Hualiang Lv
Materials Science · The Ohio State University
Publications
109
Citations
14,879
Est. group size
~2
Recurring co-author estimate
Active years
19
Publishing since 2008
Hualiang Lv works on materials that absorb or block electromagnetic waves, such as carbon-based composites, MXenes, ferrites, and other nanostructured materials, with applications in shielding, thermal protection, and related sensing technologies. The research focuses on understanding how atomic-scale structure and composition affect electromagnetic and dielectric behavior, and on designing materials that work across broad frequency ranges and under high-temperature or other demanding conditions. This work is aimed at practical uses like radar-absorbing coatings, anti-corrosion layers, and thermal insulation.
Publication output was steady at roughly 5-7 papers per year from 2017-2022, then increased notably to 13-16 papers per year from 2023-2025, indicating growing recent activity.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Programming Insulator‐to‐Metallic Transport in Insulating Materials via Surface Single‐Atom Engineering
Advanced Materials · 2026
- Entropy-enabled electronic-state diversification to boost electromagnetic shielding of perovskite oxides with excellent thermal stability
Chemical Engineering Journal · 2026
- Designing future nanomaterials for electromagnetic wave absorption and shielding
Cell Reports Physical Science · 2025
- Magnetoelectric Synergistic Effect for Electromagnetic Wave Absorption Enhancement
Advanced Functional Materials · 2025
- Bimetallic coupled porous SiC for multi-band and high-temperature electromagnetic wave response
Nano Today · 2025
- Ordered cellular 2D/2D biomass-derived carbon nanosheet/MXene aerogels for ultralight and high-performance microwave absorption
Journal of Advanced Ceramics · 2025
- Atomic‐Scale Customization of Oriented Dipolar Defects in Amorphous Carbon via Nanoparticle‐Templated Phase Engineering
Advanced Functional Materials · 2025
- Light/Heavy Rare Earth‐Doped Mo‐MXene: Excellent Electromagnetic Wave Absorption Based on Dual‐Domain Synergistic Attenuation
Advanced Functional Materials · 2025
- Multi‐Stimuli‐Responsive Dielectric Composites: Composition–Structure–Nanoscale Mechanism–Function Framework for Dynamic Dielectric Engineering
Advanced Functional Materials · 2025
- Pixelation of perovskite quantum wire thin films with 0.18-μm features and 63,500-ppi pixel density
Science Advances · 2025
- Hierarchically architected biomass-derived magnetic aerogels for broadband electromagnetic attenuation and functionalities
Journal of Material Science and Technology · 2025
- Entropy‐Driven Multi‐Ion Coexistence at Heterogeneous Nanoscale Interfaces of Transition Metal Sulfides with Anomalous Electronic Transport‐Enhancement
Advanced Functional Materials · 2025
- Editorial preface: Frontiers in electromagnetic functional materials—From fundamental mechanisms to multifunctional applications
Materials Today Nano · 2025
- Luminescent Carbonized Polymer Dots with Ph-Dependent Emission for the Visualized Sensing of Pb(Ii) Ions and Cell Images
SSRN Electronic Journal · 2025
- Recent progress in carbon-based materials and loss mechanisms for electromagnetic wave absorption
Carbon · 2024
- Advanced Functional Materials×17
- Journal of Material Science and Technology×7
- Carbon×5
- Chemical Engineering Journal×5
- Advanced Materials×4
- Xiaodi Zhou
Materials Science · The Ohio State University
- Fan Wu
Materials Science · Purdue University West Lafayette
- Aishwarya V. Menon
Materials Science · Purdue University West Lafayette
- Zicheng Wang
Materials Science · Purdue University West Lafayette
- Yang Guo
Materials Science · The Ohio State University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
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