I. Sagnes

22.2k total citations · 5 hit papers
549 papers, 15.3k citations indexed

About

I. Sagnes is a scholar working on Atomic and Molecular Physics, and Optics, Electrical and Electronic Engineering and Biomedical Engineering. According to data from OpenAlex, I. Sagnes has authored 549 papers receiving a total of 15.3k indexed citations (citations by other indexed papers that have themselves been cited), including 455 papers in Atomic and Molecular Physics, and Optics, 394 papers in Electrical and Electronic Engineering and 93 papers in Biomedical Engineering. Recurrent topics in I. Sagnes's work include Photonic and Optical Devices (287 papers), Semiconductor Lasers and Optical Devices (164 papers) and Semiconductor Quantum Structures and Devices (162 papers). I. Sagnes is often cited by papers focused on Photonic and Optical Devices (287 papers), Semiconductor Lasers and Optical Devices (164 papers) and Semiconductor Quantum Structures and Devices (162 papers). I. Sagnes collaborates with scholars based in France, Italy and Germany. I. Sagnes's co-authors include A. Lemaı̂tre, J. Bloch, P. Senellart, G. Beaudoin, A. Amo, E. Galopin, L. Le Gratiet, L. Lanco, D. D. Solnyshkov and Rémy Braive and has published in prestigious journals such as Nature, Physical Review Letters and Nature Communications.

In The Last Decade

I. Sagnes

522 papers receiving 14.8k citations

Hit Papers

Near-optimal single-photo... 2010 2026 2015 2020 2016 2017 2010 2010 2014 250 500 750

Author Peers

Peers are selected by citation overlap in the author's most active subfields. citations · hero ref

Author Last Decade Papers Cites
I. Sagnes 12.3k 7.8k 3.2k 3.0k 1.6k 549 15.3k
Sven Höfling 13.9k 1.1× 8.2k 1.0× 3.2k 1.0× 4.9k 1.6× 2.3k 1.4× 641 17.4k
M. Kamp 11.2k 0.9× 8.2k 1.0× 3.1k 1.0× 3.7k 1.2× 2.1k 1.3× 525 15.3k
A. Lemaı̂tre 17.0k 1.4× 7.3k 0.9× 4.3k 1.3× 3.5k 1.2× 3.0k 1.8× 552 20.1k
Christian Schneider 8.5k 0.7× 4.0k 0.5× 2.0k 0.6× 3.5k 1.2× 1.6k 1.0× 298 10.4k
Oskar Painter 19.2k 1.6× 15.4k 2.0× 3.2k 1.0× 3.8k 1.3× 1.1k 0.7× 194 21.3k
M. S. Skolnick 18.7k 1.5× 9.1k 1.2× 4.8k 1.5× 1.8k 0.6× 3.8k 2.4× 603 20.5k
J. E. Sipe 12.8k 1.0× 9.0k 1.1× 4.1k 1.3× 1.8k 0.6× 3.2k 2.0× 381 19.2k
H. M. Gibbs 7.9k 0.6× 3.9k 0.5× 1.6k 0.5× 1.4k 0.5× 898 0.6× 191 9.2k
Kerry J. Vahala 28.7k 2.3× 27.0k 3.4× 4.0k 1.2× 3.3k 1.1× 1.8k 1.1× 382 33.2k
A. V. Kavokin 13.2k 1.1× 3.3k 0.4× 5.2k 1.6× 1.3k 0.4× 2.0k 1.2× 434 14.9k

Countries citing papers authored by I. Sagnes

Since Specialization
Citations

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

Fields of papers citing papers by I. Sagnes

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of I. Sagnes

This figure shows the co-authorship network connecting the top 25 collaborators of I. Sagnes. A scholar is included among the top collaborators of I. Sagnes 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 I. Sagnes. I. Sagnes 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.
Fioretto, Dario, Martina Morassi, A. Lemaı̂tre, et al.. (2025). Monitoring the generation of photonic linear cluster states with partial measurements. Quantum Science and Technology. 11(1). 15015–15015. 1 indexed citations
2.
Wein, Stephen C., Abdelmounaïm Harouri, A. Lemaı̂tre, et al.. (2025). Indistinguishability of Remote Quantum-Dot-Cavity Single-Photon Sources. Nano Letters. 25(38). 13979–13987.
3.
Morassi, Martina, A. Lemaı̂tre, I. Sagnes, et al.. (2024). Hybrid III-V/Silicon Quantum Photonic Device Generating Broadband Entangled Photon Pairs. PRX Quantum. 5(4). 2 indexed citations
4.
Corrielli, Giacomo, Iris Agresti, Gonzalo Carvacho, et al.. (2024). High-fidelity four-photon GHZ states on chip. npj Quantum Information. 10(1). 15 indexed citations
5.
Krauskopf, Bernd, Neil G. R. Broderick, Rémy Braive, et al.. (2023). Merging and disconnecting resonance tongues in a pulsing excitable microlaser with delayed optical feedback. Chaos An Interdisciplinary Journal of Nonlinear Science. 33(2). 23142–23142. 3 indexed citations
6.
Zhong, Qi, Li Ge, G. Beaudoin, et al.. (2023). Tracking exceptional points above the lasing threshold. Nature Communications. 14(1). 8304–8304. 20 indexed citations
7.
Walker, P. M., Oleksandr Kyriienko, I. A. Shelykh, et al.. (2022). Few-photon all-optical phase rotation in a quantum-well micropillar cavity. Nature Photonics. 16(8). 566–569. 18 indexed citations
8.
Thomas, S. E., Nicolò Spagnolo, Francesco Ceccarelli, et al.. (2022). Quantifying n-Photon Indistinguishability with a Cyclic Integrated Interferometer. Physical Review X. 12(3). 17 indexed citations
9.
Marino, Giuseppe, Davide Rocco, Carlo Gigli, et al.. (2021). Harmonic generation with multi‐layer dielectric metasurfaces. Nanophotonics. 10(7). 1837–1843. 30 indexed citations
10.
Nouvel, P., A. Pénarier, L. Varani, et al.. (2021). 280 GHz Radiation Source Driven by a 1064nm Continuous-Wave Dual-Frequency Vertical External Cavity Semiconductor Laser. HAL (Le Centre pour la Communication Scientifique Directe). 1–2. 1 indexed citations
11.
Buca, Dan, Nils von den Driesch, Konstantinos Pantzas, et al.. (2020). Ultra-low-threshold continuous-wave and pulsed lasing in tensile-strained GeSn alloys. White Rose Research Online (University of Leeds, The University of Sheffield, University of York). 158 indexed citations
12.
Akhtar, Waseem, Serge Monneret, Felipe Fávaro de Oliveira, et al.. (2020). Optimal architecture for diamond-based wide-field thermal imaging. AIP Advances. 10(2). 8 indexed citations
13.
Liu, Hui, Ghaya Baili, François Gutty, et al.. (2020). Optimization of laser dynamics for active stabilization of DF-VECSELs dedicated to cesium CPT clocks. Journal of the Optical Society of America B. 37(4). 1196–1196. 3 indexed citations
14.
Zambon, N. Carlon, Philippe St-Jean, Marijana Milićević, et al.. (2019). Optically controlling the emission chirality of microlasers. Nature Photonics. 13(4). 283–288. 123 indexed citations
15.
Antón, C., J. C. Loredo, H. Ollivier, et al.. (2019). Interfacing scalable photonic platforms: solid-state based multi-photon interference in a reconfigurable glass chip. Optica. 6(12). 1471–1471. 31 indexed citations
16.
Gigli, Carlo, Giuseppe Marino, Stéphan Suffit, et al.. (2019). Polarization- and diffraction-controlled second-harmonic generation from semiconductor metasurfaces. Journal of the Optical Society of America B. 36(7). E55–E55. 17 indexed citations
17.
Liu, Hui, Ghaya Baili, François Gutty, et al.. (2018). Noise Investigation of a Dual-Frequency VECSEL for Application to Cesium Clocks. Journal of Lightwave Technology. 36(18). 3882–3891. 14 indexed citations
18.
Baili, Ghaya, François Gutty, I. Sagnes, et al.. (2018). Fully–correlated multi–mode pumping for low–noise dual–frequency VECSELs. Optics Express. 26(20). 26217–26217. 8 indexed citations
19.
Giesz, Valérian, Niccolò Somaschi, Gaston Hornecker, et al.. (2016). Coherent manipulation of a solid-state artificial atom with few photons. Nature Communications. 7(1). 11986–11986. 48 indexed citations
20.
Todorov, Yanko, et al.. (2015). Electrical excitation of superradiant intersubband plasmons. Applied Physics Letters. 107(24). 7 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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