Wei Zhou

7.8k total citations · 4 hit papers
259 papers, 6.6k citations indexed

About

Wei Zhou is a scholar working on Electronic, Optical and Magnetic Materials, Materials Chemistry and Aerospace Engineering. According to data from OpenAlex, Wei Zhou has authored 259 papers receiving a total of 6.6k indexed citations (citations by other indexed papers that have themselves been cited), including 103 papers in Electronic, Optical and Magnetic Materials, 94 papers in Materials Chemistry and 69 papers in Aerospace Engineering. Recurrent topics in Wei Zhou's work include Electromagnetic wave absorption materials (58 papers), Advanced Antenna and Metasurface Technologies (49 papers) and Advancements in Battery Materials (40 papers). Wei Zhou is often cited by papers focused on Electromagnetic wave absorption materials (58 papers), Advanced Antenna and Metasurface Technologies (49 papers) and Advancements in Battery Materials (40 papers). Wei Zhou collaborates with scholars based in China, United States and Germany. Wei Zhou's co-authors include Yang Li, Kaixiong Xiang, Lan Long, Heng Luo, Han Chen, Peng Xiao, Han Chen, Weidong Zeng, Yongqing Zhao and Xiaoyu Wen and has published in prestigious journals such as Angewandte Chemie International Edition, SHILAP Revista de lepidopterología and Journal of Applied Physics.

In The Last Decade

Wei Zhou

249 papers receiving 6.5k citations

Hit Papers

High-performance monoclinic WO3 nanospheres with the nove... 2023 2026 2024 2025 2023 2023 2025 2025 50 100 150 200 250

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Wei Zhou China 47 3.2k 2.4k 1.9k 1.8k 1.5k 259 6.6k
Guangwu Wen China 44 3.3k 1.0× 3.0k 1.3× 2.9k 1.5× 1.4k 0.8× 1.5k 1.0× 333 7.5k
Gang Shao China 52 4.9k 1.5× 3.3k 1.4× 2.7k 1.4× 1.2k 0.7× 4.1k 2.7× 224 9.5k
Tiehu Li China 52 4.4k 1.4× 2.7k 1.1× 2.8k 1.4× 1.2k 0.7× 1.5k 1.0× 246 8.2k
Zhengjun Yao China 51 5.0k 1.6× 2.6k 1.1× 1.4k 0.7× 1.4k 0.8× 4.0k 2.6× 229 8.6k
Long Xia China 41 3.4k 1.1× 1.8k 0.8× 1.1k 0.6× 913 0.5× 2.6k 1.7× 250 6.7k
Fang He China 43 1.9k 0.6× 2.4k 1.0× 2.9k 1.5× 1.2k 0.7× 379 0.2× 196 6.1k
Jianhong Yi China 43 1.1k 0.4× 3.1k 1.3× 1.9k 1.0× 4.0k 2.2× 516 0.3× 412 7.1k
Qiang Li China 38 1.0k 0.3× 2.7k 1.1× 1.3k 0.7× 2.1k 1.2× 620 0.4× 219 5.0k
Xinmei Hou China 47 1.1k 0.3× 3.9k 1.6× 2.7k 1.4× 2.0k 1.1× 732 0.5× 303 7.5k
Jian Cao China 58 3.0k 0.9× 4.5k 1.9× 5.1k 2.6× 5.3k 3.0× 913 0.6× 341 12.3k

Countries citing papers authored by Wei Zhou

Since Specialization
Citations

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

Fields of papers citing papers by Wei Zhou

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Wei Zhou

This figure shows the co-authorship network connecting the top 25 collaborators of Wei Zhou. A scholar is included among the top collaborators of Wei Zhou 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 Zhou. Wei Zhou 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.
Liu, Guozheng, Qinyang Zhao, Weiju Jia, et al.. (2025). Microscopic crack propagation mechanism and fatigue crack growth behavior of Ti-5321 alloy formed by laser cladding. Journal of Alloys and Compounds. 1026. 178937–178937. 4 indexed citations
2.
Xin, Shewei, et al.. (2025). The influence of heat processing on the microstructure and properties of a high-strength titanium alloy. Materials & Design. 257. 114554–114554.
3.
Gotama, Gabriel Jeremy, et al.. (2025). Experimental investigation on ignition characteristic of NH3/O2/N2 mixtures: High pressure effects and model comparison. Combustion and Flame. 275. 114079–114079. 1 indexed citations
6.
Guo, Ting, Lin‐bo Tang, Weina Deng, et al.. (2025). Cu x O as an ultra‐stable voltage plateaus and long‐life cathode material in aqueous ammonium‐ion batteries. Rare Metals. 44(7). 4631–4641. 35 indexed citations breakdown →
7.
Zhou, Wei, et al.. (2025). Understanding the mechanisms of degassing in heat-resistant Al–Si alloy: The synergistic effect of Si content and ultrasound. Journal of Materials Research and Technology. 37. 4582–4594. 1 indexed citations
8.
Wang, Hao, Jian Zheng, Zhanfeng Yan, et al.. (2024). The influence of intrinsic point defects on the electronic band structures and swelling behaviors of 4H-SiC. Vacuum. 230. 113680–113680.
9.
Zhou, Wei, et al.. (2024). Microwave absorption structure of carbon fiber co-silicon carbide fiber arrays and efficient electromagnetic dissipation mechanism. Composite Structures. 351. 118587–118587. 5 indexed citations
10.
Zhang, Farao, et al.. (2024). Enhancing electromagnetic wave absorption performance through construction of three-dimensional multilayered SiCw/Y3Si2C2/Ni0.5Zn0.5Fe2O4 composites. Ceramics International. 50(12). 20973–20981. 4 indexed citations
11.
Zhou, Wei, et al.. (2024). Exploration of deep purification of aluminum alloy in vacuum based on adsorption of oxides by hydrogen bubbles. Vacuum. 229. 113594–113594. 4 indexed citations
12.
Zhang, Yan, Qinyang Zhao, Weiju Jia, et al.. (2024). Simultaneous enhancements of strength and ductility of additively manufactured Ti-6.9Al-6.8Zr-2.3Mo-2.2V alloy by cyclic heat treatment and solution-aging. Materials Science and Engineering A. 895. 146227–146227. 12 indexed citations
13.
Long, Lan, et al.. (2024). Multiple relaxation behavior of C /mullite composites and their electromagnetic wave performance at high temperatures. Ceramics International. 50(14). 25630–25639. 8 indexed citations
14.
Peng, Yingbiao, et al.. (2024). A novel high-entropy perovskite Ba(Zn0.2Yb0.2Ta0.2Nb0.2V0.2)O3 ceramic with excellent Electromagnetic wave absorption properties. Ceramics International. 50(22). 45064–45074. 12 indexed citations
15.
Li, Xing, et al.. (2024). Improving bonding strength of W/Cu dual metal interface through laser micro-structuring method. SHILAP Revista de lepidopterología. 5(3). 1–1. 2 indexed citations
16.
Zhou, Pengxin, Jinguo Li, Haiyan Xiao, et al.. (2024). Composition complexity enhances the He-retaining ability of Zr-based MPEAs. Materials Characterization. 214. 114058–114058. 1 indexed citations
17.
Wen, Xiaoyu, Jinhua Luo, Kaixiong Xiang, et al.. (2023). High-performance monoclinic WO3 nanospheres with the novel NH4+ diffusion behaviors for aqueous ammonium-ion batteries. Chemical Engineering Journal. 458. 141381–141381. 271 indexed citations breakdown →
18.
Guo, Ting, Kaixiong Xiang, Xiaoyu Wen, Wei Zhou, & Han Chen. (2023). Facile construction on flower-like CuS microspheres and their applications for the high-performance aqueous ammonium-ion batteries. Materials Research Bulletin. 170. 112595–112595. 67 indexed citations
19.
Yu, Jiaqi, Yuqi Li, Shaorong Lu, et al.. (2023). Ultra-lightweight and multifunctional ionic liquid-modified graphene/polyimide aerogels for efficient electromagnetic wave absorption. Journal of Materials Science. 58(22). 9181–9195. 8 indexed citations
20.
Wang, Huan, Yongqing Zhao, Shewei Xin, et al.. (2018). Review Thermomechanical Processing and Microstructure of High Strength-toughness Titanium Alloy. SHILAP Revista de lepidopterología. 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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