Kévin Garello

10.5k total citations · 6 hit papers
54 papers, 6.8k citations indexed

About

Kévin Garello is a scholar working on Atomic and Molecular Physics, and Optics, Electrical and Electronic Engineering and Electronic, Optical and Magnetic Materials. According to data from OpenAlex, Kévin Garello has authored 54 papers receiving a total of 6.8k indexed citations (citations by other indexed papers that have themselves been cited), including 41 papers in Atomic and Molecular Physics, and Optics, 35 papers in Electrical and Electronic Engineering and 22 papers in Electronic, Optical and Magnetic Materials. Recurrent topics in Kévin Garello's work include Magnetic properties of thin films (39 papers), Advanced Memory and Neural Computing (16 papers) and Ferroelectric and Negative Capacitance Devices (14 papers). Kévin Garello is often cited by papers focused on Magnetic properties of thin films (39 papers), Advanced Memory and Neural Computing (16 papers) and Ferroelectric and Negative Capacitance Devices (14 papers). Kévin Garello collaborates with scholars based in France, Belgium and Switzerland. Kévin Garello's co-authors include Pietro Gambardella, Ioan Mihai Miron, Gilles Gaudin, S. Auffret, Can Onur Avci, Marius V. Costache, S. Bandiera, Pierre-Jean Zermatten, B. Rodmacq and A. Schuhl and has published in prestigious journals such as Nature, Physical Review Letters and Nature Communications.

In The Last Decade

Kévin Garello

52 papers receiving 6.7k citations

Hit Papers

Perpendicular switching of a single ferromagnetic layer i... 2011 2026 2016 2021 2011 2019 2013 2014 2014 500 1000 1.5k 2.0k

Peers

Kévin Garello
Luqiao Liu United States
L. Vila France
Mingzhong Wu United States
Kévin Garello
Citations per year, relative to Kévin Garello Kévin Garello (= 1×) peers Ioan Mihai Miron

Countries citing papers authored by Kévin Garello

Since Specialization
Citations

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

Fields of papers citing papers by Kévin Garello

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Kévin Garello

This figure shows the co-authorship network connecting the top 25 collaborators of Kévin Garello. A scholar is included among the top collaborators of Kévin Garello 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 Kévin Garello. Kévin Garello 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.
Diény, B., S. Aggarwal, V. B. Naik, et al.. (2024). Impact of External Magnetic Fields on STT-MRAM: An Application Note. SPIRE - Sciences Po Institutional REpository. 2(3). 52–59. 3 indexed citations
2.
Sisodia, Naveen, Van Tuong Pham, Aurélien Massebœuf, et al.. (2024). Electrical Detection and Nucleation of a Magnetic Skyrmion in a Magnetic Tunnel Junction Observed via Operando Magnetic Microscopy. Nano Letters. 24(12). 3557–3565. 13 indexed citations
3.
Roche, Stephan, B. J. van Wees, Kévin Garello, & Sergio O. Valenzuela. (2024). Spintronics with two-dimensional materials and van der Waals heterostructures. 2D Materials. 11(4). 43001–43001. 7 indexed citations
4.
Shao, Qiming, Kévin Garello, & Jianshi Tang. (2024). Spintronic foundation cells for large-scale integration. Rare & Special e-Zone (The Hong Kong University of Science and Technology). 1(11). 694–695. 1 indexed citations
5.
Grèzes, Cécile, Luis M. Vicente‐Arche, Paul Noël, et al.. (2023). Non-volatile electric control of spin-orbit torques in an oxide two-dimensional electron gas. Nature Communications. 14(1). 2590–2590. 11 indexed citations
6.
Beilliard, Yann, F. Arnaud, Kévin Garello, et al.. (2023). A tunable and versatile 28 nm FD-SOI crossbar output circuit for low power analog SNN inference with eNVM synapses. Solid-State Electronics. 209. 108779–108779. 2 indexed citations
7.
Křižáková, Viola, Siddharth Rao, Kaiming Cai, et al.. (2023). Field-Free Spin–Orbit Torque Driven Switching of Perpendicular Magnetic Tunnel Junction through Bending Current. Nano Letters. 23(12). 5482–5489. 24 indexed citations
8.
Yang, Hyunsoo, Sergio O. Valenzuela, Mairbek Chshiev, et al.. (2022). Two-dimensional materials prospects for non-volatile spintronic memories. Nature. 606(7915). 663–673. 266 indexed citations breakdown →
9.
Křižáková, Viola, Eva Grimaldi, Kévin Garello, et al.. (2021). Interplay of Voltage Control of Magnetic Anisotropy, Spin-Transfer Torque, and Heat in the Spin-Orbit-Torque Switching of Three-Terminal Magnetic Tunnel Junctions. Physical Review Applied. 15(5). 44 indexed citations
10.
Wan, Danny, T. Devolder, Kévin Garello, et al.. (2021). Nanoscale domain wall devices with magnetic tunnel junction read and write. Nature Electronics. 4(6). 392–398. 65 indexed citations
11.
Couet, Sébastien, Johan Swerts, Bart Sorée, et al.. (2021). Optimization of Tungsten β-Phase Window for Spin-Orbit-Torque Magnetic Random-Access Memory. Physical Review Applied. 16(6). 32 indexed citations
12.
Tahoori, Mehdi B., Manu Perumkunnil, Houman Zahedmanesh, et al.. (2021). Workload-Aware Electromigration Analysis in Emerging Spintronic Memory Arrays. IEEE Transactions on Device and Materials Reliability. 21(2). 258–266. 5 indexed citations
13.
Couet, Sébastien, Siddharth Rao, S. Van Beek, et al.. (2021). BEOL compatible high retention perpendicular SOT-MRAM device for SRAM replacement and machine learning. Symposium on VLSI Technology. 1–2. 11 indexed citations
14.
Garello, Kévin, Siddharth Rao, Faisal Mohd-Yasin, et al.. (2021). Multi-pillar SOT-MRAM for Accurate Analog in-Memory DNN Inference. Symposium on VLSI Technology. 1–2. 7 indexed citations
15.
Kim, W., Sébastien Couet, Kévin Garello, et al.. (2020). Study of precessional switching speed control in voltage-controlled perpendicular magnetic tunnel junction. AIP Advances. 10(3). 6 indexed citations
16.
Gupta, Mohit, Manu Perumkunnil, Kévin Garello, et al.. (2020). High-density SOT-MRAM technology and design specifications for the embedded domain at 5nm node. HAL (Le Centre pour la Communication Scientifique Directe). 24.5.1–24.5.4. 36 indexed citations
17.
Baumgartner, Manuel, Kévin Garello, Johannes Mendil, et al.. (2017). Spatially and time-resolved magnetization dynamics driven by spin–orbit torques. Nature Nanotechnology. 12(10). 980–986. 208 indexed citations
18.
Garello, Kévin, Ioan Mihai Miron, Can Onur Avci, et al.. (2013). Symmetry and magnitude of spin–orbit torques in ferromagnetic heterostructures. Nature Nanotechnology. 8(8). 587–593. 907 indexed citations breakdown →
19.
Miron, Ioan Mihai, Kévin Garello, Gilles Gaudin, et al.. (2011). Perpendicular switching of a single ferromagnetic layer induced by in-plane current injection. Nature. 476(7359). 189–193. 2205 indexed citations breakdown →
20.
Houssameddine, D., U. Ebels, B. Diény, et al.. (2009). Temporal Coherence of MgO Based Magnetic Tunnel Junction Spin Torque Oscillators. Physical Review Letters. 102(25). 257202–257202. 32 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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