Debin Kong: h-index, Total Citations, and Citation Map
Debin Kong's h-index is 44 (90 i10-index, 7,414+ total citations across 144+ publications) according to Google Scholar as of June 2026. Debin Kong is affiliated with National Center for Nano Science and Technology, PR China.
Debin Kong is a researcher affiliated with National Center for Nano Science and Technology, PR China, specializing in Carbon, Energy Storage and Conversion. Their work has been cited 7,414 times. This profile visualizes their global influence, highlighting strong citation networks in China.
Debin Kong's Citation Metrics
Bibliometric impact based on 144 indexed publications.
- H-Index
- 44
- i10-Index
- 90
- Total Citations
- 7,414
- Citing Countries
- 28
As of June 2026.
Debin Kong has an h-index of 44 and 7,414 total citations across 144 publications, with research cited by institutions in 28 countries.
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We've mapped 5,000 of 7,414 citations for Debin Kong
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Global Impact Map
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Towards ultrahigh volumetric capacitance: graphene derived highly dense but porous carbons for supercapacitors
2013741
Top Citing Countries
Top Citing Institutions
Visa Evidence Package
Views and exports tuned for EB-1A, O-1A, and EB-2 NIW petitions. Sustained acclaim, geographic reach, and independent-citation filtering are the strongest evidence categories immigration adjudicators look for.
Significant Contributions
Auto-detected research lines — a seminal paper and the follow-up work building on it. Review and edit before using in a petition. Each Free PDF opens in a new tab — EB-1A organises this into the structure USCIS applies to Criterion 5 of 8 CFR § 204.5(h)(3)(v); EB-1B re-frames it under § 204.5(i)(3) (outstanding researcher); NIW presents it under prong 2 of Matter of Dhanasar.
2 citing papers could not be classified (no author data) — excluded from the percentages above.
The researcher pioneered high-density porous carbon materials for supercapacitors, establishing a foundational framework for advanced electrochemical energy storage that has significantly influenced subsequent independent research.
The researcher developed a scalable two-step annealing method for preparing ultra-high-density single-atom catalyst libraries, establishing a foundational protocol for high-throughput catalyst discovery.
The researcher developed a two-dimensional covalent encapsulation strategy to stabilize high-capacity silicon anodes for lithium batteries, addressing critical degradation issues in next-generation energy storage.
Citation trend (last 10 years)Click to expand
Citation Trend (Last 10 Years)
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