Renkun Huang

4.3k total citations · 2 hit papers
41 papers, 3.9k citations indexed

About

Renkun Huang is a scholar working on Renewable Energy, Sustainability and the Environment, Materials Chemistry and Electrical and Electronic Engineering. According to data from OpenAlex, Renkun Huang has authored 41 papers receiving a total of 3.9k indexed citations (citations by other indexed papers that have themselves been cited), including 30 papers in Renewable Energy, Sustainability and the Environment, 28 papers in Materials Chemistry and 18 papers in Electrical and Electronic Engineering. Recurrent topics in Renkun Huang's work include Advanced Photocatalysis Techniques (30 papers), Metal-Organic Frameworks: Synthesis and Applications (9 papers) and Perovskite Materials and Applications (9 papers). Renkun Huang is often cited by papers focused on Advanced Photocatalysis Techniques (30 papers), Metal-Organic Frameworks: Synthesis and Applications (9 papers) and Perovskite Materials and Applications (9 papers). Renkun Huang collaborates with scholars based in China, Portugal and United States. Renkun Huang's co-authors include Zhaohui Li, Dengrong Sun, Yongjuan Chen, Yanghe Fu, Xianzhi Fu, Zhengxin Ding, Wenjun Liu, Dengke Wang, Xiaona Li and Guiyang Yan and has published in prestigious journals such as Angewandte Chemie International Edition, Journal of Hazardous Materials and Applied Catalysis B: Environmental.

In The Last Decade

Renkun Huang

37 papers receiving 3.9k citations

Hit Papers

An Amine‐Functionalized Titanium Metal–Organic Framework ... 2012 2026 2016 2021 2012 2014 500 1000 1.5k

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Renkun Huang China 21 2.7k 2.6k 2.0k 825 300 41 3.9k
Dengke Wang China 21 3.4k 1.3× 3.4k 1.3× 2.9k 1.4× 710 0.9× 201 0.7× 31 4.7k
Reza Abazari Iran 32 1.5k 0.6× 1.4k 0.5× 1.2k 0.6× 869 1.1× 408 1.4× 38 2.9k
María D. Hernández‐Alonso Spain 29 3.0k 1.1× 3.0k 1.2× 889 0.4× 891 1.1× 288 1.0× 43 4.4k
Yanghe Fu China 28 3.8k 1.4× 3.2k 1.2× 3.3k 1.6× 731 0.9× 360 1.2× 77 5.4k
Dengrong Sun China 24 4.7k 1.8× 4.2k 1.6× 4.1k 2.0× 1.2k 1.4× 446 1.5× 49 6.7k
Soheila Sanati Iran 41 2.1k 0.8× 2.0k 0.7× 1.4k 0.7× 1.6k 1.9× 979 3.3× 67 4.2k
Tianhua Zhou China 34 2.7k 1.0× 3.0k 1.1× 1.4k 0.7× 1.5k 1.8× 555 1.9× 84 4.4k
Yue‐Hua Li China 40 4.1k 1.6× 3.8k 1.4× 1.3k 0.7× 1.4k 1.7× 512 1.7× 116 6.3k
Reza Abazari Iran 39 2.0k 0.8× 1.4k 0.5× 1.4k 0.7× 1.0k 1.2× 794 2.6× 42 3.6k
Yunhong Pi China 16 2.1k 0.8× 1.6k 0.6× 1.2k 0.6× 651 0.8× 121 0.4× 32 3.0k

Countries citing papers authored by Renkun Huang

Since Specialization
Citations

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

Fields of papers citing papers by Renkun Huang

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Renkun Huang

This figure shows the co-authorship network connecting the top 25 collaborators of Renkun Huang. A scholar is included among the top collaborators of Renkun Huang 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 Renkun Huang. Renkun Huang 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.
Chen, Lu, Yuzhou Xia, Guiyang Yan, et al.. (2025). Dual-metal-doped high crystalline carbon nitride with cyano groups for enhanced photocatalytic hydrogen evolution. Dalton Transactions. 54(23). 9303–9309.
3.
Johnson, Janet, et al.. (2025). Exploring Collaborative GenAI Agents in Synchronous Group Settings: Eliciting Team Perceptions and Design Considerations for the Future of Work. Proceedings of the ACM on Human-Computer Interaction. 9(7). 1–33.
4.
Chen, Lu, Yuzhou Xia, Jiale Shi, et al.. (2024). Noble-metal-free bimetallic nitride decorated CdS nanorods for photocatalytic hydrogen generation. CrystEngComm. 26(20). 2587–2593. 3 indexed citations
5.
Chen, Lu, Linzhu Zhang, Yuzhou Xia, et al.. (2024). Thermal Exfoliation and Phosphorus Doping in Graphitic Carbon Nitride for Efficient Photocatalytic Hydrogen Production. Molecules. 29(15). 3666–3666. 1 indexed citations
7.
Yang, Wei, et al.. (2023). Gaseous mercury capture using seaweed biochars modified by clean ultraviolet/hydrogen peroxide advanced oxidation process. Journal of Cleaner Production. 389. 136121–136121. 24 indexed citations
8.
Chen, Lu, Renkun Huang, Ruowen Liang, et al.. (2023). MoC@NC cocatalyst-modified ZnIn2S4 with strong 2D/2D hetero-interface interaction for efficient H2 evolution. CrystEngComm. 25(45). 6310–6316. 1 indexed citations
9.
Zhang, Chao, Wenjing Chen, Yuzhou Xia, et al.. (2023). Microemulsion–Assisted Synthesis of Ag2CrO4@MIL–125(Ti)–NH2 Z–Scheme Heterojunction for Visible–Light Photocatalytic Inactivation of Bacteria. Catalysts. 13(5). 817–817. 5 indexed citations
10.
Liang, Ruowen, Shihui Wang, Yuzhou Xia, et al.. (2023). Frustrated Lewis pair boosting photocatalytic antibacterial activity on PDI-bridged bimetallic UiO-66-NH2. Dalton Transactions. 52(20). 6813–6822. 1 indexed citations
11.
Li, Ying, Jianglong Yu, Yangxian Liu, et al.. (2022). A review on removal of mercury from flue gas utilizing existing air pollutant control devices (APCDs). Journal of Hazardous Materials. 427. 128132–128132. 108 indexed citations
12.
Liang, Zhiyu, et al.. (2022). Modulating charge migration and motion behaviors via discretely decorating BiVO4 on porous g-C3N4 for boosting multifarious photoredox conversion. Applied Surface Science. 589. 153004–153004. 7 indexed citations
13.
Liang, Ruowen, et al.. (2022). Solvothermal synthesis of TiO2@MIL-101(Cr) for efficient photocatalytic fuel denitrification. Journal of Fuel Chemistry and Technology. 50(4). 456–463. 8 indexed citations
14.
Liang, Zhiyu, Renkun Huang, Ruowen Liang, Danhua Xie, & Guiyang Yan. (2021). A direct Z-scheme mechanism for selective hydrogenation of aromatic nitro compounds over a hybrid photocatalyst composed of ZnIn2S4 and WO3 nanorods. New Journal of Chemistry. 45(6). 3298–3310. 10 indexed citations
15.
Chen, Hui, et al.. (2021). Removal of gaseous H2S using microalgae porous carbons synthesized by thermal/microwave KOH activation. Journal of the Energy Institute. 101. 45–55. 29 indexed citations
16.
Xia, Yuzhou, Shuying Zhu, Ruowen Liang, et al.. (2021). Interfacial reconstruction of 2D/2D ZnIn2S4/HNb3O8 through Nb-S bonds for efficient photocatalytic H2 evolution performance. Materials & Design. 209. 110007–110007. 22 indexed citations
17.
19.
Fu, Yanghe, Dengrong Sun, Yongjuan Chen, et al.. (2012). An Amine‐Functionalized Titanium Metal–Organic Framework Photocatalyst with Visible‐Light‐Induced Activity for CO2 Reduction. Angewandte Chemie International Edition. 51(14). 3364–3367. 1556 indexed citations breakdown →
20.
Fu, Yanghe, Dengrong Sun, Yongjuan Chen, et al.. (2012). An Amine‐Functionalized Titanium Metal–Organic Framework Photocatalyst with Visible‐Light‐Induced Activity for CO2 Reduction. Angewandte Chemie. 124(14). 3420–3423. 332 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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