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Dive into the research topics where Chaohong Shi is active.

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Featured researches published by Chaohong Shi.


Angewandte Chemie | 2016

Bioreduction of Precious Metals by Microorganism: Efficient Gold@N-Doped Carbon Electrocatalysts for the Hydrogen Evolution Reaction

Weijia Zhou; Tanli Xiong; Chaohong Shi; Jian Zhou; Kai Zhou; Nengwu Zhu; Ligui Li; Zhenghua Tang; Shaowei Chen

The uptake of precious metals from electronic waste is of environmental significance and potential commercial value. A facile bioreductive synthesis is described for Au nanoparticles (ca. 20 nm) supported on N-doped carbon (Au@NC), which was derived from Au/Pycnoporus sanguineus cells. The interface and charge transport between Au and N-doped carbon were confirmed by HRTEM and XPS. Au@NC was employed as an electrocatalyst for the hydrogen evolution reaction (HER), exhibiting a small onset potential of -54.1 mV (vs. RHE), a Tafel slope of 76.8 mV dec(-1) , as well as robust stability in acidic medium. Au@NC is a multifunctional electrocatalyst, which demonstrates high catalytic activity in the oxygen reduction reaction (ORR), as evidenced by an onset potential of +0.97 V, excellent tolerance toward methanol, and long-term stability. This work exemplifies dual recovery of precious Au and fabrication of multifunctional electrocatalysts in an environmentally benign and application-oriented manner.


Ecotoxicology and Environmental Safety | 2016

Ecotoxicity monitoring and bioindicator screening of oil-contaminated soil during bioremediation

Weihang Shen; Nengwu Zhu; Jiaying Cui; Huajin Wang; Zhi Dang; Pingxiao Wu; Yidan Luo; Chaohong Shi

A series of toxicity bioassays was conducted to monitor the ecotoxicity of soils in the different phases of bioremediation. Artificially oil-contaminated soil was inoculated with a petroleum hydrocarbon-degrading bacterial consortium containing Burkholderia cepacia GS3C, Sphingomonas GY2B and Pandoraea pnomenusa GP3B strains adapted to crude oil. Soil ecotoxicity in different phases of bioremediation was examined by monitoring total petroleum hydrocarbons, soil enzyme activities, phytotoxicity (inhibition of seed germination and plant growth), malonaldehyde content, superoxide dismutase activity and bacterial luminescence. Although the total petroleum hydrocarbon (TPH) concentration in soil was reduced by 64.4%, forty days after bioremediation, the phytotoxicity and Photobacterium phosphoreum ecotoxicity test results indicated an initial increase in ecotoxicity, suggesting the formation of intermediate metabolites characterized by high toxicity and low bioavailability during bioremediation. The ecotoxicity values are a more valid indicator for evaluating the effectiveness of bioremediation techniques compared with only using the total petroleum hydrocarbon concentrations. Among all of the potential indicators that could be used to evaluate the effectiveness of bioremediation techniques, soil enzyme activities, phytotoxicity (inhibition of plant height, shoot weight and root fresh weight), malonaldehyde content, superoxide dismutase activity and luminescence of P. phosphoreum were the most sensitive.


Waste Management | 2017

Layer-by-layer assembly surface modified microbial biomass for enhancing biorecovery of secondary gold

Ying Zhou; Nengwu Zhu; Naixin Kang; Yanlan Cao; Chaohong Shi; Pingxiao Wu; Zhi Dang; Xiaoping Zhang; Benqian Qin

Enhancement of the biosorption capacity for gold is highly desirable for the biorecovery of secondary gold resources. In this study, polyethylenimine (PEI) was grafted on Shewanella haliotis surface through layer-by-layer assembly approach so as to improve the biosorption capacity of Au(III). Results showed that the relative contribution of amino group to the biosorption of Au(III) was the largest one (about 44%). After successful grafting 1, 2 and 3-layer PEI on the surface of biomass, the biosorption capacity significantly enhanced from 143.8mg/g to 597.1, 559.1, and 536.8mg/g, respectively. Interestingly, the biomass modified with 1-layer PEI exhibited 4.2 times higher biosorption capacity than the untreated control. When 1-layer modified biomass was subjected to optimizing the various conditions by response surface methodology, the theoretical maximum adsorption capacity could reach up to 727.3mg/g. All findings demonstrated that PEI modified S. haliotis was effective for enhancing gold biorecovery.


Biotechnology and Applied Biochemistry | 2017

Immobilization of Acidithiobacillus ferrooxidans on cotton gauze for biological oxidation of ferrous ions in a batch bioreactor

Nengwu Zhu; Chaohong Shi; Ru Shang; Chong Yang; Zhiguo Xu; Pingxiao Wu

The ability of Acidithiobacillus ferrooxidans to oxidize ferrous iron has been extensively studied in bioleaching to recover metal resources. Although immobilization of A. ferrooxidans is of great importance to achieve high bioleaching performance in practical application, the reported approaches of immobilization of A. ferrooxidans are still limited. This paper is attempting to develop a novel method to immobilize A. ferrooxidans by a less‐costly effective carrier from zeolite, activated carbon, and cotton gauze. The results showed that cotton gauze was the most suitable carrier to immobilize A. ferrooxidans cells in comparison with zeolite and activated carbon. Acidithiobacillus ferrooxidans immobilized on the cotton gauze by gravity dehydration could achieve an average ferrous iron oxidation rate of 0.73 g/(L·h). Furthermore, the ferrous iron oxidation ratio attained in the bioreactor under batch operation was maintained above 97.83%. All results indicated that cotton gauze could be an efficient carrier for immobilizing A. ferrooxidans cells for the biooxidation of ferrous ions.


Biotechnology Progress | 2017

Sorption–reduction coupled gold recovery process boosted by Pycnoporus sanguineus biomass: Uptake pattern and performance enhancement via biomass surface modification

Chaohong Shi; Nengwu Zhu; Naixin Kang; Pingxiao Wu; Xiaoping Zhang; Yanhong Zhang

Biorecovery is emerging as a promising process to retrieve gold from secondary resources. The present study aimed to explore the uptake pattern of Pycnoporus sanguineus biomass for gold, identify the effective functional groups in gold recovery process, and thus further intensify the process via microbial surface modification. Results showed that P. sanguineus biomass could effectively recover gold with the formation of highly crystal AuNPs without any exogeneous electron donor. Under the conditions of various initial gold concentrations (1.0, 2.0, and 3.0 mM), biomass dosage of 2.0 g/L, solution pH value of 4.0, and incubation temperature of 30°C, the uptake equilibrium established after 4, 8, and 12 h, respectively. The uptake process could be well described by pseudo‐second order kinetics model (R2 = 0.9988) and Langmuir isotherm model (R2 = 0.9958). The maximum uptake capacity of P. sanguineus reached as high as 358.69 mg/g. Further analysis indicated that amino, carboxyl and hydroxyl groups positively contributed to the uptake process. Among them, amino group significantly favored the uptake of gold during recovery process. When P. sanguineus biomass was modified by introduction of amino group, the gold uptake process was successfully intensified by shortening the uptake period and enhancing the uptake capacity.


Nanoscale Research Letters | 2015

Biosynthesis of gold nanoparticles assisted by the intracellular protein extract of Pycnoporus sanguineus and its catalysis in degradation of 4-nitroaniline

Chaohong Shi; Nengwu Zhu; Yanlan Cao; Pingxiao Wu


Chemical Engineering Journal | 2016

Biorecovery of palladium as nanoparticles by Enterococcus faecalis and its catalysis for chromate reduction

Chitam Ha; Nengwu Zhu; Ru Shang; Chaohong Shi; Jiaying Cui; Ihsanullah Sohoo; Pingxiao Wu; Yanlan Cao


Environmental Science and Pollution Research | 2016

Biorecovery of gold as nanoparticles and its catalytic activities for p-nitrophenol degradation

Nengwu Zhu; Yanlan Cao; Chaohong Shi; Pingxiao Wu; Haiqin Ma


Chemical Engineering Journal | 2017

Biorecovery mechanism of palladium as nanoparticles by Enterococcus faecalis: From biosorption to bioreduction

Jiaying Cui; Nengwu Zhu; Naixin Kang; Chitam Ha; Chaohong Shi; Pingxiao Wu


World Journal of Microbiology & Biotechnology | 2015

Simultaneous heavy metals removal and municipal sewage sludge dewaterability improvement in bioleaching processes by various inoculums

Chaohong Shi; Nengwu Zhu; Ru Shang; Naixin Kang; Pingxiao Wu

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Nengwu Zhu

South China University of Technology

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Pingxiao Wu

South China University of Technology

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Naixin Kang

South China University of Technology

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Yanlan Cao

South China University of Technology

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Jiaying Cui

South China University of Technology

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Ru Shang

South China University of Technology

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Zhi Dang

South China University of Technology

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Chitam Ha

South China University of Technology

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Xiaoping Zhang

South China University of Technology

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Benqian Qin

South China University of Technology

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