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[1] Li Q. et al. (2024) Fungal biomineralization of toxic metals accelerates organic pollutant removal. Current Biology, 34(10), 2077-2084.e3. £¨Nature ÈÈÃÅÂÛÎÄ£©

[2] Liu, D., Zhou, Y., Wei, B., Li, Q.*, Zhao, H.* (2024) Analyzing the active sites of carbocatalyst for peroxydisulfate activation: specific surface area or electrochemical surface area? Chemosphere, 143124.

[3] Liu Daoqing£¬Li Qianwei*, Liu Enhui, Zhang Miao, Liu Jicheng, Chen Chunmao. (2023) Biomineralized nanoparticles for the immobilization and degradation of crude oil-contaminated soil. Nano Research. 16:12238-12245. (IF=9.2,Ò»ÇøTOP)

[4] Wei Lan#, Qianwei Li#, Biao Wei, Wuxi Bi, Chengwei Xu, Daoqing Liu.£¨2023£©Evaluation of AC corrosion under anodic polarization using microzone pH analysis. Corrosion Science. 219:111219£¨IF=7.720, Ò»ÇøTOP£©

[5] Li Q. et al. (2022) Nanoparticle and nanomineral production by fungi. Fungal Biology Reviews. 41:31-44 (IF = 4.7, Ò»Çø)

[6] Li Q. et al. (2020) Iron coral: novel fungal biomineralization of nanoscale zerovalent iron composites for treatment of chlorinated pollutants. Chemical Engineering Journal, 402, 126263. (IF = 13.3, Ò»ÇøTOP)

[7] Li Q. et al. (2019) Experimental and geochemical simulation of nickel carbonate mineral precipitation by carbonate-laden ureolytic fungal culture supernatants. Environmental Science: Nano, 6, 1866-1875. (IF = 8.1, Ò»ÇøTOP)

[8] Li, Q., Gadd, G. M. (2017) Biosynthesis of copper carbonate nanoparticles by ureolytic fungi. Applied Microbiology Biotechnology 101(19): 7397-7407. (IF = 4.8, ¶þÇøTOP)

[9] Li, Q., Gadd, G. M. (2017) Fungal nanoscale metal carbonates and production of electrochemical materials. Microbial Biotechnology 10(5):1131-1136. (IF = 5.8£©

[10] Li, Q., Liu, D., Jia, Z., Csetenyi, L., Gadd, G.M. (2016) Fungal biomineralization of manganese as a novel source of electrochemical materials. Current Biology 26(7): 950-955. (IF = 10.8, Ò»ÇøTOP)

[11] Li, Q., Csetenyi, L., Paton, G. I., Gadd, G.M. (2015) CaCO3 and SrCO3 bioprecipitation by fungi isolated from calcareous soil. Environmental Microbiology 17(8): 3082¨C3097. (IF = 6.24, Ò»ÇøTOP)

[12] Li, Q., Csetenyi, L., Gadd, G.M. (2014) Biomineralization of metal carbonates by Neurospora crassa. Environental Sciences & Technology 48(24): 14409-14416. (IF = 8.9, Ò»ÇøTOP)

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