Minshan Guo

764 total citations · 1 hit paper
21 papers, 564 citations indexed

About

Minshan Guo is a scholar working on Materials Chemistry, Physical and Theoretical Chemistry and Pharmaceutical Science. According to data from OpenAlex, Minshan Guo has authored 21 papers receiving a total of 564 indexed citations (citations by other indexed papers that have themselves been cited), including 20 papers in Materials Chemistry, 14 papers in Physical and Theoretical Chemistry and 10 papers in Pharmaceutical Science. Recurrent topics in Minshan Guo's work include Crystallization and Solubility Studies (18 papers), Crystallography and molecular interactions (14 papers) and Drug Solubulity and Delivery Systems (10 papers). Minshan Guo is often cited by papers focused on Crystallization and Solubility Studies (18 papers), Crystallography and molecular interactions (14 papers) and Drug Solubulity and Delivery Systems (10 papers). Minshan Guo collaborates with scholars based in China, United Kingdom and United States. Minshan Guo's co-authors include Ting Cai, Jiahui Chen, Xiaojie Sun, Jie Zhang, Mingzhong Li, Ke Wang, Ning Qiao, An Chen, G. Sadiq and L. Fábián and has published in prestigious journals such as Chemical Engineering Journal, International Journal of Pharmaceutics and Pharmaceutical Research.

In The Last Decade

Minshan Guo

20 papers receiving 552 citations

Hit Papers

Pharmaceutical cocrystals: A review of preparations, phys... 2021 2026 2022 2024 2021 50 100 150 200

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Minshan Guo China 12 363 286 170 81 72 21 564
Inna Miroshnyk Finland 15 411 1.1× 256 0.9× 238 1.4× 101 1.2× 110 1.5× 21 732
Atif Madi Ireland 7 241 0.7× 175 0.6× 127 0.7× 78 1.0× 64 0.9× 9 438
M. K. Chaitanya Mannava India 16 438 1.2× 408 1.4× 169 1.0× 139 1.7× 93 1.3× 18 712
Maryam Karimi-Jafari Ireland 4 415 1.1× 416 1.5× 94 0.6× 110 1.4× 68 0.9× 6 567
Fernando Alvarez‐Núñez United States 13 438 1.2× 244 0.9× 333 2.0× 105 1.3× 104 1.4× 26 812
Oisín N. Kavanagh United Kingdom 9 276 0.8× 263 0.9× 59 0.3× 72 0.9× 71 1.0× 25 484
Xia-Lin Dai China 14 459 1.3× 462 1.6× 75 0.4× 110 1.4× 72 1.0× 37 650
Mohammad Amin Mohammad United Kingdom 11 455 1.3× 196 0.7× 218 1.3× 150 1.9× 64 0.9× 19 771
Koji Shiraki Japan 6 320 0.9× 261 0.9× 203 1.2× 76 0.9× 54 0.8× 10 503
Balvant Yadav India 11 293 0.8× 170 0.6× 91 0.5× 64 0.8× 47 0.7× 13 425

Countries citing papers authored by Minshan Guo

Since Specialization
Citations

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

Fields of papers citing papers by Minshan Guo

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Minshan Guo

This figure shows the co-authorship network connecting the top 25 collaborators of Minshan Guo. A scholar is included among the top collaborators of Minshan Guo 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 Minshan Guo. Minshan Guo 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.
Zeng, Qi, Yiqun Zhang, Qun Zeng, et al.. (2025). Interpretable machine learning for solvent prediction and mechanistic insights in multi-component crystal screening. Chemical Engineering Journal. 524. 169397–169397.
2.
4.
Guo, Minshan, et al.. (2024). Impact of Polymers on the Kinetics of the Solid-State Phase Transition of Piracetam Polymorphs. Molecular Pharmaceutics. 22(1). 509–519. 1 indexed citations
5.
Yang, Yuhan, et al.. (2023). The inherent AIE feature revealed the drug molecular state in cyclodextrin metal–organic framework for enhanced stability and absorption. Chemical Engineering Journal. 479. 147654–147654. 13 indexed citations
6.
Wang, Xiyan, Xiaohong Ji, Ting Cai, & Minshan Guo. (2023). Mechanistic Insight of Polymer Effects on the Kinetic of Solution-Mediated Phase Transformation of Nitrofurantoin Anhydrate to Monohydrate. Pharmaceutical Research. 40(6). 1587–1598. 2 indexed citations
7.
Guo, Minshan, et al.. (2023). Effect of organic acids on the solid-state polymorphic phase transformation of piracetam. International Journal of Pharmaceutics. 647. 123532–123532. 3 indexed citations
8.
Zhang, Jie, et al.. (2023). Advances in the development of amorphous solid dispersions: The role of polymeric carriers. Asian Journal of Pharmaceutical Sciences. 18(4). 100834–100834. 71 indexed citations
9.
Chen, An, et al.. (2023). The role of alkyl chain length in the melt and solution crystallization of paliperidone aliphatic prodrugs. IUCrJ. 11(1). 23–33. 1 indexed citations
10.
Guo, Minshan, Xiaojie Sun, Shaozheng Zhang, & Ting Cai. (2022). Modulation of Solid-State Chemical Stability of Gabapentin by Pyridinecarboxylic Acid. Pharmaceutical Research. 39(9). 2305–2314. 5 indexed citations
11.
Chen, An, et al.. (2022). Melt Crystallization of Celecoxib-Carbamazepine Cocrystals with the Synchronized Release of Drugs. Pharmaceutical Research. 40(2). 567–577. 24 indexed citations
12.
Chen, Jiahui, et al.. (2022). Impact of bile salt on solution-mediated phase transformation of pharmaceutical cocrystals: The importance of coformer release kinetics. Chemical Engineering Journal. 435. 134928–134928. 14 indexed citations
13.
Guo, Minshan, Xiaojie Sun, Jiahui Chen, & Ting Cai. (2021). Pharmaceutical cocrystals: A review of preparations, physicochemical properties and applications. Acta Pharmaceutica Sinica B. 11(8). 2537–2564. 232 indexed citations breakdown →
14.
Moinuddin, Sakib M., Qin Shi, Jun Tao, et al.. (2020). Enhanced Physical Stability and Synchronized Release of Febuxostat and Indomethacin in Coamorphous Solids. AAPS PharmSciTech. 21(2). 41–41. 18 indexed citations
15.
Zhang, Jie, Qin Shi, Minshan Guo, Zhengyu Liu, & Ting Cai. (2020). Melt Crystallization of Indomethacin Polymorphs in the Presence of Poly(ethylene oxide): Selective Enrichment of the Polymer at the Crystal–Liquid Interface. Molecular Pharmaceutics. 17(6). 2064–2071. 23 indexed citations
16.
Xu, Jia, et al.. (2019). Facile Tuning of the Photoluminescence and Dissolution Properties of Phloretin through Cocrystallization. Crystal Growth & Design. 19(12). 6837–6844. 23 indexed citations
17.
Guo, Minshan, Ke Wang, Ning Qiao, Vanessa Yardley, & Mingzhong Li. (2018). Investigating Permeation Behavior of Flufenamic Acid Cocrystals Using a Dissolution and Permeation System. Molecular Pharmaceutics. 15(9). 4257–4272. 16 indexed citations
18.
Guo, Minshan, Ke Wang, Ning Qiao, et al.. (2017). Insight into Flufenamic Acid Cocrystal Dissolution in the Presence of a Polymer in Solution: from Single Crystal to Powder Dissolution. Molecular Pharmaceutics. 14(12). 4583–4596. 41 indexed citations
19.
Qiu, Shi, et al.. (2016). Role of polymers in solution and tablet-based carbamazepine cocrystal formulations. CrystEngComm. 18(15). 2664–2678. 23 indexed citations
20.
Guo, Minshan, et al.. (2016). Investigating the Influence of Polymers on Supersaturated Flufenamic Acid Cocrystal Solutions. Molecular Pharmaceutics. 13(9). 3292–3307. 45 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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