Harnessing microalgae for metal nanoparticles biogenesis using heavy metal ions from wastewater as a metal precursor: A review

被引:1
|
作者
Chan, Sook Sin [1 ]
Khoo, Kuan Shiong [2 ]
Abdullah, Rosazlin [1 ,3 ]
Juan, Joon Ching [4 ]
Ng, Eng-Poh [5 ]
Chin, Ren Jie [6 ]
Ling, Tau Chuan [1 ]
机构
[1] Institut Sains Biologi, Fakulti Sains, Universiti Malaya, Kuala Lumpur,50603, Malaysia
[2] Algae Bioseparation Research Laboratory, Department of Chemical Engineering and Material Science, Yuan Ze University, Taoyuan, Taiwan
[3] Centre for Research in Biotechnology for Agriculture (CEBAR), Institute of Biological Sciences, Faculty of Science, Universiti Malaya, Kuala Lumpur,50603, Malaysia
[4] Nanotechnology & Catalysis Research Centre (NanoCat), Institute of Postgraduate Studies, Universiti Malaya, Kuala Lumpur,50603, Malaysia
[5] School of Chemical Sciences, Universiti Sains Malaysia, USM, Penang,11800, Malaysia
[6] Department of Civil Engineering, Lee Kong Chian Faculty of Engineering & Science, Universiti Tunku Abdul Rahman, Jalan Sungai Long, Selangor, Kajang,43000, Malaysia
关键词
Algae - Bacteriophages - Bioconversion - Bioremediation - Biosorption - Doping (additives) - Electrophysiology - Heavy metals - Lead removal (water treatment);
D O I
10.1016/j.scitotenv.2024.176989
中图分类号
学科分类号
摘要
Heavy metal contamination of water sources has long been a silent yet potent threat, endangering environmental and human health. Conventional wastewater treatments are costly due to high infrastructure expenses, energy consumption, and chemical usage. These treatments lead to secondary environmental pollution, such as producing toxic sludge, greenhouse gaseous emissions, and residual pollutants discharges. Therefore, more sustainable and cost-effective wastewater treatment alternatives are needed to overcome these challenges. Microalgae biosorption and bioaccumulation can bioremediate wastewater by effectively removing heavy metals and other contaminants, such as nitrate and phosphate. By utilizing sunlight and CO2 for growth, microalgae cultivation reduces the need for expensive chemicals and energy-intensive operations in wastewater treatment. Additionally, microalgae can potentially convert heavy metal ions from wastewater into metal nanoparticles, providing a dual benefit of bioremediation and resource recovery. The primary objectives of this review are to assess the effectiveness of microalgae in heavy metal bioremediation and nanoparticle synthesis while also identifying critical research gaps and future directions for optimizing this biotechnology. Heavy metal ions in wastewater can be used as a metal precursor, and metal nanoparticles can be synthesized from wastewater. A review methodology was carried out to assess the availability of literature for readers to identify the research trends and gaps. Mechanisms of microalgae for the biogenesis of metal nanoparticles, including activation, growth, and termination phases, were elucidated. Various chemical interactions between metal ions and functional groups of microalgae, including amine (-NH2), carboxyl (-COOH), phosphate (-PO4), and hydroxyl (-OH) groups were evaluated. Nonetheless, this review also identifies the current challenges and future research directions for optimizing microalgae biotechnology in heavy metal bioremediation and nanoparticle biogenesis. © 2024
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