Nano-remediation of toxic heavy metal contamination: Hexavalent chromium [Cr(VI)]

被引:148
作者
Azeez, Nazeer Abdul [1 ]
Dash, Swati Sucharita [2 ]
Gummadi, Sathyanarayana Naidu [2 ]
Deepa, Vijaykumar Sudarshana [3 ]
机构
[1] Bannari Amman Inst Technol, Dept Biotechnol, Erode 638401, Tamil Nadu, India
[2] Indian Inst Technol Madras, Bhupat & Jyoti Mehta Sch Biosci, Dept Biotechnol, Appl & Ind Microbiol Lab, Chennai 600036, Tamil Nadu, India
[3] Natl Inst Technol, Dept Biotechnol, Tadepalligudem 534101, Andhra Pradesh, India
关键词
Nano-remediation; Chromium; Hexavalent; Reduction; Adsorption; ZERO-VALENT IRON; LIGHT PHOTOCATALYTIC REDUCTION; GRAPHENE OXIDE; AQUEOUS-SOLUTIONS; EFFICIENT REMOVAL; ELECTROKINETIC REMEDIATION; ADSORPTION PERFORMANCE; WASTE-WATER; CARBON DOTS; COMPOSITES;
D O I
10.1016/j.chemosphere.2020.129204
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The inexorable industrialization and modern agricultural practices to meet the needs of the increasing population have polluted the environment with toxic heavy metals such as Cr(VI), Cu2+, Cd2+, Pb2+, and Zn2+. Among the hazardous heavy metal(loid)s contamination in agricultural soil, water, and air, hexavalent chromium [Cr(VI)] is the most virulent carcinogen. The metallurgic industries, tanneries, paint manufacturing, petroleum refineries are among various such human activities that discharge Cr(VI) into the environment. Various methods have been employed to reduce the concentration of Cr(VI) contamination with nano and bioremediation being the recent advancement to achieve recovery at low cost and higher efficiency. Bioremediation is the process of using biological sources such as plant extracts, microorganisms, and algae to reduce the heavy metals while the nano-remediation uses nanoparticles to adsorb heavy metals. In this review, we discuss the various activities that liberate Cr(VI). We then discuss the various conventional, nano-remediation, and bioremediation methods to keep Cr(VI) concentration in check and further discuss their efficiencies. We also discuss the mechanism of nano-remediation techniques for better insight into the process. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:11
相关论文
共 128 条
[1]   The UCL-Lancet Commission on Migration and Health: the health of a world on the move [J].
Abubakar, Ibrahim ;
Aldridge, Robert W. ;
Devakumar, Delan ;
Orcutt, Miriam ;
Burns, Rachel ;
Barreto, Mauricio L. ;
Dhavan, Poonam ;
Fouad, Fouad M. ;
Groce, Nora ;
Guo, Yan ;
Hargreaves, Sally ;
Knipper, Michael ;
Jaime Miranda, J. ;
Madise, Nyovani ;
Kumar, Bernadette ;
Mosca, Davide ;
McGovern, Terry ;
Rubenstein, Leonard ;
Sammonds, Peter ;
Sawyer, Susan M. ;
Sheikh, Kabir ;
Tollman, Stephen ;
Spiegel, Paul ;
Zimmerman, Cathy ;
Abbas, Mustafa ;
Acer, Eleanor ;
Ahmad, Ayesha ;
Ahmed, Bayes ;
Abimbola, Seye ;
Beltran, Juan D. ;
Blanchet, Karl ;
Bocquier, Philippe ;
Samuels, Fiona ;
Byrne, Olga ;
Haerizadeh, Sonia ;
Issa, Rita ;
Collinson, Mark ;
Ginsburg, Carren ;
Kelman, Ilan ;
McAlpine, Alys ;
Pocock, Nicola ;
Olshansky, Barbara ;
Ramos, Dandara ;
Stavrianaki, Katerina ;
White, Michael ;
Zhou, Suzanne .
LANCET, 2018, 392 (10164) :2606-2654
[2]   Cr(VI) remediation from aqueous environment through modified-TiO2-mediated photocatalytic reduction [J].
Acharya, Rashmi ;
Naik, Brundabana ;
Parida, Kulamani .
BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2018, 9 :1448-1470
[3]  
Agency for Toxic Substances and Disease Registry, 2013, CHROM TOX WHAT AR ST
[4]  
Alam S, 2017, 2017 INTERNATIONAL CONFERENCE ON BROADBAND COMMUNICATION, WIRELESS SENSORS AND POWERING (BCWSP), P1
[5]   Evaluation of chromium phyto-toxicity, phyto-tolerance, and phyto-accumulation using biofuel plants for effective phytoremediation [J].
Amin, Hira ;
Arain, Basir Ahmed ;
Abbasi, Muhammad Sadiq ;
Amin, Farah ;
Jahangir, Taj Muhammad ;
Soomro, Noor-ul-Ain .
INTERNATIONAL JOURNAL OF PHYTOREMEDIATION, 2019, 21 (04) :352-363
[6]   Modulation of hexavalent chromium toxicity on Origanum vulgare in an acidic soil amended with peat, lime, and zeolite [J].
Antoniadis, Vasileios ;
Zanni, Anna A. ;
Levizou, Efi ;
Shaheen, Sabry M. ;
Dimirkou, Anthoula ;
Bolan, Nanthi ;
Rinklebe, Joerg .
CHEMOSPHERE, 2018, 195 :291-300
[7]   PEI grafted amino-functionalized graphene oxide nanosheets for ultrafast and high selectivity removal of Cr(VI) from aqueous solutions by adsorption combined with reduction: Behaviors and mechanisms [J].
Bao, Shuangyou ;
Yang, Weiwei ;
Wang, Yingjun ;
Yu, Yongsheng ;
Sun, Yinyong ;
Li, Kefei .
CHEMICAL ENGINEERING JOURNAL, 2020, 399
[8]   Status of nanoremediation and its potential for future deployment: Risk-benefit and benchmarking appraisals [J].
Bardos, Paul ;
Merly, Corinne ;
Kvapil, Petr ;
Koschitzky, Hans-Peter .
REMEDIATION-THE JOURNAL OF ENVIRONMENTAL CLEANUP COSTS TECHNOLOGIES & TECHNIQUES, 2018, 28 (03) :43-56
[9]   Characterizing particle emissions from a direct energy deposition additive manufacturing process and associated occupational exposure to airborne particles [J].
Bau, Sebastien ;
Rousset, Davy ;
Payet, Raphael ;
Keller, Francois-Xavier .
JOURNAL OF OCCUPATIONAL AND ENVIRONMENTAL HYGIENE, 2020, 17 (2-3) :59-72
[10]   Sunlight-induced photoreduction of Cr(VI) to Cr(III) in wastewater by nitrogen-phosphorus-doped carbon dots [J].
Bhati, Anshu ;
Anand, Satyesh Raj ;
Saini, Deepika ;
Gunture ;
Sonkar, Sumit Kumar .
NPJ CLEAN WATER, 2019, 2 (1)