Hang Dong

2.9k total citations
75 papers, 2.4k citations indexed

About

Hang Dong is a scholar working on Biomedical Engineering, Mechanical Engineering and Water Science and Technology. According to data from OpenAlex, Hang Dong has authored 75 papers receiving a total of 2.4k indexed citations (citations by other indexed papers that have themselves been cited), including 43 papers in Biomedical Engineering, 29 papers in Mechanical Engineering and 22 papers in Water Science and Technology. Recurrent topics in Hang Dong's work include Membrane-based Ion Separation Techniques (17 papers), Membrane Separation Technologies (15 papers) and Thermochemical Biomass Conversion Processes (13 papers). Hang Dong is often cited by papers focused on Membrane-based Ion Separation Techniques (17 papers), Membrane Separation Technologies (15 papers) and Thermochemical Biomass Conversion Processes (13 papers). Hang Dong collaborates with scholars based in China, United States and Australia. Hang Dong's co-authors include Lin Zhang, Huanlin Chen, Congjie Gao, Li’an Hou, Yaqin Zhang, M. Abu‐Zeid, William A. Tarpeh, Arup K. SenGupta, Lin Zhao and Lin Xu and has published in prestigious journals such as SHILAP Revista de lepidopterología, Environmental Science & Technology and Advanced Functional Materials.

In The Last Decade

Hang Dong

71 papers receiving 2.4k citations

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Hang Dong China 25 1.2k 1.1k 738 662 539 75 2.4k
Zawati Harun Malaysia 28 1.4k 1.1× 711 0.6× 611 0.8× 704 1.1× 423 0.8× 142 2.8k
Mohd Hafiz Puteh Malaysia 26 1.2k 0.9× 509 0.5× 581 0.8× 432 0.7× 305 0.6× 101 2.1k
Siti Khadijah Hubadillah Malaysia 28 1.7k 1.3× 797 0.7× 529 0.7× 694 1.0× 336 0.6× 77 2.4k
Muhammad Qasim United Arab Emirates 15 1.5k 1.2× 1.2k 1.1× 693 0.9× 333 0.5× 708 1.3× 37 2.3k
Qunwu Huang China 20 526 0.4× 689 0.6× 664 0.9× 543 0.8× 356 0.7× 64 2.2k
Qusay F. Alsalhy Iraq 38 2.9k 2.3× 1.8k 1.7× 499 0.7× 1.2k 1.8× 834 1.5× 178 3.8k
Piotr Dydo Poland 25 974 0.8× 1.1k 1.0× 238 0.3× 462 0.7× 394 0.7× 82 1.9k
Zeki Aktaş Türkiye 30 1.1k 0.9× 869 0.8× 226 0.3× 662 1.0× 619 1.1× 48 2.8k
Xianfu Chen China 32 1.9k 1.5× 1.3k 1.2× 323 0.4× 932 1.4× 595 1.1× 125 3.1k
Zhi-Xiang Xu China 29 456 0.4× 1.3k 1.2× 193 0.3× 540 0.8× 335 0.6× 71 2.3k

Countries citing papers authored by Hang Dong

Since Specialization
Citations

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

Fields of papers citing papers by Hang Dong

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Hang Dong

This figure shows the co-authorship network connecting the top 25 collaborators of Hang Dong. A scholar is included among the top collaborators of Hang Dong 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 Hang Dong. Hang Dong 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
2.
Dong, Hang, et al.. (2025). Effects of printing parameters on the quasi-static and dynamic compression behaviour of 3D-printed re-entrant auxetic structures. Thin-Walled Structures. 210. 113000–113000. 5 indexed citations
4.
Wang, Yong, Xudong Sun, Hang Dong, et al.. (2025). High-Entropy Spinel Oxides with Oxygen-Rich Vacancies Improve the Catalytic Performance for Low-Temperature Flexible Zinc-Air Batteries. ACS Sustainable Chemistry & Engineering. 13(39). 16459–16473. 2 indexed citations
6.
Zhang, Lei, Hang Dong, Lin An, et al.. (2024). Efficiency-optimized Diels-Alder reactions based on random forest. Molecular Catalysis. 563. 114236–114236.
7.
Sharma, Neha, et al.. (2024). Ligand Exchange Adsorbents for Selective Phosphate and Total Ammonia Nitrogen Recovery from Wastewaters. Accounts of Materials Research. 5(4). 492–504. 24 indexed citations
8.
Sharma, Neha, et al.. (2024). Enhancing Resource Recovery through Electro-Assisted Regeneration of an Ammonia-Selective Cation Exchange Resin. ACS ES&T Water. 4(10). 4521–4532. 4 indexed citations
9.
Tarpeh, William A., et al.. (2024). Enhancing the regeneration efficiency of a hybrid anion exchange resin for removal of phosphorus from wastewater with a lower environmental impact. Journal of Water Process Engineering. 69. 106851–106851. 1 indexed citations
10.
Li, Yahui, Jingyi Li, Hang Dong, Wei Zhang, & Guangyong Jin. (2024). Simulation and Experimental Study on Continuous Wave Fiber Laser Removal of Epoxy Resin Paint Film on the Surface of 6061 Aluminum Alloy. Photonics. 11(1). 82–82. 2 indexed citations
11.
Deng, Danni, Chao Huang, Yu Xie, et al.. (2023). Catalytic co-pyrolysis of waste tea residue and waste plastics to carbon nanomaterials: Catalyst support, reaction temperature and product application. Journal of Analytical and Applied Pyrolysis. 177. 106323–106323. 12 indexed citations
12.
Dong, Hang, et al.. (2023). Direct air capture (DAC) and sequestration of CO 2 : Dramatic effect of coordinated Cu(II) onto a chelating weak base ion exchanger. Science Advances. 9(10). eadg1956–eadg1956. 38 indexed citations
13.
Li, Bo, et al.. (2023). Effects of wet torrefaction on physicochemical properties of dark tea residue and pyrolysis products. Biomass Conversion and Biorefinery. 1 indexed citations
14.
Luo, Wei, et al.. (2022). Catalytic Activity and Reusability of Nickel-Based Catalysts with Different Biochar Supports during Copyrolysis of Biomass and Plastic. ACS Sustainable Chemistry & Engineering. 10(30). 9933–9945. 22 indexed citations
15.
Dong, Hang, et al.. (2022). Electrified Ion Exchange Enabled by Water Dissociation in Bipolar Membranes for Nitrogen Recovery from Source-Separated Urine. Environmental Science & Technology. 56(22). 16134–16143. 40 indexed citations
16.
Dong, Hang, Meng Liu, Yu Xie, et al.. (2022). Pyrolysis gas from biomass and plastics over X-Mo@MgO (X = Ni, Fe, Co) catalysts into functional carbon nanocomposite: Gas reforming reaction and proper process mechanisms. The Science of The Total Environment. 831. 154751–154751. 28 indexed citations
17.
Li, Bo, Jie Qin, Qian He, et al.. (2022). Products distribution during in situ and ex situ catalytic fast pyrolysis of Chinese herb residues. Environmental Science and Pollution Research. 29(59). 89235–89244. 6 indexed citations
18.
Dong, Hang, Linchao Mu, Kelly Woo, et al.. (2021). Selective aqueous ammonia sensors using electrochemical stripping and capacitive detection. AIChE Journal. 67(12). 7 indexed citations
19.
Chen, Xi, Hang Dong, William A. Tarpeh, et al.. (2021). An Evolving Insight into Metal Organic Framework-Functionalized Membranes for Water and Wastewater Treatment and Resource Recovery. Industrial & Engineering Chemistry Research. 60(19). 6869–6907. 55 indexed citations
20.
Dong, Hang, et al.. (2020). Electro-assisted regeneration of pH-sensitive ion exchangers for sustainable phosphate removal and recovery. Water Research. 184. 116167–116167. 70 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