Shaolou Wei

2.5k total citations · 2 hit papers
52 papers, 2.0k citations indexed

About

Shaolou Wei is a scholar working on Mechanical Engineering, Materials Chemistry and Aerospace Engineering. According to data from OpenAlex, Shaolou Wei has authored 52 papers receiving a total of 2.0k indexed citations (citations by other indexed papers that have themselves been cited), including 39 papers in Mechanical Engineering, 29 papers in Materials Chemistry and 8 papers in Aerospace Engineering. Recurrent topics in Shaolou Wei's work include High Entropy Alloys Studies (16 papers), Titanium Alloys Microstructure and Properties (14 papers) and Advanced materials and composites (14 papers). Shaolou Wei is often cited by papers focused on High Entropy Alloys Studies (16 papers), Titanium Alloys Microstructure and Properties (14 papers) and Advanced materials and composites (14 papers). Shaolou Wei collaborates with scholars based in United States, China and Germany. Shaolou Wei's co-authors include Cemal Cem Taşan, Feng He, Jinwoo Kim, Lin Geng, Liang Zhang, Xiaogang Li, Ruixue Li, Xiaoqing Ni, Decheng Kong and Li Wang and has published in prestigious journals such as Nature, Advanced Materials and Nature Communications.

In The Last Decade

Shaolou Wei

47 papers receiving 1.9k citations

Hit Papers

About metastable cellular structure in additively manufac... 2019 2026 2021 2023 2020 2019 100 200 300 400

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Shaolou Wei United States 22 1.8k 809 626 256 169 52 2.0k
Maxim N. Gussev United States 24 1.2k 0.7× 1.0k 1.3× 374 0.6× 211 0.8× 249 1.5× 80 1.7k
Ehsan Ghassemali Sweden 21 1.2k 0.7× 616 0.8× 416 0.7× 411 1.6× 108 0.6× 76 1.3k
Bhanu Pant India 22 1.3k 0.7× 919 1.1× 552 0.9× 404 1.6× 69 0.4× 104 1.5k
Intan Fadhlina Mohamed Malaysia 15 814 0.5× 533 0.7× 280 0.4× 152 0.6× 138 0.8× 65 949
Hadi Pirgazi Belgium 20 1.3k 0.7× 650 0.8× 234 0.4× 258 1.0× 332 2.0× 50 1.4k
Phani Karamched United Kingdom 20 786 0.4× 752 0.9× 231 0.4× 320 1.3× 64 0.4× 43 1.2k
Mehdi Eizadjou Australia 15 1.2k 0.7× 826 1.0× 266 0.4× 225 0.9× 44 0.3× 26 1.3k
Tung Lik Lee United Kingdom 19 946 0.5× 405 0.5× 403 0.6× 102 0.4× 173 1.0× 47 1.1k
T. Alam United States 21 1.5k 0.8× 906 1.1× 528 0.8× 206 0.8× 51 0.3× 28 1.6k
Zhenli Mi China 15 1.4k 0.8× 1.0k 1.3× 228 0.4× 401 1.6× 46 0.3× 71 1.5k

Countries citing papers authored by Shaolou Wei

Since Specialization
Citations

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

Fields of papers citing papers by Shaolou Wei

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Shaolou Wei

This figure shows the co-authorship network connecting the top 25 collaborators of Shaolou Wei. A scholar is included among the top collaborators of Shaolou Wei 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 Shaolou Wei. Shaolou Wei 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.
Li, Jie, Yunzhu Shi, Shuo Wang, et al.. (2026). A 3-GPa ductile martensitic alloy enabled by interface complexes and dislocations. Nature Materials. 25(3). 395–404.
2.
Liu, Gang, Christian H. Liebscher, Xuyang Zhou, et al.. (2025). On the atomic nature of complex dislocation locks in C15 Laves phases. Acta Materialia. 303. 121700–121700.
3.
Shi, Yunzhu, Junyang He, Jie Hou, et al.. (2025). Ultrastrong and ductile precipitation-hardened alloy via high antiphase boundary energy. Science Advances. 11(29). eadu7566–eadu7566. 4 indexed citations
4.
Wei, Shaolou, Ali Tehranchi, Aparna Saksena, et al.. (2025). The dual role of boron on hydrogen embrittlement: example of interface-related hydrogen effects in an austenite-ferrite two-phase lightweight steel. Acta Materialia. 299. 121458–121458. 1 indexed citations
5.
Zhang, Jingfan, Xiuzhen Zhang, Shaolou Wei, et al.. (2025). Deformation faulting in ultrafine-grained aluminum alloys: Nucleation mechanisms and critical assessment of strengthening-ductilization contributions. Acta Materialia. 286. 120750–120750. 9 indexed citations
6.
Gao, Huan, Yue Zhai, & Shaolou Wei. (2025). Research on compressive failure and damage mechanism of concrete-granite composites with different roughness coefficient by NMR and DIC techniques. Engineering Failure Analysis. 170. 109291–109291. 3 indexed citations
7.
Xu, Michael, Florian Hengsbach, Shaolou Wei, et al.. (2025). Additively Manufacturable High‐Strength Aluminum Alloys with Coarsening‐Resistant Microstructures Achieved via Rapid Solidification. Advanced Materials. 38(4). e09507–e09507.
8.
Rui, Shao‐Shi, Shaolou Wei, & Chengqi Sun. (2024). Microstructure evolution, crack initiation and early growth of high-strength martensitic steels subjected to fatigue loading. International Journal of Fatigue. 188. 108534–108534. 2 indexed citations
9.
Han, Ying, Yongwen Sun, Jian Liu, et al.. (2024). Ubiquitous short-range order in multi-principal element alloys. Nature Communications. 15(1). 6486–6486. 32 indexed citations
10.
Han, Liuliu, Wangzhong Mu, Shaolou Wei, Peter K. Liaw, & Dierk Raabe. (2024). Sustainable high-entropy materials?. Science Advances. 10(50). eads3926–eads3926. 15 indexed citations
11.
Wei, Shaolou, Yan Ma, & Dierk Raabe. (2024). Reactive vapor-phase dealloying-alloying turns oxides into sustainable bulk nano-structured porous alloys. Science Advances. 10(51). eads2140–eads2140. 4 indexed citations
12.
Tehranchi, Ali, Hao Shi, J. Manoj Prabhakar, et al.. (2024). Segregation at prior austenite grain boundaries: The competition between boron and hydrogen. International Journal of Hydrogen Energy. 95. 734–746. 6 indexed citations
13.
Oh, Hyun Seok, et al.. (2023). Composition-dependent transformation-induced plasticity in Co-based complex concentrated alloys. Acta Materialia. 262. 119349–119349. 12 indexed citations
14.
Xu, Michael, Shaolou Wei, Cemal Cem Taşan, & James M. LeBeau. (2023). Quantifying Chemical and Structural Order in Scanning Transmission Electron Microscopy (STEM) Datasets Using Spatial Statistics. Microscopy and Microanalysis. 29(Supplement_1). 1986–1987.
15.
Xu, Michael, Shaolou Wei, Cemal Cem Taşan, & James M. LeBeau. (2023). Determination of short-range order in TiVNbHf(Al). Applied Physics Letters. 122(18). 6 indexed citations
16.
He, Feng, Da Chen, Bin Han, et al.. (2019). Design of D022 superlattice with superior strengthening effect in high entropy alloys. Acta Materialia. 167. 275–286. 253 indexed citations breakdown →
17.
Wei, Shaolou, Jinwoo Kim, & Cemal Cem Taşan. (2019). Boundary micro-cracking in metastable Fe45Mn35Co10Cr10 high-entropy alloys. Acta Materialia. 168. 76–86. 89 indexed citations
18.
Wei, Shaolou, Feng He, & Cemal Cem Taşan. (2018). Metastability in high-entropy alloys: A review. Journal of materials research/Pratt's guide to venture capital sources. 33(19). 2924–2937. 110 indexed citations
19.
20.
Jiao, Yang, et al.. (2016). Controllable two-scale network architecture and enhanced mechanical properties of (Ti5Si3+TiBw)/Ti6Al4V composites. Scientific Reports. 6(1). 32991–32991. 44 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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