Area of research
Pollution · Biomaterials
Research interest
Research interests include Chemistry, Environmental chemistry, Fluorapatite, Soil water, Adsorption, and Aspergillus niger.
Electron microscopic imaging and NanoSIMS investigation on physiological responses of Aspergillus niger under Pb(II) and Cd(II) stress
Fungal-induced fossil biomineralization
Alkalinity exacerbates phosphorus deficiency in subtropical red soils: Insights from phosphate‐solubilizing fungi
Evaluating the survival of Aspergillus niger in a highly polluted red soil with addition of Phosphogypsum and bioorganic fertilizer
The high accumulation of phosphorus in high-yield paddy soils: A new insight from cutans
Raman spectroscopy to study biomolecules, their structure, and dynamics
Phosphorus deficiency in soils with red color: Insights from the interactions between minerals and microorganisms
Weakened Cd toxicity to fungi under coexistence of Pb in solution
The dissolution of fluorapatite by phosphate-solubilizing fungi: a balance between enhanced phosphorous supply and fluorine toxicity
Evaluating the protection of bacteria from extreme Cd (II) stress by P-enriched biochar
Influences of phosphate addition on fungal weathering of carbonate in the red soil from karst region
Clay-assisted protection of Enterobacter sp. from Pb (II) stress
Enhanced Pb immobilization via the combination of biochar and phosphate solubilizing bacteria
Contrasting the Pb (II) and Cd (II) tolerance of <i>Enterobacter</i> sp. via its cellular stress responses
Environmental fungi and bacteria facilitate lecithin decomposition and the transformation of phosphorus to apatite
Effects of phosphate-solubilizing bacteria on phosphorous release and sorption on montmorillonite
Influences of multiple clay minerals on the phosphorus transport driven by Aspergillus niger
Cadmium immobilization in aqueous solution by Aspergillus niger and geological fluorapatite
New Insights into the Ultrastructure of Bioapatite After Partial Dissolution: Based on Whale Rostrum, the Densest Bone
A new insight into lead (II) tolerance of environmental fungi based on a study of <i>Aspergillus niger</i> and <i>Penicillium oxalicum</i>
Induced biotransformation of lead (II) by Enterobacter sp. in SO4-PO4-Cl solution
Remediation of lead-contaminated water by geological fluorapatite and fungus Penicillium oxalicum
Reduction of Pb availability during surficial leaching in different types of soils with addition of apatite and oxalic acid
Mechanisms of biochar assisted immobilization of Pb2+ by bioapatite in aqueous solution
Characterizing the Mechanisms of Lead Immobilization via Bioapatite and Various Clay Minerals
Effects of elevated atmospheric CO2 on dissolution of geological fluorapatite in water and soil