J. Varga

6.4k total citations · 3 hit papers
80 papers, 5.2k citations indexed

About

J. Varga is a scholar working on Polymers and Plastics, Biomaterials and Astronomy and Astrophysics. According to data from OpenAlex, J. Varga has authored 80 papers receiving a total of 5.2k indexed citations (citations by other indexed papers that have themselves been cited), including 49 papers in Polymers and Plastics, 23 papers in Biomaterials and 13 papers in Astronomy and Astrophysics. Recurrent topics in J. Varga's work include Polymer crystallization and properties (41 papers), Polymer Nanocomposites and Properties (32 papers) and biodegradable polymer synthesis and properties (23 papers). J. Varga is often cited by papers focused on Polymer crystallization and properties (41 papers), Polymer Nanocomposites and Properties (32 papers) and biodegradable polymer synthesis and properties (23 papers). J. Varga collaborates with scholars based in Hungary, Germany and Austria. J. Varga's co-authors include J. Karger‐Kocsis, Alfréd Menyhárd, M. Ceska, Ronnie Eriksson, Gottfried W. Ehrenstein, S. Holly, G. Keresztury, G. Besenyei, J. R. Durig and Aiying Wang and has published in prestigious journals such as The Astrophysical Journal, Macromolecules and ACS Applied Materials & Interfaces.

In The Last Decade

J. Varga

75 papers receiving 5.0k citations

Hit Papers

Vibrational spectra of monothiocarbamates-II. IR and ... 1972 2026 1990 2008 1993 2002 1972 250 500 750

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
J. Varga Hungary 33 3.4k 2.0k 749 695 452 80 5.2k
Ellina Kesselman Israel 31 491 0.1× 852 0.4× 419 0.6× 1.6k 2.3× 27 0.1× 77 5.1k
Christine Weber Germany 28 1.4k 0.4× 1.4k 0.7× 62 0.1× 1.9k 2.8× 14 0.0× 107 3.9k
Daisuke Suzuki Japan 32 291 0.1× 520 0.3× 629 0.8× 1.2k 1.8× 7 0.0× 170 4.1k
Hirofumi Yajima Japan 24 279 0.1× 266 0.1× 61 0.1× 314 0.5× 146 0.3× 125 1.7k
Andrzej Budkowski Poland 37 1.1k 0.3× 303 0.2× 178 0.2× 503 0.7× 15 0.0× 154 3.8k
Atsushi Asano Japan 33 989 0.3× 638 0.3× 111 0.1× 523 0.8× 27 0.1× 148 3.9k
Marc Malfois Spain 24 265 0.1× 264 0.1× 101 0.1× 528 0.8× 15 0.0× 64 2.5k
Maria M. Santore United States 30 258 0.1× 341 0.2× 55 0.1× 582 0.8× 23 0.1× 101 3.2k
Eduardo Mendes Netherlands 38 971 0.3× 1.4k 0.7× 322 0.4× 1.4k 2.0× 3 0.0× 135 4.5k
Vladimir Aseyev Finland 27 376 0.1× 646 0.3× 78 0.1× 1.1k 1.6× 10 0.0× 103 2.7k

Countries citing papers authored by J. Varga

Since Specialization
Citations

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

Fields of papers citing papers by J. Varga

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of J. Varga

This figure shows the co-authorship network connecting the top 25 collaborators of J. Varga. A scholar is included among the top collaborators of J. Varga 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 J. Varga. J. Varga 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.
Flock, Mario, et al.. (2025). Effect of multi-dust species on the inner rim of magnetized protoplanetary disks. Astronomy and Astrophysics. 701. A259–A259. 1 indexed citations
2.
Akimkin, Vitaly, Konstantin V. Getman, Sierk van Terwisga, et al.. (2025). Time-resolved protoplanetary disk physics in DQ Tau with JWST. Astronomy and Astrophysics. 703. A20–A20. 1 indexed citations
3.
Moór, A., P. Ábrahám, K. Y. L. Su, et al.. (2024). Abundant sub-micron grains revealed in newly discovered extreme debris discs. Monthly Notices of the Royal Astronomical Society. 528(3). 4528–4546. 2 indexed citations
4.
Yoffe, Gideon, R. van Boekel, M. E. van den Ancker, et al.. (2023). Spatially resolving polycyclic aromatic hydrocarbons in Herbig Ae disks with VISIR-NEAR at the VLT. Astronomy and Astrophysics. 674. A57–A57. 2 indexed citations
5.
Lykou, F., P. Ábrahám, Fernando Cruz-Sáenz de Miera, et al.. (2023). The disk of the eruptive protostar V900 Mon. Astronomy and Astrophysics. 682. A75–A75. 1 indexed citations
6.
Ábrahám, P., A. Moór, L. Chen, et al.. (2022). A Gap at 1 au in the Disk of DI Cha A Revealed by Infrared Interferometry*. The Astrophysical Journal. 932(2). 79–79.
7.
Varga, J., et al.. (2019). Dust evolution in the circumstellar disc of the unclassified B[e] star HD 50138. Monthly Notices of the Royal Astronomical Society. 485(3). 3112–3123. 5 indexed citations
8.
Marton, G., P. Ábrahám, E. Szegedi-Elek, et al.. (2019). Identification of Young Stellar Object candidates in the Gaia DR2 x AllWISE catalogue with machine learning methods. Monthly Notices of the Royal Astronomical Society. 487(2). 2522–2537. 55 indexed citations
9.
Cruzalèbes, P., R. Petrov, S. Robbe-Dubois, et al.. (2019). VizieR Online Data Catalog: MDFC Version 10 (Cruzalebes+, 2019). 1 indexed citations
10.
Varga, J., P. Ábrahám, L. Chen, et al.. (2018). VLTI/MIDI atlas of disks around low- and intermediate-mass young stellar objects. Springer Link (Chiba Institute of Technology). 22 indexed citations
11.
Varga, J., K. É. Gabányi, P. Ábrahám, et al.. (2017). Mid-infrared interferometric variability of DG Tauri: Implications for the inner-disk structure. Repository of the Academy's Library (Library of the Hungarian Academy of Sciences). 8 indexed citations
12.
Bárány, Tamás, et al.. (2009). Development of woven fabric reinforced all-polypropylene composites with beta nucleated homo- and copolymer matrices. Composites Science and Technology. 69(13). 2185–2192. 56 indexed citations
13.
Pukánszky, Béla, et al.. (2008). Nanophase separation in segmented polyurethane elastomers: Effect of specific interactions on structure and properties. European Polymer Journal. 44(8). 2431–2438. 59 indexed citations
14.
Varga, J.. (2002). β-MODIFICATION OF ISOTACTIC POLYPROPYLENE: PREPARATION, STRUCTURE, PROCESSING, PROPERTIES, AND APPLICATION. Journal of Macromolecular Science Part B. 41(4-6). 1121–1171. 670 indexed citations breakdown →
15.
Varga, J., et al.. (1999). Crystallization and Melting of β-Nucleated Isotactic Polypropylene. Journal of Thermal Analysis and Calorimetry. 56(3). 1047–1057. 91 indexed citations
16.
Varga, J. & Gottfried W. Ehrenstein. (1996). Formation of β-modification of isotactic polypropylene in its late stage of crystallization. Polymer. 37(26). 5959–5963. 90 indexed citations
17.
Varga, J. & J. Karger‐Kocsis. (1995). Interfacial morphologies in carbon fibre-reinforced polypropylene microcomposites. Polymer. 36(25). 4877–4881. 120 indexed citations
18.
Varga, J. & J. Karger‐Kocsis. (1994). The difference between transcrystallization and shear-induced cylindritic crystallization in fibre-reinforced polypropylene composites. Journal of Materials Science Letters. 13(14). 1069–1071. 76 indexed citations
19.
Varga, J.. (1982). Modification change during spherulitic growth of polypropylene. Die Angewandte Makromolekulare Chemie. 104(1). 79–87. 40 indexed citations
20.
Hardy, G., et al.. (1967). SOLID STATE POLYMERIZATION IN TWO-COMPONENT SYSTEMS.. OSTI OAI (U.S. Department of Energy Office of Scientific and Technical Information). 2 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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