Ling Hu Data-verified
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Biography and Research Information
OverviewAI-generated summary
Ling Hu's research focuses on the development and characterization of advanced materials for energy applications, particularly in the field of solid oxide fuel cells (SOFCs). Hu has investigated composite cathode materials, including those based on Pr, Co co-doped BaFeO3–δ and B‐Site Sc‐doped La2Ni1-xScxO4+δ perovskites, prepared through electrospinning and other synthesis methods to enhance performance. This work aims to improve the efficiency and durability of intermediate-temperature SOFCs.
Beyond energy materials, Hu's recent publications also extend into biomedical applications. This includes the development of near-infrared fluorescent probes for imaging viscosity in fatty liver mice and assessing drug efficacy. Another area of investigation involves the creation of vascular endothelial growth factor-recruiting nanofiber bandages designed to promote skin regeneration through enhanced angiogenesis and immunomodulation. Additionally, Hu has contributed to the field of natural language processing with a survey on multilingual large language models, examining their corpora, alignment, and bias.
With a h-index of 27 and over 2,655 citations across 151 publications, Hu is recognized as a highly cited researcher. The lab maintains an active website, indicating ongoing research activities.
Metrics
- h-index: 27
- Publications: 151
- Citations: 2,684
Selected Publications
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Book review: transforming teacher education for social justice (2025)
Collaboration Network
Top Collaborators
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- Preparation of high-performance multiphase heterostructures IT-SOFC cathode materials by Pr-induced in situ assembly
- Preparation of Pr, Co co-doped BaFeO3–δ-based nanofiber cathode materials by electrospinning
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- A high-performance composite cathode based on thermal expansion complementation for SOFC
- Characterization of B‐Site Sc‐doped La2Ni1-xScxO4+δ (x=0, 0.05, 0.10, and 0.15) perovskites as cathode materials for IT-SOFCs
- Financing of Long-Term Care Insurance Based on Data Analysis
- Energy and CO2 emissions modeling for unconventional machining industry considering processing characteristics
- Energy and CO2 emissions modeling for unconventional machining industry considering processing characteristics
- Energy and CO2 emissions modeling for unconventional machining industry considering processing characteristics
- Energy and CO2 emissions modeling for unconventional machining industry considering processing characteristics
- Energy and CO2 emissions modeling for unconventional machining industry considering processing characteristics
- Energy and CO2 emissions modeling for unconventional machining industry considering processing characteristics
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