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Bioresource Technology|November 26, 2019
Conductive materials in anaerobic digestion: From mechanism to applicationYu Wu, Shu Wang, Danhui Liang, et al.Mitochondrial DNA. Part B, Resources|February 25, 2021
Characterization of the complete chloroplast genome of <i>Melaleuca cajuputi</i> subsp. <i>cumingiana</i> (Myrtaceae)Danhui Liang, Liming Zhu, Yuyu He, et al.The Science of the Total Environment|May 3, 2023
Dual-roles of carbon black to accelerate phosphorus recovery as vivianiteDanhui Liang, Xinhang Li, Shu Wang, et al.The Science of the Total Environment|November 19, 2020
Fenton-based technologies as efficient advanced oxidation processes for microcystin-LR degradationDanhui Liang, Nan Li, Jingkun An, et al.Water Research|August 18, 2024
The screening of iron oxides for long-term transformation into vivianite to recover phosphorus from sewageDanhui Liang, Jifei Chang, Yu Wu, et al.The Science of the Total Environment|November 12, 2022
Vivianite recovery from high concentration phosphorus wastewater with mine drainage as iron sourcesShu Wang, Nan Li, Qing Yuan, et al.Water Research|October 11, 2024
Nano-magnetite enhances dissimilated iron reduction to vivianite from sewage by structuring an enormous and compact electron transfer networkJifei Chang, Danhui Liang, Yan Gao, et al.The Science of the Total Environment|July 5, 2022
Carbon nanotubes accelerates the bio-induced vivianite formationZexuan He, Jifei Chang, Yujie Feng, et al.The Science of the Total Environment|April 19, 2023
Charging-discharging cycles of geobattery activated carbon enhance iron reduction and vivianite recovery from wastewaterJifei Chang, Nanqi Ren, Qing Yuan, et al.Environmental Science & Technology|August 14, 2020
<i>Geobacter</i> Autogenically Secretes Fulvic Acid to Facilitate the Dissimilated Iron Reduction and Vivianite RecoveryShu Wang, Yu Wu, Jingkun An, et al.Pageof 2