References
- L. Jarup, Hazards of heavy metal contamination, British Med.
Bull., 68(1) (2003) 167–182.
- V.K. Gupta, I. Ali, Removal of lead and chromium from wastewater
using bagasse fly ash-a sugar industry waste, J. Colloid
Interface Sci., 271 (2004) 321–328.
- K.K. Das, S.N. Das, S.A. Dhundasi, Nickel, its adverse health
effects and oxidative stress, Indian J. Med. Res., 128(4) (2008)
412–425.
- M.F. Philips, A. Iyengar, K. Lee, Development of a novel cyano
group containing electrochemically deposited polymer film
for ultrasensitive simultaneous detection of trace level cadmium
and lead, J. Hazard. Mater., 237–238 (2012) 46–54.
- D.I. Bannon, C. Murashchik, C.R. Zapf, M.R. Farfel, J.J. Chisolm,
Graphite furnace atomic absorption spectroscopic measurement
of blood lead in matrix-matched standards, Clin.
Chem., 40(9) (1994) 1730–1734.
- H.W. Liu, S.J. Jiang, S.H. Liu, Determination of cadmium,
mercury and lead in seawater by electrothermal vaporization
isotope dilution inductively coupled plasma mass spectrometry,
Spectrochim. Acta Part B: Atom. Spectrosc., 54(9) (1999)
1367–1375.
- Y. Song, G.M. Swain, Total inorganic arsenic detection in river
water samples using anodic stripping voltammetry and a
gold-coated diamond thin-film electrode, Anal. Chim. Acta,
593(1) (2007) 7–12.
- Y. Terada, H. Yumoto, A. Takeuchi, Y. Suzuki, K. Yamauchi, T.
Uruga, New X-ray microprobe system for trace heavy element
analysis using ultraprecise X-ray mirror optics of long working
distance, Nucl. Instrum. Methods Phys. Res. A, 616(2–3)
(2010) 270–272.
- H.A. Hadar, V. Bulatov, B. Dolgin, I. Schechter, Detection of
heavy metals in water using dye nano-complexants and a
polymeric film, J. Hazard. Mater., 260 (2013) 652–659.
- M.R. Bindhu, M. Umadevi, Surface plasmon resonance optical
sensor and antibacterial activities of biosynthesized silver
nanoparticles, Molec. Biomolec. Spectrosc., 121 (2014) 596–604.
- P.K. Maharana, R. Jha, S. Palei, Sensitivity enhancement by air
mediated graphene multilayer based surface plasmon resonance
biosensor for near infrared, Sensors Actuators B: Chem.,
190 (2014) 494–501.
- J. Homola, I. Koudela, S.S. Yee, Surface plasmon resonance sensors
based on diffraction gratings and prism couplers: sensitivity
comparison, Sensors Actuators B: Chem., 54(1–2) (1999)
16–24.
- M. Bao, G. Li, D. Jiang, W. Cheng, X. Ma, Surface plasmon optical
sensor with enhanced sensitivity using top ZnO thin film,
Appl. Phys. A, 107(2) (2012) 279–283.
- A. Abbas, M.J. Linman, Q. Cheng, New trends in instrumental
design for surface plasmon resonance-based biosensors,
Biosen. Bioelectr., 26(5) (2011) 1815–1824.
- S.A. Zynio, A.V. Samoylov, E.R. Surovtseva, V.M. Mirsky, Y.M.
Shirshov, Bimetallic layers increase sensitivity of affinity sensors
based on surface plasmon resonance, Sensors, 2 (2002)
62–70.
- A. Singh, G. Sinsinbar, M. Choudhary, V. Kumar, R. Pasricha,
H.N. Verma, S.P. Singh, Graphene oxide-chitosan nanocomposite
based electrochemical DNA biosensor for detection of
typhoid, Sensors Actuators B: Chem., 185 (2013) 675–684.
- S. Senel, S.J. McClure, Potential applications of chitosan in
veterinary medicine, Adv. Drug Deliv. Rev., 56(10) (2004) 1467–
1480.
- X. Luo, T. Qiu, W. Lu, Z. Ni, Plasmons in graphene : Recent
progress and applications, Mater. Sci. Eng. R, 74(11) (2013) 351–
376.
- S. Wang, H. Sun, H.M. Ang, M.O. Tadé, Adsorptive remediation
of environmental pollutants using novel graphene-based
nanomaterials, Chem. Eng. J., 226 (2013) 336–347.
- S. Stankovich, D.A. Dikin, G.H.B. Dommett, K.M. Kohlhaas,
E.J. Zimney, E.A. Stach, R.D. Piner, Graphene-based composite
materials, Nature, 442(7100) (2006) 282–286.
- N.P. Dan, L.V. Khoa, B.X. Thanh, P.T. Nga, C. Visvanathan,
Potential of wastewater reclamation to reduce fresh water
stress in Ho Chi Minh City-Vietnam, J. Water Sustain., 1(3)
(2011) 279–287.
- P.L. Vo, Urbanization and water management in Ho Chi Minh
City, Vietnam-Issues, challenges and perspectives, Geo. J., 70
(2007) 75–89.
- L.C.D. Hong, K.B. Slooten, S. Jean-Jacques, T.L. Minh, J. Tarradellas,
Toxicity of sediments from the Ho Chi Minh City
canals and Saigon River, Viet Nam. Environ. Toxicol., 15(5)
(2000) 469–475.
- P.K. Phuong, C.P.N. Son, J.J. Sauvain, J. Tarradellas, Contamination
of PCB’s, DDT’s, and heavy metals in sediment of Ho
Chi Minh City’s canals, Vietnam. Bull. Environ. Contam. Toxicol.,
60 (1998) 347–354.
- T.N. Nguyen-Thi, V.H. Nguyen-Thi, S. Suthipong, Risk assessment
of the Sai Gon River water quality for safety water supply
to Ho Chi Minh city, (2011) 1–10. Adapted from https://www.researchgate.net/publication/261436726.
- APHA (1998) Wastewater Sampling Method, Attachment
E.2.2. Test Method Manuals. http://www.epa.ie/licences/lic_edms/090151b28024fe2a.pdf.
- N.F. Lokman, A.A.A. Bakar, F. Suja, H. Abdullah, W.B.W.A.
Rahman, N.-M. Huang, Highly sensitive SPR response of Au/
chitosan/graphene oxide nanostructured thin films towards
Pb (II) ions, Sensors Actuators B: Chem., 195 (2014) 459–466.
- S.F. Wang, L. Shen, W.D. Zhang, Y.J. Tong, Preparation and
mechanical properties of chitosan/carbon nanotubes composites,
Biomacromolecules, 6(6) (2005) 3067–3072.
- K. Mallikarjuna, G. Narasimha, G.R. Dillip, B. Praveen, B.
Shreedhar, C. Sree-Lakshmi, B.V.S. Reddy, B.D.P. Raju, Green
synthesis of silver nanoparticles using ocimum leaf extract
and their characterisation, Digest J. Nanomater. Biostruct., 6(1)
(2011) 181–186.
- T. Kang, S. Hong, J. Moon, S. Oh, J. Yi, Fabrication of reusable
sensor for detection of Cu2+ in an aqueous solution using a
self-assembled monolayer with surface plasmon resonance
spectroscopy, Chem. Commun., 1 (2005) 3721–3723.
- Y.W. Fen, W.M. Mat-Yunus, N.A. Yusof, Optical properties of
cross-linked chitosan thin film for copper ion detection using
surface plasmon resonance technique, Optica Applicata, 41(4)
(2011) 999–1013.
- J. Homola, On the sensitivity of surface piasmon resonance
sensors with spectral interrogation, Sensors Actuators B, 41
(1997) 207–211.
- M. Owlad, M.K. Aroua, Removal of hexavalent chromium-contaminated
water and wastewater: a review, Water Air Soil Pollut.,
200 (2009) 59–77.