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9篇 您的检索式:作者名="Cong Yanqing"
    题名 作者 年代 出处 被引量
1Hydroxyl radical electrochemically generated with water as the complete atom source and its environ-mental application显示文摘The most reactive hydroxyl radical (°OH) was generated by electrochemical approach with safe water as the complete atom source. The direct evidence for °OH formation was obtained by electron spin resonance method. The powerful °OH electrochemically generated could effectively degrade organic pollutants and reduce the toxicity of wastewater. Electrochemical disinfection by °OH was considerably efficient even without the aid of active chlorine. Bacteria inactivation of 99.99% was achieved for contact time of 30 min and current density of 5 mA·cm-2. In comparison with active chlorine, °OH is rather attractive as a promising environmentally benign disinfectant and opens a new route for microbial inactivation.CONG YanQing WU ZuCheng LI YuQiong 2007Chinese Science Bulletin2007,52,10:4
2Fabrication of electrochemically-modified BiVO_(4)-MoS_(2)-Co_(3)O_(4)composite film for bisphenol A degradation显示文摘A new electrochemically-modified BiVO_(4)-MoS_(2)-Co_(3)O_(4)(represented as E-BiVO_(4)-MoS_(2)-Co_(3)O_(4))thin film electrode was successfully synthesized for environmental application.MoS_(2)and Co_(3)O_(4)were grown on the surface of Bi VO 4 to obtain BiVO_(4)-MoS_(2)-Co_(3)O_(4).E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)film was achieved by further electrochemical treatment of BiVO_(4)-MoS_(2)-Co_(3)O_(4).The asprepared E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)exhibited significantly enhanced photoelectrocatalytic activity.The photocurrent density of E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)thin film is 6.6 times that of Bi VO 4 under visible light irradiation.The degradation efficiency of E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)for bisphenol A pollutant was 81.56%in photoelectrochemical process.The pseudo-first order reaction rate constant of E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)film is 3.22 times higher than that of Bi VO 4.And its reaction rate constant in photoelectrocatalytic process is 14.5 times or 2 times that in photocatalytic or electrocatalytic process,respectively.The improved performance of E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)was attributed to the synergetic effects of the reduction of interfacial charge transfer resistance,the formation of oxygen vacancies and sub-stoichiometric metal oxides and higher separation efficiency of photogenerated electron-hole pairs.E-BiVO_(4)-MoS_(2)-Co_(3)O_(4)is a promising composite material for pollutants removal.Yanqing Cong Wenhua Zhang Wenchen Ding Tongtong Zhang Yi Zhang Nianping Chi Qi Wang 2021Journal of Environmental Sciences2021,33,4:2
3Dielectr ic barr ier discharge plasma-assisted modification of g-C_(3)N_(4)/Ag_(2)O/TiO_(2)-NRs composite enhanced photoelectrocatalytic activity显示文摘Dielectric barrier discharge(DBD)plasma applied as surface treatment technology was employed for the modification of Ag_(2)O and graphitic carbon nitride(g-C_(3)N_(4))powders.Subsequently,the pretreated powders were sequentially loaded onto TiO_(2)nanorods(TiO_(2)-NRs)via electro-deposition,followed by calcination at N_(2)atmosphere.The results indicated that at the optimal plasma discharge time of 5 min for modification of g-C_(3)N_(4)and Ag_(2)O,photocurrent density of ternary composite was 6 times to bare TiO_(2)-NRs under UV-visible light irradiation.Phenol was degraded by using DBD plasma-modified g-C_(3)N_(4)/Ag_(2)O/TiO_(2)-NRs electrode to analyze the photoelectrocatalytic performance.The removal rate of phenol for g-C_(3)N_(4)-5/Ag_(2)O-5/TiO_(2)-NRs electrode was about 3.07 times to that for TiO_(2)-NRs electrode.During active species scavengers'analysis,superoxide radicals and hydroxyl radicals were the main oxidation active species for pollutants degradation.A possible electron-hole separation and transfer mechanism of ternary composite with high photoelectrocatalytic performance was proposed.Yupei Long Chenchen Yuan Xiaomin Wang Dongyan Jin Hong Zhou Qiongyin Wang Chenyang Lu Yuqi Chen Yanqing Cong Qi Wang Yi Zhang 2021Journal of Environmental Sciences2021,33,6:2
4Removeal of Phenolic Compounds by Electro-Assisted Advanced Process for Wastewater Purification显示文摘Wu Zucheng Cong Yanqing Zhou Minghua 2002Korean Journal of Chemical Engineering2002,19,5:1
5Tailoring of random lasing characteristics in dye-doped nematic liquid crystals显示文摘Lihua Ye Cong Hou Changgui Lv Chong Zhao Zhile Yin Yiping Cui Yanqing Lu 2014Applied Physics B2014,,3:1
6Removal of phenolic compounds by electroassisted advanced process for wastewater purification显示文摘Zucheng Wu Yanqing Cong Minghua Zhou Qian Ye Tianen Tan 2002Korean Journal of Chemical Engineering2002,,5:1
7The effect of C/N ratio on nitrogen removal in a bioelectrochemical system显示文摘Baocheng Huang Huajun Feng Meizhen Wang Na Li Yanqing Cong Dongsheng Shen 2013Bioresource Technology2013,,:1
8The effect of carbon sources on nitrogen removal performance in bioelectrochemical systems显示文摘Huajun Feng Baocheng Huang Yuqin Zou Na Li Meizhen Wang Ju Yin Yanqing Cong Dongsheng Shen 2013Bioresource Technology2013,,:1
9Integrated Sliding Mode Velocity Control of Linear Permanent Magnet Synchronous Motor with Thrust Ripple Compensation显示文摘In this paper,a compound sliding mode velocity control scheme with a new exponential reaching law(NERL)with thrust ripple observation strategy is proposed to obtain a high performance velocity loop of the linear permanent magnet synchronous motor(LPMSM)control system.A sliding mode velocity controller based on NERL is firstly discussed to restrain chattering of the conventional exponential reaching law(CERL).Furthermore,the unavoidable thrust ripple caused by the special structure of linear motor will bring about velocity fluctuation and reduced control performance.Thus,a thrust ripple compensation strategy on the basis of extend Kalman filter(EKF)theory is proposed.The estimated thrust ripple will be introduced into the sliding mode velocity controller to optimize the control accuracy and robustness.The effectiveness of the proposal is validated with experimental results.Cong Bai Zhonggang Yin Jing Liu Yanqing Zhang Xiangdong Sun 2023CES Transactions on Electrical Machines and Systems2023,7,1:0
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