Use of nanohybrid nanomaterials in water treatment: highly efficient removal of ranitidine

被引:9
作者
Abu Al-Rub, Fahmi A. [1 ]
Fares, Mohammad M. [2 ]
Mohammad, Ahmad R. [1 ]
机构
[1] Jordan Univ Sci & Technol, Fac Engn, Dept Chem Engn, POB 3030, Irbid 22110, Jordan
[2] Jordan Univ Sci & Technol, Fac Sci & Arts, Dept Chem Sci, POB 3030, Irbid 22110, Jordan
关键词
OXIDE-BASED COMPOSITES; GRAPHENE OXIDE; WASTE-WATER; CARBON NANOTUBES; ORGANIC POLLUTANTS; AQUEOUS-SOLUTIONS; ACTIVATED CARBON; TREATMENT PLANTS; ADSORPTION; PHARMACEUTICALS;
D O I
10.1039/d0ra05530a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Entire elimination of pharmaceutical drugs from waste- and domestic-waters has attracted great attention due to their potent adverse effects on human health, particularly the human immune system. Many risks have been related to the presence of different types of drugs at different concentrations in wastewater. These risks include antimicrobial resistance (AMR), endocrine action, hormonal activation of cancers, and photodegradation of drugs. In this study, new nanohybrid materials consisting of graphene oxide (GO) and oxidized carbon nanotubes (OCNTs) were developed to remove a well-known drug, namely, ranitidine that treats stomach ulcers and gastrointestinal (GI) reflux disease from aqueous solutions. The characterization of synthesized nanohybrid GO-OCNTs was performed using spectroscopic (FTIR, and XRD), thermogravimetric (TGA) and microscopic (SEM) techniques. Batch adsorption experiments were used to investigate the technical feasibility of using synthesized GO-OCNTs for the removal of ranitidine from aqueous solutions. The effects of different operating conditions such as contact time, nanohybrid mass, solution temperature, solution pH, % crosslinking agent, and GO-to-OCNT ratio on the entire elimination of ranitidine were investigated. The experimental results indicated that the removal of ranitidine was very efficient, where 98.3% removal of the drug from aqueous solutions was achieved with a drug uptake of 97.8 mg g(-1). Moreover, the results indicated the optimum conditions for the removal of ranitidine, which are as follows: contact time = 140 minutes, nanohybrid GO-OCNT mass = 10 mg, solution temperature = 290 K, solution pH = 6.4, % crosslinking agent = 0.5%, and GO to O-CNT ratio = 1 : 4. The equilibrium data were fitted to different adsorption isotherms and Langmuir was found to best describe our data. Dynamic studies demonstrated that ranitidine adsorption followed pseudo-second order, and the thermodynamic parameters confirmed exothermic drug adsorption as well as the physisorption process.
引用
收藏
页码:37050 / 37063
页数:14
相关论文
共 83 条
[51]   Adsorption thermodynamics and kinetics of ranitidine hydrochloride onto superheated steam activated carbon derived from mung bean husk [J].
Mondal, Sandip ;
Sinha, Keka ;
Aikat, Kaustav ;
Halder, Gopinath .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2015, 3 (01) :187-195
[52]   Kinetic accumulation processes and models for 43 micropollutants in "pharmaceutical" POCIS [J].
Morin, Nicolas A. O. ;
Mazzella, Nicolas ;
Arp, Hans Peter H. ;
Randon, Jerome ;
Camilleri, Julien ;
Wiest, Laure ;
Coquery, Marina ;
Miege, Cecile .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 615 :197-207
[53]   Graphene Oxide/Iron Oxide Nanocomposites for Water Remediation [J].
Mura, Stefania ;
Jiang, Yu ;
Vassalini, Irene ;
Gianoncelli, Alessandra ;
Alessandri, Ivano ;
Granozzi, Gaetano ;
Calvillo, Laura ;
Senes, Nina ;
Enzo, Stefano ;
Innocenzi, Plinio ;
Malfatti, Luca .
ACS APPLIED NANO MATERIALS, 2018, 1 (12) :6724-6732
[54]   Removal of pharmaceuticals, steroid hormones, phytoestrogens, UV-filters, industrial chemicals and pesticides by Trametes versicolor: Role of biosorption and biodegradation [J].
Nguyen, Luong N. ;
Hai, Faisal I. ;
Yang, Shufan ;
Kang, Jinguo ;
Leusch, Frederic D. L. ;
Roddick, Felicity ;
Price, William E. ;
Nghiem, Long D. .
INTERNATIONAL BIODETERIORATION & BIODEGRADATION, 2014, 88 :169-175
[55]   The role of activated carbon and disinfection on the removal of endocrine disrupting chemicals and non-steroidal anti-inflammatory drugs from wastewater [J].
Noutsopoulos, Constantinos ;
Mamais, Daniel ;
Mpouras, Thanasis ;
Kokkinidou, Despina ;
Samaras, Vasilios ;
Antoniou, Korina ;
Gioldasi, Marianna .
ENVIRONMENTAL TECHNOLOGY, 2014, 35 (06) :698-708
[56]   Graphene oxide-carbon nanotube hybrid assemblies: cooperatively strengthened OH•••O=C hydrogen bonds and the removal of chemisorbed water [J].
Nunez, J. D. ;
Benito, A. M. ;
Rouziere, S. ;
Launois, P. ;
Arenal, R. ;
Ajayan, P. M. ;
Maser, W. K. .
CHEMICAL SCIENCE, 2017, 8 (07) :4987-4995
[57]   Graphene oxide papers modified by divalent ions -: Enhancing mechanical properties via chemical cross-linking [J].
Park, Sungjin ;
Lee, Kyoung-Seok ;
Bozoklu, Gulay ;
Cai, Weiwei ;
Nguyen, SonBinh T. ;
Ruoff', Rodney S. .
ACS NANO, 2008, 2 (03) :572-578
[58]   Applications of nanotechnology in water and wastewater treatment [J].
Qu, Xiaolei ;
Alvarez, Pedro J. J. ;
Li, Qilin .
WATER RESEARCH, 2013, 47 (12) :3931-3946
[59]   Graphene and graphene oxide as effective adsorbents toward anionic and cationic dyes [J].
Ramesha, G. K. ;
Kumara, A. Vijaya ;
Muralidhara, H. B. ;
Sampath, S. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2011, 361 (01) :270-277
[60]   The Read-Across Hypothesis and Environmental Risk Assessment of Pharmaceuticals [J].
Rand-Weaver, Mariann ;
Margiotta-Casaluci, Luigi ;
Patel, Alpa ;
Panter, Grace H. ;
Owen, Stewart F. ;
Sumpter, John P. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2013, 47 (20) :11384-11395