[8] 朱联东,吕元飞,宝剑锋,刘辰辰.《一种炭气凝胶材料及其制备方法与应用》,申请号:202210510658.1
[7] 朱联东,李天瑞.《一种自动增氧型人工湿地系统》,申请号:202210198054.8
[6] 朱联东,李天瑞,尹志红,胡丹,褚若愚,李卓.《集养殖、尾水处理及回用为一体的循环水养鱼装置》,申请号:202120822461.2; 专利号:ZL 2021 2 0822461.2
[5] 朱联东,秦轶凡,尹志红,李天瑞,李双喜.《一种用于固定化微藻的微球制备装置》,申请号:202121734008.2;专利号:ZL 2021 2 1734008.2
[4] 朱联东,尹志红,胡丹,褚若愚,李卓,李天瑞.《一种无动力潜流生态截污沟渠系统及其施工方法》,申请号:202110391334.6
[3] 朱联东,尹志红,李双喜,胡丹,秦轶凡,褚若愚.《一种阳离子功能化β-环糊精/壳聚糖复合材料及其制备方法与应用》,申请号:202110794443.2
[2] 李兆华,朱联东. 《可拆卸人工湿地》,申请号:200720156287.22
[1] 李兆华,马安宁,朱联东. 《组合式养殖废水净化方法及装置》,申请号:200710052946.2
部分论文如下:
[38] Li, S., Li, Z., Liu, D., Yin, Z., Hu, D., Yu, Y., Li, Z., Zhu, L.*, 2022. Response of fungi-microalgae pellets to copper regulation in the removal of sulfonamides and release of dissolved organic matters. Journal of Hazardous Materials 434, 128932.
[37] Nugroho, Y.K.*, Zhu, L.*, Heavey C., 2022. Building an agent-based techno-economic assessment coupled with life cycle assessment of biomass to methanol supply chains. Applied Energy 309, 118449.
[36] Yin, Z., Li, S., Hu, D., Li, Z., Chu, R., Liu, C., Li, X., Hu, J., Zhu, L.*, 2022. Performance evaluation of different chitosan-clay composite materials for efficient harvesting of Chlorella vulgaris and impacts on downstream bioproduct processing and water reusability. Chemical Engineering Journal 430, 132892.
[35] Chu, R., Hu, D., Zhu, L.*, Li, S., Yin, Z., Yu, Y., 2022. Recycling spent water from microalgae harvesting by fungal pellets to re-cultivate Chlorella vulgaris under different nutrient loads for biodiesel production. Bioresource Technology 344, 126227.
[34] Lv, Y., Bao, J., Zhu, L.*, 2022. A comprehensive review of recent and perspective technologies and challenges for the remediation of oil-contaminated sites. Energy Reports 8, 7976–7988.
[33] Li, Z., Li, S., Li, T., Gao, X., Zhu, L.*, 2022. Physiological and transcriptomic responses of freshwater microalgae Chlorella sorokiniana to ciprofloxacin exposure reveal molecular mechanisms for antibiotic removal. iScience 25, 104638.
[32] Bao, J., Lv, Y., Liu, C., Li, S., Yin, Z., Yu, Y., Zhu, L.*, 2022. Performance evaluation of rhamnolipids addition for the biodegradation and bioutilization of petroleum pollutants during the composting of organic wastes with waste heavy oil. iScience 25, 104403.
[31] Yin, Z., Zhang, L., Hu, D., Li, S., Chu, R., Liu, C., Lv, Y., Bao, J., Xiang, M.*, Zhu, L.*, 2021. Biocompatible magnetic flocculant for efficient harvesting of microalgal cells: Isotherms, mechanisms and water recycling. Separation and Purification Technology 279, 119679.
[30] Li, S., Yu, Y., Gao, X., Yin, Z., Bao, J., Li, Z., Chu, R., Hu, D., Zhang, J., Zhu, L.*, 2021. Evaluation of growth and biochemical responses of freshwater microalgae Chlorella vulgaris due to exposure and uptake of sulfonamides and copper. Bioresource Technology 342, 126064.
[29] Hu, D., Zhang, J., Chu, R., Yin, Z., Hu, J., Nugroho, Y.K., Li, Z., Zhu, L.*, 2021. Microalgae Chlorella vulgaris and Scenedesmus dimorphus co-cultivation with landfill leachate for pollutant removal and lipid production. Bioresource Technology 342, 126003.
[28] Yin, Z., Chu, R., Zhu, L.*, Li, S., Mo, F., Hu, D., Liu, C., 2021. Application of chitosan-based flocculants to harvest microalgal biomass for biofuel production: A review. Renewable and Sustainable Energy Reviews 145, 111159.
[27] Zhu, L.*, Li, Z., 2021. Disinfection driven by COVID-19 epidemic threatens global biodiversity. Science, https://science.sciencemag.org/content/371/6528/474.1/tab-e-letters (eLetter).
[26] Chu, R., Li, S., Yin, Z., Hu, D., Zhang, L., Xiang, M., Zhu, L.*, 2021. A fungal immobilization technique for efficient harvesting of oleaginous microalgae: key parameter optimization, mechanism exploration and spent medium recycling. Science of the Total Environment, 790,148174.
[25] Chu, R.#, Li, S.#, Zhu, L.*, Yin Z., Hu, D, Liu, C., Mo F., 2021. A review on co-cultivation of microalgae with filamentous fungi: Efficient harvesting, wastewater treatment and biofuel production. Renewable and Sustainable Energy Reviews 139, 110689.
[24] Li, S., Hu, T., Zhu, L.*, Xu, Y., Wang J., Chu R., Yin Z., Mo F., 2020. A review on flocculation as an efficient method to harvest energy microalgae: Mechanisms, performances, influencing factors and perspectives. Renewable and Sustainable Energy Reviews 131, 110005.
[23] Li, S., Zhu, L.*, Yin, Z., Hu, T., Hu, D., Chu, R., Mo, F., Liu, C., 2020. Combined effects of 17β-estradiol and copper on growth, biochemical characteristics and pollutant removals of freshwater microalgae Scenedesmus dimorphus. Science of the Total Environment 730, 138597.
[22] Li, S., Zhu, L.*, Wang, P., Zhang C., Zhou X., Yin Z., Hu T., Hu D., Liu C., 2020. Influence of polystyrene microplastics on the growth, photosynthetic efficiency and aggregation of freshwater microalgae Chlamydomonas reinhardtii. Science of the Total Environment 714, 136767.
[21] Yin, Z., Zhu, L.*, Li, S., Hu, T., Hu, D., Chu, R., Mo, F., Liu, C., Li, B., 2020. A comprehensive review on cultivation and harvesting of microalgae for biodiesel production: Environmental pollution control and future directions. Bioresource Technology 301, 122804.
[20] Zhu, L., Li, S., Hu, T., Nugroho, Y.K., Yin, Z., Hu, D., Chu, R., Mo, F., Liu, C., Hiltunen, E., 2019. Effects of nitrogen source heterogeneity on nutrient removal and biodiesel production of mono- and mix-cultured microalgae. Energy Conversion and Management 201, 112144.
[19] Kristianto, Y., Zhu, L.*, 2019. An integration of algal biofuel production planning, scheduling, and order-based inventory distribution control systems. Biofuels, Bioproducts and Biorefining 13, 920–935.
[18] Kristianto, Y., Zhu, L.*, 2019. Platforms planning and process optimization for biofuels supply chain. Renewable Energy 140, 563–579.
[17] Zhu, L.*, Li, Z., Hiltunen, E., 2018. Microalgae Chlorella vulgaris biomass harvesting by natural flocculant: effects on biomass sedimentation, spent medium recycling and lipid extraction. Biotechnology for Biofuels 11(1), 183.
[16] Zhang, Q., Yu, Z., Zhu, L., Ye, T., Zuo, J., Li, X., Xiao, B., Jin, S., 2018. Vertical-algal-biofilm enhanced raceway pond for cost-effective wastewater treatment and value-added products production. Water Research 139, 144–157.
[15] Kristianto, Y., Zhu, L.*, 2017. Techno-economic optimization of ethanol synthesis from rice-straw supply chains. Energy 141, 2164–2176.
[14] Zhu, L.*, Nugroho, Y.K., Shakeel, S.R., Li, Z.*, Martinkauppi, B., Hiltunen, E., 2017. Using microalgae to produce liquid transportation biodiesel: What is next? Renewable and Sustainable Energy Reviews 78, 391–400.
[13] Zhu, L.*, Li, Z., Guo, D., Huang , F., Nugroho, Y., Xia, K., 2017. Cultivation of Chlorella sp. with livestock waste compost for lipid production. Bioresource Technology 223, 296–300.
[12] Yan, C., Zhu, L., Wang, Y., 2016. Photosynthetic CO2 uptake by microalgae for biogas upgrading and simultaneously biogas slurry decontamination by using of microalgae photobioreactor under various light wavelengths, light intensities, and photoperiods. Applied Energy 178, 9–18.
[11] Zhu, L.*, Yan, C., Li, Z., 2016. Microalgal cultivation with biogas slurry for biofuel production. Bioresource Technology 220, 629–636.
[10] Zhu, L.*, 2015. Microalgal culture strategies for biofuel production: A review. Biofuels, Bioproducts and Biorefining 9, 801–814.
[9] Zhu, L.*, 2015. Biorefinery as a promising approach to promote microalgae industry: an innovative framework. Renewable and Sustainable Energy Reviews 41, 1376–1384.
[8] Zhu, L., Hiltunen, E., Shu, Q., Zhou, W., Li, Z., Wang, Z.*, 2014. Biodiesel production from algae cultivated in winter with artificial wastewater through pH regulation by acetic acid. Applied Energy 128, 103–110.
[7] Zhu, L.*, Hiltunen, E., Antila, E., Zhong, J., Yuan, Z., Wang, Z.*, 2014. Microalgal biofuels: flexible bioenergies for sustainable development. Renewable and Sustainable Energy Reviews 30, 1035–1046.
[6] Zhu, L.*, 2014. The combined production of ethanol and biogas from microalgal residuals to sustain microalgal biodiesel: a theoretical evaluation. Biofuels, Bioproducts and Biorefining 8, 7–15.
[5] Zhu, L.*, Takala, J., Hiltunen, E., Wang, Z.*, 2013. Recycling harvest water to cultivate Chlorella zofingiensis under nutrient limitation for biodiesel production. Bioresource Technology 144, 14–20.
[4] Zhu, L.*, Wang, Z., Shu, Q., Takala, J., Hiltunen, E., Feng, P., Yuan, Z.*, 2013. Nutrient removal and biodiesel production by integration of freshwater algae cultivation with piggery wastewater treatment. Water Research 47, 4294–4302.
[3] Zhu, L.*, Wang, Z., Takala, J., Hiltunen, E., Qin, L., Xu, Z., Qin, X., Yuan, Z.*, 2013. Scale-up potential of cultivating Chlorella zofingiensis in piggery wastewater for biodiesel production. Bioresource Technology 137, 318–325.
[2] Zhu, L.*, Ketola, T., 2012. Microalgae production as a biofuel feedstock: risks and challenges. International Journal of Sustainable Development and World Ecology 19, 268–274.
[1] Zhu, L.*, Li, Z., Ketola, T., 2011. Biomass accumulations and nutrient uptake of plants cultivated on artificial floating beds in China’s rural area. Ecological Engineering 37, 1460–1466.
主持国家重点研发计划课题一项;
主持国家自然科学基金面上项目两项;
主持国家重点研发计划子课题三项;
主持国家自然科学基金委员会人才项目一项;
主持教育部产学协同育人项目一项;
主持科技部外专项目一项;
主持湖北省杰出青年基金项目一项;
主持武汉大学人才引进项目一项;
主持武汉大学教改项目两项;
主持欧盟Botnia and Atlantica Programme资助项目一项;
主持芬兰通力基金项目一项;
主持芬兰文化基金项目两项;
主持芬兰富腾基金项目两项;
参与国家、省部级资助项目9项
Research direction
究方向Contact information
系方式办公室电话:
邮箱:
Copyright武汉大学2017 地址:湖北省武汉市武昌区八一路299号 邮编:430072
鄂ICP备05003330鄂公网安备42010602000219