
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Adams, Christopher
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Jarkov, Vlad
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Waqar, Imaan
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Penev, Aleksandar
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Topolov, Vitaly Yuryevich
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Allan, Scott
1 / 1 shared
Tirella, Annalisa
3 / 7 shared
Shah, Lekha
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Jindal, Swati
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Serenelli, Cecile
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Mancuso, Elena
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Zhou, Kechao
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Bao, Yinxiang
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Zhang, Dou
1 / 4 shared
Carbery, David R.
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Groen, Pim
1 / 9 shared
Liptrot, David J.
1 / 3 shared
Zhou, Xuefan
1 / 1 shared
Zhang, Yan
4 / 18 shared
Hopkins, Margaret A.
1 / 1 shared
Pearce, Holly
3 / 3 shared
Topolov, Vitaly Yu
6 / 11 shared
Isaeva, Ashura N.
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Kar-Narayan, Sohini
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Lewis, Rhodri
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Xie, Mengying
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Co-Authors (by relevance)

  • Haswell, Geoff
  • Qin, Jingyu
  • Davies, Philip R.
  • Li, Zihe
  • Han, Guifang
  • Bowen, Christopher R.
  • Wolverson, Daniel
  • Roscow, James
  • Bowen, Chris
  • Bjørnetun Haugen, Astri
  • Narayan, Bastola
  • Wang, Bing
  • Hall, David
  • Haugen, Astri Bjørnetun
  • Tsikriteas, Zois Michail
  • Adams, Christopher
  • Jarkov, Vlad
  • Waqar, Imaan
  • Penev, Aleksandar
  • Topolov, Vitaly Yuryevich
  • Allan, Scott
  • Tirella, Annalisa
  • Shah, Lekha
  • Jindal, Swati
  • Serenelli, Cecile
  • Mancuso, Elena
  • Zhou, Kechao
  • Bao, Yinxiang
  • Zhang, Dou
  • Carbery, David R.
  • Groen, Pim
  • Liptrot, David J.
  • Zhou, Xuefan
  • Zhang, Yan
  • Hopkins, Margaret A.
  • Pearce, Holly
  • Topolov, Vitaly Yu
  • Isaeva, Ashura N.
  • Kar-Narayan, Sohini
  • Lewis, Rhodri
  • Xie, Mengying
OrganizationsLocationPeople

article

Modified energy harvesting figures of merit for stress- and strain-driven piezoelectric systems

  • Kar-Narayan, Sohini
  • Khanbareh, Hamideh
  • Pearce, Holly
  • Bowen, Christopher R.
  • Roscow, James
Abstract

Piezoelectrics are an important class of materials for mechanical energy harvesting technologies. In this paper we evaluate the piezoelectric harvesting process and define the key material properties that should be considered for effective material design and selection. Porous piezoceramics have been shown previously to display improved harvesting properties compared to their dense counterparts due to the reduction in permittivity associated with the introduction of porosity. We further this concept by considering the effect of the increased mechanical compliance of porous piezoceramics on the energy conversion efficiency and output electrical power. Finite element modelling is used to investigate the effect of porosity on relevant energy harvesting figures of merit. The increase in compliance due to porosity is shown to increase both the amount of mechanical energy transmitted into the system under stress-driven conditions, and the stress-driven figure of merit, FoM 33 X , despite a reduction in the electromechanical coupling coefficient. We show the importance of understanding whether a piezoelectric energy harvester is stress- or strain-driven, and demonstrate how porosity can be used to tailor the electrical and mechanical properties of piezoceramic harvesters. Finally, we derive two new figures of merit based on the consideration of each stage in the piezoelectric harvesting process and whether the system is stress- (F ij X ), or strain-driven (F ij x ).

Topics
  • porous
  • impedance spectroscopy
  • porosity