Rodrigo Berté

1.3k total citations · 1 hit paper
31 papers, 929 citations indexed

About

Rodrigo Berté is a scholar working on Atomic and Molecular Physics, and Optics, Biomedical Engineering and Electrical and Electronic Engineering. According to data from OpenAlex, Rodrigo Berté has authored 31 papers receiving a total of 929 indexed citations (citations by other indexed papers that have themselves been cited), including 18 papers in Atomic and Molecular Physics, and Optics, 13 papers in Biomedical Engineering and 11 papers in Electrical and Electronic Engineering. Recurrent topics in Rodrigo Berté's work include Plasmonic and Surface Plasmon Research (12 papers), Mechanical and Optical Resonators (9 papers) and Photonic and Optical Devices (8 papers). Rodrigo Berté is often cited by papers focused on Plasmonic and Surface Plasmon Research (12 papers), Mechanical and Optical Resonators (9 papers) and Photonic and Optical Devices (8 papers). Rodrigo Berté collaborates with scholars based in United Kingdom, Germany and Brazil. Rodrigo Berté's co-authors include Stefan A. Maier, Emiliano Cortés, Yi Li, Julián Gargiulo, Benjamin Tilmann, Gustavo Grinblat, Leonardo de S. Menezes, Andrea V. Bragas, Kian Ping Loh and Christopher R. Gubbin and has published in prestigious journals such as Physical Review Letters, Advanced Materials and Nature Communications.

In The Last Decade

Rodrigo Berté

29 papers receiving 910 citations

Hit Papers

Giant second-harmonic generation in ferroelectric NbOI2 2022 2026 2023 2024 2022 50 100 150

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Rodrigo Berté United Kingdom 17 449 404 347 332 294 31 929
Niclas S. Mueller Germany 19 545 1.2× 304 0.8× 217 0.6× 548 1.7× 529 1.8× 44 1.1k
Steve Savoy United States 8 547 1.2× 198 0.5× 332 1.0× 497 1.5× 170 0.6× 11 1.2k
Baoqin Chen China 14 196 0.4× 307 0.8× 325 0.9× 194 0.6× 369 1.3× 41 947
Ainhoa Atxabal Spain 15 255 0.6× 382 0.9× 529 1.5× 183 0.6× 275 0.9× 19 908
Guoding Xu China 15 168 0.4× 237 0.6× 374 1.1× 233 0.7× 581 2.0× 37 901
Sandipan Pramanik Canada 18 165 0.4× 568 1.4× 620 1.8× 181 0.5× 287 1.0× 61 1.1k
Tao Zhu China 15 314 0.7× 194 0.5× 422 1.2× 565 1.7× 905 3.1× 48 1.4k
Sung Ho Jhang South Korea 15 328 0.7× 448 1.1× 470 1.4× 109 0.3× 1.0k 3.6× 49 1.3k
Atsushi Yokoo Japan 18 372 0.8× 385 1.0× 482 1.4× 99 0.3× 438 1.5× 52 977

Countries citing papers authored by Rodrigo Berté

Since Specialization
Citations

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

Fields of papers citing papers by Rodrigo Berté

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Rodrigo Berté

This figure shows the co-authorship network connecting the top 25 collaborators of Rodrigo Berté. A scholar is included among the top collaborators of Rodrigo Berté 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 Rodrigo Berté. Rodrigo Berté 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.
Berté, Rodrigo, et al.. (2025). All-optical permittivity-asymmetric quasi-bound states in the continuum. Light Science & Applications. 14(1). 185–185. 1 indexed citations
2.
Hu, Haiyang, Wenzheng Lu, A. A. Antonov, et al.. (2024). Environmental permittivity-asymmetric BIC metasurfaces with electrical reconfigurability. Nature Communications. 15(1). 7050–7050. 24 indexed citations
3.
Mancini, Andrea, et al.. (2024). Multiplication of the orbital angular momentum of phonon polaritons via sublinear dispersion. Nature Photonics. 18(7). 677–684. 8 indexed citations
4.
5.
Berté, Rodrigo, Thomas Weber, Leonardo de S. Menezes, et al.. (2023). Permittivity-Asymmetric Quasi-Bound States in the Continuum. Nano Letters. 23(7). 2651–2658. 40 indexed citations
6.
Abdelwahab, Ibrahim, Benjamin Tilmann, Xiaoxu Zhao, et al.. (2023). Highly Efficient Sum‐Frequency Generation in Niobium Oxydichloride NbOCl2 Nanosheets. Advanced Optical Materials. 11(7). 28 indexed citations
7.
Berté, Rodrigo, et al.. (2023). A espécie <em>Moringa oleífera</em> Lam. E suas propriedades na fitocosmética: Uma revisão de literatura. Brazilian Journal of Development. 9(1). 1093–1103.
8.
Kühner, Lucca, Luca Sortino, Rodrigo Berté, et al.. (2022). Radial bound states in the continuum for polarization-invariant nanophotonics. Nature Communications. 13(1). 4992–4992. 2 indexed citations
9.
Abdelwahab, Ibrahim, Benjamin Tilmann, Yaze Wu, et al.. (2022). Giant second-harmonic generation in ferroelectric NbOI2. Nature Photonics. 16(9). 644–650. 156 indexed citations breakdown →
10.
Luo, Sihai, et al.. (2022). Large Area Patterning of Highly Reproducible and Sensitive SERS Sensors Based on 10-nm Annular Gap Arrays. Nanomaterials. 12(21). 3842–3842. 8 indexed citations
11.
Luo, Sihai, Andrea Mancini, Rodrigo Berté, et al.. (2021). Massively Parallel Arrays of Size‐Controlled Metallic Nanogaps with Gap‐Widths Down to the Sub‐3‐nm Level. Advanced Materials. 33(20). e2100491–e2100491. 34 indexed citations
12.
Santos, Vera Lúcia Pereira dos, et al.. (2021). Review of Piper species growing in the Brazilian State of Paraná with emphasize on the vegetative anatomy and biological activities. The Botanical Review. 87(1). 23–54. 8 indexed citations
13.
Mancini, Andrea, Christopher R. Gubbin, Rodrigo Berté, et al.. (2020). Near-Field Spectroscopy of Cylindrical Phonon-Polariton Antennas. ACS Nano. 14(7). 8508–8517. 15 indexed citations
14.
Grinblat, Gustavo, Haizhong Zhang, Michael P. Nielsen, et al.. (2020). Efficient ultrafast all-optical modulation in a nonlinear crystalline gallium phosphide nanodisk at the anapole excitation. Science Advances. 6(34). 64 indexed citations
15.
Gubbin, Christopher R., Rodrigo Berté, Alexander J. Giles, et al.. (2019). Hybrid longitudinal-transverse phonon polaritons. Nature Communications. 10(1). 1682–1682. 53 indexed citations
16.
Berté, Rodrigo, Christopher R. Gubbin, Virginia D. Wheeler, et al.. (2018). Sub-nanometer Thin Oxide Film Sensing with Localized Surface Phonon Polaritons. ACS Photonics. 5(7). 2807–2815. 60 indexed citations
17.
Berté, Rodrigo, Yi Li, Emiliano Cortés, et al.. (2018). Acoustic Far-Field Hypersonic Surface Wave Detection with Single Plasmonic Nanoantennas. Physical Review Letters. 121(25). 253902–253902. 22 indexed citations
18.
Berté, Rodrigo, Yi Li, Emiliano Cortés, et al.. (2018). Generation and Detection of Surface Acoustic Waves using Single Plasmonic Nanoresonators. Latin America Optics and Photonics Conference. Th3C.1–Th3C.1. 1 indexed citations
19.
Berté, Rodrigo, et al.. (2017). AVALIAÇÃO DO PENSAMENTO INTEGRADOR: A INTER-RELAÇÃO ENTRE DESASTRES NATURAIS E A SAÚDE. 11(9). 308–317. 1 indexed citations
20.
Baccarin, Marina, Bruno C. Janegitz, Rodrigo Berté, et al.. (2015). Direct electrochemistry of hemoglobin and biosensing for hydrogen peroxide using a film containing silver nanoparticles and poly(amidoamine) dendrimer. Materials Science and Engineering C. 58. 97–102. 62 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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