Enge Wang

18.7k total citations · 4 hit papers
206 papers, 12.2k citations indexed

About

Enge Wang is a scholar working on Materials Chemistry, Atomic and Molecular Physics, and Optics and Electrical and Electronic Engineering. According to data from OpenAlex, Enge Wang has authored 206 papers receiving a total of 12.2k indexed citations (citations by other indexed papers that have themselves been cited), including 123 papers in Materials Chemistry, 93 papers in Atomic and Molecular Physics, and Optics and 69 papers in Electrical and Electronic Engineering. Recurrent topics in Enge Wang's work include Graphene research and applications (62 papers), Carbon Nanotubes in Composites (30 papers) and Advanced Chemical Physics Studies (28 papers). Enge Wang is often cited by papers focused on Graphene research and applications (62 papers), Carbon Nanotubes in Composites (30 papers) and Advanced Chemical Physics Studies (28 papers). Enge Wang collaborates with scholars based in China, United States and United Kingdom. Enge Wang's co-authors include Xuedong Bai, Angelos Michaelides, Wenlong Wang, Kaihui Liu, Guangyu Zhang, Dario Alfè, Jie Ma, Zhiwen Shi, Peng Gao and Lianchang Zhang and has published in prestigious journals such as Nature, Science and Proceedings of the National Academy of Sciences.

In The Last Decade

Enge Wang

201 papers receiving 11.8k citations

Hit Papers

First Principles Calculat... 2004 2026 2011 2018 2004 2011 2013 2018 250 500 750

Author Peers

Peers are selected by citation overlap in the author's most active subfields. citations · hero ref

Author Last Decade Papers Cites
Enge Wang 8.3k 4.1k 3.4k 2.7k 1.6k 206 12.2k
Rodrigo B. Capaz 7.7k 0.9× 3.6k 0.9× 2.5k 0.7× 2.4k 0.9× 1.3k 0.8× 155 10.2k
Guanghou Wang 6.4k 0.8× 2.8k 0.7× 2.6k 0.8× 1.3k 0.5× 1.8k 1.1× 301 8.8k
Alexander L. Shluger 8.0k 1.0× 7.2k 1.8× 3.7k 1.1× 1.2k 0.4× 1.2k 0.7× 349 14.5k
James M. Kikkawa 4.9k 0.6× 2.4k 0.6× 2.4k 0.7× 1.7k 0.6× 1.5k 0.9× 81 8.1k
Kaihui Liu 9.7k 1.2× 6.5k 1.6× 2.4k 0.7× 2.7k 1.0× 2.0k 1.2× 366 13.8k
C. Colliex 8.4k 1.0× 2.9k 0.7× 1.8k 0.5× 2.5k 0.9× 2.3k 1.5× 220 12.6k
Marcel A. Verheijen 7.2k 0.9× 7.5k 1.9× 3.5k 1.0× 4.3k 1.6× 1.2k 0.7× 315 12.4k
Rolf Erni 8.7k 1.0× 4.9k 1.2× 1.8k 0.5× 2.5k 0.9× 2.2k 1.4× 263 13.4k
Alexander A. Puretzky 11.0k 1.3× 5.6k 1.4× 2.1k 0.6× 2.6k 0.9× 1.8k 1.1× 272 14.6k
Young‐Woo Son 15.1k 1.8× 6.1k 1.5× 6.2k 1.8× 2.4k 0.9× 1.5k 0.9× 112 16.6k

Countries citing papers authored by Enge Wang

Since Specialization
Citations

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

Fields of papers citing papers by Enge Wang

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Enge Wang

This figure shows the co-authorship network connecting the top 25 collaborators of Enge Wang. A scholar is included among the top collaborators of Enge 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 Enge Wang. Enge 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.
Huang, Chen, Jinhuan Wang, Feng Zuo, et al.. (2025). Eliminating Defect States in Monolayer Tungsten Diselenide by Coupling with a c-Plane Sapphire Surface. Physical Review Letters. 135(12). 126201–126201.
2.
You, Yilong, Zijing Ding, Mengxian Ding, et al.. (2025). Phase Matching of High Harmonic Generation in Twisted van der Waals Crystals. Physical Review Letters. 135(16). 166902–166902.
3.
Chen, Xiujuan, et al.. (2023). A novel approach to prepare high density SiC ceramics by powder extrusion printing (PEP) combined with one-step sintering method. Journal of the European Ceramic Society. 44(2). 626–634. 17 indexed citations
4.
Yang, Shuo, Yucheng Zhu, Wei Fang, et al.. (2023). Semiclassical Vibrational Spectroscopy of Real Molecular Systems by Means of Cross-Correlation Filter Diagonalization. The Journal of Physical Chemistry A. 127(13). 2902–2911. 7 indexed citations
5.
Zheng, Yuebin, Kehai Liu, Kehai Liu, et al.. (2023). A Review of Acoustic Devices Based on Suspended 2D Materials and Their Composites. Advanced Functional Materials. 34(3). 15 indexed citations
6.
Hong, Hao, Jiajie Qi, Can Liu, et al.. (2023). Twist Phase Matching in Two-Dimensional Materials. Physical Review Letters. 131(23). 233801–233801. 39 indexed citations
7.
Wang, Enge, et al.. (2023). Water. 2 indexed citations
8.
Zhang, Zhihong, Zhihong Zhang, Zhibin Zhang, et al.. (2023). Production of single-crystal Cu plates by electrodeposition on high-index Cu foils. Science Bulletin. 68(15). 1611–1615. 6 indexed citations
9.
Zhao, Mengze, Quanlin Guo, Chong Zhao, et al.. (2023). Single-crystallization of electrolytic copper foils. Journal of Material Science and Technology. 176. 112–118. 7 indexed citations
10.
Wang, Lifen, Ji Chen, Stephen J. Cox, et al.. (2021). Microscopic Kinetics Pathway of Salt Crystallization in Graphene Nanocapillaries. Physical Review Letters. 126(13). 136001–136001. 29 indexed citations
11.
Li, Ning, Xiangdong Guo, Xiaoxia Yang, et al.. (2020). Direct observation of highly confined phonon polaritons in suspended monolayer hexagonal boron nitride. Nature Materials. 20(1). 43–48. 101 indexed citations
12.
Guo, Jing, Duanyun Cao, Ji Chen, et al.. (2020). Probing the intermolecular coupled vibrations in a water cluster with inelastic electron tunneling spectroscopy. The Journal of Chemical Physics. 152(23). 234301–234301. 3 indexed citations
13.
Peng, Jinbo, Jing Guo, Prokop Hapala, et al.. (2018). Weakly perturbative imaging of interfacial water with submolecular resolution by atomic force microscopy. Nature Communications. 9(1). 122–122. 116 indexed citations
14.
Yao, Fengrui, Can Liu, Cheng Chen, et al.. (2018). Measurement of complex optical susceptibility for individual carbon nanotubes by elliptically polarized light excitation. Nature Communications. 9(1). 3387–3387. 16 indexed citations
15.
Feng, Yexin, Ji Chen, Wei Fang, et al.. (2017). Hydrogenation Facilitates Proton Transfer through Two-Dimensional Honeycomb Crystals. The Journal of Physical Chemistry Letters. 8(24). 6009–6014. 60 indexed citations
16.
Meng, Xiangzhi, Jing Guo, Jinbo Peng, et al.. (2015). Direct visualization of concerted proton tunneling in a water nanocluster. Bulletin of the American Physical Society. 2015. 1 indexed citations
17.
Hou, Jianguo, Enge Wang, & Shihe Yang. (2007). Special Issue: On Nanotechnology in China. International Journal of Nanotechnology. 4. 1. 1 indexed citations
18.
Sun, Hailin, et al.. (2003). Scanning tunneling microscopy study of polymerized carbon nanobells: Electronic effect and evidence of nitrogen incorporation. APS. 2003. 1 indexed citations
19.
Wang, Huai‐Yu, Yun‐Song Zhou, Enge Wang, & D. L. Lin. (2001). Critical Point of Magnetic Nanostructures in the Ising Model. Chinese Journal of Physics. 39(1). 85–89. 36 indexed citations
20.
Chen, Jun, et al.. (1998). A Study of Field Electron Emission from Thin Amorphous-Carbon-Nitride Films. Chinese Physics Letters. 15(7). 539–541. 6 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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