Area of research
Environmental Chemistry · Pollution
Research interest
Research interests include Arsenic, Chemistry, Arsenite, Biology, Environmental chemistry, and Soil water.
Calcium peroxide applications suppress microbial arsenic methylation and straighthead disease in rice
Editing Silicon Transporter Genes to Reduce Arsenic Accumulation in Rice
The plastid‐localized lipoamide dehydrogenase 1 is crucial for redox homeostasis, tolerance to arsenic stress and fatty acid biosynthesis in rice
Monolithic NF@ZnO/Au@ZIF-8 photocatalyst with strong photo-thermal-magnetic coupling and selective-breathing effects for boosted conversion of CO2 to CH4
Widespread Occurrence of the Highly Toxic Dimethylated Monothioarsenate (DMMTA) in Rice Globally
Reduction of Dimethylarsenate to Highly Toxic Dimethylarsenite in Paddy Soil and Rice Plants
A molecular switch in sulfur metabolism to reduce arsenic and enrich selenium in rice grain
Sulfate addition and rising temperature promote arsenic methylation and the formation of methylated thioarsenates in paddy soils
Dynamics of Dimethylated Monothioarsenate (DMMTA) in Paddy Soils and Its Accumulation in Rice Grains
Dimethylarsinic acid is the causal agent inducing rice straighthead disease
Increased arsenic mobilization in the rice rhizosphere is mediated by iron-reducing bacteria
Water management impacts the soil microbial communities and total arsenic and methylated arsenicals in rice grains
Genetic mapping of ionomic quantitative trait loci in rice grain and straw reveals OsMOT1;1 as the putative causal gene for a molybdenum QTL qMo8
Geographical variations of cadmium and arsenic concentrations and arsenic speciation in Chinese rice
Heavy metal concentrations and arsenic speciation in animal manure composts in China
Genotypic and Environmental Variations in Grain Cadmium and Arsenic Concentrations Among a Panel of High Yielding Rice Cultivars
Nitrate Stimulates Anaerobic Microbial Arsenite Oxidation in Paddy Soils
Microbial Processes Mediating the Evolution of Methylarsine Gases from Dimethylarsenate in Paddy Soils
Efficient Arsenic Methylation and Volatilization Mediated by a Novel Bacterium from an Arsenic-Contaminated Paddy Soil
Arsenic Methylation and Volatilization by Arsenite <i>S</i> -Adenosylmethionine Methyltransferase in Pseudomonas alcaligenes NBRC14159
Structure of chemical components in different compost extracts characterized by chromatogram and spectroscopy analysis and its influence on plant growth promotion