English Name:LIU Haiwei
中文名:刘海伟
Phone:(+86) 532-88703786
Email:liuhaiwei@caas.cn
Academic Title:Associate Professor
Supervisor:Master Supervisor
Department:Department of Cultivation and Nutrition
Group:Tobacco Intelligent Agriculture
Research Area:
Transport and transformation of nutrients
Theory and control methods of heavy metal risk assessment in agriculture
Publications (First or corresponding author):
Exogenous glutamate modulates carbon-nitrogen metabolism and drives secondary metabolism through hormonal crosstalk in tobacco. Industrial Crops and Products, 2026, 247: 123575.
Mechanistic insights into heavy metals detoxification and signaling in plants: Molecular coordination and stress tolerance an updated overview. Plant Stress, 2026, 20:101284.
Root entry pathways dictate type-dependent uptake, translocation and phytotoxicity of microplastics in tobacco. Journal of Hazardous Materials: Plastics, 2026: 100056.
Comparative study of chemically modified tobacco-stem biochars for enhanced cadmium removal: adsorption performance and mechanisms. Water, Air, & Soil Pollution, 2026, 237:792.
Enhancing crop nitrogen efficiency: the role of mixed nitrate and ammonium supply in plant growth and development. Biology, 2025,14(5): 546.
Root endodermal suberization induced by nitrate stress regulate apoplastic pathway rather than nitrate uptake in tobacco (Nicotiana tabacum L.). Plant Physiology and Biochemistry, 2024, 216:109166.
Risk controlling theory and technology of heavy metals in tobacco. Beijing: China Agricultural Science and Technology Press, 2024. (in Chinese)
Tobacco fertilization technical guidance manual. Beijing: Chemical Industry Press, 2024. (in Chinese)
Comparing cadmium uptake kinetics, xylem translocation, chemical forms, and subcellular distribution of two tobacco (Nicotiana tabacum L.) cultivars. Ecotoxicology and Environmental Safety, 2023, 254:114738.
Quantitative source apportionment, risk assessment and distribution of heavy metals in agricultural soils from southern Shandong Peninsula of China. Science of the Total Environment, 2021, 767:144879. (ESI highly cited paper)
Comparative transcriptome combined with biochemical and physiological analyses provide new insights toward cadmium accumulation with two contrasting Nicotiana species. Physiologia Plantarum, 2021, 173:369-383.