Reflections on the Spatial Performance of Atom Probe Tomography in the Analysis of Atomic Neighborhoods

Atom probe tomography (APT) is often introduced as providing “atomic-scale” mapping of the composition of materials and as such is often exploited to analyze atomic neighborhoods within a material. Yet quantifying the actual spatial performance of the technique in a general case remains challenging,...

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Veröffentlicht in:Microscopy and microanalysis Jg. 28; H. 4; S. 1116 - 1126
Hauptverfasser: Gault, Baptiste, Klaes, Benjamin, Morgado, Felipe F., Freysoldt, Christoph, Li, Yue, De Geuser, Frederic, Stephenson, Leigh T., Vurpillot, François
Format: Journal Article
Sprache:Englisch
Veröffentlicht: New York, USA Cambridge University Press 01.08.2022
Oxford University Press
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ISSN:1431-9276, 1435-8115, 1435-8115
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Abstract Atom probe tomography (APT) is often introduced as providing “atomic-scale” mapping of the composition of materials and as such is often exploited to analyze atomic neighborhoods within a material. Yet quantifying the actual spatial performance of the technique in a general case remains challenging, as it depends on the material system being investigated as well as on the specimen's geometry. Here, by using comparisons with field-ion microscopy experiments, field-ion imaging and field evaporation simulations, we provide the basis for a critical reflection on the spatial performance of APT in the analysis of pure metals, low alloyed systems and concentrated solid solutions (i.e., akin to high-entropy alloys). The spatial resolution imposes strong limitations on the possible interpretation of measured atomic neighborhoods, and directional neighborhood analyses restricted to the depth are expected to be more robust. We hope this work gets the community to reflect on its practices, in the same way, it got us to reflect on our work.
AbstractList Atom probe tomography (APT) is often introduced as providing "atomic-scale" mapping of the composition of materials and as such is often exploited to analyze atomic neighborhoods within a material. Yet quantifying the actual spatial performance of the technique in a general case remains challenging, as it depends on the material system being investigated as well as on the specimen's geometry. Here, by using comparisons with field-ion microscopy experiments, field-ion imaging and field evaporation simulations, we provide the basis for a critical reflection on the spatial performance of APT in the analysis of pure metals, low alloyed systems and concentrated solid solutions (i.e., akin to high-entropy alloys). The spatial resolution imposes strong limitations on the possible interpretation of measured atomic neighborhoods, and directional neighborhood analyses restricted to the depth are expected to be more robust. We hope this work gets the community to reflect on its practices, in the same way, it got us to reflect on our work.
Atom probe tomography (APT) is often introduced as providing “atomic-scale” mapping of the composition of materials and as such is often exploited to analyze atomic neighborhoods within a material. Yet quantifying the actual spatial performance of the technique in a general case remains challenging, as it depends on the material system being investigated as well as on the specimen's geometry. Here, by using comparisons with field-ion microscopy experiments, field-ion imaging and field evaporation simulations, we provide the basis for a critical reflection on the spatial performance of APT in the analysis of pure metals, low alloyed systems and concentrated solid solutions (i.e., akin to high-entropy alloys). The spatial resolution imposes strong limitations on the possible interpretation of measured atomic neighborhoods, and directional neighborhood analyses restricted to the depth are expected to be more robust. We hope this work gets the community to reflect on its practices, in the same way, it got us to reflect on our work.Atom probe tomography (APT) is often introduced as providing “atomic-scale” mapping of the composition of materials and as such is often exploited to analyze atomic neighborhoods within a material. Yet quantifying the actual spatial performance of the technique in a general case remains challenging, as it depends on the material system being investigated as well as on the specimen's geometry. Here, by using comparisons with field-ion microscopy experiments, field-ion imaging and field evaporation simulations, we provide the basis for a critical reflection on the spatial performance of APT in the analysis of pure metals, low alloyed systems and concentrated solid solutions (i.e., akin to high-entropy alloys). The spatial resolution imposes strong limitations on the possible interpretation of measured atomic neighborhoods, and directional neighborhood analyses restricted to the depth are expected to be more robust. We hope this work gets the community to reflect on its practices, in the same way, it got us to reflect on our work.
Author Vurpillot, François
De Geuser, Frederic
Gault, Baptiste
Klaes, Benjamin
Freysoldt, Christoph
Li, Yue
Morgado, Felipe F.
Stephenson, Leigh T.
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  surname: Morgado
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  surname: De Geuser
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  organization: 4Université Grenoble Alpes, CNRS, Grenoble INP, SIMAP, Grenoble 38000, France
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  orcidid: 0000-0002-7852-2509
  surname: Stephenson
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  surname: Vurpillot
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  organization: 3Groupe Physique des Matériaux, Université de Rouen, Saint Etienne du Rouvray, Normandie 76800, France
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Issue 4
Keywords compositionally complex alloys
nearest neighbors
field evaporation
image simulations
Language English
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PublicationDate 2022-08-01
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PublicationDate_xml – month: 08
  year: 2022
  text: 2022-08-01
  day: 01
PublicationDecade 2020
PublicationPlace New York, USA
PublicationPlace_xml – name: New York, USA
– name: England
– name: Oxford
PublicationTitle Microscopy and microanalysis
PublicationTitleAlternate Microsc Microanal
PublicationYear 2022
Publisher Cambridge University Press
Oxford University Press
Publisher_xml – name: Cambridge University Press
– name: Oxford University Press
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SSID ssj0003076
Score 2.4709167
Snippet Atom probe tomography (APT) is often introduced as providing “atomic-scale” mapping of the composition of materials and as such is often exploited to analyze...
Atom probe tomography (APT) is often introduced as providing "atomic-scale" mapping of the composition of materials and as such is often exploited to analyze...
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SubjectTerms Atoms & subatomic particles
Condensed Matter
Datasets
Development and Computation
Evaporation
Field ion microscopy
High entropy alloys
Materials Science
Metals
Microscopy
Neighborhoods
Physics
Simulation
Solid solutions
Spatial discrimination
Spatial resolution
Tomography
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Title Reflections on the Spatial Performance of Atom Probe Tomography in the Analysis of Atomic Neighborhoods
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https://www.ncbi.nlm.nih.gov/pubmed/34666868
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Volume 28
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