赵玲(Zhao Ling)
Researcher
New Environmental Building 623
wszhaoling@sjtu.edu.cn
论文信息
  • SCI收录论文 (部分)
  • Guo, W.B., Li, D.P., Chen, B., Li, J.M., Li, Z.C., Cao, X.D., Qiu, H., Zhao, L.*, 2025. Microbial colonization on four types of microplastics to form biofilm differentially affecting organic contaminant biodegradation. Chem. Eng. J. 503, 158060.
  • Guo, W.B., Li, D.P., Zhai, Y., Xu, X.Y., Qiu, H., Miao, A.J., Cao, X.D., Zhao, L.*, 2024. Differential interaction modes of As(III)/As(V) with microbial cell membrane induces opposite effects on organic contaminant biodegradation in groundwater. Environ. Int. 193, 109074.
  • Li, D.P., Guo, W.B., Chen, B., Zhai, Y., Lang, Y., Guo, T.B., Cao, X.D., Zhao, L.*, 2024. Niche construction in a bioelectrochemical system with 3D-electrodes for efficient and thorough biodechlorination. Water. Res. 265, 122260.
  • Zhai, Y., Guo, W.B., Li, D.P., Chen, B., Xu, X.Y., Cao, X.D., Zhao, L.*, 2024. Size-dependent influences of nanoplastics on microbial consortium differentially inhibiting 2, 4-dichlorophenol biodegradation. Water. Res. 249, 121004.
  • Meng, F., Rong, G.Q., Zhao, R.J., Chen, B., Xu, X.Y., Qiu, H., Cao, X.D., Zhao, L.*, 2024. Incorporating biochar into fuels system of iron and steel industry: carbon emission reduction potential and economic analysis. Appl. Energ. 356, 122377.
  • Nan, H.Y., Yang, F., Wang, C.Q., Xu, X.Y., Qiu, H., Cao, X.D., Zhao, L.*, 2024. Phosphorus footprint in whole biowaste-biochar-soil-plant system: reservation, replenishment and reception. J. Agr. Food Chem. 72, 166-175.
  • Li, D.P., Guo, W.B., Zhai, Y., Xu, X.Y., Cao, X.D., Zhao, L.*, 2023. The aggregated biofilm dominated by Delftia tsuruhatensis enhances the removal efficiency of 2,4-dichlorophenol in a bioelectrochemical system. Environ. Pollut. 337, 122576.
  • Fang, S.W., Zhao, L.*, Rong, G.Q., Chen, B., Xu, X.Y., Qiu, H., Cao, X.D., 2023. Converting coastal silt into subgrade soil with biochar as reinforcing agent, CO2 adsorbent, and carbon sequestrating material. J. Environ. Manage. 344, 118394.
  • Xue, W.Z., Ying, D.W., Li, Y., Sheng, Y., He, T.H., Shi, P.L., Liu, M., Zhao, L.*, 2023. Method for establishing soil contaminant discharge inventory: An arsenic-contaminated site case study. Environ. Res. 227, 115700.
  • Nan, H.Y., Yang, F., Li, D.P., Cao, X.D., Xu, X.Y., Qiu, H., Zhao, L.*, 2023. Calcium enhances phosphorus reclamation during biochar formation: Mechanisms and potential application as a phosphorus fertilizer in a paddy soil. Waste Manage. 162, 83–91.
  • Yang, F., Lv, J.F., Zheng, Y.F., Cui, J.Y., Huang, Y.D., Cao, X.D., Liu, H.Z., Zhao, L.*, 2023. Enhancement of coal gangue performance by surface micro-crystalline glaze derived from mineral powder. Sci. Total Environ. 858, 159986.
  • Nan, H.Y., Mašek, O., Yang, F., Xu, X.Y., Qiu, H., Caop, X.D., Zhao, L.*, 2022. Minerals: A missing role for enhanced biochar carbon sequestration from the thermal conversion of biomass to the application in soil. Earth-Sci. Rev. 234, 104215.
  • Zhang, Y., Maierdan, Y.F., Guo, T.B., Chen, B., Fang, S.W., Zhao, L.*, 2022. Biochar as carbon sequestration material combines with sewage sludge incineration ash to prepare lightweight concrete. Constr. Build. Mater. 343, 128116.
  • Chen, H., Li, D.P., Mašek, O., Zhai, Y., Rong, G.Q., Xu, X.Y., Cao, X.D., Zhao, L.*, 2022. Simultaneous dissipation of trichloroethene and arsenic from co-contaminated groundwater by coupling biodechlorination and biodetoxification with assistance of biochar. Biochar 4, 69.
  • Luo, Y., Li, Z.P., Xu, H.C., Xu, X.Y., Qiu, H., Cao, X.D., Zhao, L.*, 2022. Development of phosphorus composite biochar for simultaneous enhanced carbon sink and heavy metal immobilization in soil. Sci. Total Environ. 831, 154845.
  • Yin, J.X., Zhao, L.*, Xu, X.Y., Li, D.P., Qiu, H., Cao, X.D., 2022. Evaluation of long-term carbon sequestration of biochar in soil with biogeochemical field model. Sci. Total Environ. 822, 153576.
  • Yang, F., Zuo, X.P., Yang H.R., Ke, Q., Huang, Y.D., Cao, X.D., Zhao, L.*, 2021. Ionic liquid-assisted production of high-porosity biochar with more surface functional groups: Taking cellulose as attacking target. Chem. Eng. J. 133811.
  • Liu, Y., Chen, H., Zhao, L.*, Li, Z.P., Yi, X.H., Guo, T.B., Cao, X.D., 2021. Enhanced trichloroethylene biodegradation: Roles of biochar-microbial collaboration beyond adsorption. Sci. Total Environ. 792, 148451.
  • Nan, H.Y., Yin, J.X., Yang, F., Luo, Y., Zhao, L.*, Cao, X.D., 2021. Pyrolysis temperature-dependent carbon retention and stability of biochar with participation of calcium: Implications to carbon sequestration. Environ. Pollut. 287, 117566.
  • Yang, Q.S., Mašek, O., Zhao, L.*, Nan, H.Y., Yu, S.T., Yin, J.X., Li, Z.P., Cao, X.D., 2021. Country-level potential of carbon sequestration and environmental benefits by utilizing crop residues for biochar implementation. Appl. Energ. 282, 116275.
  • Li, D.P., Zhao, L.*, Cao, X.D., Xiao, Z.Y., Nan, H.Y., Qiu, H., 2020. Nickel-catalyzed formation of mesoporous carbon structure promoted capacitive performance of exhausted biochar. Chem. Eng. J. 406, 126856.
  • Nan, H.Y., Xiao, Z.Y., Zhao, L.*, Yang, Fan; Xu, H.C., Xu, X.Y., Qiu, H., 2020. Nitrogen transformation during pyrolysis of various N-containing biowastes with participation of mineral calcium. ACS Sustainable Chem. Eng. 8, 32, 12197–12207.
  • Zhao, L.*, Xiao, D.L., Liu, Y., Xu, H.C., Nan, H.Y., Cao, X.D.*, 2020 Biochar as simultaneous shelter, adsorbent, pH buffer, and nutrient to promote biodegradation of high concentrations of phenol in wastewater. Water. Res. 172, 115494.
  • Zhao, L., Zhao, Y.H., Nan, H.Y., Yang, F., Qiu, H., Xu, X.Y., Cao, X.D.*, 2019. Suppressed formation of polycyclic aromatic hydrocarbons (PAHs) during Fe-preloaded barley straw pyrolysis. J. Hazar. Mater. 382, 121033
  • Yang, X.Y., Zhao, L.*, Aminul Haque, M., Chen, B., Ren, Z., Cao, X.D., Shen, Z.M., 2019. Sustainable conversion of contaminated dredged river sediment into eco-friendly foamed concrete. J. Clean. Prod. 252, 119799.
  • Nan, H.Y.; Yang, F.; Zhao, L.*; Mašek, O.; Cao, XD.; Xiao, Z.Y., 2019. Interaction of Inherent Minerals with Carbon during Biomass Pyrolysis Weakens Biochar Carbon Sequestration Potential. ACS Sustain Chem. Eng. 7, 1591–1599.
  • Zhao, L.; Zheng, W.; Mašek, O.; Chen, X.; Gu, B.; Sharma, B. K.; Cao, X., 2017. Roles of Phosphoric Acid in Biochar Formation: Synchronously Improving Carbon Retention and Sorption Capacity. J. Environ. Qual. 46 (2), 393–401.
  • Zhao L, Cao XD*, Zheng W, Scott JW, Sharma BK, Chen X, 2016. Copyrolysis of biomass with phosphate fertilizers to improve biochar carbon retention, slow nutrient release, and stabilize heavy metals in soil. ACS Sustain Chem. Eng. 4 (3): 1630−1636.
  • Zhao, L., Zheng, W., Cao, X.D.*, 2014. Distribution and evolution of organic matter phases during biochar formation and their importance in carbon loss and pore structure. Chem. Eng. J. 250: 240–247.
  • Zhao, L., Cao, X.D.*, Masek, O., Zimmerman, A., 2013. Heterogeneity of biochar properties as a function of feedstock sourcesand production temperatures. J. Hazar. Mater. 256–257 (15): 1–9.
  • Zhao, L., Cao, X.D.*, Wang, Q., Yang, F., Xu, S., 2013. Mineral constituents profile of biochar derived from diversified waste biomasses: implication on agricultural application. J. Environ. Qual. 42: 545–552.
  • Zhao, L., Gu, W.M., He, P.J.*, Shao, L.M., 2010. Effect of air-flow rate and turning frequency on bio-drying of dewatered sludge. Water Res. 44 (20): 6144−6152.
  • Zhao, L., Gu, W.M., He, P.J.*, Shao, L.M., 2011. Biodegradation potential of bulking agents in sludge bio-drying and their contribution to bio-generated heat. Water Res. 45 (6): 2322−2330.
  • Zhao, L., Wang, X.Y., Gu, W.M., Shao, L.M., He, P.J.*, 2011. Distribution of C and N in soluble fractionations for characterizing the respective biodegradation of sludge and bulking agents. Bioresour. Technol. 102, 10745−10749.
  • Zhao, L., Yang, D., Zhu, N.W.*, 2008. Bioleaching of spent Ni-Cd batteries by continuous flow system: Effect of hydraulic retention time and process load. J. Hazar. Mater. 160 (2-3), 648–654.
  • 中文核心期刊论文
  • 盛溢,薛玮真,应迪文,吴骏,李晔,史沛丽,赵玲*. 场地土壤镉污染排放清单与溯源—以铜冶炼厂为例. 中国环境科, 2024, 44 (8): 4462-4474.
  • 赵玲,曹心德.“新三中心”教学改革实践探索—以环境学导论课为例. 大学教育. 2019. (教学类)
  • 杨小云,赵玲*,陈兵,申哲民. 河道疏浚底泥制备泡沫混凝土的参数优化. 混凝土与水泥制品. 2019.
  • 杨秋爽,南红岩,赵玲*. 我国农作物残体制生物炭的固碳潜势和环境影响[J]. 信阳师范学院学报:自然科学版. 2019 (北大核心).
  • 肖冬林,赵玲*,曹心德,刘阳,于晓娟. 生物炭强化模拟废水中高浓度苯酚的微生物降解. 环境科学学报. 2019. 39 (6):1-9.
  • 顾博文,曹心德,赵玲*,赵英豪. 生物质内源矿物对热解过程及生物炭稳定性的影响. 农业环境科学学报. 2017, 36 (3): 591-597.
  • 王群, 李飞跃,曹心德,赵玲*. 植物基与固废基生物炭的结构性质差异. 环境科学与技术. 2013, 36 (8): 1-5.
  • 赵玲, 洪建灵, 朱南文*. 原油污染土壤中油成分的最佳萃取条件研究. 环境化学. 2008, 27 (5): 668–671.
  • 赵玲, 杨栋, 朱南文*. 废旧干电池的生物法资源回收技术. 有色冶金设计与研究. 2007, 28 (23): 98–102.
  • 赵玲, 杨栋, 车承丹, 朱南文*. 污泥生物制酸的影响因素. 化工环保. 2007, 27 (5): 463–467
  • 赵玲, 彭党聪, 朱南文*. 活性污泥3号模型对实际工艺的模拟与分析. 环境科学与管理. 2007, 32 (11): 81–86.
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