Michail Stamatakis

6.6k total citations · 4 hit papers
104 papers, 5.6k citations indexed

About

Michail Stamatakis is a scholar working on Materials Chemistry, Renewable Energy, Sustainability and the Environment and Catalysis. According to data from OpenAlex, Michail Stamatakis has authored 104 papers receiving a total of 5.6k indexed citations (citations by other indexed papers that have themselves been cited), including 64 papers in Materials Chemistry, 32 papers in Renewable Energy, Sustainability and the Environment and 29 papers in Catalysis. Recurrent topics in Michail Stamatakis's work include Catalytic Processes in Materials Science (56 papers), Electrocatalysts for Energy Conversion (31 papers) and Machine Learning in Materials Science (20 papers). Michail Stamatakis is often cited by papers focused on Catalytic Processes in Materials Science (56 papers), Electrocatalysts for Energy Conversion (31 papers) and Machine Learning in Materials Science (20 papers). Michail Stamatakis collaborates with scholars based in United Kingdom, United States and Greece. Michail Stamatakis's co-authors include Dionisios G. Vlachos, Matthew T. Darby, E. Charles H. Sykes, Angelos Michaelides, Romain Réocreux, Maria Flytzani‐Stephanopoulos, Shik Chi Edman Tsang, Simone Piccinin, Felicia R. Lucci and Stavros Caratzoulas and has published in prestigious journals such as Science, Journal of the American Chemical Society and Angewandte Chemie International Edition.

In The Last Decade

Michail Stamatakis

100 papers receiving 5.5k citations

Hit Papers

MoS2 monolayer catalyst doped with isolated Co atoms for ... 2017 2026 2020 2023 2017 2018 2021 2024 250 500 750

Peers

Michail Stamatakis
Jochen Lauterbach United States
Ke Yang China
Götz Veser United States
Thomas Risse Germany
Michail Stamatakis
Citations per year, relative to Michail Stamatakis Michail Stamatakis (= 1×) peers Shiping Huang

Countries citing papers authored by Michail Stamatakis

Since Specialization
Citations

This map shows the geographic impact of Michail Stamatakis's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Michail Stamatakis with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Michail Stamatakis more than expected).

Fields of papers citing papers by Michail Stamatakis

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Michail Stamatakis. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Michail Stamatakis. The network helps show where Michail Stamatakis may publish in the future.

Co-authorship network of co-authors of Michail Stamatakis

This figure shows the co-authorship network connecting the top 25 collaborators of Michail Stamatakis. A scholar is included among the top collaborators of Michail Stamatakis based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Michail Stamatakis. Michail Stamatakis is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
2.
Prats, Hèctor, et al.. (2025). Supported Vanadium Carbide Catalysts for Reverse Water Gas Shift and Methanol Steam Reforming: Activity, Stability, and Coking Pathways. ACS Applied Materials & Interfaces. 17(49). 66595–66607.
3.
Prats, Hèctor & Michail Stamatakis. (2025). First-Principles Kinetic Monte Carlo Simulations for Single-Cluster Catalysis: Study of CO2 and CH4 Conversion on Pt/HfC. ACS Catalysis. 15(4). 2904–2915. 3 indexed citations
4.
Prats, Hèctor, et al.. (2025). A General Stiffness-Scaling Framework for Accelerating Graph-Theoretical Kinetic Monte Carlo Simulations. Journal of Chemical Theory and Computation. 21(23). 12262–12277.
5.
Prats, Hèctor & Michail Stamatakis. (2024). Transition Metal Carbides as Supports for Catalytic Metal Particles: Recent Progress and Opportunities. The Journal of Physical Chemistry Letters. 15(12). 3450–3460. 11 indexed citations
6.
Hannagan, Ryan T., Romain Réocreux, Yicheng Wang, et al.. (2023). Investigating Spillover Energy as a Descriptor for Single-Atom Alloy Catalyst Design. The Journal of Physical Chemistry Letters. 14(47). 10561–10569. 13 indexed citations
7.
Réocreux, Romain, et al.. (2023). Elucidating the Reactivity of Oxygenates on Single-Atom Alloy Catalysts. ACS Catalysis. 13(24). 15851–15868. 8 indexed citations
8.
Prats, Hèctor, Yiyang Li, Ping-Luen Ho, et al.. (2023). Molecular layer-by-layer re-stacking of MoS2–In2Se3 by electrostatic means: assembly of a new layered photocatalyst. Materials Chemistry Frontiers. 7(5). 937–945.
9.
Prats, Hèctor & Michail Stamatakis. (2023). Breaking linear scaling relationships with transition metal carbides. Catalysis Science & Technology. 13(16). 4635–4639. 4 indexed citations
10.
Prats, Hèctor & Michail Stamatakis. (2023). Stability and reactivity of metal nanoclusters supported on transition metal carbides. Nanoscale Advances. 5(12). 3214–3224. 5 indexed citations
11.
Stamatakis, Michail, et al.. (2022). Indirect Mechanism of Au adatom Diffusion on the Si(100) Surface. UCL Discovery (University College London). 4 indexed citations
12.
Réocreux, Romain, E. Charles H. Sykes, Angelos Michaelides, & Michail Stamatakis. (2022). Stick or Spill? Scaling Relationships for the Binding Energies of Adsorbates on Single-Atom Alloy Catalysts. The Journal of Physical Chemistry Letters. 13(31). 7314–7319. 36 indexed citations
13.
Fang, Wei, et al.. (2022). Quantum Tunnelling Driven H2 Formation on Graphene. The Journal of Physical Chemistry Letters. 13(14). 3173–3181. 18 indexed citations
14.
Hannagan, Ryan T., Georgios Giannakakis, Romain Réocreux, et al.. (2021). First-principles design of a single-atom–alloy propane dehydrogenation catalyst. Science. 372(6549). 1444–1447. 299 indexed citations breakdown →
15.
Darby, Matthew T., Felicia R. Lucci, Matthew D. Marcinkowski, et al.. (2019). Carbon Monoxide Mediated Hydrogen Release from PtCu Single-Atom Alloys: The Punctured Molecular Cork Effect. The Journal of Physical Chemistry C. 123(16). 10419–10428. 24 indexed citations
16.
Darby, Matthew T., Romain Réocreux, E. Charles H. Sykes, Angelos Michaelides, & Michail Stamatakis. (2018). Elucidating the Stability and Reactivity of Surface Intermediates on Single-Atom Alloy Catalysts. ACS Catalysis. 8(6). 5038–5050. 194 indexed citations
17.
Darby, Matthew T., E. Charles H. Sykes, Angelos Michaelides, & Michail Stamatakis. (2018). Carbon Monoxide Poisoning Resistance and Structural Stability of Single Atom Alloys. Topics in Catalysis. 61(5-6). 428–438. 148 indexed citations
18.
Darby, Matthew T., Michail Stamatakis, Angelos Michaelides, & E. Charles H. Sykes. (2018). Lonely Atoms with Special Gifts: Breaking Linear Scaling Relationships in Heterogeneous Catalysis with Single-Atom Alloys. The Journal of Physical Chemistry Letters. 9(18). 5636–5646. 260 indexed citations
19.
Steinmann, Stephan N., et al.. (2017). A machine learning approach to graph-theoretical cluster expansions of the energy of adsorbate layers. The Journal of Chemical Physics. 147(5). 54106–54106. 36 indexed citations
20.
Teixeira, Ivo F., Tsz Woon Benedict Lo, Pavlo Kostetskyy, et al.. (2016). From Biomass‐Derived Furans to Aromatics with Ethanol over Zeolite. Angewandte Chemie. 128(42). 13255–13260. 30 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

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