Xiangju Meng

21.0k total citations · 5 hit papers
294 papers, 18.0k citations indexed

About

Xiangju Meng is a scholar working on Materials Chemistry, Inorganic Chemistry and Catalysis. According to data from OpenAlex, Xiangju Meng has authored 294 papers receiving a total of 18.0k indexed citations (citations by other indexed papers that have themselves been cited), including 251 papers in Materials Chemistry, 191 papers in Inorganic Chemistry and 76 papers in Catalysis. Recurrent topics in Xiangju Meng's work include Zeolite Catalysis and Synthesis (161 papers), Mesoporous Materials and Catalysis (131 papers) and Catalytic Processes in Materials Science (116 papers). Xiangju Meng is often cited by papers focused on Zeolite Catalysis and Synthesis (161 papers), Mesoporous Materials and Catalysis (131 papers) and Catalytic Processes in Materials Science (116 papers). Xiangju Meng collaborates with scholars based in China, United States and Germany. Xiangju Meng's co-authors include Feng‐Shou Xiao, Liang Wang, Qi Sun, Longfeng Zhu, Qinming Wu, Zhifeng Dai, Lingxiang Wang, Jian Zhang, Fujian Liu and Feng Deng and has published in prestigious journals such as Science, Chemical Reviews and Journal of the American Chemical Society.

In The Last Decade

Xiangju Meng

281 papers receiving 17.8k citations

Hit Papers

Hydrophobic zeolite modif... 2013 2026 2017 2021 2020 2013 2015 2019 2019 200 400 600

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Xiangju Meng China 68 13.6k 9.1k 5.0k 3.5k 3.2k 294 18.0k
Xinwen Guo China 76 13.9k 1.0× 7.3k 0.8× 8.2k 1.6× 4.0k 1.1× 1.9k 0.6× 484 21.8k
Weibin Fan China 61 7.7k 0.6× 5.7k 0.6× 4.4k 0.9× 2.9k 0.8× 1.3k 0.4× 300 12.3k
Fabrizio Cavani Italy 55 12.9k 1.0× 3.6k 0.4× 6.3k 1.3× 3.0k 0.9× 3.5k 1.1× 280 16.8k
Patricia Concepción Spain 70 12.6k 0.9× 4.5k 0.5× 7.2k 1.4× 3.1k 0.9× 5.8k 1.8× 227 17.2k
Heyong He China 61 11.7k 0.9× 4.4k 0.5× 3.6k 0.7× 2.4k 0.7× 4.3k 1.3× 316 17.8k
Sharon Mitchell Switzerland 55 8.0k 0.6× 3.7k 0.4× 3.6k 0.7× 1.9k 0.5× 2.0k 0.6× 162 12.4k
Feng‐Shou Xiao China 96 26.1k 1.9× 16.8k 1.8× 8.4k 1.7× 6.6k 1.9× 6.3k 2.0× 600 35.0k
Minkee Choi South Korea 57 8.9k 0.7× 7.2k 0.8× 2.2k 0.4× 3.3k 1.0× 1.3k 0.4× 142 13.4k
Naijia Guan China 60 8.3k 0.6× 4.3k 0.5× 3.5k 0.7× 2.4k 0.7× 1.8k 0.6× 190 12.7k
Wha‐Seung Ahn South Korea 69 9.2k 0.7× 9.5k 1.0× 950 0.2× 5.2k 1.5× 2.0k 0.6× 233 17.1k

Countries citing papers authored by Xiangju Meng

Since Specialization
Citations

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

Fields of papers citing papers by Xiangju Meng

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Xiangju Meng

This figure shows the co-authorship network connecting the top 25 collaborators of Xiangju Meng. A scholar is included among the top collaborators of Xiangju Meng 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 Xiangju Meng. Xiangju Meng 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.
Qiao, Chunming, Weipeng Xian, Zongyi Huang, et al.. (2025). Covalent Organic Framework Membranes with Asymmetric Wettability for Efficient Photocatalytic H 2 O 2 Synthesis. Angewandte Chemie International Edition. 64(52). e202519513–e202519513.
3.
Qiao, Chunming, Weipeng Xian, Zongyi Huang, et al.. (2025). Covalent Organic Framework Membranes with Asymmetric Wettability for Efficient Photocatalytic H 2 O 2 Synthesis. Angewandte Chemie. 137(52).
4.
Wu, Qinming, et al.. (2024). Templates for the synthesis of zeolites. Chinese Journal of Structural Chemistry. 43(4). 100252–100252. 11 indexed citations
5.
Li, Jian, Lunjia Zhang, Ye Ma, et al.. (2024). Selective catalytic reduction of NOx with methane over cobalt-exchanged SSZ-39 zeolite. Chemical Engineering Journal. 496. 153191–153191. 5 indexed citations
6.
Han, Shichao, Huan Zhou, Ye Ma, et al.. (2024). Facile synthesis of SSZ-16 nanoaggregates with excellent performance in NH3-SCR reaction. Microporous and Mesoporous Materials. 382. 113367–113367. 1 indexed citations
7.
Li, Songda, Yang Ou, Zhemin Wu, et al.. (2024). Unusual Facet-Dependent Sintering in Pd–TiO2 Catalysts Revealed by Theory and Experiment. ACS Catalysis. 14(3). 1608–1619. 10 indexed citations
8.
Xu, Lulu, Shuo Liu, Xiangju Meng, et al.. (2023). A novel tandem route to renewable isoprene over Mo-Fe oxide and mesoporous Cu/MgO composite catalysts. Applied Catalysis B: Environmental. 341. 123341–123341. 4 indexed citations
9.
Li, Jian, Kai Fan, Yulong Shan, et al.. (2023). Superior performance in passive NOx adsorption over an Al-rich Beta zeolite supported palladium. Applied Catalysis B: Environmental. 339. 123127–123127. 7 indexed citations
10.
Marler, Bernd, Hermann Gies, Trees De Baerdemaeker, et al.. (2023). Synthesis and Structure of COE-11, a New Borosilicate Zeolite with a Two-Dimensional Pore System of 12-Ring Channels. Chemistry. 5(2). 730–752. 3 indexed citations
11.
Han, Shichao, Wei Rao, Xiaomin Tang, et al.. (2023). Direct synthesis of high silica SSZ-16 zeolite with extraordinarily superior performance in NH3-SCR reaction. Applied Catalysis B: Environmental. 332. 122746–122746. 16 indexed citations
12.
Guan, Erjia, Zhiqiang Wang, Liang Wang, et al.. (2020). Dispersed Nickel Boosts Catalysis by Copper in CO2 Hydrogenation. ACS Catalysis. 10(16). 9261–9270. 80 indexed citations
13.
Zhang, Jian, Hai Wang, Liang Wang, et al.. (2019). Wet-Chemistry Strong Metal–Support Interactions in Titania-Supported Au Catalysts. Journal of the American Chemical Society. 141(7). 2975–2983. 341 indexed citations breakdown →
14.
Wang, Lingxiang, Lingxiang Wang, Liang Wang, et al.. (2019). New Strategies for the Preparation of Sinter‐Resistant Metal‐Nanoparticle‐Based Catalysts. Advanced Materials. 31(50). e1901905–e1901905. 317 indexed citations breakdown →
15.
Wang, Chengtao, Erjia Guan, Liang Wang, et al.. (2019). Product Selectivity Controlled by Nanoporous Environments in Zeolite Crystals Enveloping Rhodium Nanoparticle Catalysts for CO2 Hydrogenation. Journal of the American Chemical Society. 141(21). 8482–8488. 340 indexed citations
16.
Wang, Guoxiong, Shaodan Xu, Liang Wang, et al.. (2018). Fish-in-hole: rationally positioning palladium into traps of zeolite crystals for sinter-resistant catalysts. Chemical Communications. 54(26). 3274–3277. 43 indexed citations
17.
Wang, Lingxiang, Lingxiang Wang, Jian Zhang, et al.. (2018). Selective Hydrogenation of CO2 to Ethanol over Cobalt Catalysts. Angewandte Chemie. 130(21). 6212–6216. 34 indexed citations
19.
Zhang, Jian, Liang Wang, Longfeng Zhu, et al.. (2015). Solvent‐Free Synthesis of Zeolite Crystals Encapsulating Gold–Palladium Nanoparticles for the Selective Oxidation of Bioethanol. ChemSusChem. 8(17). 2867–2871. 60 indexed citations
20.
Ren, Limin, et al.. (2011). Fast Crystallization of ECR-1 Zeolite for Organotemplate-free. Gaodeng xuexiao huaxue xuebao. 32(3). 662–666. 1 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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