Wei‐Jie Gong

684 total citations
29 papers, 589 citations indexed

About

Wei‐Jie Gong is a scholar working on Organic Chemistry, Inorganic Chemistry and Materials Chemistry. According to data from OpenAlex, Wei‐Jie Gong has authored 29 papers receiving a total of 589 indexed citations (citations by other indexed papers that have themselves been cited), including 10 papers in Organic Chemistry, 8 papers in Inorganic Chemistry and 6 papers in Materials Chemistry. Recurrent topics in Wei‐Jie Gong's work include Metal-Organic Frameworks: Synthesis and Applications (7 papers), Organometallic Complex Synthesis and Catalysis (4 papers) and Metal complexes synthesis and properties (4 papers). Wei‐Jie Gong is often cited by papers focused on Metal-Organic Frameworks: Synthesis and Applications (7 papers), Organometallic Complex Synthesis and Catalysis (4 papers) and Metal complexes synthesis and properties (4 papers). Wei‐Jie Gong collaborates with scholars based in China, Macao and Hong Kong. Wei‐Jie Gong's co-authors include Jian‐Ping Lang, Hong‐Xi Li, Zhi‐Gang Ren, Jianguo Zhang, Jun Gao, Feilong Li, Jian Zhang, Haiyan Li, Rui Yao and Min Luo and has published in prestigious journals such as Advanced Functional Materials, Chemical Communications and Journal of Virology.

In The Last Decade

Wei‐Jie Gong

28 papers receiving 585 citations

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Wei‐Jie Gong China 15 264 212 204 107 95 29 589
Sung Min Shin South Korea 9 243 0.9× 172 0.8× 56 0.3× 115 1.1× 21 0.2× 20 359
Hongying Zhou China 18 335 1.3× 222 1.0× 659 3.2× 47 0.4× 45 0.5× 40 1.2k
Nakul Rampal United States 18 510 1.9× 614 2.9× 171 0.8× 55 0.5× 65 0.7× 28 1.1k
Guangliang Song China 14 52 0.2× 175 0.8× 124 0.6× 39 0.4× 34 0.4× 49 472
Nicola L. Bell United Kingdom 18 446 1.7× 495 2.3× 304 1.5× 57 0.5× 33 0.3× 38 858
Laurent Pellegatti France 13 107 0.4× 268 1.3× 239 1.2× 101 0.9× 71 0.7× 19 678
Daniel W. Trahan United States 10 91 0.3× 198 0.9× 74 0.4× 59 0.6× 27 0.3× 17 573
Nobuyoshi Morita Japan 22 248 0.9× 73 0.3× 1.5k 7.5× 21 0.2× 66 0.7× 119 1.9k
C.E. Strasser South Africa 14 210 0.8× 185 0.9× 473 2.3× 103 1.0× 47 0.5× 39 697

Countries citing papers authored by Wei‐Jie Gong

Since Specialization
Citations

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

Fields of papers citing papers by Wei‐Jie Gong

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Wei‐Jie Gong. 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 Wei‐Jie Gong. The network helps show where Wei‐Jie Gong may publish in the future.

Co-authorship network of co-authors of Wei‐Jie Gong

This figure shows the co-authorship network connecting the top 25 collaborators of Wei‐Jie Gong. A scholar is included among the top collaborators of Wei‐Jie Gong 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 Wei‐Jie Gong. Wei‐Jie Gong 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.
Wang, Qi, Wei‐Jie Gong, Jie Lu, et al.. (2024). Enhancing the performance of organic phototransistors using a sandwich-heterostructure. Chemical Communications. 60(74). 10132–10135. 2 indexed citations
3.
Wang, Xianpeng, Di Xue, Jie Lu, et al.. (2024). Bulk Trapping Organic Semiconductor with Amino-Additive Enabling Ultrasensitive NO2 Sensors. ACS Applied Materials & Interfaces. 16(18). 23684–23694. 2 indexed citations
4.
Zhang, Liang, Peng Zhao, Wei‐Jie Gong, et al.. (2024). Bandgap-level engineered photodynamic antibacterial film with boosting ROS production for long-term fruit preservation. Food Packaging and Shelf Life. 46. 101366–101366. 3 indexed citations
5.
Xue, Di, Qi Wang, Miao Xie, et al.. (2023). Tunable Light Response Modulated by the Organic Interface Charge Transfer Effect. Advanced Optical Materials. 12(9). 8 indexed citations
6.
Xue, Di, Yingying Zhang, Wei‐Jie Gong, et al.. (2022). Interface terminal group regulated organic phototransistors with tunable persistent and switchable photoconductivity. Science China Chemistry. 65(12). 2567–2575. 14 indexed citations
7.
Zhang, Jian, et al.. (2022). Efficient reliability analysis using prediction-oriented active sparse polynomial chaos expansion. Reliability Engineering & System Safety. 228. 108749–108749. 31 indexed citations
8.
Cheng, Reynold, Chenhao Ma, Xiaodong Li, et al.. (2022). The Social Technology and Research (STAR) Lab in the University of Hong Kong. ACM SIGMOD Record. 51(2). 63–68. 2 indexed citations
9.
Gong, Wei‐Jie, Rui Yao, Hong‐Xi Li, et al.. (2017). Luminescent cadmium(ii) coordination polymers of 1,2,4,5-tetrakis(4-pyridylvinyl)benzene used as efficient multi-responsive sensors for toxic metal ions in water. Dalton Transactions. 46(48). 16861–16871. 60 indexed citations
10.
Gong, Wei‐Jie, Zhi‐Gang Ren, Hong‐Xi Li, Jianguo Zhang, & Jian‐Ping Lang. (2016). Cadmium(II) Coordination Polymers of 4-Pyr-poly-2-ene and Carboxylates: Construction, Structure, and Photochemical Double [2 + 2] Cycloaddition and Luminescent Sensing of Nitroaromatics and Mercury(II) Ions. Crystal Growth & Design. 17(2). 870–881. 87 indexed citations
14.
Wang, Yao, Wei‐Jie Gong, Hong‐Xi Li, et al.. (2014). Synthesis of DMF-protected Au NPs with different size distributions and their catalytic performance in the Ullmann homocoupling of aryl iodides. Dalton Transactions. 43(42). 15752–15759. 32 indexed citations
15.
Liu, Ying‐Ying, et al.. (2013). Ten complexes constructed by two reduced Schiff base tetraazamacrocycle ligands: syntheses, structures, magnetic and luminescent properties. Journal of Coordination Chemistry. 66(22). 4032–4051. 5 indexed citations
16.
Zhang, Zhiyuan, Wei‐Jie Gong, Fan Wang, et al.. (2013). Assembly of new Mo/Cu/S clusters from [Et4N][Tp*MoS(S4)] and Cu(i) salts: syntheses, structures and third-order nonlinear optical properties. Dalton Transactions. 42(26). 9495–9495. 27 indexed citations
17.
Gong, Wei‐Jie, Ying‐Ying Liu, Jin Yang, et al.. (2013). An unprecedented octahedral {Cd30} nanocage supported by twelve pendant-armed tetraacetate macrocyclic ligands. Dalton Transactions. 42(10). 3304–3304. 7 indexed citations
18.
Miao, Lili, Hong‐Xi Li, Miao Yu, et al.. (2012). Preparation of a nitrate-coordinated copper(ii) complex of 2-(pyrazol-3-yl)-6-(pyrazolate)pyridine as an efficient catalyst for methyl methacrylate polymerization. Dalton Transactions. 41(12). 3424–3424. 35 indexed citations
19.
Sun, Sha, Zhi‐Gang Ren, Runtian He, et al.. (2012). Formation of N-heterocyclic diphosphine ligands from Ag(i)-assisted condensation reactions between bdppeda and formaldehyde and their binuclear silver(i) complexes. Dalton Transactions. 41(27). 8447–8447. 20 indexed citations
20.
Dai, Ming, Zhi‐Gang Ren, Hui-Fang Wang, et al.. (2012). Zinc(ii) coordination polymers of tetrakis(4-pyridyl)cyclobutane and various dicarboxylates: Syntheses, structures and luminescent properties. CrystEngComm. 14(19). 6230–6230. 20 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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