Materials Map

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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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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (9/9 displayed)

  • 2024In Situ and Operando X-ray Scattering Methods in Electrochemistry and Electrocatalysis39citations
  • 2024Monitoring the Morphological Changes of Skeleton-PtCo Electrocatalyst during PEMFC Start-Up/Shut-Downprobed by in situ WAXS and SAXS2citations
  • 2024Monitoring the Morphological Changes of Skeleton-PtCo Electrocatalyst during PEMFC Start-Up/Shut-Down probed by in situ WAXS and SAXS.2citations
  • 2023A Life-Cycle of Ni in Proton Exchange Membrane Fuel Cellscitations
  • 2023Charge Dynamics Induced by Lithiation Heterogeneity in Silicon‐Graphite Composite Anodes24citations
  • 2023Charge Dynamics Induced by Lithiation Heterogeneity in Silicon‐Graphite Composite Anodes24citations
  • 2022Operando X-Ray Diffraction Nanoimaging of Advanced Cathodescitations
  • 2021Liquid-phase sintering of lead halide perovskites and metal-organic framework glasses213citations
  • 2021Liquid-phase sintering of lead halide perovskites and metal-organic framework glasses213citations

Places of action

Chart of shared publication
Chattot, Raphaël
2 / 12 shared
Singer, Andrej
1 / 3 shared
Huang, Jason
1 / 1 shared
Drnec, Jakub
7 / 15 shared
Qiu, Canrong
1 / 3 shared
Magnussen, Olaf
1 / 6 shared
Weber, Philipp
2 / 4 shared
Oezaslan, Mehtap
2 / 16 shared
Janssen, Marek
2 / 5 shared
Park, Daesung
2 / 4 shared
Pittkowski, Rebecca
2 / 6 shared
Arenz, Matthias
2 / 23 shared
Quinson, Jonathan
2 / 22 shared
Bonastre, Alejandro M.
1 / 2 shared
Gutierrez, Martha Briceno De
1 / 2 shared
Ronovský, Michal
1 / 1 shared
Fusek, Lukáš
1 / 1 shared
Dionigi, Fabio
1 / 5 shared
Pan, Lujin
1 / 2 shared
Mirolo, Marta
4 / 7 shared
Hrbek, Tomas
1 / 1 shared
Klingenhof, Malte
1 / 5 shared
Strasser, Peter
1 / 21 shared
Brooke, Emily
1 / 1 shared
Kubát, Jan
1 / 1 shared
Götz, Daniel
1 / 1 shared
Polani, Shlomi
1 / 1 shared
Myllymäki, Mila
1 / 1 shared
Kúš, Peter
1 / 1 shared
Dunseath, Olivia
1 / 1 shared
Sharman, Jonathan
1 / 3 shared
Lyonnard, Sandrine
1 / 15 shared
Berhaut, Christopher
1 / 6 shared
Chandesris, Marion
2 / 4 shared
Herlinboime, Nathalie
2 / 2 shared
Dominguez, Diana Zapata
2 / 4 shared
Tardif, Samuel
2 / 9 shared
Pouget, Stéphanie
2 / 12 shared
Sandrine, Lyonnard
1 / 1 shared
Berhaut, Christopher L.
1 / 1 shared
Schulli, Tobias
2 / 5 shared
Vostrov, Nikita
1 / 2 shared
Lo, Shih-Chun
2 / 9 shared
Doasa, Rana
2 / 2 shared
Shukla, Atul
2 / 2 shared
Krajnc, Andraž
2 / 10 shared
Wei, Tong
2 / 2 shared
Hou, Jingwei
2 / 7 shared
Lin, Rijia
2 / 2 shared
Lu, Mingyuan
2 / 8 shared
Appadoo, Dominique
2 / 2 shared
Wang, Lianzhou
2 / 9 shared
Mali, Gregor
2 / 15 shared
Bennett, Thomas
1 / 10 shared
Johnstone, Duncan
1 / 10 shared
Ari, Mark S.
1 / 1 shared
Namdas, Ebinazar
1 / 2 shared
Tizei, Luiz Galvao
1 / 2 shared
Collins, Sean
1 / 5 shared
Cheetham, Anthony
1 / 4 shared
Chart of publication period
2024
2023
2022
2021

Co-Authors (by relevance)

  • Chattot, Raphaël
  • Singer, Andrej
  • Huang, Jason
  • Drnec, Jakub
  • Qiu, Canrong
  • Magnussen, Olaf
  • Weber, Philipp
  • Oezaslan, Mehtap
  • Janssen, Marek
  • Park, Daesung
  • Pittkowski, Rebecca
  • Arenz, Matthias
  • Quinson, Jonathan
  • Bonastre, Alejandro M.
  • Gutierrez, Martha Briceno De
  • Ronovský, Michal
  • Fusek, Lukáš
  • Dionigi, Fabio
  • Pan, Lujin
  • Mirolo, Marta
  • Hrbek, Tomas
  • Klingenhof, Malte
  • Strasser, Peter
  • Brooke, Emily
  • Kubát, Jan
  • Götz, Daniel
  • Polani, Shlomi
  • Myllymäki, Mila
  • Kúš, Peter
  • Dunseath, Olivia
  • Sharman, Jonathan
  • Lyonnard, Sandrine
  • Berhaut, Christopher
  • Chandesris, Marion
  • Herlinboime, Nathalie
  • Dominguez, Diana Zapata
  • Tardif, Samuel
  • Pouget, Stéphanie
  • Sandrine, Lyonnard
  • Berhaut, Christopher L.
  • Schulli, Tobias
  • Vostrov, Nikita
  • Lo, Shih-Chun
  • Doasa, Rana
  • Shukla, Atul
  • Krajnc, Andraž
  • Wei, Tong
  • Hou, Jingwei
  • Lin, Rijia
  • Lu, Mingyuan
  • Appadoo, Dominique
  • Wang, Lianzhou
  • Mali, Gregor
  • Bennett, Thomas
  • Johnstone, Duncan
  • Ari, Mark S.
  • Namdas, Ebinazar
  • Tizei, Luiz Galvao
  • Collins, Sean
  • Cheetham, Anthony
OrganizationsLocationPeople

document

A Life-Cycle of Ni in Proton Exchange Membrane Fuel Cells

  • Bonastre, Alejandro M.
  • Chattot, Raphaël
  • Gutierrez, Martha Briceno De
  • Drnec, Jakub
  • Ronovský, Michal
  • Fusek, Lukáš
  • Dionigi, Fabio
  • Pan, Lujin
  • Mirolo, Marta
  • Hrbek, Tomas
  • Klingenhof, Malte
  • Strasser, Peter
  • Brooke, Emily
  • Kubát, Jan
  • Götz, Daniel
  • Polani, Shlomi
  • Myllymäki, Mila
  • Kúš, Peter
  • Dunseath, Olivia
  • Sharman, Jonathan
  • Martens, Isaac
Abstract

<jats:p>The usage of Proton Exchange Membrane Fuel Cells (PEMFCs) in the automotive industry is currently limited by the price, performance, and durability of a platinum catalyst. Alloying with nickel provides lower cost and enhances activity. However, the membrane electrode assembly (MEA) performance is, in practice, much lower than expected from liquid laboratory experiments on the catalyst layer. One of the identified issues is Ni leaching from nanoparticles (NPs) and subsequent Ni poisoning of the Nafion membrane.</jats:p><jats:p>Here, we use Wide-Angle X-ray Scattering (WAXS) and X-ray Absorption Near-Edge Structure (XANES) to follow Ni dissolution from the catalyst layer and its movement in the MEA. We shine (synchrotron) light on the full life cycle of Ni, starting from (i) characterization of the catalyst powder, followed by (ii) the changes in catalyst composition during the ink-making process and (iii) membrane coating and finishing with (iv) NP characterization and Ni tracking during the operation of MEAs.</jats:p><jats:p>Proper incorporation of PtNi catalyst requires modification of all the aforementioned steps that are otherwise well optimized for pure Pt catalyst. It is even more critical for shape-controlled octahedra (oh) PtNi NPs as their activity is closely related to their structure [1]. Highly active oh-PtNi NPs are usually made from precursors such as Nickel(II) bis(acetylacetonate). Using EDX, we find precursor residues in catalyst powders that dissolve upon further processing and add to membrane poisoning. We conclude that we need to develop a cleaning protocol that would remove all Ni residue while retaining the nanoparticle shape.</jats:p><jats:p>During ink-making, high ionomer concentrations and elevated temperatures promote Ni dissolution from the catalyst, which can, in turn, poison the membrane even before the MEA is put in use. With the WAXS technique, we track the dissolution during ink-making and MEA operation by following changes in lattice parameter, showing the dynamics and the extent of Ni dissolution in each step of aging.</jats:p><jats:p>Furthermore, we use angle-resolved XANES to track the movement of dissolved Ni. We show that Ni ions are getting reduced back to metallic form within the MEA, likely due to hydrogen crossover. The presence of such a metal band in the membrane blocks proton conductivity and decreases performance [2]. That is why it is crucial to set manufacturing and operational boundaries to prevent dissolution.</jats:p><jats:p>For this reason, we follow WAXS total scattering intensity during oxidation and reduction cycles to understand the Ni dissolution dynamics during operation. We find that limiting both upper and lower potential cycling limits greatly reduces the redox extent and subsequent dissolution. It is, therefore, possible to find and understand the trade-off between high power density and dissolution in operational cells.</jats:p><jats:p>Even though this work looks at the Ni life cycle, the presented techniques and conclusions are transferable to all multimetallic high-performance PEMFC catalysts.</jats:p><jats:p>References:</jats:p><jats:p>[1] Shlomi Polani et al. ACS Appl. Mater. Interfaces 2022, 14, 26, 29690–29702</jats:p><jats:p>[2] Wu Bi et al. Electrochem. Solid-State Lett. 2007 10 B101</jats:p><jats:p><jats:inline-formula><jats:inline-graphic xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="2277fig1.jpg" xlink:type="simple" /></jats:inline-formula></jats:p><jats:p>Figure 1</jats:p><jats:p />

Topics
  • nanoparticle
  • density
  • impedance spectroscopy
  • nickel
  • experiment
  • Platinum
  • Hydrogen
  • leaching
  • aging
  • Energy-dispersive X-ray spectroscopy
  • wide-angle X-ray scattering
  • aging