Zenghua Wu
Tsinghua University
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Publication
Featured researches published by Zenghua Wu.
Journal of Materials Chemistry | 2008
Jingyu Xi; Zenghua Wu; Xiangguo Teng; Yongtao Zhao; Liquan Chen; Xinping Qiu
The crossover of vanadium ions through proton-exchange membranes such as those of Nafion is the chief reason that results in the low energy efficiency and high self-discharge rate of vanadium redox flow batteries (VRB). With respect to applicability, the ideal proton-exchange membrane used in VRB should possess simultaneously high proton conductivity and low vanadium ion permeability. Here, we report a novel approach using a polyelectrolyte layer-by-layer self-assembly technique to fabricate a barrier layer onto the surface of Nafion membrane by alternate adsorption of polycation poly(diallyldimethylammonium chloride) (PDDA) and polyanion poly(sodium styrene sulfonate) (PSS), which can suppress the crossover of vanadium ions. The Nafion–[PDDA-PSS]n membrane (n = the number of multilayers) obtained shows much lower vanadium ion permeability compared with plain Nafion membrane. Accordingly, the VRB with Nafion–[PDDA-PSS]n membrane exhibits a higher coulombic efficiency (CE) and energy efficiency (EE) together with a slower self-discharge rate than that of Nafion system. The highest CE of 97.6% and EE of 83.9% can be achieved at charge–discharge current density of 80 mA cm−2 and 20 mA cm−2, respectively.
Spectroscopy | 2013
Le Liu; Jingyu Xi; Zenghua Wu; Wenguang Zhang; Haipeng Zhou; Weibin Li; Yonghong He
Traditional spectroscopic analysis based on the Beer-Lambert law cannot analyze the analyte with high concentration and interference between different compositions, such as the electrolyte in vanadium redox flow batteries (VRBs). Here we propose a new method for online detection of such analytes. We demonstrate experimentally that, by comparing the transmittance spectrum of the analyte with the spectra in a preprepared database using our intensity-corrected correlation coefficient (ICCC) algorithm, parameters such as the state of charge (SOC) of both the positive and the negative electrolytes in the VRB can be online monitored. This method could monitor the level of the electrolytes imbalance in the VRB, which is useful for further rebalancing the electrolyte and restoring the capacity loss of the VRB. The method also has the potential to be used in the online detection of other chemical reactions, in which the chemical reagents have high concentration and interferences between different compositions.
Journal of Power Sources | 2007
Jingyu Xi; Zenghua Wu; Xinping Qiu; Liquan Chen
Journal of Physical Chemistry B | 2005
Xuanli Luo; Zhengzhong Lu; Jingyu Xi; Zenghua Wu; Wentao Zhu; Liquan Chen; Xinping Qiu
Electrochimica Acta | 2013
Wenguang Zhang; Jingyu Xi; Zhaohua Li; Haipeng Zhou; Le Liu; Zenghua Wu; Xinping Qiu
Journal of Membrane Science | 2009
Xiangguo Teng; Yongtao Zhao; Jingyu Xi; Zenghua Wu; Xinping Qiu; Liquan Chen
Journal of Power Sources | 2009
Xiangguo Teng; Yongtao Zhao; Jingyu Xi; Zenghua Wu; Xinping Qiu; Liquan Chen
Journal of Power Sources | 2013
Zhaohua Li; Jingyu Xi; Haipeng Zhou; Le Liu; Zenghua Wu; Xinping Qiu; Liquan Chen
Journal of Applied Electrochemistry | 2012
Le Liu; Jingyu Xi; Zenghua Wu; Wenguang Zhang; Haipeng Zhou; Weibin Li; Xinping Qiu
Journal of Power Sources | 2017
Ke Wang; Le Liu; Jingyu Xi; Zenghua Wu; Xinping Qiu