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Featured researches published by Guoqiang Zhan.


Biotechnology and Bioengineering | 2012

Dissimilatory nitrate reduction by Pseudomonas alcaliphila with an electrode as the sole electron donor

Wentao Su; Lixia Zhang; Daping Li; Guoqiang Zhan; Junwei Qian; Yong Tao

Denitrification and dissimilatory nitrate reduction to ammonium (DNRA) were considered two alternative pathways of dissimilatory nitrate reduction. In this study, we firstly reported that both denitrification and DNRA occurred in Pseudomonas alcaliphila strain MBR with an electrode as the sole electron donor in a double chamber bio‐electrochemical system (BES). The initial concentration of nitrate appeared as a factor determining the type of nitrate reduction with electrode as the sole electron donor at the same potential (−500 mV). As the initial concentration of nitrate increased, the fraction of nitrate reduced through denitrification also increased. While nitrite (1.38 ± 0.04 mM) was used as electron acceptor instead of nitrate, the electrons recovery via DNRA and denitrification were 43.06 ± 1.02% and 50.51 ± 1.37%, respectively. The electrochemical activities and surface topography of the working electrode catalyzed by strain MBR were evaluated by cyclic voltammetry and scanning electron microscopy. The results suggested that cells of strain MBR were adhered to the electrode, playing the role of electron transfer media for nitrate and nitrite reduction. Thus, for the first time, the results that DNRA and denitrification occurred simultaneously were confirmed by powering the strain with electricity. The study further expanded the range of metabolic reactions and had potential value for the recognization of dissimilatory nitrate reduction in various ecosystems. Biotechnol. Bioeng. 2012; 109: 2904–2910.


Bioresource Technology | 2012

Autotrophic nitrogen removal from ammonium at low applied voltage in a single-compartment microbial electrolysis cell

Guoqiang Zhan; Lixia Zhang; Daping Li; Wentao Su; Yong Tao; Junwei Qian

A new approach was developed to achieve autotrophic nitrogen removal from ammonium at low applied voltage in a single-compartment 3-dimensional microbial electrolysis cell (MEC). The MEC consisted of anodic and cathodic electrodes, on which nitrifying and denitrifying biofilms, respectively, were attached. Nitrogen removal can be enhanced at an applied voltage in the MEC. Besides, the nitrogen removal efficiency gradually increased from 70.3% to 92.6% with the increase of applied voltage from 0.2 to 0.4V, as well as the maximum current was varied from 4.4 to 14 mA. The corresponding coulombic efficiency also increased from 82% to 94.4%, indicating that the increasing applied voltage could enhance electron extraction from ammonium during its oxidative removal. The DO was found to be a critical factor which affected the nitrogen removal in this MEC system. These results demonstrated that the MEC process was applicable to achieve autotrophic nitrogen removal from wastewater containing ammonium.


Journal of Environmental Sciences-china | 2016

Enhanced methane production in an anaerobic digestion and microbial electrolysis cell coupled system with co-cultivation of Geobacter and Methanosarcina

Qi Yin; Xiaoyu Zhu; Guoqiang Zhan; Tao Bo; Yanfei Yang; Yong Tao; Xiaohong He; Daping Li; Zhiying Yan

The anaerobic digestion (AD) and microbial electrolysis cell (MEC) coupled system has been proved to be a promising process for biomethane production. In this paper, it was found that by co-cultivating Geobacter with Methanosarcina in an AD-MEC coupled system, methane yield was further increased by 24.1%, achieving to 360.2 mL/g-COD, which was comparable to the theoretical methane yield of an anaerobic digester. With the presence of Geobacter, the maximum chemical oxygen demand (COD) removal rate (216.8 mg COD/(L·hr)) and current density (304.3A/m(3)) were both increased by 1.3 and 1.8 fold compared to the previous study without Geobacter, resulting in overall energy efficiency reaching up to 74.6%. Community analysis demonstrated that Geobacter and Methanosarcina could coexist together in the biofilm, and the electrochemical activities of both were confirmed by cyclic voltammetry. Our study observed that the carbon dioxide content in total gas generated from the AD reactor with Geobacter was only half of that generated from the same reactor without Geobacter, suggesting that Methanosarcina may obtain the electron transferred from Geobacter for the reduction of carbon dioxide to methane. Taken together, Geobacter not only can improve the performance of the MEC system, but also can enhance methane production.


Bioresource Technology | 2012

Simultaneous biodegradation of Ni-citrate complexes and removal of nickel from solutions by Pseudomonas alcaliphila.

Junwei Qian; Daping Li; Guoqiang Zhan; Liang Zhang; Wentao Su; Ping Gao

The objective of this study was to study the simultaneous biodegradation of Ni-citrate complexes and removal of Ni from solutions by Pseudomonas alcaliphila. Adding excess citrate to 1:1 Ni-citrate complexes promoted the degradation of the complexes and removal of Ni. The alkaline pH generated by the metabolism of excess citrate caused partial dissociation of citrate from the Ni-citrate complexes, allowing degradation, and the released Ni was removed through bioaccumulation and precipitation. Addition of Fe(3+) enhanced the degradation of Ni-citrate complexes and removal of Ni from solutions. The displacement of Ni from recalcitrant Ni-citrate complexes by Fe(3+) and subsequent biodegradation of the degradable Fe(III)-citrate complex resulted in complete metabolism of citrate. The almost complete removal of Ni (>98%) can be attributed to the combination of coprecipitation with Fe(3+), bioaccumulation and precipitation. P. alcaliphila potentially could be applied in the treatment of effluent containing Ni-citrate complexes.


Journal of Environmental Sciences-china | 2017

Effect of air-exposed biocathode on the performance of a Thauera-dominated membraneless single-chamber microbial fuel cell (SCMFC)

Nuan Yang; Guoqiang Zhan; Tingting Wu; Yanyan Zhang; Qinrui Jiang; Daping Li; Yuanying Xiang

To investigate the effect of air-exposed biocathode (AEB) on the performance of single-chamber microbial fuel cell (SCMFC), wastewater quality, bioelectrochemical characteristics and the electrode biofilms were researched. It was demonstrated that exposing the biocathode to air was beneficial to nitrogen removal and current generation. In Test 1 of 95% AEB, removal rates of ammonia, total nitrogen (TN) and chemical oxygen demand (COD) reached 99.34%±0.11%, 99.34%±0.10% and 90.79%±0.12%, respectively. The nitrogen removal loading rates were 36.38gN/m3/day. Meanwhile, current density and power density obtained at 0.7A/m3 and 104mW/m3 respectively. Further experiments on open-circuit (Test 2) and carbon source (Test 3) indicated that this high performance could be attributed to simultaneous biological nitrification/denitrification and aerobic denitrification, as well as bioelectrochemical denitrification. Results of community analysis demonstrated that both microbial community structures on the surface of the cathode and in the liquid of the chamber were different. The percentage of Thauera, identified as denitrifying bacteria, maintained at a high level of over 50% in water, but decreased gradually in the AEB. Moreover, the genus Nitrosomonas, Alishewanella, Arcobacter and Rheinheimera were significantly enriched in the AEB, which might contribute to both enhancement of nitrogen removal and electricity generation.


Journal of Industrial Microbiology & Biotechnology | 2014

A novel regeneration of iron citrate solution by biooxidation of iron-oxidizing bacteria

Yujian Wang; Dengjin Li; Chunlong Liu; Guoqiang Zhan; Xiaoyan He

AbstractLiquid phase oxidation process using chelated iron solution is among the most promising techniques for the hydrogen sulfide removal due to its double advantage of waste minimization and resource recovery. Regeneration of chelated iron is a core reaction in this process. Regeneration of chelated iron in acidic solution is very difficult. In this paper, a novel regeneration of iron citrate in acidic solution by biooxidation of iron-oxidizing bacteria was reported firstly. By using such a process, the influence of iron-oxidizing bacteria on the regeneration rate was investigated. The results demonstrated the regeneration rate with the new technology was increased significantly. The process may contribute to the biooxidation of iron-oxidizing bacteria. Application of this novel process increased the regeneration rate under the optimum conditions, suggesting the iron citrate regeneration process may be a feasible and economical method in application.


Chinese Journal of Appplied Environmental Biology | 2012

Reduction of Ti(IV) and Synthesis of Titanium Nanoparticles by Pseudomonas sp.MBR

Weiwei Yang; Liang Zhang; Guoqiang Zhan; Yong Tao; Xiaohong He; Lixia Zhang; Xiaomei Wang; Daping Li

The characteristics and influence factors of the reduction of complexes TiF62-to titanium were investigated by Pseudomonas sp.MBR with organic carbon source as electron donor in the presence of oxygen.The results indicated that the initial concentration of TiF62-could be 0.5~8.0 mmol/L,the optimum pH was 7.0,and citrate was the best carbon source.Furthermore,the best reduction effect was obtained when the molar ratio of the electron donor to TiF62-was 100 : 1.The results of scanning electron micrograph and transmission electron micrograph showed that the morphology of cells supplied with TiF62-had no remarkable difference compared to blank control,and the titanium nanoparticles distributed around the plasma membrane.


International Journal of Hydrogen Energy | 2013

Bioelectrochemical systems for simultaneously production of methane and acetate from carbon dioxide at relatively high rate

Yong Jiang; Min Su; Yao Zhang; Guoqiang Zhan; Yong Tao; Daping Li


Electrochemistry Communications | 2012

Sulfate reduction with electrons directly derived from electrodes in bioelectrochemical systems

Wentao Su; Lixia Zhang; Yong Tao; Guoqiang Zhan; Dongxun Li; Daping Li


International Journal of Hydrogen Energy | 2014

Ammonia as carbon-free substrate for hydrogen production in bioelectrochemical systems

Guoqiang Zhan; Daping Li; Yong Tao; Xiaoyu Zhu; Lixia Zhang; Yujian Wang; Xiaohong He

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Daping Li

Chinese Academy of Sciences

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Yong Tao

Chinese Academy of Sciences

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Lixia Zhang

Chinese Academy of Sciences

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Xiaohong He

Chinese Academy of Sciences

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Wentao Su

Dalian Institute of Chemical Physics

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Junwei Qian

Chinese Academy of Sciences

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Nuan Yang

Chinese Academy of Sciences

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Xiaomei Wang

Chinese Academy of Sciences

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Xiaoyu Zhu

Chinese Academy of Sciences

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Yujian Wang

Chinese Academy of Sciences

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