Xiaowu Hu

5.6k total citations · 4 hit papers
190 papers, 4.4k citations indexed

About

Xiaowu Hu is a scholar working on Mechanical Engineering, Electrical and Electronic Engineering and Materials Chemistry. According to data from OpenAlex, Xiaowu Hu has authored 190 papers receiving a total of 4.4k indexed citations (citations by other indexed papers that have themselves been cited), including 136 papers in Mechanical Engineering, 119 papers in Electrical and Electronic Engineering and 48 papers in Materials Chemistry. Recurrent topics in Xiaowu Hu's work include Electronic Packaging and Soldering Technologies (100 papers), 3D IC and TSV technologies (59 papers) and Advanced Welding Techniques Analysis (35 papers). Xiaowu Hu is often cited by papers focused on Electronic Packaging and Soldering Technologies (100 papers), 3D IC and TSV technologies (59 papers) and Advanced Welding Techniques Analysis (35 papers). Xiaowu Hu collaborates with scholars based in China, United States and Italy. Xiaowu Hu's co-authors include Xiongxin Jiang, Yulong Li, Qinglin Li, Wenxing Luo, Zhixian Min, Haozhong Wang, Wenjing Chen, Yan Ma, Tao Xu and Shikun Xiao and has published in prestigious journals such as SHILAP Revista de lepidopterología, Chemical Engineering Journal and ACS Applied Materials & Interfaces.

In The Last Decade

Xiaowu Hu

184 papers receiving 4.3k citations

Hit Papers

A structured phase change material integrated by MXene/Ag... 2023 2026 2024 2025 2023 2024 2024 2025 40 80 120

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Xiaowu Hu China 36 3.2k 2.4k 997 630 480 190 4.4k
Ashutosh Sharma South Korea 35 2.0k 0.6× 2.0k 0.8× 1.1k 1.1× 221 0.4× 826 1.7× 168 4.0k
Qingsong Wang Germany 24 2.3k 0.7× 2.4k 1.0× 2.4k 2.4× 1.0k 1.7× 904 1.9× 42 5.1k
Xiongxin Jiang China 29 2.0k 0.6× 1.5k 0.6× 438 0.4× 544 0.9× 130 0.3× 93 2.6k
Ping Zhang China 36 1.9k 0.6× 1.7k 0.7× 1.5k 1.5× 261 0.4× 590 1.2× 241 4.0k
Jae Pil Jung South Korea 28 1.3k 0.4× 2.1k 0.9× 481 0.5× 308 0.5× 232 0.5× 190 2.8k
Jun Shen China 34 3.1k 0.9× 1.6k 0.7× 1.3k 1.3× 133 0.2× 1.3k 2.7× 252 4.5k
Shizhong Wei China 37 3.4k 1.0× 1.2k 0.5× 2.8k 2.8× 718 1.1× 658 1.4× 340 5.3k
V. Senthilkumar India 33 1.5k 0.5× 1.3k 0.5× 1.7k 1.7× 316 0.5× 190 0.4× 115 3.3k
Qing Lan China 26 1.1k 0.3× 738 0.3× 904 0.9× 255 0.4× 373 0.8× 119 2.5k
Le Zhou United States 33 2.2k 0.7× 969 0.4× 1.3k 1.3× 1.0k 1.6× 734 1.5× 97 4.0k

Countries citing papers authored by Xiaowu Hu

Since Specialization
Citations

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

Fields of papers citing papers by Xiaowu Hu

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Xiaowu Hu

This figure shows the co-authorship network connecting the top 25 collaborators of Xiaowu Hu. A scholar is included among the top collaborators of Xiaowu Hu 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 Xiaowu Hu. Xiaowu Hu 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.
2.
Tan, Zheng‐Hua, et al.. (2025). Preparation, properties, and application exploration of electrolytic Cu-CNTs composite foils. Materials Characterization. 222. 114855–114855.
3.
Wang, Shaoyu, et al.. (2025). Facile preparation and excellent properties of large-size ultrathin electrolytic copper foils with minor CNTs. Materials Science and Engineering A. 932. 148246–148246. 2 indexed citations
4.
Liu, Yichi, Minming Zou, Wenjing Chen, et al.. (2024). CdS/PDA enhanced solar-driven phase change evaporator for continuous seawater desalination. Separation and Purification Technology. 354. 129541–129541. 17 indexed citations
5.
Huang, Yifan, Wenxing Luo, Wenjing Chen, et al.. (2024). Self-healing, adaptive and shape memory polymer-based thermal interface phase change materials via boron ester cross-linking. Chemical Engineering Journal. 496. 153789–153789. 68 indexed citations breakdown →
6.
Chen, Bin, Wenjing Chen, Xiaowu Hu, et al.. (2024). Investigation of microstructure, corrosion and mechanical properties of iron and holmium modified Sn-3.0Ag0.5Cu solder alloy with ultrasonic treatment. Materials Characterization. 215. 114141–114141. 2 indexed citations
7.
Luo, Wenxing, Xiaowu Hu, Minming Zou, et al.. (2024). A novel low-energy and ultra-easy approach to preparing composite phase change material with high photo-/electro-thermal energy conversion and storage. Journal of Energy Storage. 103. 114373–114373. 8 indexed citations
9.
Liu, Yichi, Yi Liu, Wenjing Chen, et al.. (2024). Polyethylene glycol/melamine foam composite phase change materials modified by CdS/Ag exhibits high photothermal conversion performance. Desalination. 585. 117783–117783. 57 indexed citations
10.
Zhu, Guangyu, Wenjing Chen, Yi Liu, et al.. (2023). A novel bio-based composite phase change material with excellent photo-thermal conversion capability for solar energy harvesting and energy storage. Journal of Energy Storage. 78. 110067–110067. 29 indexed citations
12.
Jiang, Lan, Xiaowu Hu, Shikun Xiao, et al.. (2023). Effects of carbonization temperature on the thermal characteristics of shape-stable composite phase change materials based on silica aerogel. Journal of Energy Storage. 72. 108457–108457. 18 indexed citations
13.
Ma, Yan, Minming Zou, Wenjing Chen, et al.. (2023). A structured phase change material integrated by MXene/AgNWs modified dual-network and polyethylene glycol for energy storage and thermal management. Applied Energy. 349. 121658–121658. 129 indexed citations breakdown →
14.
Su, Ranran, et al.. (2023). Phase Stability During High-Temperature Oxidation. JOM. 75(11). 4636–4643. 4 indexed citations
16.
Luo, Wenxing, Minming Zou, Lixiang Luo, et al.. (2023). Efficient enhancement of photothermal conversion of polymer-coated phase change materials based on reduced graphene oxide and polyethylene glycol. Journal of Energy Storage. 78. 109950–109950. 33 indexed citations
17.
Hu, Xiaowu, Wenjing Chen, Jue Wang, et al.. (2023). Study of microstructure, growth orientations and shear performance of Cu/Sn-3.0Ag-0.5Cu/Cu solder joints by using thermal gradient bonding. Materials Characterization. 203. 113133–113133. 13 indexed citations
18.
Luo, Lixiang, Wenxing Luo, Wenjing Chen, et al.. (2023). Form-stable phase change materials based on graphene-doped PVA aerogel achieving effective solar energy photothermal conversion and storage. Solar Energy. 255. 146–156. 75 indexed citations
19.
Hu, Xiaowu, et al.. (2011). Aging behavior of nano-SiCp reinforced AZ61 magnesium matrix composites. SHILAP Revista de lepidopterología. 1 indexed citations
20.
Hu, Xiaowu, Hong Yan, Wenjing Chen, Shuangming Li, & Hengzhi Fu. (2011). Effect of sample diameter on primary and secondary dendrite arm spacings during directional solidification of Pb‐26wt.%Bi hypo‐peritectic alloy. Rare Metals. 30(4). 424–431. 10 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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