

[1] Li Q, Zhang X, Zheng J, et al. Phase transformation of Cr (VI) host-mineral driven by citric acid-aided mechanochemical approach for advanced remediation of chromium ore processing residue-contaminated soil[J]. Journal of Hazardous Materials, 2024, 461: 132530.(IF 13.6)
[2] Li Y, Xu G, Yu Y. Freeze-thaw aged polyethylene and polypropylene microplastics alter enzyme activity and microbial community composition in soil[J]. Journal of Hazardous Materials, 2024: 134249. (IF 13.6)
[3] Li Q, Zhang X, Xiong Z, et al. Insights into biostimulation-enhanced microbial detoxification of chromium ore processing residue-contaminated soil: the critical role of Cr (VI) key host-phase transformation and soil microbiota shifts[J]. Journal of Hazardous Materials, 2025: 137736. (IF 12.2)
[4] Chen L, Yue M, Liu X, et al. Dynamic distribution and temporal transcriptome adaptations elucidate lithium accumulation pattern in Cardamine violifolia[J]. Environmental Chemistry and Ecotoxicology, 2025. (IF 9.0)
[5] Chen G, Huang X, Chen P, et al. Polystyrene influence on Pb bioavailability and rhizosphere toxicity: Challenges for ramie (Boehmeria nivea L.) in soil phytoremediation[J]. Science of The Total Environment, 2024: 176322. (IF 8.2)
[6] Huang X, Liu S, Liu X, et al. Doped carbon dots affect heavy metal speciation in mining soil: changes of dissimilated iron reduction processes and microbial communities[J]. Environmental Science: Nano, 2024.(IF 7.3)
[7] Li C, Zhao L, Chen P, et al. Pyrite functionalized Black Soldier Fly feces biochar for mine soil quality improvement and heavy metals immobilization[J]. Process Safety and Environmental Protection, 2024. (IF 6.9)
[8] Huang Y, Hu B, Li T, et al. Intercropping and Nano Zinc Oxide Application Enhance Plant Resistance and Alleviate Pesticide Stress by Altering the Soil Microenvironment[J]. Journal of Agricultural and Food Chemistry, 2025. (IF 6.2)
[9] Yue Z, Guo Y, Zhang Y, et al. Endophytic Pantoea sp. EEL5 isolated from Elytrigia elongata improves wheat resistance to combined salinity-cadmium stress by affecting host gene expression and altering the rhizosphere microenvironment[J]. Industrial Crops and Products, 2025, 234: 121585. (IF 6.2)
[10] Zhang F, Li S, Wang L, et al. An Innovative Approach to Alleviate Zinc Oxide Nanoparticle Stress on Wheat through Nanobubble Irrigation[J]. International Journal of Molecular Sciences, 2024, 25(3): 1896. (IF 5.6)
[11] Huang B, Chen Y, Pei Z, et al. Application of microbial organic fertilizers promotes the utilization of nutrients and restoration of microbial community structure and function in rhizosphere soils after dazomet fumigation[J]. Frontiers in Microbiology, 2023, 13: 1122611.(IF 5.2)
[12] Wang Y, Xie X, Chen H, et al. Selenium-Induced Enhancement in Growth and Rhizosphere Soil Methane Oxidation of Prickly Pear[J]. Plants, 2024, 13(6): 749. (IF 4.5)
[13] Ma L, Yang T, Dong L, et al. Long-term rice-crab coculturing leads to changes in soil microbial communities[J]. Frontiers in Microbiology, 2025, 15: 1395544. (IF 4.0)
[14] Cao H, Li X, Han H, et al. Exploring the potential of Trichoderma asperellum TCS007 on growth promotion of pecan seedlings as well as rhizosphere soil nutrients and microbial community[J]. Plant and Soil, 2025: 1-19. (IF 3.9)
[15] Zhu J, Zhang Y, Shao C, et al. Influence of Intercropping Arisaema amurense with Acanthopanax senticosus on Soil Microbial Community and the Effective Ingredients of A. senticosus[J]. Horticulturae, 2024, 10(6): 592. (IF 3.1)
[16] Lv B, Sun H, Cao W, et al. Intercropping Between Panax ginseng and Arisaema amurense Improves Ginseng Quality by Improving Soil Properties and Microbial Communities[J]. Horticulturae, 2025, 11(2): 172. (IF 3.1)
[17] Gao W, He Y, Chen Z, et al. Rice Dryland Cultivation Promotes Beneficial Rhizosphere Microorganisms and Root Metabolites, Enhancing Rhizosphere Soil Quality[J]. ACS Agricultural Science & Technology, 2025. (IF 2.9)
[18] Zhai X, Zhang Y P, Zhou J, et al. Physiological and microbiome adaptation of coral Turbinaria peltata in response to marine heatwaves[J]. Ecology and Evolution, 2024, 14(2): e10869. (IF 2.6)
[19] Zhang Y, Wang N, Yang L, et al. Effects of Fertilization and Drip Irrigation on the Growth of Populus× canadensis ‘Zhongliao 1’Plantation and on Soil Physicochemical Properties and Enzyme Activities[J]. Forests, 2024, 15(9): 1651. (IF 2.4)
[20] Chen W, Hou Z, Zhang D, et al. The Complex Co-Occurrence Network Under N Deposition Resulting in the Change of Soil Bacterial Structure and the Decrease of Bacterial Abundance in Subtropical Quercus aquifolioides Forest[J]. Forests, 2025, 16(3): 481. (IF 2.4)
[21] Yu Y, Huang J, Tong Z, et al. Response of microbial community diversity and the abundance of nitrogen-cycling genes to Bacillus subtilis application in mulberry field soil[J]. Soil Research, 2024, 62(2). (IF 1.6)