Kuangye Wang

804 total citations
20 papers, 715 citations indexed

About

Kuangye Wang is a scholar working on Electrical and Electronic Engineering, Renewable Energy, Sustainability and the Environment and Materials Chemistry. According to data from OpenAlex, Kuangye Wang has authored 20 papers receiving a total of 715 indexed citations (citations by other indexed papers that have themselves been cited), including 18 papers in Electrical and Electronic Engineering, 8 papers in Renewable Energy, Sustainability and the Environment and 8 papers in Materials Chemistry. Recurrent topics in Kuangye Wang's work include Gas Sensing Nanomaterials and Sensors (5 papers), Electrocatalysts for Energy Conversion (5 papers) and Perovskite Materials and Applications (5 papers). Kuangye Wang is often cited by papers focused on Gas Sensing Nanomaterials and Sensors (5 papers), Electrocatalysts for Energy Conversion (5 papers) and Perovskite Materials and Applications (5 papers). Kuangye Wang collaborates with scholars based in Taiwan, China and Hong Kong. Kuangye Wang's co-authors include Yu‐Lun Chueh, Teng‐Yu Su, Chia‐Wei Chen, Hao‐Chung Kuo, Shu‐Chi Wu, Arumugam Manikandan, Zhiming Wang, Yi‐Chung Wang, Yu‐Chuan Shih and Yuze Chen and has published in prestigious journals such as Advanced Materials, ACS Nano and Advanced Functional Materials.

In The Last Decade

Kuangye Wang

20 papers receiving 711 citations

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Kuangye Wang Taiwan 13 539 325 293 134 56 20 715
Shuanlong Di China 15 663 1.2× 274 0.8× 396 1.4× 236 1.8× 64 1.1× 27 874
Zhi Deng China 14 925 1.7× 385 1.2× 299 1.0× 186 1.4× 61 1.1× 23 1.1k
Xiaojuan Wen China 19 816 1.5× 258 0.8× 264 0.9× 138 1.0× 75 1.3× 31 958
Xiangchen Hu China 13 837 1.6× 304 0.9× 215 0.7× 127 0.9× 40 0.7× 34 1.0k
Wenxiang He China 14 633 1.2× 219 0.7× 371 1.3× 156 1.2× 79 1.4× 29 840
Hyeong Yong Lim South Korea 14 622 1.2× 231 0.7× 371 1.3× 91 0.7× 55 1.0× 18 843
Jiarun Geng China 13 626 1.2× 188 0.6× 219 0.7× 104 0.8× 47 0.8× 22 762
Silan Wang China 14 452 0.8× 496 1.5× 500 1.7× 184 1.4× 39 0.7× 19 851
Zhiqun Ran China 21 935 1.7× 222 0.7× 360 1.2× 225 1.7× 38 0.7× 26 1.1k
Weichuan Xu China 10 615 1.1× 222 0.7× 372 1.3× 244 1.8× 45 0.8× 22 799

Countries citing papers authored by Kuangye Wang

Since Specialization
Citations

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

Fields of papers citing papers by Kuangye Wang

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Kuangye Wang

This figure shows the co-authorship network connecting the top 25 collaborators of Kuangye Wang. A scholar is included among the top collaborators of Kuangye Wang 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 Kuangye Wang. Kuangye Wang 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, Kuangye, et al.. (2024). Design of Wireless Multiple Gases Complementary Architecture Sensors Based on SnSe2 and PtSe2 Layered Films and Oscillating Circuits. Advanced Materials Technologies. 9(8). 2 indexed citations
2.
Wu, Shu‐Chi, Zhengxun Lai, Ruoting Dong, et al.. (2023). Long-chain alkylammonium organic–inorganic hybrid perovskite for high performance rechargeable aluminon-ion battery. Nano Energy. 110. 108273–108273. 13 indexed citations
3.
Wang, Kuangye, Ling Lee, Tzu‐Yi Yang, et al.. (2023). Controllable Vertical Nitrogen Doping in Nanoscaled Molybdenum Diselenide Films for Selective Sensing of NH3 and NO2 Gases. ACS Applied Nano Materials. 6(7). 5336–5344. 9 indexed citations
5.
Tang, Shin‐Yi, Kuangye Wang, Hsu‐Sheng Tsai, et al.. (2022). High-yield recycling and recovery of copper, indium, and gallium from waste copper indium gallium selenide thin-film solar panels. Solar Energy Materials and Solar Cells. 241. 111691–111691. 55 indexed citations
6.
Wu, Shu‐Chi, Teng‐Yu Su, Shin‐Yi Tang, et al.. (2022). Intercalation of Zinc Monochloride Cations by Deep Eutectic Solvents for High-Performance Rechargeable Non-aqueous Zinc Ion Batteries. ACS Applied Materials & Interfaces. 14(6). 7814–7825. 44 indexed citations
7.
Rameez, Mohammad, Kuangye Wang, M. C. Lin, et al.. (2022). Screen-printed Hole Transport Material-free perovskite solar cell for water splitting incorporating Cu-NiCo2O4 catalyst. Materials Letters. 313. 131838–131838. 1 indexed citations
8.
Vuppala, Srikanth, et al.. (2022). A Nickel Coated Copper Substrate as a Hydrogen Evolution Catalyst. Catalysts. 12(1). 58–58. 4 indexed citations
9.
Shih, Jiaw‐Ren, Chrong Jung Lin, Ling Lee, et al.. (2021). Complementary Metal–Oxide–Semiconductor Compatible 2D Layered Film‐Based Gas Sensors by Floating‐Gate Coupling Effect. Advanced Functional Materials. 32(13). 16 indexed citations
10.
Wang, Yan, Jian-Hao Zhou, Zhiyu Zhou, et al.. (2021). In situ synthesis of Fe2O3 nanosphere/Co3O4 nanowire-connected reduced graphene oxide hybrid networks for high-performance supercapacitors. Nanoscale. 13(36). 15431–15444. 17 indexed citations
12.
Zhang, Yushan, Bin‐Mei Zhang, Yuxia Hu, et al.. (2020). Diamine molecules double lock-link structured graphene oxide sheets for high-performance sodium ions storage. Energy storage materials. 34. 45–52. 52 indexed citations
14.
Niu, Wen‐Jun, Yaping Wang, Qiao‐Qiao Sun, et al.. (2020). In-situ synthesis of hybrid nickel cobalt sulfide/carbon nitrogen nanosheet composites as highly efficient bifunctional oxygen electrocatalyst for rechargeable Zn-air batteries. Electrochimica Acta. 362. 136968–136968. 23 indexed citations
15.
Wu, Shu‐Chi, Yuanfei Ai, Yuze Chen, et al.. (2020). High-Performance Rechargeable Aluminum–Selenium Battery with a New Deep Eutectic Solvent Electrolyte: Thiourea-AlCl3. ACS Applied Materials & Interfaces. 12(24). 27064–27073. 55 indexed citations
16.
Wang, Yaoguang, Jian He, Yingming Zhu, et al.. (2020). Hierarchical Bi-doped BiOBr microspheres assembled from nanosheets with (0 0 1) facet exposed via crystal facet engineering toward highly efficient visible light photocatalysis. Applied Surface Science. 514. 145927–145927. 64 indexed citations
17.
Ai, Yuanfei, Shu‐Chi Wu, Kuangye Wang, et al.. (2020). Three-Dimensional Molybdenum Diselenide Helical Nanorod Arrays for High-Performance Aluminum-Ion Batteries. ACS Nano. 14(7). 8539–8550. 70 indexed citations
18.
Chen, Yuze, Shengwen Wang, Teng‐Yu Su, et al.. (2018). Phase‐Engineered Type‐II Multimetal–Selenide Heterostructures toward Low‐Power Consumption, Flexible, Transparent, and Wide‐Spectrum Photoresponse Photodetectors. Small. 14(22). e1704052–e1704052. 33 indexed citations
19.
Medina, Henry, Shengwen Wang, Yi‐Chung Wang, et al.. (2016). Wafer Scale Phase‐Engineered 1T‐ and 2H‐MoSe2/Mo Core–Shell 3D‐Hierarchical Nanostructures toward Efficient Electrocatalytic Hydrogen Evolution Reaction. Advanced Materials. 28(44). 9831–9838. 225 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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