Hongbin Ding

1.0k total citations
79 papers, 811 citations indexed

About

Hongbin Ding is a scholar working on Electrical and Electronic Engineering, Mechanics of Materials and Radiology, Nuclear Medicine and Imaging. According to data from OpenAlex, Hongbin Ding has authored 79 papers receiving a total of 811 indexed citations (citations by other indexed papers that have themselves been cited), including 39 papers in Electrical and Electronic Engineering, 30 papers in Mechanics of Materials and 26 papers in Radiology, Nuclear Medicine and Imaging. Recurrent topics in Hongbin Ding's work include Plasma Diagnostics and Applications (33 papers), Plasma Applications and Diagnostics (25 papers) and Laser-induced spectroscopy and plasma (22 papers). Hongbin Ding is often cited by papers focused on Plasma Diagnostics and Applications (33 papers), Plasma Applications and Diagnostics (25 papers) and Laser-induced spectroscopy and plasma (22 papers). Hongbin Ding collaborates with scholars based in China, Switzerland and United Kingdom. Hongbin Ding's co-authors include John P. Maier, Thomas Pino, Felix Güthe, Andrey E. Boguslavskiy, Chunlei Feng, Cong Li, Jielin Shi, Yong Wang, Ding Wu and Zhiwei Wang and has published in prestigious journals such as Nature Communications, The Journal of Chemical Physics and The Astrophysical Journal.

In The Last Decade

Hongbin Ding

67 papers receiving 767 citations

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Hongbin Ding China 19 362 214 207 193 175 79 811
Andrew D. Sappey United States 16 288 0.8× 313 1.5× 130 0.6× 99 0.5× 92 0.5× 34 650
I. Iga Brazil 22 1.0k 2.9× 312 1.5× 164 0.8× 123 0.6× 107 0.6× 81 1.2k
M. G. H. Boogaarts Netherlands 18 329 0.9× 482 2.3× 423 2.0× 161 0.8× 220 1.3× 23 894
J. H. van Helden Germany 20 213 0.6× 622 2.9× 609 2.9× 224 1.2× 244 1.4× 81 1.2k
P. B. Davies United Kingdom 13 281 0.8× 385 1.8× 267 1.3× 122 0.6× 120 0.7× 42 736
John M. Goodings Canada 18 354 1.0× 280 1.3× 243 1.2× 84 0.4× 181 1.0× 68 1.1k
Valeriy N. Azyazov Russia 22 650 1.8× 525 2.5× 453 2.2× 65 0.3× 334 1.9× 144 1.6k
O. J. Orient United States 17 552 1.5× 412 1.9× 179 0.9× 62 0.3× 102 0.6× 55 920
F. Howorka Austria 18 558 1.5× 597 2.8× 226 1.1× 68 0.4× 77 0.4× 52 1.0k
M. C. A. Lopes Brazil 19 844 2.3× 381 1.8× 139 0.7× 71 0.4× 137 0.8× 66 953

Countries citing papers authored by Hongbin Ding

Since Specialization
Citations

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

Fields of papers citing papers by Hongbin Ding

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Hongbin Ding

This figure shows the co-authorship network connecting the top 25 collaborators of Hongbin Ding. A scholar is included among the top collaborators of Hongbin Ding 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 Hongbin Ding. Hongbin Ding 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.
Li, Cong, Qi He, Jielin Shi, et al.. (2025). Spatio-temporal evolution of laser ablation W plasma under low-pressure Ar gas and Ar plasma ambients. Journal of Analytical Atomic Spectrometry. 40(3). 762–774.
2.
Wang, Yong, Ding Wu, Chunlei Feng, et al.. (2025). Thomson scattering diagnostics of electron density and electron temperature in cascade arc argon-helium and argon-neon mixture plasmas. Physica Scripta. 100(7). 75609–75609.
3.
Hu, Zhenhua, Xue Bai, Ran Hai, et al.. (2024). Quantitative analysis of impurities deposited on the Plasma-Facing Components of EAST tokamak using a portable LIBS device. Nuclear Materials and Energy. 41. 101785–101785. 1 indexed citations
7.
Wang, Yong, et al.. (2024). Observation of the low electron density and electron temperature in an unmagnetized cascaded arc helium plasma by laser Thomson scattering approach. Plasma Physics and Controlled Fusion. 66(4). 45014–45014. 2 indexed citations
8.
Shi, Jielin, H. Tanaka, Shin Kajita, et al.. (2024). Hydrogen isotope effects on recombination dominant plasmas in NAGDIS-II. Plasma Physics and Controlled Fusion. 66(8). 85006–85006. 2 indexed citations
9.
Shi, Jielin, et al.. (2023). Transition from MAR to EIR of deuterium plasma detachment in NAGDIS-II. Physica Scripta. 98(11). 115605–115605. 3 indexed citations
10.
Wang, Zhiwei, et al.. (2023). Effect of powered electrode configuration on plasma structure of surface micro-discharge array. Physics of Plasmas. 30(6). 1 indexed citations
11.
Sattar, Harse, Ran Hai, Zhenlin Hu, et al.. (2022). Simultaneous analysis of long-pulse laser irradiated plasma-facing materials (PFMs) microstructure and hardness by in-situ laser Opto-ultrasonic dual detection (LOUD). Optics & Laser Technology. 157. 108741–108741. 5 indexed citations
12.
Zhao, Yarui, Junjie Chen, Zhenxing Li, et al.. (2022). Photodissociation of H2S: A New Pathway for the Production of Vibrationally Excited Molecular Hydrogen in the Interstellar Medium. The Journal of Physical Chemistry Letters. 13(42). 9786–9792. 16 indexed citations
13.
Zhao, Yarui, Yao Chang, Yucheng Wu, et al.. (2021). Rotational and nuclear-spin level dependent photodissociation dynamics of H2S. Nature Communications. 12(1). 4459–4459. 28 indexed citations
14.
Zhao, Yarui, Christopher S. Hansen, Jiayue Yang, et al.. (2020). Ultraviolet photolysis of H2S and its implications for SH radical production in the interstellar medium. Nature Communications. 11(1). 1547–1547. 50 indexed citations
15.
Chang, Yao, Qinming Li, Yarui Zhao, et al.. (2020). Water Photolysis and Its Contributions to the Hydroxyl Dayglow Emissions in the Atmospheres of Earth and Mars. The Journal of Physical Chemistry Letters. 11(21). 9086–9092. 21 indexed citations
16.
Wang, Zhiwei, Chunlei Feng, Liang Gao, & Hongbin Ding. (2020). Influence of electrode geometry on the transport of OH radicals in an atmospheric pressure surface micro-discharge. Journal of Physics D Applied Physics. 53(25). 255202–255202. 3 indexed citations
17.
Wu, Ding, Liying Sun, Jiamin Liu, et al.. (2019). Dynamics of prompt electrons, ions, and neutrals of nanosecond laser ablation of tungsten investigated using optical emission. Physics of Plasmas. 26(1). 22 indexed citations
18.
Wang, Zhiwei, Chunlei Feng, Liang Gao, & Hongbin Ding. (2018). The transport behaviour of OH radicals in atmospheric pressure surface micro-discharge. Journal of Physics D Applied Physics. 52(10). 105203–105203. 5 indexed citations
19.
Zhao, Dongye, Cong Li, Zhenhua Hu, et al.. (2018). Remote in situ laser-induced breakdown spectroscopic approach for diagnosis of the plasma facing components on experimental advanced superconducting tokamak. Review of Scientific Instruments. 89(7). 73501–73501. 55 indexed citations
20.
Guo, Jing, et al.. (2009). Forming mechanism of gaseous defect in Ti-48Al-2Cr-2Nb exhaust valves formed with permanent mold centrifugal casting method. Journal of Material Science and Technology. 17(5). 569–571.

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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