Xi Zhou

2.0k total citations · 1 hit paper
53 papers, 1.6k citations indexed

About

Xi Zhou is a scholar working on Electrical and Electronic Engineering, Materials Chemistry and Renewable Energy, Sustainability and the Environment. According to data from OpenAlex, Xi Zhou has authored 53 papers receiving a total of 1.6k indexed citations (citations by other indexed papers that have themselves been cited), including 35 papers in Electrical and Electronic Engineering, 27 papers in Materials Chemistry and 16 papers in Renewable Energy, Sustainability and the Environment. Recurrent topics in Xi Zhou's work include Advanced Photocatalysis Techniques (13 papers), Advancements in Battery Materials (12 papers) and Gas Sensing Nanomaterials and Sensors (11 papers). Xi Zhou is often cited by papers focused on Advanced Photocatalysis Techniques (13 papers), Advancements in Battery Materials (12 papers) and Gas Sensing Nanomaterials and Sensors (11 papers). Xi Zhou collaborates with scholars based in China, United States and Australia. Xi Zhou's co-authors include Rotem Vishinkin, Yoav Y. Broza, Hossam Haick, Youbin Zheng, Weiwei Wu, Danyao Qu, Miaomiao Yuan, Muhammad Khatib, Jianhua Chen and Cuihua Zhao and has published in prestigious journals such as Chemical Reviews, Advanced Materials and Nano Letters.

In The Last Decade

Xi Zhou

52 papers receiving 1.6k citations

Hit Papers

Disease Detection with Molecular Biomarkers: From Chemist... 2019 2026 2021 2023 2019 100 200 300

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Xi Zhou China 21 833 712 339 280 191 53 1.6k
Yuhua Chen China 21 868 1.0× 567 0.8× 196 0.6× 106 0.4× 86 0.5× 99 1.5k
Feifei Huang China 22 1.0k 1.2× 806 1.1× 255 0.8× 284 1.0× 155 0.8× 90 1.9k
Jan Ma Singapore 21 687 0.8× 967 1.4× 411 1.2× 123 0.4× 223 1.2× 36 1.6k
Anitha Devadoss Japan 23 833 1.0× 707 1.0× 378 1.1× 384 1.4× 398 2.1× 32 1.7k
Youqiang Chen China 12 590 0.7× 458 0.6× 263 0.8× 89 0.3× 96 0.5× 24 1.2k
Yun Ling China 18 577 0.7× 653 0.9× 192 0.6× 143 0.5× 74 0.4× 95 1.2k
Abhijeet Patra Singapore 12 565 0.7× 374 0.5× 313 0.9× 267 1.0× 106 0.6× 21 1.2k
Qiuchen Zhao China 19 745 0.9× 880 1.2× 377 1.1× 118 0.4× 57 0.3× 29 1.6k

Countries citing papers authored by Xi Zhou

Since Specialization
Citations

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

Fields of papers citing papers by Xi Zhou

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Xi Zhou

This figure shows the co-authorship network connecting the top 25 collaborators of Xi Zhou. A scholar is included among the top collaborators of Xi 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 Xi Zhou. Xi 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.
Wang, Li, Huajun Lai, He Li, et al.. (2025). Fabrication of Cu–Pd/MXene/SnO2 ternary nanocomposites for enhanced hydrogen sensing performance. International Journal of Hydrogen Energy. 191. 152319–152319.
2.
Cheng, Chen, Xiao Xia, Lei Wang, et al.. (2024). Achieving structurally stable O3-type layered oxide cathodes through site-specific cation-anion co-substitution for sodium-ion batteries. Journal of Energy Chemistry. 93. 411–418. 32 indexed citations
3.
Cheng, Chen, Zengqing Zhuo, Shuyuan Chen, et al.. (2024). Cationic and Anionic Redox of Battery Cathodes Investigated by Advanced Synchrotron‐Based Mapping of Resonant Inelastic X‐ray Scattering. Advanced Functional Materials. 34(39). 12 indexed citations
4.
Zhou, Xi, et al.. (2024). Machine learning-assisted design of flow fields for proton exchange membrane fuel cells. Journal of Power Sources. 626. 235753–235753. 9 indexed citations
5.
Chen, Shuyuan, Cheng Chen, Xiao Xia, et al.. (2024). Reversible Oxygen Redox With Enhanced Structural Stability Through Covalency Modulation for Layered Oxide Cathodes. Small. 20(50). e2406542–e2406542. 5 indexed citations
6.
Zhou, Xi, Tong Liu, Chen Cheng, et al.. (2024). Achieving complete solid-solution reaction in layered cathodes with reversible oxygen redox for high-stable sodium-ion batteries. Energy storage materials. 74. 103895–103895. 15 indexed citations
7.
Zhou, Xi, Xuemei Wang, Hao Ma, et al.. (2023). Unique S-scheme TiO2/BaTiO3 heterojunctions promote stable photocatalytic mineralization of toluene in air. Chemical Engineering Journal. 470. 143933–143933. 42 indexed citations
8.
Yang, Xue, Xi Zhou, Lei Li, et al.. (2023). Large‐Area Black Phosphorus/PtSe2 Schottky Junction for High Operating Temperature Broadband Photodetectors. Small. 19(28). e2206590–e2206590. 26 indexed citations
9.
10.
Yang, Xue, Xi Zhou, Ning Wang, et al.. (2023). Large‐Area Black Phosphorus/PtSe2 Schottky Junction for High Operating Temperature Broadband Photodetectors (Small 28/2023). Small. 19(28). 7 indexed citations
11.
Ma, Hao, Xuemei Wang, Ruiben Jin, et al.. (2022). Promote hydroxyl radical and key intermediates formation for deep toluene mineralization via unique electron transfer channel. Journal of Colloid and Interface Science. 630(Pt B). 704–713. 11 indexed citations
12.
Zhou, Xi, Jin Zhang, Xuemei Wang, et al.. (2022). Efficient NO removal and photocatalysis mechanism over Bi-metal@Bi2O2[BO2(OH)] with oxygen vacancies. Journal of Hazardous Materials. 436. 129271–129271. 28 indexed citations
13.
Wang, Xuemei, Xi Zhou, Ruiben Jin, et al.. (2022). Defect-poor BaSn(OH)6 enhanced charge separation for efficient photocatalytic degradation of toluene. Journal of Environmental Sciences. 134. 86–95. 6 indexed citations
14.
Wang, Xuemei, Xi Zhou, Hao Ma, et al.. (2022). Highly active Cs2SnCl6/C3N4 heterojunction photocatalysts operating via interfacial charge transfer mechanism. Journal of Hazardous Materials. 439. 129694–129694. 24 indexed citations
15.
Li, Zhuoyi, Zhen Wang, Weibang Lu, Xi Zhou, & Tao Suo. (2021). Loading rate dependence of mode II fracture toughness in laminated composites reinforced by carbon nanotube films. Composites Science and Technology. 215. 109005–109005. 11 indexed citations
16.
Zhou, Xi, Zhongxue Chen, Faping Zhong, et al.. (2021). Improved Initial Charging Capacity of Na-poor Na0.44MnO2 via Chemical Presodiation Strategy for Low-cost Sodium-ion Batteries. Chemical Research in Chinese Universities. 37(2). 274–279. 16 indexed citations
17.
Wang, Xiaojian, Jing Shang, Meijie Zhu, et al.. (2020). Controlled growth of large-scale uniform 1T′ MoTe2 crystals with tunable thickness and their photodetector applications. Nanoscale Horizons. 5(6). 954–959. 32 indexed citations
18.
19.
Cao, Dongwei, Wenpei Kang, Yuyu Wang, et al.. (2019). In situ N-doped carbon modified (Co0.5Ni0.5)9S8 solid-solution hollow spheres as high-capacity anodes for sodium-ion batteries. Journal of Materials Chemistry A. 7(14). 8268–8276. 88 indexed citations
20.
Zhou, Xi, Yujiao Wang, Qiming Peng, & Weisheng Liu. (2017). A Resumable Fluorescent Probe BHN-Fe3O4@SiO2 Hybrid Nanostructure for Fe3+ and its Application in Bioimaging. Nanoscale Research Letters. 12(1). 629–629. 7 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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