Shuang Cheng

6.9k total citations · 1 hit paper
151 papers, 6.2k citations indexed

About

Shuang Cheng is a scholar working on Electrical and Electronic Engineering, Electronic, Optical and Magnetic Materials and Materials Chemistry. According to data from OpenAlex, Shuang Cheng has authored 151 papers receiving a total of 6.2k indexed citations (citations by other indexed papers that have themselves been cited), including 94 papers in Electrical and Electronic Engineering, 55 papers in Electronic, Optical and Magnetic Materials and 39 papers in Materials Chemistry. Recurrent topics in Shuang Cheng's work include Supercapacitor Materials and Fabrication (50 papers), Advancements in Battery Materials (45 papers) and Advanced battery technologies research (43 papers). Shuang Cheng is often cited by papers focused on Supercapacitor Materials and Fabrication (50 papers), Advancements in Battery Materials (45 papers) and Advanced battery technologies research (43 papers). Shuang Cheng collaborates with scholars based in China, United States and Germany. Shuang Cheng's co-authors include Meilin Liu, Lufeng Yang, Xu Ji, Hongzhen Lin, Lei Yang, Peng Wu, Minghai Yao, Yu Jiang, Jun Zhou and Xingbao Zhu and has published in prestigious journals such as Advanced Materials, Angewandte Chemie International Edition and Nano Letters.

In The Last Decade

Shuang Cheng

145 papers receiving 6.1k citations

Hit Papers

Hierarchical Network Architectures of Carbon Fiber Paper ... 2011 2026 2016 2021 2011 100 200 300 400 500

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Shuang Cheng China 42 4.4k 3.1k 1.8k 1.1k 772 151 6.2k
Feng Yu China 41 3.7k 0.8× 2.3k 0.7× 1.8k 1.0× 871 0.8× 736 1.0× 147 5.3k
Pei Dong United States 48 5.4k 1.2× 1.9k 0.6× 2.8k 1.6× 2.4k 2.2× 739 1.0× 116 7.9k
Ning Sun China 41 5.8k 1.3× 2.7k 0.9× 3.2k 1.8× 520 0.5× 540 0.7× 139 7.4k
Chunsheng Li China 35 2.5k 0.6× 1.1k 0.3× 1.7k 1.0× 1.1k 1.0× 600 0.8× 245 5.1k
Fan Wang China 34 2.5k 0.6× 1.4k 0.4× 1.4k 0.8× 676 0.6× 272 0.4× 131 4.2k
Wei Lü China 34 2.8k 0.7× 1.5k 0.5× 1.3k 0.7× 924 0.8× 488 0.6× 192 4.2k
Na Li China 52 5.9k 1.4× 2.3k 0.7× 4.0k 2.2× 1.8k 1.6× 773 1.0× 248 10.0k
Chenyang Zhao China 42 3.6k 0.8× 1.4k 0.5× 1.4k 0.8× 1.1k 1.0× 560 0.7× 136 5.4k
Xuehai Tan Canada 33 6.1k 1.4× 5.2k 1.6× 1.6k 0.9× 1.6k 1.4× 1.0k 1.3× 71 7.8k

Countries citing papers authored by Shuang Cheng

Since Specialization
Citations

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

Fields of papers citing papers by Shuang Cheng

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Shuang Cheng

This figure shows the co-authorship network connecting the top 25 collaborators of Shuang Cheng. A scholar is included among the top collaborators of Shuang Cheng 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 Shuang Cheng. Shuang Cheng 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.
Liu, Chenxu, et al.. (2024). Achievement of Efficient and Stable Nonflow Zinc–Bromine Batteries Assisted by Rational Decoration upon the Two Electrodes. ACS Applied Materials & Interfaces. 16(18). 23278–23287. 4 indexed citations
4.
Cheng, Shuang, Meng Pan, Danrong Hu, et al.. (2023). Adhesive chitosan-based hydrogel assisted with photothermal antibacterial property to prompt mice infected skin wound healing. Chinese Chemical Letters. 34(12). 108276–108276. 38 indexed citations
5.
Ji, Xu, et al.. (2023). Construction of self-standing MnO2-based films for reversible and practical electrolytic Zn//MnO2 batteries in acidic environment. Surfaces and Interfaces. 44. 103669–103669. 6 indexed citations
6.
Li, Luping, et al.. (2023). Effective Solution toward the Issues of Zn-Based Anodes for Advanced Alkaline Ni–Zn Batteries. ACS Applied Materials & Interfaces. 15(3). 3953–3960. 26 indexed citations
7.
Chen, Haiyang, Qinrong Cheng, Heng Liu, et al.. (2022). Organic-semiconductor-assisted dielectric screening effect for stable and efficient perovskite solar cells. Science Bulletin. 67(12). 1243–1252. 33 indexed citations
8.
Liu, Yuxiu, Luping Li, Xu Ji, & Shuang Cheng. (2022). Scientific Challenges and Improvement Strategies of Zn‐Based Anodes for Aqueous Zn‐Ion Batteries. The Chemical Record. 22(10). e202200114–e202200114. 32 indexed citations
9.
Huang, Lulu, Wei Zhou, Shuang Cheng, et al.. (2022). Preparation of functional groups-rich graphene oxide for high-performance lithium–sulfur batteries. Materials Today Sustainability. 21. 100300–100300. 11 indexed citations
10.
Liu, Ting, Shuang Cheng, Luping Li, et al.. (2022). Rational design of ZnO-based aqueous batteries for safe, fast, and reliable energy storage: Accomplishment of stable K+ storage/release. Chemical Engineering Journal. 456. 141098–141098. 4 indexed citations
11.
Zhong, Xiaohui, Zuqi Zhong, Shujie Liang, et al.. (2021). Towards a broad-operation window for stable CO2electroreduction to HCOOH by a design involving upcycling electroplating sludge-derived Sn@N/P-doped carbon. Environmental Science Nano. 9(2). 511–522. 8 indexed citations
12.
Ji, Xu, et al.. (2020). Achievement of high durability of δ-MnO2 based pseudocapacitive electrode enabled by Zn doping induced reattachment. Journal of Alloys and Compounds. 834. 155117–155117. 9 indexed citations
13.
Zhu, Yuanyuan, Xu Ji, Shuang Cheng, et al.. (2019). Fast Energy Storage in Two-Dimensional MoO2 Enabled by Uniform Oriented Tunnels. ACS Nano. 13(8). 9091–9099. 69 indexed citations
15.
Liu, Peipei, Zhijun Liu, Peng Wu, et al.. (2018). Enhanced capacitive performance of nickel oxide on porous La0·7Sr0·3CoO3-δ ceramic substrate for electrochemical capacitors. International Journal of Hydrogen Energy. 43(42). 19589–19599. 13 indexed citations
16.
Chen, Huijun, Zheng Guo, Yifeng Li, et al.. (2018). Improving the Electrocatalytic Activity and Durability of the La0.6Sr0.4Co0.2Fe0.8O3−δ Cathode by Surface Modification. ACS Applied Materials & Interfaces. 10(46). 39785–39793. 95 indexed citations
17.
Yao, Minghai, Peng Wu, Shuang Cheng, et al.. (2017). Investigation into the energy storage behaviour of layered α-V2O5 as a pseudo-capacitive electrode using operando Raman spectroscopy and a quartz crystal microbalance. Physical Chemistry Chemical Physics. 19(36). 24689–24695. 34 indexed citations
18.
Zhu, Yuanyuan, Shuang Cheng, Weijia Zhou, et al.. (2017). Porous Functionalized Self-Standing Carbon Fiber Paper Electrodes for High-Performance Capacitive Energy Storage. ACS Applied Materials & Interfaces. 9(15). 13173–13180. 43 indexed citations
19.
Zhou, Jun, Shuang Cheng, Yu Jiang, et al.. (2017). Fabrication of TiO2 coated porous CoMn2O4 submicrospheres for advanced lithium-ion anodes. RSC Advances. 7(34). 21214–21220. 14 indexed citations
20.
Cheng, Shuang, et al.. (2016). Promotion of Biotransformation from Isoeugenol to Vanillin by Lysinibacillus Fusiformis with Sol-gel Chitosan Membrane. Rare Metal Materials and Engineering. 43–46. 2 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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