Mingli Liang

1.2k total citations
44 papers, 978 citations indexed

About

Mingli Liang is a scholar working on Materials Chemistry, Electronic, Optical and Magnetic Materials and Electrical and Electronic Engineering. According to data from OpenAlex, Mingli Liang has authored 44 papers receiving a total of 978 indexed citations (citations by other indexed papers that have themselves been cited), including 25 papers in Materials Chemistry, 18 papers in Electronic, Optical and Magnetic Materials and 16 papers in Electrical and Electronic Engineering. Recurrent topics in Mingli Liang's work include Crystal Structures and Properties (14 papers), Perovskite Materials and Applications (13 papers) and Solid-state spectroscopy and crystallography (8 papers). Mingli Liang is often cited by papers focused on Crystal Structures and Properties (14 papers), Perovskite Materials and Applications (13 papers) and Solid-state spectroscopy and crystallography (8 papers). Mingli Liang collaborates with scholars based in China, United States and Sweden. Mingli Liang's co-authors include Fang Kong, Chun‐Li Hu, Jiang‐Gao Mao, Tõnu Pullerits, Kaibo Zheng, Yingying Tang, Sophie E. Canton, Xianshao Zou, Yun‐Xiang Ma and Qijin Chi and has published in prestigious journals such as Journal of the American Chemical Society, Angewandte Chemie International Edition and Nature Communications.

In The Last Decade

Mingli Liang

39 papers receiving 970 citations

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Mingli Liang China 15 645 506 457 159 121 44 978
Bin Kang China 20 678 1.1× 377 0.7× 651 1.4× 144 0.9× 106 0.9× 56 1.2k
Ram Rai United States 15 1.4k 2.1× 514 1.0× 1.4k 3.1× 33 0.2× 94 0.8× 45 1.8k
Sandra Mazérat France 17 490 0.8× 181 0.4× 323 0.7× 120 0.8× 85 0.7× 35 874
Felix O. Saouma United States 14 519 0.8× 531 1.0× 430 0.9× 34 0.2× 203 1.7× 24 849
Yujin Chen China 26 1.6k 2.5× 1.7k 3.3× 169 0.4× 70 0.4× 727 6.0× 164 2.4k
Weng Hong Sio United States 8 1.1k 1.8× 1.1k 2.1× 275 0.6× 34 0.2× 217 1.8× 9 1.4k
K. Scheunemann Germany 14 447 0.7× 280 0.6× 228 0.5× 86 0.5× 59 0.5× 18 725
A. K. Rajarajan India 13 595 0.9× 179 0.4× 466 1.0× 32 0.2× 57 0.5× 76 862
Kenneth L. Martin United States 10 420 0.7× 223 0.4× 109 0.2× 123 0.8× 13 0.1× 21 753

Countries citing papers authored by Mingli Liang

Since Specialization
Citations

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

Fields of papers citing papers by Mingli Liang

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Mingli Liang

This figure shows the co-authorship network connecting the top 25 collaborators of Mingli Liang. A scholar is included among the top collaborators of Mingli Liang 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 Mingli Liang. Mingli Liang 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.
Yang, Tianshe, Chao‐Nan Xu, Haixia Cui, et al.. (2025). Highly Efficient Inorganic 2D Bismuth‐Doped Lanthanide Metal Halide Scintillators Enable High‐Resolution X‐Ray Imaging. Small. 21(33). e2504920–e2504920. 2 indexed citations
3.
Banerjee, S., et al.. (2024). Synthesis, Optical, Dielectric, SHG, Magnetic and Visible Light Driven Catalytic Studies on Compounds Belonging to the Swedenborgite Structure. Chemistry - An Asian Journal. 19(6). e202301113–e202301113. 1 indexed citations
4.
McClure, Eric T., Weiguo Zhang, Mingli Liang, et al.. (2023). Polarizable Anionic Sublattices Can Screen Molecular Dipoles in Noncentrosymmetric Inorganic–Organic Hybrids. ACS Applied Materials & Interfaces. 15(14). 18006–18011. 7 indexed citations
5.
Liang, Mingli, Weiguo Zhang, Stanislav S. Stoyko, et al.. (2022). Li2Mg2Si2S6 and Li2Mg2Ge2S6: Two nonlinear optical sulfides featuring a unique, polar trigonal structure incorporating ethane‐like anions. Zeitschrift für anorganische und allgemeine Chemie. 648(15). 3 indexed citations
6.
Winiarski, Michał J., et al.. (2022). Ln2(SeO3)2(SO4)(H2O)2 (Ln=Sm, Dy, Yb): A Mixed‐Ligand Pathway to New Lanthanide(III) Multifunctional Materials Featuring Nonlinear Optical and Magnetic Anisotropy Properties. Angewandte Chemie International Edition. 61(48). e202213499–e202213499. 23 indexed citations
7.
Lin, Weihua, Mingli Liang, Yuran Niu, et al.. (2022). Combining two-photon photoemission and transient absorption spectroscopy to resolve hot carrier cooling in 2D perovskite single crystals: the effect of surface layer. Journal of Materials Chemistry C. 10(44). 16751–16760. 7 indexed citations
8.
10.
Yan, Yajie, Yingguo Yang, Mingli Liang, et al.. (2021). Implementing an intermittent spin-coating strategy to enable bottom-up crystallization in layered halide perovskites. Nature Communications. 12(1). 6603–6603. 52 indexed citations
11.
Meng, Jie, Zhenyun Lan, Mohamed Abdellah, et al.. (2020). Modulating Charge-Carrier Dynamics in Mn-Doped All-Inorganic Halide Perovskite Quantum Dots through the Doping-Induced Deep Trap States. The Journal of Physical Chemistry Letters. 11(9). 3705–3711. 42 indexed citations
12.
Xu, Wenhao, et al.. (2020). Antihyperuricemic and nephroprotective effects of extracts from Orthosiphon stamineus in hyperuricemic mice. Journal of Pharmacy and Pharmacology. 72(4). 551–560. 10 indexed citations
14.
Tang, Yingying, Mingli Liang, Bingdong Chang, et al.. (2019). Lead-free double halide perovskite Cs3BiBr6 with well-defined crystal structure and high thermal stability for optoelectronics. Journal of Materials Chemistry C. 7(11). 3369–3374. 85 indexed citations
15.
He, Ping, Guojun Wang, Xiong Xiao, et al.. (2018). Novel triple-reassortant influenza viruses in pigs, Guangxi, China. Emerging Microbes & Infections. 7(1). 1–9. 36 indexed citations
16.
An, Rui, Fengying Zhang, Xianshao Zou, et al.. (2018). Photostability and Photodegradation Processes in Colloidal CsPbI3 Perovskite Quantum Dots. ACS Applied Materials & Interfaces. 10(45). 39222–39227. 138 indexed citations
18.
Liang, Mingli, et al.. (2017). New vanadium tellurites: Syntheses, structures, optical properties of noncentrosymmetric VTeO 4 (OH), centrosymmetric Ba 2 V 4 O 8 (Te 3 O 10 ). Journal of Solid State Chemistry. 249. 21–26. 10 indexed citations
19.
Liang, Mingli, et al.. (2015). Construction of overexpression vectors of Magnaporthe oryzae genes BAS1 and BAS4 fusion to mCherry and screening of overexpression strains. Genetics and Molecular Research. 14(2). 7068–7078. 1 indexed citations
20.
Kong, Fang, Chun‐Li Hu, Mingli Liang, & Jiang‐Gao Mao. (2015). Pb4(OH)4(BrO3)3(NO3): An Example of SHG Crystal in Metal Bromates Containing π-Conjugated Planar Triangle. Inorganic Chemistry. 55(2). 948–955. 51 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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