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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Tampere University

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (21/21 displayed)

  • 2024A novel CuFe2O4 ink for the fabrication of low-temperature ceramic fuel cell cathodes through inkjet printing1citations
  • 2023A novel CuFe2O4 ink for the fabrication of low-temperature ceramic fuel cell cathodes through inkjet printing1citations
  • 2023A novel CuFe2O4 ink for the fabrication of low-temperature ceramic fuel cell cathodes through inkjet printing1citations
  • 2022Demonstrating the potential of iron-doped strontium titanate electrolyte with high-performance for low temperature ceramic fuel cells39citations
  • 2022Perovskite Al-SrTiO<sub>3</sub> semiconductor electrolyte with superionic conduction in ceramic fuel cells41citations
  • 2022A-site deficient semiconductor electrolyte Sr1−xCoxFeO3−δ for low-temperature (450-550 °C) solid oxide fuel cells10citations
  • 2022Perovskite Al-SrTiO3 semiconductor electrolyte with superionic conduction in ceramic fuel cells41citations
  • 2022Development and characterization of highly stable electrode inks for low-temperature ceramic fuel cells5citations
  • 2022Development and characterization of highly stable electrode inks for low-temperature ceramic fuel cells5citations
  • 2021Semiconductor Nb-Doped SrTiO3-δPerovskite Electrolyte for a Ceramic Fuel Cell45citations
  • 2021Interface engineering of bi-layer semiconductor SrCoSnO3-δ-CeO2-δ heterojunction electrolyte for boosting the electrochemical performance of low-temperature ceramic fuel cell39citations
  • 2021Systematic analysis on the effect of sintering temperature for optimized performance of li0.15ni0.45zn0.4o2-gd0.2ce0.8o2-li2co3-na2co3-k2co3 based 3d printed single-layer ceramic fuel cell3citations
  • 2021Tailoring triple charge conduction in BaCo0.2Fe0.1Ce0.2Tm0.1Zr0.3Y0.1O3−δ semiconductor electrolyte for boosting solid oxide fuel cell performance39citations
  • 2021Novel Perovskite Semiconductor Based on Co/Fe-Codoped LBZY (La0.5Ba0.5Co0.2Fe0.2Zr0.3Y0.3O3-δ) as an Electrolyte in Ceramic Fuel Cells45citations
  • 2021Electrochemical Properties of a Dual-Ion Semiconductor-Ionic Co0.2Zn0.8O-Sm0.20Ce0.80O2-δComposite for a High-Performance Low-Temperature Solid Oxide Fuel Cell30citations
  • 2021Promoted electrocatalytic activity and ionic transport simultaneously in dual functional Ba0.5Sr0.5Fe0.8Sb0.2O3-δ-Sm0.2Ce0.8O2-δ heterostructure107citations
  • 2021Investigation of factors affecting the performance of a single-layer nanocomposite fuel cell9citations
  • 2020Semiconductor Fe-doped SrTiO3-δ perovskite electrolyte for low-temperature solid oxide fuel cell (LT-SOFC) operating below 520 °C73citations
  • 2018Wide bandgap oxides for low-temperature single-layered nanocomposite fuel cell71citations
  • 2017Advanced low-temperature ceramic nanocomposite fuel cells using ultra high ionic conductivity electrolytes synthesized through freeze-dried method and solid-route39citations
  • 2016Investigation of LiNiCuZn-oxide electrodes prepared by different methods11citations

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Chart of shared publication
Zarabi Golkhatmi, Sanaz
2 / 4 shared
Lund, Peter D.
21 / 56 shared
Zarabigolkhatmi, Sanaz
2 / 2 shared
Shah, M. A. K. Yousaf
10 / 14 shared
Rauf, Sajid
10 / 18 shared
Mushtaq, Naveed
10 / 18 shared
Zhu, Bin
11 / 22 shared
Yousaf, Muhammad
8 / 16 shared
Lu, Yuzheng
5 / 10 shared
Golkhatmi, Sanaz Zarabi
1 / 3 shared
Xia, Chen
4 / 5 shared
Tayyab, Zuhra
5 / 9 shared
Imran, Muhammad Ali
1 / 5 shared
Virtanen, Sini
1 / 1 shared
Borghei, Maryam
1 / 16 shared
Maitre, Anna
1 / 1 shared
Mäkinen, Pyry
1 / 2 shared
Yang, Changping
2 / 2 shared
Akram, Fazli
1 / 1 shared
Ali, Nasir
3 / 7 shared
Hanif, Muhammad Bilal
1 / 7 shared
Attique, Sanam
1 / 1 shared
Khatoon, Rabia
1 / 1 shared
Hu, Enyi
1 / 1 shared
Wang, Baoyuan
1 / 1 shared
Dong, Wenjing
1 / 1 shared
Raza, Rizwan
1 / 14 shared
Akbar, Muhammad
2 / 12 shared
Jouttijärvi, Sami V.
1 / 1 shared
Xing, Yueming
1 / 1 shared
Yang, Chang Ping
1 / 1 shared
Valtavirta, Anna Maija
1 / 1 shared
Jokiranta, Riina
1 / 1 shared
Jouttijärvi, Sami
1 / 3 shared
Heikkilä, Mikko J.
1 / 48 shared
Jing, Yifu
1 / 1 shared
Patakangas, Janne
1 / 5 shared
Chart of publication period
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2023
2022
2021
2020
2018
2017
2016

Co-Authors (by relevance)

  • Zarabi Golkhatmi, Sanaz
  • Lund, Peter D.
  • Zarabigolkhatmi, Sanaz
  • Shah, M. A. K. Yousaf
  • Rauf, Sajid
  • Mushtaq, Naveed
  • Zhu, Bin
  • Yousaf, Muhammad
  • Lu, Yuzheng
  • Golkhatmi, Sanaz Zarabi
  • Xia, Chen
  • Tayyab, Zuhra
  • Imran, Muhammad Ali
  • Virtanen, Sini
  • Borghei, Maryam
  • Maitre, Anna
  • Mäkinen, Pyry
  • Yang, Changping
  • Akram, Fazli
  • Ali, Nasir
  • Hanif, Muhammad Bilal
  • Attique, Sanam
  • Khatoon, Rabia
  • Hu, Enyi
  • Wang, Baoyuan
  • Dong, Wenjing
  • Raza, Rizwan
  • Akbar, Muhammad
  • Jouttijärvi, Sami V.
  • Xing, Yueming
  • Yang, Chang Ping
  • Valtavirta, Anna Maija
  • Jokiranta, Riina
  • Jouttijärvi, Sami
  • Heikkilä, Mikko J.
  • Jing, Yifu
  • Patakangas, Janne
OrganizationsLocationPeople

article

Electrochemical Properties of a Dual-Ion Semiconductor-Ionic Co0.2Zn0.8O-Sm0.20Ce0.80O2-δComposite for a High-Performance Low-Temperature Solid Oxide Fuel Cell

  • Shah, M. A. K. Yousaf
  • Attique, Sanam
  • Yang, Changping
  • Tayyab, Zuhra
  • Xia, Chen
  • Rauf, Sajid
  • Zhu, Bin
  • Asghar, Muhammad Imran
  • Khatoon, Rabia
  • Lund, Peter D.
  • Ali, Nasir
Abstract

<p>Semiconductor heterostructures offer a high ionic conduction path enhanced by built-in electric field at the interface, which helps to avoid electronic conduction in low-temperature solid oxide fuel cells (LT-SOFCs). In this study, we synthesized a semiconductor heterostructure based on Co-doped ZnO and Sm0.2Ce0.8O2-δ (SDC) for LT-SOFC application. First, we optimized the composition of the Co-doped ZnO by varying the doping concentration. The cell with Co0.2Zn0.8O composition (σi = 0.158 S cm-1) yielded the best performance of 664 mW cm-2 at 550 °C. This optimized composition of Co-doped ZnO was mixed with a well-known ionic conductor Sm0.2Ce0.8O2-δ (SDC) to further improve the ionic conductivity and performance of the cell. The heterostructure formed between these two semiconductor materials improved the ionic conductivity of this composite material to 0.24 S cm-1 at 550 °C, which is 2 orders higher in magnitude than that of bulk SDC. The fuel cells fabricated with this promising semiconductor-ionic heterostructure material produced an outstanding power density of 928 mW cm-2 at 550 °C. Our further investigation shows protonic conduction (H+) in the Co0.2Zn0.8O-SDC composite, which exhibited protonic conduction 0.088 S cm-1 with a power density of 388 mW cm-2 at 550 °C. A detailed characterization of the material and the fuel cells is performed with the help of different electrochemical (electrochemical impedance spectroscopy (EIS)), spectroscopic (X-ray diffraction (XRD), UV-vis spectroscopy, X-ray photoelectron spectroscopy (XPS)), and microscopic techniques (scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HR-TEM), energy-dispersive X-ray spectrometry (EDX)). The stability of the cell was tested for 35 h to ensure stable operation of these devices. This semiconductor-ionic heterostructure composite provides insight into the development of electrolyte membranes for advanced SOFCs. </p>

Topics
  • density
  • scanning electron microscopy
  • x-ray diffraction
  • x-ray photoelectron spectroscopy
  • semiconductor
  • composite
  • transmission electron microscopy
  • electrochemical-induced impedance spectroscopy
  • Energy-dispersive X-ray spectroscopy
  • spectrometry
  • Ultraviolet–visible spectroscopy