Mirko Schoenitz

7.6k total citations · 1 hit paper
200 papers, 6.2k citations indexed

About

Mirko Schoenitz is a scholar working on Materials Chemistry, Mechanics of Materials and Aerospace Engineering. According to data from OpenAlex, Mirko Schoenitz has authored 200 papers receiving a total of 6.2k indexed citations (citations by other indexed papers that have themselves been cited), including 136 papers in Materials Chemistry, 132 papers in Mechanics of Materials and 72 papers in Aerospace Engineering. Recurrent topics in Mirko Schoenitz's work include Energetic Materials and Combustion (131 papers), Thermal and Kinetic Analysis (110 papers) and Combustion and Detonation Processes (49 papers). Mirko Schoenitz is often cited by papers focused on Energetic Materials and Combustion (131 papers), Thermal and Kinetic Analysis (110 papers) and Combustion and Detonation Processes (49 papers). Mirko Schoenitz collaborates with scholars based in United States, Russia and Germany. Mirko Schoenitz's co-authors include Edward L. Dreizin, Mikhaylo A. Trunov, Xiaoying Zhu, Swati M. Umbrajkar, Kerri-Lee Chintersingh, Siva Kumar Valluri, Trent Ward, Vern K. Hoffmann, Hongqi Nie and Yasmine Aly and has published in prestigious journals such as Journal of Geophysical Research Atmospheres, Environmental Science & Technology and The Journal of Physical Chemistry B.

In The Last Decade

Mirko Schoenitz

195 papers receiving 6.1k citations

Hit Papers

Effect of polymorphic phase transformations in Al2O3 film... 2005 2026 2012 2019 2005 100 200 300 400

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Mirko Schoenitz United States 44 4.3k 4.1k 2.5k 1.2k 569 200 6.2k
Edward L. Dreizin United States 51 7.5k 1.7× 6.3k 1.6× 4.9k 1.9× 1.8k 1.5× 744 1.3× 294 10.2k
А. С. Рогачев Russia 36 1.4k 0.3× 2.9k 0.7× 793 0.3× 3.0k 2.5× 729 1.3× 199 5.3k
Carl C. Koch United States 39 1.0k 0.2× 4.3k 1.0× 1.1k 0.5× 4.5k 3.7× 451 0.8× 117 6.4k
Alexander S. Mukasyan United States 49 2.1k 0.5× 6.5k 1.6× 1.0k 0.4× 3.9k 3.2× 1.2k 2.0× 241 10.0k
K. A. Padmanabhan India 34 1.8k 0.4× 2.9k 0.7× 456 0.2× 2.9k 2.4× 208 0.4× 265 4.8k
Y.F. Shen China 41 2.1k 0.5× 5.9k 1.4× 1.3k 0.5× 6.3k 5.2× 233 0.4× 134 8.8k
P.G. McCormick Australia 48 1.0k 0.2× 3.8k 0.9× 558 0.2× 3.0k 2.5× 395 0.7× 168 6.8k
Ping Huang China 37 1.4k 0.3× 2.3k 0.6× 556 0.2× 2.5k 2.1× 274 0.5× 228 4.5k
Jong‐Hyeon Lee South Korea 36 490 0.1× 2.7k 0.7× 632 0.3× 2.2k 1.8× 509 0.9× 380 5.7k
Alexander A. Gromov Russia 26 1.0k 0.2× 1.1k 0.3× 540 0.2× 627 0.5× 170 0.3× 144 2.2k

Countries citing papers authored by Mirko Schoenitz

Since Specialization
Citations

This map shows the geographic impact of Mirko Schoenitz'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 Mirko Schoenitz with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Mirko Schoenitz more than expected).

Fields of papers citing papers by Mirko Schoenitz

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Mirko Schoenitz. 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 Mirko Schoenitz. The network helps show where Mirko Schoenitz may publish in the future.

Co-authorship network of co-authors of Mirko Schoenitz

This figure shows the co-authorship network connecting the top 25 collaborators of Mirko Schoenitz. A scholar is included among the top collaborators of Mirko Schoenitz 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 Mirko Schoenitz. Mirko Schoenitz 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
1.
Schoenitz, Mirko, et al.. (2025). Aluminum powders with modified morphology and enhanced reactivity prepared by emulsion-assisted milling. Combustion and Flame. 275. 114116–114116.
2.
Schoenitz, Mirko, et al.. (2025). Effect of aluminum, iron, and zirconia additives on the combustion of boron. Combustion and Flame. 281. 114446–114446.
3.
Schoenitz, Mirko, et al.. (2025). Surface residues and decomposition of liquid and vapor diisopropyl methyl phosphonate (DIMP) interacting with metal oxides. Chemical Engineering Journal. 522. 167559–167559.
4.
Venerus, David C., et al.. (2024). Viscosity and density of organophosphorus liquids and their aqueous solutions. Journal of Molecular Liquids. 399. 124476–124476. 1 indexed citations
5.
Groven, Lori J., et al.. (2024). Interaction of Diisopropyl methyl Phosphonate (DIMP) with magnesium oxide at elevated temperatures. Applied Surface Science. 672. 160853–160853. 3 indexed citations
6.
Schoenitz, Mirko, et al.. (2024). Effect of powder characteristics on thermal oxidation of boron. Thermochimica Acta. 743. 179917–179917. 4 indexed citations
8.
House, Andrew A., et al.. (2023). Effect of particle shape on rheology and printability of highly filled reactive inks for direct ink writing. Progress in Additive Manufacturing. 8(6). 1573–1585. 11 indexed citations
9.
Schoenitz, Mirko, et al.. (2023). Evaluation and design of metal-based gas-generating energetic materials. Combustion and Flame. 249. 112615–112615. 9 indexed citations
10.
Schoenitz, Mirko, et al.. (2022). Effect of particle morphology on reactivity, ignition and combustion of boron powders. Fuel. 324. 124538–124538. 31 indexed citations
11.
Schoenitz, Mirko, et al.. (2022). Removal of diisopropyl methyl phosphonate (DIMP) from heated metal oxide surfaces. Journal of Hazardous Materials. 443(Pt A). 130154–130154. 9 indexed citations
12.
Schoenitz, Mirko, et al.. (2020). Highly reactive spheroidal milled aluminum. Materialia. 15. 100959–100959. 9 indexed citations
13.
Schoenitz, Mirko, et al.. (2019). Combustion of a rapidly initiated fully dense nanocomposite Al–CuO thermite powder. Combustion Theory and Modelling. 23(4). 651–673. 7 indexed citations
14.
Schoenitz, Mirko, et al.. (2019). Zirconium-boron reactive composite powders prepared by arrested reactive milling. Journal of Energetic Materials. 38(2). 142–161. 14 indexed citations
15.
Grinshpun, Sergey A., Michael Yermakov, Reshmi Indugula, et al.. (2018). Inactivation of aerosolized surrogates of Bacillus anthracis spores by combustion products of aluminum- and magnesium-based reactive materials: Effect of exposure time. Aerosol Science and Technology. 52(5). 579–587. 7 indexed citations
16.
Schoenitz, Mirko, et al.. (2015). Fouling in microstructured devices: a review. Chemical Communications. 51(39). 8213–8228. 150 indexed citations
17.
Schoenitz, Mirko, et al.. (2013). Controlled polymorphic transformation of continuously crystallized solid lipid nanoparticles in a microstructured device: A feasibility study. European Journal of Pharmaceutics and Biopharmaceutics. 86(3). 324–331. 24 indexed citations
18.
Jallo, Laila J., Mirko Schoenitz, Edward L. Dreizin, Rajesh N. Davé, & Curtis E. Johnson. (2010). The effect of surface modification of aluminum powder on its flowability, combustion and reactivity. Powder Technology. 204(1). 63–70. 75 indexed citations
19.
Trunov, Mikhaylo A., Mirko Schoenitz, Xiaoying Zhu, & Edward L. Dreizin. (2005). Effect of polymorphic phase transformations in Al2O3 film on oxidation kinetics of aluminum powders. Combustion and Flame. 140(4). 310–318. 473 indexed citations breakdown →
20.
Schoenitz, Mirko, Xiaoying Zhu, & Edward L. Dreizin. (2004). Mechanical Alloys in the Al-Rich Part of the Al-Ti Binary System. Journal of Metastable and Nanocrystalline Materials. 20-21. 455–461. 17 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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