Lei Wang

ORCID: 0000-0002-0336-7241
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About
Contact & Profiles
Research Areas
  • Concrete and Cement Materials Research
  • Recycling and utilization of industrial and municipal waste in materials production
  • Magnesium Oxide Properties and Applications
  • Innovative concrete reinforcement materials
  • Recycled Aggregate Concrete Performance
  • Heavy metals in environment
  • Arsenic contamination and mitigation
  • Coal and Its By-products
  • Advanced Vision and Imaging
  • Advanced oxidation water treatment
  • Environmental remediation with nanomaterials
  • Selenium in Biological Systems
  • Innovations in Concrete and Construction Materials
  • Advanced biosensing and bioanalysis techniques
  • Microbial Applications in Construction Materials
  • Recycling and Waste Management Techniques
  • Soil Carbon and Nitrogen Dynamics
  • Medical Image Segmentation Techniques
  • Biosensors and Analytical Detection
  • Mine drainage and remediation techniques
  • Optical measurement and interference techniques
  • Landslides and related hazards
  • Grouting, Rheology, and Soil Mechanics
  • Soil and Unsaturated Flow
  • Adsorption and biosorption for pollutant removal

Ministry of Agriculture and Rural Affairs
2018-2025

China Agricultural University
2019-2025

Northwest University
2025

Beijing Academy of Agricultural and Forestry Sciences
2022-2025

First Affiliated Hospital of Zhengzhou University
2024-2025

Hebei Agricultural University
2023-2025

Southwest Jiaotong University
2025

Zhejiang University
2015-2024

State Key Laboratory of Clean Energy Utilization
2022-2024

Nanjing Tech University
2022-2024

Stabilization/solidification (S/S) is a low-cost and high-efficiency remediation method for contaminated soils, however, conventional cement-based S/S has environmental constraints sustainability concerns. This study proposes low-carbon, cement-free, clay-based approach simultaneous of As Pb in the soil, accordingly elucidates chemical interactions between alkali-activated clay binders potentially toxic elements. Quantitative X-ray diffraction 27Al nuclear magnetic resonance analyses...

10.1016/j.envint.2019.02.057 article EN cc-by-nc-nd Environment International 2019-02-28

Novel and sustainable aluminium-biochar composite carries amorphous Al-oxygen species, providing Lewis acidity to catalyse isomerisation of glucose fructose.

10.1039/c8gc02466a article EN Green Chemistry 2018-09-10

Abstract Biochar is a waste-derived material that can sequester carbon at large scale. The development of low-carbon and sustainable biochar-enhanced construction materials has attracted extensive interest. Biochar, having porous nature highly functionalised surface, provide nucleation sites for chemical reactions exhibit compatibility with cement, asphalt, polymer materials. This study critically reviewed the state-of-the-art materials, including biochar-cement composites, biochar-asphalt...

10.1007/s42773-022-00182-x article EN cc-by Biochar 2022-10-11
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