Hit papers significantly outperform the citation benchmark for their cohort. A paper qualifies
if it has ≥500 total citations, achieves ≥1.5× the top-1% citation threshold for papers in the
same subfield and year (this is the minimum needed to enter the top 1%, not the average
within it), or reaches the top citation threshold in at least one of its specific research
topics.
Real surface area measurements in electrochemistry
This map shows the geographic impact of О. А. Петрий'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 О. А. Петрий with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites О. А. Петрий more than expected).
This network shows the impact of papers produced by О. А. Петрий. 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 О. А. Петрий. The network helps show where О. А. Петрий may publish in the future.
Co-authorship network of co-authors of О. А. Петрий
This figure shows the co-authorship network connecting the top 25 collaborators of О. А. Петрий.
A scholar is included among the top collaborators of О. А. Петрий 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 О. А. Петрий. О. А. Петрий 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.
Петрий, О. А., et al.. (1999). Platinized platinum: Dependence of the particle size and the texture on the preparation conditions. Russian Journal of Electrochemistry. 35(1). 8–18.9 indexed citations
2.
Петрий, О. А., et al.. (1999). Electrode processes involving multi-charge reagents: Allowing for the outer-sphere ionic association. Russian Journal of Electrochemistry. 35(8). 859–866.5 indexed citations
3.
Tsirlina, Galina A., Yu.I. Kharkats, Renat R. Nazmutdinov, & О. А. Петрий. (1999). Effect of the reagent orientation at the electrode-solution interface on the electrochemical kinetics. Russian Journal of Electrochemistry. 35(1). 19–28.7 indexed citations
4.
Dykhne, A. M., et al.. (1999). Molecular cluster as a tunnel diode. Proceedings of the USSR Academy of Sciences. 368(10). 467–469.2 indexed citations
5.
Tsirlina, Galina A., Alexey Kuznetsov, О. А. Петрий, & Yu.I. Kharkats. (1999). Effect of the electrical double layer on the rate of electrode processes at high overvoltages : Comparing different theoretical approaches. Russian Journal of Electrochemistry. 35(8). 832–840.4 indexed citations
6.
Петрий, О. А., et al.. (1999). Allowing for charge distributions in reagents (products) when analyzing electrostatic effects in electrochemical kinetics. Russian Journal of Electrochemistry. 35(11). 1210–1217.9 indexed citations
7.
Tsirlina, Galina A., et al.. (1998). Dependence of the absolute rate constant of an electrode process on the metal nature: Electroreduction of the Cr(3+) ethylenediamine tetraacetate on Hg, Bi, and Cd and its analysis in the context of the classical approach. Russian Journal of Electrochemistry. 34(4). 325–333.8 indexed citations
8.
Tsirlina, Galina A., et al.. (1996). Adsorption of ethylenediaminetetraacetate complexes of metals on mercury. Russian Journal of Electrochemistry. 32(7). 798–800.1 indexed citations
9.
Tsirlina, Galina A., et al.. (1996). Electrooxidation of thallium in alkaline media: Modeling the thermodynamic stability region of the mixed-valence oxide. Russian Journal of Electrochemistry. 32(7). 778–783.1 indexed citations
10.
Петрий, О. А., et al.. (1996). Electrocatalytic and sorptive properties of electrodes based on substituted alloys of the AB 5 type. Russian Journal of Electrochemistry. 32(5). 588–591.1 indexed citations
11.
Tsirlina, Galina A., Ф. М. Спиридонов, & О. А. Петрий. (1995). Electrosynthesis of thallium oxyfluoride. Russian Journal of Electrochemistry. 31(2). 203–204.2 indexed citations
12.
Tsirlina, Galina A., et al.. (1995). ELECTROCHEMICAL-BEHAVIOR OF SOME CHELATE AMINOCARBOXYLATE COMPLEXES OF COBALT IN AQUEOUS-SOLUTIONS. Russian Journal of Electrochemistry. 31(2). 138–144.2 indexed citations
13.
Tsirlina, Galina A., Ф. М. Спиридонов, & О. А. Петрий. (1995). ELECTROCHEMICAL PROPERTIES OF THALLIUM PEROXIDE AND POSSIBLE METHODS OF ITS ELECTROSYNTHESIS. Russian Journal of Electrochemistry. 31(1). 55–58.2 indexed citations
14.
Петрий, О. А., et al.. (1995). OXIDATION AND ANODIC-DISSOLUTION OF PLATINUM, PALLADIUM, AND RHODIUM THIN-FILMS - INVESTIGATION BY THE SURFACE CONDUCTANCE METHOD. Russian Journal of Electrochemistry. 31(3). 227–233.3 indexed citations
15.
Петрий, О. А., et al.. (1995). Hydrogen spillover on platinum-zirconium alloys and feasibility of its use in electrocatalysis. Russian Journal of Electrochemistry. 31(12). 1274–1279.1 indexed citations
16.
Tsirlina, Galina A., Sergey Pronkin, Ф. М. Спиридонов, Sergey Yu. Vassiliev, & О. А. Петрий. (1994). ELECTROCRYSTALLIZATION OF THALLIUM OXIDES IN AN ALKALINE-MEDIUM - CONTROLLED ELECTROSYNTHESIS OF TEXTURED TL2O3 FILMS. Russian Journal of Electrochemistry. 30(2). 236–237.1 indexed citations
17.
Tsirlina, Galina A., et al.. (1994). ELECTROCRYSTALLIZATION OF THALLIUM OXIDES IN AN ALKALINE-MEDIUM - SPECIFIC PROPERTIES OF DEPOSITS FORMED AT LOW OVERPOTENTIALS. Russian Journal of Electrochemistry. 30(2). 162–166.2 indexed citations
18.
Gaskov, Alexander, et al.. (1990). ELECTROCHEMICAL REACTIONS ON THE SURFACE OF AIVBVI SEMICONDUCTORS IN AQUEOUS BUFFERS. Inorganic Materials. 26(1). 46–51.1 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.