Daniel Assumpção

974 total citations · 2 hit papers
19 papers, 485 citations indexed

About

Daniel Assumpção is a scholar working on Atomic and Molecular Physics, and Optics, Electrical and Electronic Engineering and Biomedical Engineering. According to data from OpenAlex, Daniel Assumpção has authored 19 papers receiving a total of 485 indexed citations (citations by other indexed papers that have themselves been cited), including 14 papers in Atomic and Molecular Physics, and Optics, 10 papers in Electrical and Electronic Engineering and 6 papers in Biomedical Engineering. Recurrent topics in Daniel Assumpção's work include Photonic and Optical Devices (9 papers), Photorefractive and Nonlinear Optics (7 papers) and Quantum optics and atomic interactions (4 papers). Daniel Assumpção is often cited by papers focused on Photonic and Optical Devices (9 papers), Photorefractive and Nonlinear Optics (7 papers) and Quantum optics and atomic interactions (4 papers). Daniel Assumpção collaborates with scholars based in United States, Netherlands and South Korea. Daniel Assumpção's co-authors include Marko Lončar, Neil Sinclair, Bartholomeus Machielse, Mikhail D. Lukin, Mihir K. Bhaskar, Can M. Knaut, David Levonian, Madison Sutula, Aziza Suleymanzade and Erik Knall and has published in prestigious journals such as Nature, Science and Nature Communications.

In The Last Decade

Daniel Assumpção

14 papers receiving 457 citations

Hit Papers

Entanglement of nanophotonic quantum memory nodes in a te... 2024 2026 2025 2024 2025 40 80 120

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Daniel Assumpção United States 10 323 207 170 121 65 19 485
Yan Qi Huan United States 7 344 1.1× 149 0.7× 201 1.2× 143 1.2× 45 0.7× 11 477
Gabriel Puebla‐Hellmann Switzerland 8 250 0.8× 141 0.7× 185 1.1× 80 0.7× 69 1.1× 14 396
Mathieu Munsch Switzerland 11 432 1.3× 282 1.4× 148 0.9× 69 0.6× 111 1.7× 17 492
Shahriar Aghaeimeibodi United States 10 437 1.4× 380 1.8× 208 1.2× 197 1.6× 124 1.9× 19 625
Michael Zopf Germany 10 440 1.4× 295 1.4× 259 1.5× 124 1.0× 97 1.5× 23 551
A. K. Nowak Spain 8 481 1.5× 298 1.4× 254 1.5× 85 0.7× 96 1.5× 20 561
Jan-Hindrik Schulze Germany 14 280 0.9× 225 1.1× 136 0.8× 111 0.9× 56 0.9× 19 404
Francesco Basso Basset Italy 12 374 1.2× 209 1.0× 288 1.7× 139 1.1× 56 0.9× 20 518
Ryota Katsumi Japan 10 309 1.0× 290 1.4× 99 0.6× 52 0.4× 58 0.9× 25 394
Stephen C. Wein Canada 10 282 0.9× 127 0.6× 251 1.5× 87 0.7× 55 0.8× 22 424

Countries citing papers authored by Daniel Assumpção

Since Specialization
Citations

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

Fields of papers citing papers by Daniel Assumpção

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Daniel Assumpção

This figure shows the co-authorship network connecting the top 25 collaborators of Daniel Assumpção. A scholar is included among the top collaborators of Daniel Assumpção 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 Daniel Assumpção. Daniel Assumpção is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

19 of 19 papers shown
1.
Hu, Yaowen, Di Zhu, Dylan Renaud, et al.. (2025). Integrated electro-optics on thin-film lithium niobate. Nature Reviews Physics. 7(5). 237–254. 23 indexed citations breakdown →
2.
Assumpção, Daniel, Dylan Renaud, Amirhassan Shams‐Ansari, & Marko Lončar. (2025). High-speed short-wavelength communications utilizing thin-film lithium niobate. Optics Letters. 50(5). 1473–1473.
3.
Knaut, Can M., Aziza Suleymanzade, Yan-Cheng Wei, et al.. (2024). Entanglement of nanophotonic quantum memory nodes in a telecom network. Nature. 629(8012). 573–578. 127 indexed citations breakdown →
4.
Assumpção, Daniel, Dylan Renaud, Chawina De-Eknamkul, et al.. (2024). A thin film lithium niobate near-infrared platform for multiplexing quantum nodes. Nature Communications. 15(1). 10459–10459. 9 indexed citations
5.
Powell, Keith, Dylan Renaud, Xudong Li, et al.. (2024). A sub-volt near-IR lithium tantalate electro-optic modulator. SM2D.2–SM2D.2.
6.
Stas, Pieter-Jan, Yan-Cheng Wei, Aziza Suleymanzade, et al.. (2024). Distributed Blind Quantum Computing with a Two-Node Quantum Network. QTu4B.5–QTu4B.5.
7.
Pingault, Benjamin, Cleaven Chia, Michael Haas, et al.. (2024). Controlling interactions between high-frequency phonons and single quantum systems using phononic crystals. Nature Physics. 21(1). 77–82. 6 indexed citations
8.
Assumpção, Daniel, Dylan Renaud, Amirhassan Shams‐Ansari, & Marko Lončar. (2024). Sub-1V Near-Infrared Thin-Film Lithium Niobate Modulator for High-Speed Visible Communication. Th3D.5–Th3D.5.
9.
Powell, Keith, et al.. (2024). DC-stable electro-optic modulators using thin-film lithium tantalate. Optics Express. 32(25). 44115–44115. 10 indexed citations
10.
Assumpção, Daniel, Radwanul Hasan Siddique, Hyochul Kim, et al.. (2024). Bioinspired Nanophotonic Angle-Independent and Ultralarge Light Dispersion Allowing Simultaneous Near-Infrared-Spectroscopy and Visible-Imaging. ACS Photonics. 11(4). 1480–1490.
11.
De-Eknamkul, Chawina, Daniel Assumpção, Dylan Renaud, et al.. (2023). Cryogenic packaging of nanophotonic devices with a low coupling loss <1 dB. Applied Physics Letters. 123(16). 19 indexed citations
12.
Renaud, Dylan, Daniel Assumpção, Graham Joe, et al.. (2023). Sub-1 Volt and high-bandwidth visible to near-infrared electro-optic modulators. Nature Communications. 14(1). 1496–1496. 74 indexed citations
13.
Assumpção, Daniel, Madison Sutula, Phuong Pham, et al.. (2023). Deterministic creation of strained color centers in nanostructures via high-stress thin films. Applied Physics Letters. 123(24). 10 indexed citations
14.
Stas, Pieter-Jan, Yan Qi Huan, Bartholomeus Machielse, et al.. (2022). Robust multi-qubit quantum network node with integrated error detection. Science. 378(6619). 557–560. 135 indexed citations
15.
Pingault, Benjamin, et al.. (2022). Mechanical Control of a Single Nuclear Spin. Physical Review X. 12(1). 19 indexed citations
16.
Stas, Pieter-Jan, Bartholomeus Machielse, David Levonian, et al.. (2021). High-Fidelity Quantum Memory for the Silicon-vacancy Defect in Diamond. Bulletin of the American Physical Society. 1 indexed citations
17.
Kos, Dean, Daniel Assumpção, Chenyang Guo, & Jeremy J. Baumberg. (2021). Quantum Tunneling Induced Optical Rectification and Plasmon-Enhanced Photocurrent in Nanocavity Molecular Junctions. ACS Nano. 15(9). 14535–14543. 39 indexed citations
18.
Assumpção, Daniel, Radwanul Hasan Siddique, Vinayak Narasimhan, & Hyuck Choo. (2020). Angle Independent Fano Resonances in Bioinspired Nanostructured Fabry-Perot Sensors. C2D_1–C2D_1. 1 indexed citations
19.
Assumpção, Daniel, Shailabh Kumar, Vinayak Narasimhan, Jongho Lee, & Hyuck Choo. (2018). High-performance flexible metal-on-silicon thermocouple. Scientific Reports. 8(1). 13725–13725. 12 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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