Jingyi Han
Zhejiang Gongshang University
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Publication
Featured researches published by Jingyi Han.
Journal of Hazardous Materials | 2018
Zuliang Wu; Zhoubin Zhu; Xiaodong Hao; Weili Zhou; Jingyi Han; Xiujuan Tang; Shuiliang Yao; Xuming Zhang
Non-thermal plasma technology has great potential in reducing polycyclic aromatic hydrocarbons (PAHs) emission. But in plasma-alone process, various undesired by-products are produced, which causes secondary pollutions. Here, a dielectric barrier discharge (DBD) reactor has been developed for the oxidation of naphthalene over a TiO2/diatomite catalyst at low temperature. In comparison to plasma-alone process, the combination of plasma and TiO2/diatomite catalyst significantly enhanced naphthalene conversion (up to 40%) and COx selectivity (up to 92%), and substantially reduced the formation of aerosol (up to 90%) and secondary volatile organic compounds (up to near 100%). The mechanistic study suggested that the presence of the TiO2/diatomite catalyst intensified the electron energy in the DBD. Meantime, the energized electrons generated in the discharge activated TiO2, while the presence of ozone enhanced the activity of the TiO2/diatomite catalyst. This plasma-catalyst interaction led to the synergetic effect resulting from the combination of plasma and TiO2/diatomite catalyst, consequently enhanced the oxidation of naphthalene. Importantly, we have demonstrated the effectiveness of plasma to activate the photocatalyst for the deep oxidation of PAH without external heating, which is potentially valuable in the development of cost-effective gas cleaning process for the removal of PAHs in vehicle applications during cold start conditions.
Journal of Hazardous Materials | 2018
Lingai Mao; Zhizong Chen; Xinyue Wu; Xiujuan Tang; Shuiliang Yao; Xuming Zhang; Boqiong Jiang; Jingyi Han; Zuliang Wu; Hao Lu; Tomohiro Nozaki
A dielectric barrier discharge (DBD) catalyst hybrid reactor with CeO2/γ-Al2O3 catalyst balls was investigated for benzene decomposition at atmospheric pressure and 30 °C. At an energy density of 37-40 J/L, benzene decomposition was as high as 92.5% when using the hybrid reactor with 5.0wt%CeO2/γ-Al2O3; while it was 10%-20% when using a normal DBD reactor without a catalyst. Benzene decomposition using the hybrid reactor was almost the same as that using an O3 catalyst reactor with the same CeO2/γ-Al2O3 catalyst, indicating that O3 plays a key role in the benzene decomposition. Fourier transform infrared spectroscopy analysis showed that O3 adsorption on CeO2/γ-Al2O3 promotes the production of adsorbed O2- and O22‒, which contribute benzene decomposition over heterogeneous catalysts. Nano particles as by-products (phenol and 1,4-benzoquinone) from benzene decomposition can be significantly reduced using the CeO2/γ-Al2O3 catalyst. H2O inhibits benzene decomposition; however, it improves CO2 selectivity. The deactivated CeO2/γ-Al2O3 catalyst can be regenerated by performing discharges at 100 °C and 192-204 J/L. The decomposition mechanism of benzene over CeO2/γ-Al2O3 catalyst was proposed.
IEEE Transactions on Plasma Science | 2017
Zuliang Wu; Jiaxing Wang; Jingyi Han; Shuiliang Yao; Shaojun Xu; Philip A. Martin
Naphthalene decomposition in O<sub>2</sub>/N<sub>2</sub> gas mixture with different O<sub>2</sub> concentrations has been studied in a dielectric barrier discharge reactor at atmospheric pressure. O<sub>2</sub> played an important role in the decomposition of naphthalene, especially in the selectivities of CO and CO<sub>2</sub>. There was an optimal naphthalene decomposition rate at an O<sub>2</sub> concentration of about 3%. The CO<sub>x</sub> selectivity increased up to 83.3% gradually with the O<sub>2</sub> concentration increasing from 1% to 20%. Nanoparticles were found in the gas samples, concentrations of which can be reduced greatly through raising the O<sub>2</sub> concentration. The decomposition byproducts of naphthalene were obviously different under different O<sub>2</sub> concentrations. Some nitrogenous compounds reduced but some oxygenous compounds increased with increasing O<sub>2</sub> concentration. The mechanism of naphthalene decomposition was proposed as that naphthalene was first initiated by dehydrogenation and oxidation, and then followed by deep oxidation to CO and CO<sub>2</sub>.
IEEE Transactions on Plasma Science | 2016
Shuiliang Yao; Shan Weng; Qi Jin; Haiquan Lu; Zuliang Wu; Xuming Zhang; Jingyi Han; Hao Lu; Xiujuan Tang; Boqiong Jiang
Decane decomposition in Ar, N2, and O2/N2 gases was investigated using a pulsed dielectric barrier discharge reactor. The mechanism of decomposition was discussed on the basis of the products detected by gas chromatograph (GC) and GC-mass spectrometer techniques. Decane decomposition in Ar was initiated by dehydrogenation to form decane radicals, which were then dehydrogenated to yield decenes, lighter hydrocarbons. When O2 was present in the discharge space, decane radicals were oxidized to decanone, CO, and CO2. The oxidation mechanism of decane radicals to CO and CO2 was suggested due to the radical oxidation by O atoms and OH radicals. Nanoparticles were found in a size range of 5.5-160 nm. The sizes of the nanoparticles were different with the gas components due to the difference in the produced radicals in the discharge space. We proposed that the oxidation and nitridation of the decane led to the formation of the nanoparticles.
Journal of Electrostatics | 2015
Shuiliang Yao; Zuliang Wu; Jingyi Han; Xiujuan Tang; Boqiong Jiang; Hao Lu; S. Yamamoto; Satoshi Kodama
Chemical Engineering Journal | 2016
Qi Jin; Boqiong Jiang; Jingyi Han; Shuiliang Yao
Environmental Science and Pollution Research | 2017
Hao Lu; Shengsheng Wang; Zuliang Wu; Shuiliang Yao; Jingyi Han; Xiujuan Tang; Boqiong Jiang
Environmental Science and Pollution Research | 2017
Hao Lu; Shengsheng Wang; Yun Li; Hui Gong; Jingyi Han; Zuliang Wu; Shuiliang Yao; Xuming Zhang; Xiujuan Tang; Boqiong Jiang
Chemical Engineering Journal | 2017
Shuiliang Yao; Xing Shen; Xuming Zhang; Jingyi Han; Zuliang Wu; Xiujuan Tang; Hao Lu; Boqiong Jiang
Journal of Physical Chemistry C | 2018
Min Cheng; Boqiong Jiang; Shuiliang Yao; Jingyi Han; Shuang Zhao; Xiujuan Tang; Jiawei Zhang; Ting Wang