Ying Wu

10.1k total citations · 2 hit papers
189 papers, 8.3k citations indexed

About

Ying Wu is a scholar working on Atomic and Molecular Physics, and Optics, Electrical and Electronic Engineering and Artificial Intelligence. According to data from OpenAlex, Ying Wu has authored 189 papers receiving a total of 8.3k indexed citations (citations by other indexed papers that have themselves been cited), including 182 papers in Atomic and Molecular Physics, and Optics, 70 papers in Electrical and Electronic Engineering and 61 papers in Artificial Intelligence. Recurrent topics in Ying Wu's work include Mechanical and Optical Resonators (94 papers), Quantum optics and atomic interactions (67 papers) and Photonic and Optical Devices (60 papers). Ying Wu is often cited by papers focused on Mechanical and Optical Resonators (94 papers), Quantum optics and atomic interactions (67 papers) and Photonic and Optical Devices (60 papers). Ying Wu collaborates with scholars based in China, United States and Japan. Ying Wu's co-authors include Xiaoxue Yang, Hao Xiong, L. Deng, Xin‐You Lü, Liu-Gang Si, Zeng‐Xing Liu, Xiaoxue Yang, Yifu Zhu, Hui Jing and Xiaoxue Yang and has published in prestigious journals such as Physical Review Letters, Applied Physics Letters and Journal of Applied Physics.

In The Last Decade

Ying Wu

183 papers receiving 7.5k citations

Hit Papers

Ultraslow Optical Solitons in a Cold Four-State Medium 2004 2026 2011 2018 2004 2005 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
Ying Wu China 47 8.1k 3.0k 2.8k 712 313 189 8.3k
Klemens Hammerer Germany 41 6.1k 0.8× 3.4k 1.1× 2.3k 0.8× 428 0.6× 144 0.5× 111 6.6k
Hakan E. Türeci United States 36 4.9k 0.6× 2.0k 0.7× 1.3k 0.5× 1.3k 1.8× 249 0.8× 89 5.4k
Adam Miranowicz Poland 44 6.7k 0.8× 4.6k 1.5× 1.4k 0.5× 832 1.2× 176 0.6× 156 7.1k
Zachary Dutton United States 23 5.9k 0.7× 1.7k 0.6× 1.3k 0.5× 313 0.4× 608 1.9× 52 6.3k
A. S. Parkins New Zealand 41 6.7k 0.8× 5.0k 1.7× 1.1k 0.4× 685 1.0× 219 0.7× 111 7.1k
Helmut Ritsch Austria 45 7.6k 0.9× 3.9k 1.3× 837 0.3× 642 0.9× 113 0.4× 214 7.8k
Lene Vestergaard Hau United States 17 6.2k 0.8× 1.5k 0.5× 1.2k 0.4× 373 0.5× 650 2.1× 36 6.5k
K. W. Lehnert United States 42 7.3k 0.9× 3.1k 1.0× 3.8k 1.4× 430 0.6× 413 1.3× 95 8.1k
Peter Rabl Austria 43 7.7k 1.0× 3.3k 1.1× 2.3k 0.8× 1.1k 1.5× 256 0.8× 83 8.1k
E. Giacobino France 34 4.4k 0.5× 1.2k 0.4× 748 0.3× 349 0.5× 912 2.9× 97 4.6k

Countries citing papers authored by Ying Wu

Since Specialization
Citations

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

Fields of papers citing papers by Ying Wu

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Ying Wu

This figure shows the co-authorship network connecting the top 25 collaborators of Ying Wu. A scholar is included among the top collaborators of Ying Wu 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 Ying Wu. Ying Wu 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.
Bin, Qian, et al.. (2024). Entangled Photon‐Magnon Bundle Emission. Laser & Photonics Review. 18(9). 4 indexed citations
2.
Li, Jiahua, et al.. (2024). Phase-engineered photon correlations in weakly coupled nanofiber cavity QED. Physical review. A. 109(3). 3 indexed citations
3.
Li, Zihao, Lili Zheng, Ying Wu, & Xin‐You Lü. (2023). Nonreciprocal generation of Schrödinger cat state induced by topology. Science China Physics Mechanics and Astronomy. 67(4). 8 indexed citations
4.
Li, Jiahua, et al.. (2023). Nonclassical magnon pair generation and Cauchy-Schwarz inequality violation. Physical review. A. 108(5). 5 indexed citations
5.
Li, Jiahua, et al.. (2023). Vacuum-induced quantum-beat-enabled photon antibunching. Physical review. A. 108(2). 5 indexed citations
6.
Si, Liu-Gang, et al.. (2021). Static Casimir effect induced optical chaos in an optomechanical system. Journal of Physics B Atomic Molecular and Optical Physics. 54(5). 55402–55402. 5 indexed citations
7.
Qu, Ye, et al.. (2020). Improving photon antibunching with two dipole-coupled atoms in whispering-gallery-mode microresonators. Physical review. A. 101(2). 9 indexed citations
8.
Li, Jiahua, Chunling Ding, & Ying Wu. (2020). Strongly correlated photons with quantum feedback in a cascaded nanoscale double-cavity system. Physical review. A. 102(4). 2 indexed citations
9.
Si, Liu-Gang, et al.. (2020). Exceptional points enhancing second-order sideband generation in a whispering-gallery-mode microresonator optomechanical system coupled with nanoparticles. Journal of Physics B Atomic Molecular and Optical Physics. 53(9). 95401–95401. 1 indexed citations
10.
Liu, Zeng‐Xing, Hao Xiong, & Ying Wu. (2019). Room-Temperature Slow Light in a Coupled Cavity Magnon-Photon System. IEEE Access. 7. 57047–57053. 30 indexed citations
11.
Liu, Zeng‐Xing, You Cai, Bao Wang, Hao Xiong, & Ying Wu. (2019). Phase-mediated magnon chaos-order transition in cavity optomagnonics. Optics Letters. 44(3). 507–507. 55 indexed citations
12.
Liu, Zeng‐Xing, Bao Wang, Cui Kong, et al.. (2017). A proposed method to measure weak magnetic field based on a hybrid optomechanical system. Scientific Reports. 7(1). 12521–12521. 41 indexed citations
13.
Li, Liping, et al.. (2016). An analog of photon-assisted tunneling in a periodically modulated waveguide array. Scientific Reports. 6(1). 35744–35744. 3 indexed citations
14.
Wang, Wei, et al.. (2015). Realizing and characterizing chiral photon flow in a circuit quantum electrodynamics necklace. Scientific Reports. 5(1). 8352–8352. 17 indexed citations
15.
Lü, Xin-You, Wei-Min Zhang, Sahel Ashhab, Ying Wu, & Franco Nori. (2013). Quantum-criticality-induced strong Kerr nonlinearities in optomechanical systems. Scientific Reports. 3(1). 2943–2943. 141 indexed citations
16.
Xiong, Hao, Liu-Gang Si, Xin-You Lü, Xiaoxue Yang, & Ying Wu. (2013). Carrier-envelope phase-dependent effect of high-order sideband generation in ultrafast driven optomechanical system. Optics Letters. 38(3). 353–353. 92 indexed citations
17.
Ding, Chunling, Jiahua Li, Rong Yu, Xiangying Hao, & Ying Wu. (2012). High-precision atom localization via controllable spontaneous emission in a cycle-configuration atomic system. Optics Express. 20(7). 7870–7870. 62 indexed citations
18.
Xiong, Hao, Liu-Gang Si, Chunling Ding, et al.. (2012). Solutions of the cylindrical nonlinear Maxwell equations. Physical Review E. 85(1). 16602–16602. 18 indexed citations
19.
Yang, Xiaoxue, et al.. (1998). Nonlinear Jaynes-Cummings Dynamics of a Trapped Ion Under a Dressed-State Description. Chinese Physics Letters. 15(3). 186–188. 10 indexed citations
20.
Yang, Xiaoxue, Ying Wu, & Kelin Gao. (1998). Unified Solution Formulas to Jaynes-Cummings Models with Field Nonlinearity and Strong Atom-Field Coupling. Chinese Physics Letters. 15(11). 802–804. 12 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.

Explore authors with similar magnitude of impact

Rankless by CCL
2026