
Zhang Huimin
Professor
Ph.D. Supervisor
Innovation Team of Improvement and Amelioration of Soil Fertility,IARRP,CAAS
Contact
-
Email:
zhanghuimin@caas.cn
-
Tel:
86-10-82105039
-
Add:
Tufei Building,12 Zhongguancun Nandajie Street, Haidian District,Beijing,China
Research Interests
Long-term soil nutrient (C, N, P and K) cycle
Fertilization and environment (greenhouse gas)
Soil fertility and improvement
-
Soil carbon (C), nitrogen (N) and phosphorus (P) stoichiometry drives phosphorus lability in paddy soil under longterm fertilization: A fractionation and path analysis study Soil carbon (C), nitrogen (N) and phosphorus (P) stoichiometry drives phosphorus lability in paddy soil under longterm fertilization: A fractionation and path analysis study download
PLOS ONE
2019|Journal Article
DOI: 10.1371/journal.pone.0218195
-
Soil microbial biomass and extracellular enzymes regulate nitrogen mineralization in a wheat-maize cropping system after three decades of fertilization in a Chinese Ferrosol Soil microbial biomass and extracellular enzymes regulate nitrogen mineralization in a wheat-maize cropping system after three decades of fertilization in a Chinese Ferrosol download
Journal of Soils and Sediments
2020|Journal Article
DOI: 10.1007/s11368-020-02770-5
-
Soil nutrients and heavy metal availability under long-term combined application of swine manure and synthetic fertilizers in acidic paddy soil Soil nutrients and heavy metal availability under long-term combined application of swine manure and synthetic fertilizers in acidic paddy soil download
Journal of Soils and Sediments
2020|Journal Article
DOI: 10.1007/s11368-020-02576-5
-
Partial substitution of chemical fertilizers with organic amendments increased rice yield by changing phosphorus fractions and improving phosphatase activities in fluvo-aquic soil Partial substitution of chemical fertilizers with organic amendments increased rice yield by changing phosphorus fractions and improving phosphatase activities in fluvo-aquic soil download
Journal of Soils and Sediments
2020|Journal Article
DOI: 10.1016/j.still.2019.04.009
- Qiyang red soil experimental station reveals mechanism of Chinese milk vetch returning to fields to replace nitrogen fertilizer, reducing greenhouse gas emissions and improving rice yield and nitrogen use efficiency (2025-01-13)
- Study reveals mechanism of pH regulation on organic carbon in acidic red soil under long-term lime and straw amendment at Qiyang Station (2024-08-22)
- Qiyang Red Soil Station reveals regulatory mechanism of soil moisture conditions on long-term fertilized rice paddy greenhouse gas emissions (2024-07-05)
- Long-term application of lime with fertilizers enhances soil quality, crop yield, and reduces greenhouse gas emissions (2024-07-03)