Jungjin Park

3.7k total citations · 2 hit papers
46 papers, 3.2k citations indexed

About

Jungjin Park is a scholar working on Electrical and Electronic Engineering, Automotive Engineering and Polymers and Plastics. According to data from OpenAlex, Jungjin Park has authored 46 papers receiving a total of 3.2k indexed citations (citations by other indexed papers that have themselves been cited), including 37 papers in Electrical and Electronic Engineering, 18 papers in Automotive Engineering and 6 papers in Polymers and Plastics. Recurrent topics in Jungjin Park's work include Advancements in Battery Materials (31 papers), Advanced Battery Materials and Technologies (28 papers) and Advanced Battery Technologies Research (18 papers). Jungjin Park is often cited by papers focused on Advancements in Battery Materials (31 papers), Advanced Battery Materials and Technologies (28 papers) and Advanced Battery Technologies Research (18 papers). Jungjin Park collaborates with scholars based in South Korea, United States and Germany. Jungjin Park's co-authors include Yung‐Eun Sung, Kookheon Char, Chunjoong Kim, Jeffrey Pyun, Eui‐Tae Kim, Adam G. Simmonds, Richard S. Glass, Woo Jin Chung, Jared J. Griebel and Philip T. Dirlam and has published in prestigious journals such as Journal of the American Chemical Society, Angewandte Chemie International Edition and Nature Materials.

In The Last Decade

Jungjin Park

38 papers receiving 3.2k citations

Hit Papers

The use of elemental sulfur as an alternative feedstock f... 2013 2026 2017 2021 2013 2017 400 800 1.2k

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Jungjin Park South Korea 19 2.3k 1.0k 782 733 313 46 3.2k
Adam G. Simmonds United States 14 1.3k 0.6× 1.6k 1.5× 842 1.1× 239 0.3× 319 1.0× 22 2.7k
Philip T. Dirlam United States 13 972 0.4× 1.4k 1.3× 762 1.0× 213 0.3× 343 1.1× 16 2.4k
Byoung Gak Kim South Korea 25 1.2k 0.5× 424 0.4× 769 1.0× 480 0.7× 316 1.0× 57 2.3k
Jared J. Griebel United States 14 1.2k 0.5× 2.2k 2.1× 1.1k 1.4× 236 0.3× 507 1.6× 25 3.3k
Shengjun Lu China 28 1.5k 0.7× 418 0.4× 528 0.7× 351 0.5× 234 0.7× 78 2.2k
Fangyuan Hu China 28 1.5k 0.7× 350 0.3× 694 0.9× 310 0.4× 289 0.9× 104 2.1k
Jodie A. Yuwono Australia 30 2.4k 1.0× 191 0.2× 1.2k 1.5× 421 0.6× 342 1.1× 90 3.7k
Junwei Li China 27 1.6k 0.7× 394 0.4× 994 1.3× 111 0.2× 203 0.6× 79 2.8k
Hui Xu China 34 3.4k 1.5× 283 0.3× 800 1.0× 1.1k 1.6× 342 1.1× 97 4.0k
Xingyuan Lu China 24 856 0.4× 797 0.8× 399 0.5× 218 0.3× 160 0.5× 58 2.1k

Countries citing papers authored by Jungjin Park

Since Specialization
Citations

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

Fields of papers citing papers by Jungjin Park

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Jungjin Park

This figure shows the co-authorship network connecting the top 25 collaborators of Jungjin Park. A scholar is included among the top collaborators of Jungjin Park 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 Jungjin Park. Jungjin Park 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.
Jiang, Zhelong, Jin Hwan Kwak, Howie Nguyen, et al.. (2025). Eliminating lattice collapse in dopant-free LiNi0.9Mn0.1O2 cathodes via electrochemically induced partial cation disorder. Nature Energy. 11(1). 87–97.
2.
Kim, Doyeon, et al.. (2025). Photon-Primed Organic Electrosynthesis Enabled by Oxidation of Photon-Induced Intermediates. Journal of the American Chemical Society. 147(34). 30897–30906. 1 indexed citations
3.
Kim, Junil, Minseo Kim, Sohee Kim, et al.. (2025). Conformal CEI formation induced by oxygen-functionalized conductive agents on Mn-rich olivine cathodes. Chemical Communications. 61(61). 11473–11476.
4.
Park, Jungjin, et al.. (2024). Design of an Internal Focusing Tube Lens for Optical Inspection Systems. Applied Sciences. 14(4). 1518–1518.
5.
Hwang, Wonchan, Junil Kim, Shin‐Yeong Kim, et al.. (2024). Unveiling olivine cathodes for high energy-density lithium-ion batteries: a comprehensive review from the atomic level to the electrode scale. Journal of Materials Chemistry A. 12(41). 27800–27824. 6 indexed citations
6.
Park, Jungjin, et al.. (2024). The Acetylene Bridge in Intramolecular Singlet Fission: A Boon or A Nuisance?. Angewandte Chemie International Edition. 63(52). e202408615–e202408615.
7.
Park, Jungjin, et al.. (2024). Stabilizing Diketopyrrolopyrrole Radical Cations Through Carbazoles: Substitution Pattern vs Spin Delocalization. The Journal of Physical Chemistry Letters. 16(1). 123–130.
9.
Ha, Son Tung, Sung‐Ho Huh, Seung‐Ho Yu, et al.. (2024). High‐Power and Large‐Area Anodes for Safe Lithium‐Metal Batteries. Small. 20(36). e2400638–e2400638. 7 indexed citations
10.
Kim, Tae-Hun, et al.. (2024). Comprehensive Review of Data-Driven Degradation Diagnosis of Lithium-Ion Batteries through Electrochemical and Multi-scale Imaging Analyses. Korean Journal of Chemical Engineering. 43(1). 1–18. 1 indexed citations
11.
Lee, Heesang, et al.. (2023). Development of a Rock-Salt Structure for High Energy Density Lithium-Ion Batteries. Electronic Materials Letters. 19(4). 359–366. 3 indexed citations
12.
Kim, Chunjoong, et al.. (2022). Communication—Polysulfide-Induced Chemical Capacity Loss in Li-S Batteries. Journal of The Electrochemical Society. 169(5). 50528–50528. 1 indexed citations
13.
Um, Ji Hyun, et al.. (2020). Revisiting the strategies for stabilizing lithium metal anodes. Journal of Materials Chemistry A. 8(28). 13874–13895. 67 indexed citations
14.
Kim, Seong‐Jun, et al.. (2019). Role and Potential of Metal Sulfide Catalysts in Lithium‐Sulfur Battery Applications. ChemCatChem. 11(10). 2373–2387. 67 indexed citations
15.
Wi, Sungun, Jungjin Park, Sangheon Lee, et al.. (2016). Synchrotron-based x-ray absorption spectroscopy for the electronic structure of LixMn0.8Fe0.2PO4 mesocrystal in Li+ batteries. Nano Energy. 31. 495–503. 44 indexed citations
16.
Moon, Joonhee, Jungjin Park, Cheolho Jeon, et al.. (2015). An electrochemical approach to graphene oxide coated sulfur for long cycle life. Nanoscale. 7(31). 13249–13255. 18 indexed citations
17.
Park, Jungjin, Chunjoong Kim, & Yung‐Eun Sung. (2015). The Electrochemical Analysis using Critical Parameters in Li–S Battery. Bulletin of the Korean Chemical Society. 36(11). 2596–2600. 5 indexed citations
18.
Park, Jungjin, et al.. (2015). Design and Analysis of UWB Circular Patch Antenna Using Microstrip Line. The Journal of Korean Institute of Communications and Information Sciences. 40(5). 938–943.
19.
Chung, Woo Jin, Jared J. Griebel, Eui‐Tae Kim, et al.. (2013). The use of elemental sulfur as an alternative feedstock for polymeric materials. Nature Chemistry. 5(6). 518–524. 1206 indexed citations breakdown →
20.
Kim, Jong Min, et al.. (2009). Development of glucose sensor using two-photon adsorbed photopolymerization. Bioprocess and Biosystems Engineering. 33(1). 47–53. 5 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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