Shanhui Xu

6.6k total citations · 1 hit paper
246 papers, 5.3k citations indexed

About

Shanhui Xu is a scholar working on Electrical and Electronic Engineering, Atomic and Molecular Physics, and Optics and Materials Chemistry. According to data from OpenAlex, Shanhui Xu has authored 246 papers receiving a total of 5.3k indexed citations (citations by other indexed papers that have themselves been cited), including 200 papers in Electrical and Electronic Engineering, 154 papers in Atomic and Molecular Physics, and Optics and 49 papers in Materials Chemistry. Recurrent topics in Shanhui Xu's work include Advanced Fiber Laser Technologies (135 papers), Photonic Crystal and Fiber Optics (118 papers) and Advanced Fiber Optic Sensors (82 papers). Shanhui Xu is often cited by papers focused on Advanced Fiber Laser Technologies (135 papers), Photonic Crystal and Fiber Optics (118 papers) and Advanced Fiber Optic Sensors (82 papers). Shanhui Xu collaborates with scholars based in China, United States and Hong Kong. Shanhui Xu's co-authors include Zhongmin Yang, Mingying Peng, Changsheng Yang, Zhouming Feng, Jiangkun Cao, Can Li, Qilai Zhao, Jianrong Qiu, Wei Lin and Jiulin Gan and has published in prestigious journals such as Physical Review Letters, Advanced Materials and The Journal of Chemical Physics.

In The Last Decade

Shanhui Xu

226 papers receiving 4.8k citations

Hit Papers

Multi-functional bismuth-doped bioglasses: combining bioa... 2018 2026 2020 2023 2018 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
Shanhui Xu China 38 4.1k 3.0k 1.5k 949 424 246 5.3k
Zhongmin Yang China 45 5.4k 1.3× 3.5k 1.2× 3.2k 2.1× 2.0k 2.2× 748 1.8× 351 7.6k
Hao Chen China 34 2.2k 0.5× 1.4k 0.5× 1.8k 1.2× 660 0.7× 193 0.5× 143 3.3k
S. Pelli Italy 35 2.4k 0.6× 1.9k 0.6× 1.6k 1.1× 1.3k 1.4× 491 1.2× 222 3.7k
Shibin Jiang United States 44 4.4k 1.1× 2.5k 0.8× 1.9k 1.3× 2.1k 2.2× 292 0.7× 192 5.4k
Giancarlo C. Righini Italy 43 4.2k 1.0× 3.1k 1.0× 3.3k 2.2× 2.3k 2.5× 1.1k 2.6× 456 7.0k
Akio Ikesue Japan 38 5.0k 1.2× 2.4k 0.8× 4.5k 3.0× 2.9k 3.1× 178 0.4× 170 6.7k
Deyuan Shen China 40 5.0k 1.2× 4.6k 1.5× 991 0.7× 590 0.6× 308 0.7× 304 5.8k
Nicholas F. Borrelli United States 30 2.4k 0.6× 1.2k 0.4× 2.2k 1.4× 1.5k 1.6× 834 2.0× 103 4.5k
Mindaugas Gecevičius United Kingdom 21 948 0.2× 1.1k 0.4× 1.4k 0.9× 180 0.2× 1.2k 2.9× 48 3.1k
Shixun Dai China 44 5.9k 1.4× 2.0k 0.7× 6.6k 4.4× 4.3k 4.5× 1.5k 3.6× 676 9.7k

Countries citing papers authored by Shanhui Xu

Since Specialization
Citations

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

Fields of papers citing papers by Shanhui Xu

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Shanhui Xu

This figure shows the co-authorship network connecting the top 25 collaborators of Shanhui Xu. A scholar is included among the top collaborators of Shanhui Xu 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 Shanhui Xu. Shanhui Xu 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.
Xu, Shanhui, et al.. (2025). Global research landscape of PSMA-targeted radiopharmaceuticals: a two-decade multidimensional bibliometric analysis. Japanese Journal of Radiology. 44(2). 402–422.
2.
Du, Huihui, Shanhui Xu, Wei Xu, et al.. (2025). Achieving near-isotropic strength and ductility in laser additively manufactured zinc via columnar-to-equiaxed grain transition under thermoelectric magnetic effect. Journal of Material Science and Technology. 258. 107–120.
3.
Xu, Shanhui, Yao Xiao, Puxian Xiong, et al.. (2025). Boosting Mechanoluminescence Performance in Doped CaZnOS by the Facile Self‐Reduction Approach. Advanced Materials. 38(3). e11643–e11643. 2 indexed citations
6.
Zheng, Pan, Yao Xiao, Puxian Xiong, et al.. (2025). Flexible Optical Fiber Stress/Temperature Dual‐Mode Sensing Based on CaZnOS:Nd,Er. Advanced Functional Materials. 35(38). 13 indexed citations
7.
Peng, Yan, Wei Li, Deng‐Guang Yu, et al.. (2024). Comparative study of high-power single-frequency fiber amplifiers at 1.5 μm based on absorption control of Er/Yb co-doped active fiber. Optics & Laser Technology. 183. 112380–112380.
8.
Trofimov, Vyacheslav A., et al.. (2024). Development of a universal multimodal prediction method to optimise process parameters for improving densification during laser powder bed fusion. Virtual and Physical Prototyping. 19(1). 5 indexed citations
9.
Wang, Hongyu, Qilai Zhao, Yuxin Sun, et al.. (2024). Kilowatt-Level High-Efficiency Narrow-Linewidth All-Fiber Tm3+-Doped Laser. Photonics. 11(9). 877–877. 5 indexed citations
10.
Yang, Changsheng, Qilai Zhao, Yan Peng, et al.. (2022). Widely tunable sub-kHz linewidth Tm3+-doped single-frequency fiber laser. Applied Physics Express. 15(11). 112001–112001. 4 indexed citations
11.
Zhao, Qilai, Siyuan Fang, Tianyi Tan, et al.. (2021). Phase-noise suppression for the optical-heterodyne-generated microwave based on the amplitude-to-phase conversion. Applied Physics Express. 14(7). 72003–72003.
12.
Zhao, Qilai, Changsheng Yang, Xianchao Guan, et al.. (2020). Noise-sideband-free and narrow-linewidth photonic microwave generation based on anoptical heterodyne technique of low-noise fiber lasers. Applied Optics. 59(26). 7907–7907. 1 indexed citations
13.
Guan, Xianchao, Changsheng Yang, Wei Lin, et al.. (2020). Intensity-noise suppression in 1950-nm single-frequency fiber laser by bidirectional amplifier configuration. Optics Letters. 45(19). 5484–5484. 11 indexed citations
14.
Sun, Min, Qi Qian, Guowu Tang, et al.. (2018). Enhanced thermoelectric properties of polycrystalline Bi2Te3 core fibers with preferentially oriented nanosheets. APL Materials. 6(3). 34 indexed citations
15.
Heng, Xiaobo, Jiulin Gan, Zhishen Zhang, et al.. (2018). All-fiber stable orbital angular momentum beam generation and propagation. Optics Express. 26(13). 17429–17429. 38 indexed citations
16.
Cao, Jiangkun, Xiaoman Li, Liping Wang, et al.. (2017). New strategy to enhance the broadband near‐infrared emission of bismuth‐doped laser glasses. Journal of the American Ceramic Society. 101(6). 2297–2304. 22 indexed citations
17.
Yang, Zhongmin, Shanhui Xu, Jiulin Gan, & Can Li. (2014). Active multi-component glass fiber. Australian Conference on Optical Fibre Technology. 68–69. 1 indexed citations
18.
Feng, Zhouming, Shupei Mo, Shanhui Xu, et al.. (2013). A Compact Linearly Polarized Low-Noise Single-Frequency Fiber Laser at 1064 nm. Applied Physics Express. 6(5). 52701–52701. 14 indexed citations
19.
Fan, Wei, Jiulin Gan, Zhishen Zhang, et al.. (2012). Narrow linewidth single frequency microfiber laser. Optics Letters. 37(20). 4323–4323. 37 indexed citations
20.
Xu, Shanhui, et al.. (2010). An efficient compact 300 mW narrow-linewidth single frequency fiber laser at 15 μm. Optics Express. 18(2). 1249–1249. 172 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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