Reduction of silver nanoparticle toxicity affecting ammonia oxidation using cell entrapment technique

Author:

Giao Nguyen Thanh12,Limpiyakorn Tawan23,Thuptimdang Pumis4,Ratpukdi Thunyalux25,Siripattanakul-Ratpukdi Sumana25

Affiliation:

1. International Program in Hazardous Substance and Environmental Management, Graduate School, Chulalongkorn University, Bangkok 10330, Thailand and Department of Environmental Management, College of Environment and Natural Resources, Can Tho University, Can Tho 90000, Viet Nam

2. Center of Excellence on Hazardous Substance Management, Bangkok 10330, Thailand

3. Department of Environmental Engineering, Faculty of Engineering and Research Unit Control of Emerging Micropollutants in Environment, Chulalongkorn University, Bangkok 10330, Thailand and Research Network of Chulalongkorn University and National Nanotechnology Center (RNN), Bangkok, Thailand

4. Department of Chemistry, Faculty of Science and Environmental Science Research Center (ESRC), University of Chiang Mai, Chiang Mai 56000, Thailand

5. Department of Environmental Engineering, Faculty of Engineering and Research Center for Environmental and Hazardous Substance Management, Khon Kaen University, Khon Kaen 40002, Thailand

Abstract

Abstract Occurrence of silver nanoparticles (AgNPs) in wastewater treatment systems could impact the ammonia oxidation (AO). This study investigated the reduction of AgNPs and dissociated silver ion (Ag+) toxicity on nitrifying sludge using cell entrapment technique. Three entrapment materials, including barium alginate (BA), polyvinyl alcohol (PVA), and a mixture of polyvinyl alcohol and barium alginate (PVA-BA), were applied. The BA beads provided the highest reduction of silver toxicity (up to 90%) and durability. Live/dead assays showed fatality of entrapped cells after exposure to AgNPs and Ag+. The maximum AO rate of the BA-entrapped cells was 5.6 mg-N/g-MLSS/h. The AO kinetics under the presence of silver followed an uncompetitive inhibition kinetic model. The experiments with AgNPs and Ag+ gave the apparent maximum AO rates of 4.2 and 4.8 mg-N/g-MLSS/h, respectively. The apparent half-saturation constants of the BA-entrapped cells under the presence of silver were 10.5 to 13.4 mg/L. Scanning electron microscopic observation coupled with energy-dispersive X-ray spectroscopy indicated no silver inside the beads. This elucidates that the silver toxicity can be reduced by preventing silver penetration through the porous material, leading to less microbial cell damage. This study revealed the potential of the entrapment technology for mitigating the effect of silver species on nitrification.

Funder

Thailand Research Fund

National Nanotechnology Center

Khon Kaen University

Publisher

IWA Publishing

Subject

Water Science and Technology,Environmental Engineering

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