Ulrike Diebold

About Ulrike Diebold

Ulrike Diebold, With an exceptional h-index of 89 and a recent h-index of 53 (since 2020), a distinguished researcher at Technische Universität Wien, specializes in the field of surface and interface science, scanning tunneling microscopy, oxide surfaces, material science, nano science.

His recent articles reflect a diverse array of research interests and contributions to the field:

CO‐Induced Dimer Decay Responsible for Gem‐Dicarbonyl Formation on a Model Single‐Atom Catalyst

Ice interfaces: general discussion

Interaction of surface cations of cleaved mica with water in vapor and liquid forms

How water binds to microcline feldspar (001)

Formation and stability of Fe-rich terminations of the Fe3O4 (001) surface

Hematite α‐Fe2O3(0001) in Top and Side View: Resolving Long‐Standing Controversies about Its Surface Structure

Effect of Different In2O3(111) Surface Terminations on CO2 Adsorption

A Multitechnique Study of C2H4 Adsorption on Fe3O4(001)

Ulrike Diebold Information

University

Position

/ Vienna University of technolog

Citations(all)

38546

Citations(since 2020)

11337

Cited By

32058

hIndex(all)

89

hIndex(since 2020)

53

i10Index(all)

242

i10Index(since 2020)

172

Email

University Profile Page

Google Scholar

Ulrike Diebold Skills & Research Interests

surface and interface science

scanning tunneling microscopy

oxide surfaces

material science

nano science

Top articles of Ulrike Diebold

CO‐Induced Dimer Decay Responsible for Gem‐Dicarbonyl Formation on a Model Single‐Atom Catalyst

Angewandte Chemie International Edition

2024/1/31

Interaction of surface cations of cleaved mica with water in vapor and liquid forms

Faraday Discussions

2024

How water binds to microcline feldspar (001)

The Journal of Physical Chemistry Letters

2023/12/29

Formation and stability of Fe-rich terminations of the Fe3O4 (001) surface

Materials Research Express

2023/11/22

Hematite α‐Fe2O3(0001) in Top and Side View: Resolving Long‐Standing Controversies about Its Surface Structure

Advanced Materials Interfaces

2023/11

Effect of Different In2O3(111) Surface Terminations on CO2 Adsorption

ACS Applied Materials & Interfaces

2023/9/13

A Multitechnique Study of C2H4 Adsorption on Fe3O4(001)

The Journal of Physical Chemistry C

2023/9/11

A study of Pt, Rh, Ni and Ir dispersion on anatase TiO2 (101) and the role of water

Electrochimica Acta

2023/5/1

Michael Schmid
Michael Schmid

H-Index: 3

Ulrike Diebold
Ulrike Diebold

H-Index: 53

Atomar aufgelöste Glimmeroberflächen: Oberflächenphysik

2023/5

Ulrike Diebold
Ulrike Diebold

H-Index: 53

Oxygen-Terminated (1 × 1) Reconstruction of Reduced Magnetite Fe3O4(111)

The Journal of Physical Chemistry Letters

2023/3/28

Automated real-space lattice extraction for atomic force microscopy images

Machine Learning: Science and Technology

2023/2/8

Resolving the intrinsic short-range ordering of K+ ions on cleaved muscovite mica

Nature Communications

2023/1/13

Evolution of the surface atomic structure of multielement oxide films: curse or blessing?

Nanoscale Advances

2023

Competing electronic states emerging on polar surfaces

Nature Communications

2022/7/25

Structure of an Ultrathin Oxide on Pt3Sn(111) Solved by Machine Learning Enhanced Global Optimization**

Angewandte Chemie International Edition

2022/6/20

Machine learning for exploring small polaron configurational space

npj Computational Materials

2022/6/6

Modeling polarons in density functional theory: lessons learned from TiO2

Journal of Physics: Condensed Matter

2022/3/14

Publisher Correction: Polarons in materials

2022/3/1

Reconstruction changes drive surface diffusion and determine the flatness of oxide surfaces

Journal of Vacuum Science & Technology A

2022/3/1

See List of Professors in Ulrike Diebold University(Technische Universität Wien)

Co-Authors

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