V. Jacques

4.9k total citations · 3 hit papers
24 papers, 3.5k citations indexed

About

V. Jacques is a scholar working on Atomic and Molecular Physics, and Optics, Materials Chemistry and Artificial Intelligence. According to data from OpenAlex, V. Jacques has authored 24 papers receiving a total of 3.5k 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 Materials Chemistry and 7 papers in Artificial Intelligence. Recurrent topics in V. Jacques's work include Diamond and Carbon-based Materials Research (12 papers), Quantum optics and atomic interactions (8 papers) and Quantum Information and Cryptography (7 papers). V. Jacques is often cited by papers focused on Diamond and Carbon-based Materials Research (12 papers), Quantum optics and atomic interactions (8 papers) and Quantum Information and Cryptography (7 papers). V. Jacques collaborates with scholars based in France, Japan and Germany. V. Jacques's co-authors include Fedor Jelezko, Jörg Wrachtrup, Philipp Neumann, F. Rempp, Yuimaru Kubo, Jan Meijer, A. Dréau, Frédéric Grosshans, François Treussart and Alain Aspect and has published in prestigious journals such as Nature, Science and Physical Review Letters.

In The Last Decade

V. Jacques

22 papers receiving 3.4k citations

Hit Papers

Multipartite Entanglement Among Single Spins in Diamond 2007 2026 2013 2019 2008 2010 2007 100 200 300 400 500

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
V. Jacques France 19 2.7k 1.8k 1.1k 589 547 24 3.5k
Fazhan Shi China 30 2.2k 0.8× 1.7k 0.9× 660 0.6× 484 0.8× 526 1.0× 106 3.1k
A. Dréau France 22 2.8k 1.1× 1.4k 0.7× 1.6k 1.4× 624 1.1× 360 0.7× 32 3.6k
Matthew J. Sellars Australia 31 4.2k 1.6× 1.7k 0.9× 1.6k 1.4× 1.0k 1.8× 430 0.8× 95 5.1k
Sungkun Hong United States 10 2.2k 0.8× 2.2k 1.2× 374 0.3× 706 1.2× 691 1.3× 15 3.2k
Emre Togan Switzerland 17 3.7k 1.4× 2.9k 1.6× 1.4k 1.3× 1.1k 1.9× 815 1.5× 22 5.0k
Jason Twamley Australia 26 2.2k 0.8× 1.1k 0.6× 1.2k 1.1× 599 1.0× 280 0.5× 91 3.0k
John F. Barry United States 14 2.3k 0.9× 1.3k 0.7× 314 0.3× 418 0.7× 465 0.9× 28 3.0k
Jared H. Cole Australia 30 2.6k 1.0× 972 0.5× 1.3k 1.1× 821 1.4× 193 0.4× 115 3.5k
Ania C. Bleszynski Jayich United States 25 1.9k 0.7× 1.4k 0.8× 243 0.2× 719 1.2× 335 0.6× 43 2.5k
Florian Dolde Germany 17 2.2k 0.8× 2.7k 1.5× 536 0.5× 643 1.1× 984 1.8× 20 3.6k

Countries citing papers authored by V. Jacques

Since Specialization
Citations

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

Fields of papers citing papers by V. Jacques

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of V. Jacques

This figure shows the co-authorship network connecting the top 25 collaborators of V. Jacques. A scholar is included among the top collaborators of V. Jacques 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 V. Jacques. V. Jacques 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.
Finco, Aurore, Pawan Kumar, Van Tuong Pham, et al.. (2025). Thermal Spin Wave Noise as a Probe for the Dzyaloshinskii-Moriya Interaction. Physical Review Letters. 135(13). 136703–136703.
2.
Chauleau, Jean-Yves, S. Fusil, Vincent Garcia, et al.. (2019). Electric and antiferromagnetic chiral textures at multiferroic domain walls. Nature Materials. 19(4). 386–390. 69 indexed citations
3.
Gross, I., Waseem Akhtar, Vincent Garcia, et al.. (2017). Real-space imaging of non-collinear antiferromagnetic order with a single-spin magnetometer. Nature. 549(7671). 252–256. 190 indexed citations
4.
Cassabois, G., Pierre Valvin, V. Jacques, et al.. (2017). Overtones of interlayer shear modes in the phonon-assisted emission spectrum of hexagonal boron nitride. Physical review. B.. 95(4). 36 indexed citations
5.
Grèzes, Cécile, Brian Julsgaard, Yuimaru Kubo, et al.. (2015). Storage and retrieval of microwave fields at the single-photon level in a spin ensemble. Physical Review A. 92(2). 41 indexed citations
6.
Chipaux, Mayeul, et al.. (2015). Nitrogen-Vacancy centers in diamond for current imaging at the redistributive layer level of Integrated Circuits. Microelectronics Reliability. 55(9-10). 1549–1553. 59 indexed citations
7.
Grèzes, Cécile, Brian Julsgaard, Yuimaru Kubo, et al.. (2014). Multimode Storage and Retrieval of Microwave Fields in a Spin Ensemble. Physical Review X. 4(2). 89 indexed citations
9.
Kubo, Yuimaru, Andreas Dewes, V. Jacques, et al.. (2012). Storage and retrieval of a microwave field in a spin ensemble. Physical Review A. 85(1). 62 indexed citations
10.
Kubo, Yuimaru, Cécile Grèzes, Andreas Dewes, et al.. (2011). Hybrid Quantum Circuit with a Superconducting Qubit Coupled to a Spin Ensemble. Physical Review Letters. 107(22). 220501–220501. 282 indexed citations
11.
Kubo, Yuimaru, Florian Ong, P. Bertet, et al.. (2010). Strong Coupling of a Spin Ensemble to a Superconducting Resonator. Physical Review Letters. 105(14). 140502–140502. 457 indexed citations breakdown →
12.
Neumann, Philipp, Roman Kolesov, Boris Naydenov, et al.. (2010). Quantum register based on coupled electron spins in a room-temperature solid. Nature Physics. 6(4). 249–253. 358 indexed citations
13.
Batalov, Anton, V. Jacques, Florian Kaiser, et al.. (2009). Low Temperature Studies of the Excited-State Structure of Negatively Charged Nitrogen-Vacancy Color Centers in Diamond. Physical Review Letters. 102(19). 195506–195506. 190 indexed citations
14.
Neumann, Philipp, Norikazu Mizuochi, F. Rempp, et al.. (2009). Response to Comment on "Multipartite Entanglement Among Single Spins in Diamond". Science. 323(5918). 1169–1169. 3 indexed citations
15.
Jacques, V., Philipp Neumann, Johannes Beck, et al.. (2009). Dynamic Polarization of Single Nuclear Spins by Optical Pumping of Nitrogen-Vacancy Color Centers in Diamond at Room Temperature. Physical Review Letters. 102(5). 57403–57403. 319 indexed citations
16.
Siyushev, Petr, V. Jacques, Igor Aharonovich, et al.. (2009). Low-temperature optical characterization of a near-infrared single-photon emitter in nanodiamonds. New Journal of Physics. 11(11). 113029–113029. 37 indexed citations
17.
Jacques, V., E Wu, Frédéric Grosshans, et al.. (2008). Delayed-Choice Test of Quantum Complementarity with Interfering Single Photons. Physical Review Letters. 100(22). 220402–220402. 104 indexed citations
18.
Neumann, Philipp, Norikazu Mizuochi, F. Rempp, et al.. (2008). Multipartite Entanglement Among Single Spins in Diamond. Science. 320(5881). 1326–1329. 565 indexed citations breakdown →
19.
Jacques, V., E Wu, Frédéric Grosshans, et al.. (2007). Experimental Realization of Wheeler's Delayed-Choice Gedanken Experiment. Science. 315(5814). 966–968. 303 indexed citations breakdown →
20.
Jacques, V., E Wu, Frédéric Grosshans, et al.. (2007). Wheeler's delayed-choice thought experiment: Experimental realization and theoretical analysis. Annales de Physique. 32(2-3). 195–197.

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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