D. Jung

4.1k total citations · 1 hit paper
104 papers, 2.4k citations indexed

About

D. Jung is a scholar working on Electrical and Electronic Engineering, Nuclear and High Energy Physics and Atomic and Molecular Physics, and Optics. According to data from OpenAlex, D. Jung has authored 104 papers receiving a total of 2.4k indexed citations (citations by other indexed papers that have themselves been cited), including 62 papers in Electrical and Electronic Engineering, 36 papers in Nuclear and High Energy Physics and 31 papers in Atomic and Molecular Physics, and Optics. Recurrent topics in D. Jung's work include 3D IC and TSV technologies (37 papers), Laser-Plasma Interactions and Diagnostics (35 papers) and Laser-induced spectroscopy and plasma (29 papers). D. Jung is often cited by papers focused on 3D IC and TSV technologies (37 papers), Laser-Plasma Interactions and Diagnostics (35 papers) and Laser-induced spectroscopy and plasma (29 papers). D. Jung collaborates with scholars based in South Korea, United States and Germany. D. Jung's co-authors include B. M. Hegelich, J. C. Fernández, Joungho Kim, B. J. Albright, D. Habs, L. Yin, R. Hörlein, A. Henig, D. Kiefer and D. C. Gautier and has published in prestigious journals such as Physical Review Letters, Nature Communications and Applied Physics Letters.

In The Last Decade

D. Jung

101 papers receiving 2.3k citations

Hit Papers

Radiation-Pressure Acceleration of Ion Beams Driven by Ci... 2009 2026 2014 2020 2009 100 200 300

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
D. Jung South Korea 25 1.5k 1.0k 1.0k 766 486 104 2.4k
Yi Xu China 22 1.1k 0.7× 1.2k 1.1× 417 0.4× 704 0.9× 142 0.3× 112 1.7k
W. Lu United States 30 3.7k 2.4× 1.8k 1.8× 1.7k 1.7× 1.3k 1.7× 520 1.1× 133 4.0k
Mike Dunne United Kingdom 20 804 0.5× 525 0.5× 498 0.5× 224 0.3× 232 0.5× 57 1.3k
J. L. Porter United States 31 2.0k 1.3× 1.2k 1.2× 695 0.7× 704 0.9× 456 0.9× 157 2.9k
V. I. Oreshkin Russia 29 1.6k 1.0× 806 0.8× 942 0.9× 455 0.6× 220 0.5× 168 2.5k
M. G. Haines United Kingdom 28 2.0k 1.3× 843 0.8× 857 0.9× 335 0.4× 348 0.7× 61 2.3k
S. N. Bland United Kingdom 33 2.7k 1.8× 1.0k 1.0× 1.1k 1.1× 433 0.6× 330 0.7× 158 3.3k
R. B. Spielman United States 30 1.8k 1.2× 1.1k 1.1× 691 0.7× 596 0.8× 404 0.8× 136 2.5k
S. A. Pikuz United States 31 2.3k 1.5× 928 0.9× 1.1k 1.1× 668 0.9× 164 0.3× 176 3.1k
V. M. Romanova Russia 21 855 0.6× 524 0.5× 710 0.7× 256 0.3× 83 0.2× 97 1.5k

Countries citing papers authored by D. Jung

Since Specialization
Citations

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

Fields of papers citing papers by D. Jung

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of D. Jung

This figure shows the co-authorship network connecting the top 25 collaborators of D. Jung. A scholar is included among the top collaborators of D. Jung 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 D. Jung. D. Jung 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
2.
Jung, D., Michael Taylor, G. Nersisyan, et al.. (2017). Experimental investigation of picosecond dynamics following interactions between laser accelerated protons and water. Applied Physics Letters. 110(10). 9 indexed citations
3.
Cobble, J. A., S. Palaniyappan, R. P. Johnson, et al.. (2016). Laser-driven micro-Coulomb charge movement and energy conversion to relativistic electrons. Physics of Plasmas. 23(9). 3 indexed citations
4.
Kim, Hongseok, Chiuk Song, D. Jung, et al.. (2016). Coil Design and Measurements of Automotive Magnetic Resonant Wireless Charging System for High-Efficiency and Low Magnetic Field Leakage. IEEE Transactions on Microwave Theory and Techniques. 1–18. 172 indexed citations
5.
Dromey, B., Michael Taylor, Stephan Kuschel, et al.. (2016). Picosecond metrology of laser-driven proton bursts. Nature Communications. 7(1). 10642–10642. 76 indexed citations
6.
Choi, Sumin, Heegon Kim, D. Jung, et al.. (2015). Crosstalk-included eye-diagram estimation for high-speed silicon, organic, and glass interposer channels on 2.5D/3D IC. TS8.25.1–TS8.25.5. 2 indexed citations
7.
Song, Chiuk, Hongseok Kim, D. Jung, et al.. (2014). Harmonic current reduction method of hand-held resonant magnetic field charger (HH-RMFC) for electric vehicle. International Symposium on Electromagnetic Compatibility. 414–417. 1 indexed citations
8.
Cho, Jonghyun, Man‐Ho Lee, D. Jung, et al.. (2014). Through silicon via (TSV) noise coupling effects on RF LC-VCO in 3D IC. 53–56. 3 indexed citations
9.
Choi, Sumin, Heegon Kim, Kiyeong Kim, et al.. (2014). Crosstalk included eye diagram estimation of high-speed and wide I/O interposer channel for 2.5D / 3D IC. 215–218. 5 indexed citations
11.
Kim, Heegon, Jonghyun Cho, D. Jung, et al.. (2013). Design and measurement of a compact on-interposer passive equalizer for chip-to-chip high-speed differential signaling. 5–9. 3 indexed citations
12.
Hegelich, B. M., D. Jung, D. C. Gautier, et al.. (2012). Dynamics of relativistic transparency and optical shuttering in expanding overdense plasmas. Nature Physics. 8(10). 763–769. 130 indexed citations
13.
Dromey, B., S. G. Rykovanov, M. Yeung, et al.. (2012). Coherent synchrotron emission from electron nanobunches formed in relativistic laser–plasma interactions. Nature Physics. 8(11). 804–808. 119 indexed citations
14.
Jung, D., L. Yin, B. J. Albright, et al.. (2011). Monoenergetic Ion Beam Generation by Driving Ion Solitary Waves with Circularly Polarized Laser Light. Physical Review Letters. 107(11). 115002–115002. 56 indexed citations
15.
Schnürer, M., А. А. Андреев, Sven Steinke, et al.. (2011). Comparison of femtosecond laser-driven proton acceleration using nanometer and micrometer thick target foils. Laser and Particle Beams. 29(4). 437–446. 9 indexed citations
16.
Ma, Wenjun, V.Kh. Liechtenstein, J. Szerypo, et al.. (2011). Preparation of self-supporting diamond-like carbon nanofoils with thickness less than 5 nm for laser-driven ion acceleration. Nuclear Instruments and Methods in Physics Research Section A Accelerators Spectrometers Detectors and Associated Equipment. 655(1). 53–56. 24 indexed citations
17.
Henig, A., Sven Steinke, M. Schnürer, et al.. (2009). Radiation-Pressure Acceleration of Ion Beams Driven by Circularly Polarized Laser Pulses. Physical Review Letters. 103(24). 245003–245003. 374 indexed citations breakdown →
18.
Henig, A., D. Kiefer, K. Markey, et al.. (2009). Enhanced Laser-Driven Ion Acceleration in the Relativistic Transparency Regime. Physical Review Letters. 103(4). 45002–45002. 177 indexed citations
19.
Thirolf, P. G., D. Habs, A. Henig, et al.. (2009). Signatures of the Unruh effect via high-power, short-pulse lasers. The European Physical Journal D. 55(2). 379–389. 21 indexed citations
20.
Huang, Jinkun, et al.. (1997). Beam-Based Offset Calibration of the PLS BPM. APS. 2 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.

Explore authors with similar magnitude of impact

Rankless by CCL
2026