Paul L. McEuen

49.3k total citations · 21 hit papers
174 papers, 38.2k citations indexed

About

Paul L. McEuen is a scholar working on Materials Chemistry, Atomic and Molecular Physics, and Optics and Electrical and Electronic Engineering. According to data from OpenAlex, Paul L. McEuen has authored 174 papers receiving a total of 38.2k indexed citations (citations by other indexed papers that have themselves been cited), including 97 papers in Materials Chemistry, 96 papers in Atomic and Molecular Physics, and Optics and 73 papers in Electrical and Electronic Engineering. Recurrent topics in Paul L. McEuen's work include Carbon Nanotubes in Composites (59 papers), Graphene research and applications (57 papers) and Mechanical and Optical Resonators (45 papers). Paul L. McEuen is often cited by papers focused on Carbon Nanotubes in Composites (59 papers), Graphene research and applications (57 papers) and Mechanical and Optical Resonators (45 papers). Paul L. McEuen collaborates with scholars based in United States, Japan and France. Paul L. McEuen's co-authors include Jiwoong Park, Arend M. van der Zande, Harold G. Craighead, J. M. Parpia, J. Scott Bunch, Li Shi, Arun Majumdar, Jonathan S. Alden, Philip Kim and Hongkun Park and has published in prestigious journals such as Nature, Science and Proceedings of the National Academy of Sciences.

In The Last Decade

Paul L. McEuen

170 papers receiving 37.2k citations

Hit Papers

Thermal Transport Measurements of Individual Multiwalled ... 1997 2026 2006 2016 2001 2007 2008 2011 2002 500 1000 1.5k 2.0k 2.5k

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Paul L. McEuen United States 79 24.2k 15.7k 15.3k 9.6k 2.5k 174 38.2k
U. Gösele Germany 99 26.7k 1.1× 22.4k 1.4× 12.1k 0.8× 15.9k 1.7× 5.2k 2.1× 647 43.2k
Feng Wang United States 83 31.8k 1.3× 17.2k 1.1× 13.2k 0.9× 11.9k 1.2× 7.1k 2.9× 377 43.8k
Klaus Kern Germany 93 17.1k 0.7× 12.8k 0.8× 16.1k 1.1× 9.4k 1.0× 4.9k 2.0× 608 35.9k
J. Tersoff United States 87 24.0k 1.0× 16.9k 1.1× 20.9k 1.4× 10.2k 1.1× 1.8k 0.7× 251 41.4k
Boris I. Yakobson United States 107 40.8k 1.7× 14.5k 0.9× 5.6k 0.4× 7.6k 0.8× 4.0k 1.6× 449 49.7k
Chun Ning Lau United States 50 20.0k 0.8× 7.7k 0.5× 5.9k 0.4× 7.3k 0.8× 3.6k 1.5× 127 26.7k
M. I. Katsnelson Netherlands 90 41.2k 1.7× 15.7k 1.0× 20.9k 1.4× 9.2k 1.0× 8.4k 3.4× 525 53.9k
F. Schedin United Kingdom 29 25.6k 1.1× 12.0k 0.8× 7.1k 0.5× 8.8k 0.9× 4.5k 1.8× 59 31.1k
Yuanbo Zhang China 42 40.8k 1.7× 17.1k 1.1× 14.6k 1.0× 8.0k 0.8× 5.4k 2.2× 78 46.5k
Riichiro Saito Japan 86 33.6k 1.4× 10.1k 0.6× 8.7k 0.6× 8.8k 0.9× 4.7k 1.9× 387 40.8k

Countries citing papers authored by Paul L. McEuen

Since Specialization
Citations

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

Fields of papers citing papers by Paul L. McEuen

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Paul L. McEuen. 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 Paul L. McEuen. The network helps show where Paul L. McEuen may publish in the future.

Co-authorship network of co-authors of Paul L. McEuen

This figure shows the co-authorship network connecting the top 25 collaborators of Paul L. McEuen. A scholar is included among the top collaborators of Paul L. McEuen 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 Paul L. McEuen. Paul L. McEuen 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.
McEuen, Paul L., et al.. (2025). Hierarchical Self-Assembly of Magnetic Handshake Materials. ACS Nano. 19(15). 14770–14779.
2.
Liu, Qingkun, Wei Wang, Jason Z. Kim, et al.. (2024). Electronically configurable microscopic metasheet robots. Nature Materials. 24(1). 109–115. 20 indexed citations
3.
Liang, Zexi, et al.. (2024). Magnetically programmed diffractive robotics. Science. 386(6725). 1031–1037. 19 indexed citations
4.
Bao, Nanqi, Qingkun Liu, Michael Reynolds, et al.. (2023). Gas-phase microactuation using kinetically controlled surface states of ultrathin catalytic sheets. Proceedings of the National Academy of Sciences. 120(19). e2221740120–e2221740120. 7 indexed citations
5.
Hathcock, David, et al.. (2023). Bifurcation instructed design of multistate machines. Proceedings of the National Academy of Sciences. 120(34). e2300081120–e2300081120. 2 indexed citations
6.
Reynolds, Michael, Alejandro J. Cortese, Qingkun Liu, et al.. (2022). Microscopic robots with onboard digital control. Science Robotics. 7(70). eabq2296–eabq2296. 45 indexed citations
7.
Wang, Wei, Qingkun Liu, Michael Reynolds, et al.. (2022). Cilia metasurfaces for electronically programmable microfluidic manipulation. Nature. 605(7911). 681–686. 91 indexed citations
8.
Liu, Qingkun, Wei Wang, Michael Reynolds, et al.. (2021). Micrometer-sized electrically programmable shape-memory actuators for low-power microrobotics. Science Robotics. 6(52). 95 indexed citations
9.
Miskin, Marc Z., Alejandro J. Cortese, Kyle Dorsey, et al.. (2020). Electronically integrated, mass-manufactured, microscopic robots. Nature. 584(7822). 557–561. 261 indexed citations breakdown →
10.
Miskin, Marc Z., Robert J. Lang, Michael C. Cao, et al.. (2020). Bidirectional Self-Folding with Atomic Layer Deposition Nanofilms for Microscale Origami. Nano Letters. 20(7). 4850–4856. 12 indexed citations
11.
Ju, Long, Lei Wang, Xiao Li, et al.. (2020). Unconventional valley-dependent optical selection rules and landau level mixing in bilayer graphene. Nature Communications. 11(1). 2941–2941. 16 indexed citations
12.
Dorsey, Kyle, Edward Esposito, Yimo Han, et al.. (2019). Atomic Layer Deposition for Membranes, Metamaterials, and Mechanisms. Advanced Materials. 31(29). e1901944–e1901944. 27 indexed citations
13.
Reynolds, Michael, Kathryn L. McGill, Hui Gao, et al.. (2019). Capillary Origami with Atomically Thin Membranes. Nano Letters. 19(9). 6221–6226. 33 indexed citations
14.
Miskin, Marc Z., et al.. (2018). Bidirectional Folding with Nanoscale Sheets for Autonomous Micro-Origami. Bulletin of the American Physical Society. 2018. 2 indexed citations
15.
Kobrin, Bryce, et al.. (2017). Temperature-Induced Density Control of CVD Grown Horizontally Aligned Single-Walled Carbon Nanotubes. Bulletin of the American Physical Society. 2017. 1 indexed citations
16.
Reynolds, Michael, Morgan A. Brown, Kathryn L. McGill, et al.. (2016). Kirigami Graphene Transistors for Biological Sensing. Bulletin of the American Physical Society. 2016. 1 indexed citations
17.
Brown, Morgan A., et al.. (2015). Determination of the Thermal Noise Limit of Graphene Biotransistors. Nano Letters. 15(8). 5404–5407. 7 indexed citations
18.
Rose, Peter, et al.. (2014). Focused Ion Beam patterning of suspended graphene for cantilever and kirigami devices. Bulletin of the American Physical Society. 2014.
19.
Gabor, Nathaniel M., Zhaohui Zhong, Ken Bosnick, & Paul L. McEuen. (2012). Ultrafast Photocurrent Measurement of the Escape Time of Electrons and Holes from Carbon Nanotube p-i-n Photodiodes. DSpace@MIT (Massachusetts Institute of Technology). 4 indexed citations
20.
Zhong, Zhaohui, Xinjian Zhou, & Paul L. McEuen. (2007). Carbon Nanotube FET Mixers and High Frequency Applications. Bulletin of the American Physical Society. 1 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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