Liqiang Mai

94.7k citations
872 papers · 83.8k · 56 hit papers · h-index 151

Impact in

Papers in

Liqiang Mai

861 papers receiving 83.2k citations

Liqiang Mai's Hit Papers

Tailoring zinc diatomic bidirectional catalysts achieving orbital coupling–hybridization for ultralong-cycling zinc–iodine batteries 2025 · 38 citations
380+1+2Years since publication100200300

Peers

Liqiang Mai
Comparison fields: 5 of 150
  • Electronic, Optical and Magnetic Materials 33.0k
  • Electrical and Electronic Engineering 71.6k
  • Automotive Engineering 11.5k
  • Renewable Energy, Sustainability and the Environment 13.7k
  • Polymers and Plastics 9.0k
Replace Yunhui Huang with:
Yunhui Huang China
Feng Li China
Jaephil Cho South Korea
Xueliang Sun Canada
Chunyi Zhi Hong Kong
Arumugam Manthiram United States
Liquan Chen China
Haoshen Zhou Japan
Guihua Yu United States
Husam N. Alshareef Saudi Arabia
Liqiang Mai relative to Yunhui Huang China Yunhui Huang's profile →
Citations per field
00.5×1.5×2.3×
Yunhui Huang · 1×
Citations per year

Countries citing papers authored by Liqiang Mai

Since Specialization
Citations

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

Fields of papers citing papers by Liqiang Mai

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authors

The 25 scholars most cited alongside Liqiang Mai, linked wherever they have co-authored with each other. Click a name or a connecting line to browse the papers they share.

Border = papers with Liqiang Mai Line = papers co-authored together Liqiang Mai links everyone, so they are left out of the graph.

All Works

20 of 20 papers shown

Showing the 20 most-cited of 872 papers — load more, or switch the sort, to bring in the rest.

#Work
1
Nanostructured Metal Oxides and Sulfides for Lithium–Sulfur Batteries
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20171531
2
Water‐Lubricated Intercalation in V2O5·nH2O for High‐Capacity and High‐Rate Aqueous Rechargeable Zinc Batteries
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20171361
3
Layered VS2 Nanosheet‐Based Aqueous Zn Ion Battery Cathode
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20171155
4
Hierarchical MnMoO4/CoMoO4 heterostructured nanowires with enhanced supercapacitor performance
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20111120
5
Na+ intercalation pseudocapacitance in graphene-coupled titanium oxide enabling ultra-fast sodium storage and long-term cycling
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20151091
6
Manipulating Adsorption–Insertion Mechanisms in Nanostructured Carbon Materials for High‐Efficiency Sodium Ion Storage
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2017900
7
Silicon oxides: a promising family of anode materials for lithium-ion batteries
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2018897
8
General Oriented Formation of Carbon Nanotubes from Metal–Organic Frameworks
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2017860
9
Sodium Ion Stabilized Vanadium Oxide Nanowire Cathode for High‐Performance Zinc‐Ion Batteries
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2018801
10
Porous One‐Dimensional Nanomaterials: Design, Fabrication and Applications in Electrochemical Energy Storage
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2017735
11
Synergistic interaction between redox-active electrolyte and binder-free functionalized carbon for ultrahigh supercapacitor performance
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2013718
12
Graphene Scroll‐Coated α‐MnO2 Nanowires as High‐Performance Cathode Materials for Aqueous Zn‐Ion Battery
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2018714
13
Highly Durable Na2V6O16·1.63H2O Nanowire Cathode for Aqueous Zinc-Ion Battery
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2018662
14
Low-crystalline iron oxide hydroxide nanoparticle anode for high-performance supercapacitors
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2017651
15
Nanowire Electrodes for Electrochemical Energy Storage Devices
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2014649
16
Interfaces in Solid-State Lithium Batteries
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2018600
17
Ultrathin Surface Coating Enables Stabilized Zinc Metal Anode
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2018592
18
Intricate Hollow Structures: Controlled Synthesis and Applications in Energy Storage and Conversion
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2017585
19
Diethyl ether as self-healing electrolyte additive enabled long-life rechargeable aqueous zinc ion batteries
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2019584
20
High‐Performance Aqueous Zinc–Ion Battery Based on Layered H2V3O8 Nanowire Cathode
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2017568

About Liqiang Mai

Liqiang Mai is a scholar working on Electrical and Electronic Engineering, Electronic, Optical and Magnetic Materials, Materials Chemistry, Renewable Energy, Sustainability and the Environment and Polymers and Plastics, having authored 872 papers that have together received 83.8k indexed citations. Recurring topics across this work include Advancements in Battery Materials (572 papers), Advanced Battery Materials and Technologies (422 papers), Supercapacitor Materials and Fabrication (362 papers), Advanced battery technologies research (271 papers), Electrocatalysts for Energy Conversion (109 papers), Transition Metal Oxide Nanomaterials (86 papers), Advanced Battery Technologies Research (84 papers) and MXene and MAX Phase Materials (43 papers). The work is most often cited by research in Electronic, Optical and Magnetic Materials (33.0k citations), Electrical and Electronic Engineering (71.6k citations), Automotive Engineering (11.5k citations), Renewable Energy, Sustainability and the Environment (13.7k citations) and Polymers and Plastics (9.0k citations). Liqiang Mai has collaborated with scholars based in China, United States and Australia. Frequent co-authors include Qinyou An, Mengyu Yan, Xu Xu, Lin Xu, Liang Zhou, Qiulong Wei, Jiashen Meng, Xuanpeng Wang, Yunlong Zhao and Kangning Zhao. Their work appears in journals such as Nano Energy, Advanced Energy Materials, ACS Applied Materials & Interfaces, Advanced Materials and Small.

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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