Page 153 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 153
128 Polymer-based Nanocomposites for Energy and Environmental Applications
[88] Wang J, Chen B. Adsorption and coadsorption of organic pollutants and a heavy metal by
graphene oxide and reduced graphene materials. Chem Eng J 2015;281:379–88.
[89] Wang Z, Liu E. Graphene ultrathin film electrode for detection of lead ions in acetate
buffer solution. Talanta 2013;103:47–55.
[90] Luo Y, Kong F-Y, Li C, Shi J-J, Lv W-X, Wang W. One-pot preparation of reduced
graphene oxide-carbon nanotube decorated with Au nanoparticles based on protein for
non-enzymatic electrochemical sensing of glucose. Sensors Actuators B Chem
2016;234:625–32.
[91] Thanh TD, Balamurugan J, Lee SH, Kim NH, Lee JH. Novel porous gold-palladium
nanoalloy network-supported graphene as an advanced catalyst for non-enzymatic
hydrogen peroxide sensing. Biosens Bioelectron 2016;85:669–78.
[92] Wang H, Wang H, Li T, Ma J, Li K, Zuo X. Silver nanoparticles selectively deposited on
graphene-colloidal carbon sphere composites and their application for hydrogen peroxide
sensing. Sensors Actuators B Chem 2017;239:1205–12.
[93] Hasanzadeh M, Hashemzadeh N, Shadjou N, Eivazi-Ziaei J, Khoubnasabjafari M,
Jouyban A. Sensing of doxorubicin hydrochloride using graphene quantum dot modified
glassy carbon electrode. J Mol Liq 2016;.
[94] Feng X, Chen W, Yan L. Free-standing dried foam films of graphene oxide for humidity
sensing. Sensors Actuators B Chem 2015;215:316–22.
[95] Bhardwaj N, Bhardwaj SK, Mehta J, Mohanta GC, Deep A. Bacteriophage immobilized
graphene electrodes for impedimetric sensing of bacteria (Staphylococcus arlettae). Anal
Biochem 2016;505:18–25.
[96] Zhu G, Yi Y, Han Z, Wang K, Wu X. Sensitive electrochemical sensing for polycyclic
aromatic amines based on a novel core-shell multiwalled carbon nanotubes@graphene
oxide nanoribbons heterostructure. Anal Chim Acta 2014;845:30–7.
[97] Pumera M, Ambrosi A, Bonanni A, Chng ELK, Poh HL. Graphene for electrochemical
sensing and biosensing. TrAC Trends Anal Chem 2010;29:954–65.
[98] Ratinac KR, Yang W, Gooding JJ, Thordarson P, Braet F. Graphene and related materials
in electrochemical sensing. Electroanalysis 2011;23:803–26.
[99] Wisitsoraat A, Mensing JP, Karuwan C, Sriprachuabwong C, Jaruwongrungsee K,
Phokharatkul D, et al. Printed organo-functionalized graphene for biosensing applica-
tions. Biosens Bioelectron 2017;87:7–17.
[100] Ng YH, Lightcap IV, Goodwin K, Matsumura M, Kamat PV. To what extent do graphene
scaffolds improve the photovoltaic and photocatalytic response of TiO 2 nanostructured
films? J Phys Chem Lett 2010;1:2222–7.
[101] Hu H, Xin JH, Hu H, Wang X, Miao D, Liu Y. Synthesis and stabilization of metal
nanocatalysts for reduction reactions—a review. J Mater Chem A 2015;3:11157–82.
[102] Song Y, Fang W, Brenes R, Kong J. Challenges and opportunities for graphene as trans-
parent conductors in optoelectronics. Nano Today 2015;10:681–700.
[103] Huang X, Qi X, Boey F, Zhang H. Graphene-based composites. Chem Soc Rev
2012;41:666–86.
[104] Wu Z-S, Zhou G, Yin L-C, Ren W, Li F, Cheng H-M. Graphene/metal oxide composite
electrode materials for energy storage. Nano Energy 2012;1:107–31.
[105] Yang K, Zhang S, Zhang G, Sun X, Lee S-T, Liu Z. Graphene in mice: ultrahigh in vivo
tumor uptake and efficient photothermal therapy. Nano Lett 2010;10:3318–23.
[106] Agarwal S, Zhou X, Ye F, He Q, Chen GC, Soo J, et al. Interfacing live cells with nano-
carbon substrates. Langmuir 2010;26:2244–7.
[107] Reina A, Jia X, Ho J, Nezich D, Son H, Bulovic V, et al. Large area, few-layer graphene
films on arbitrary substrates by chemical vapor deposition. Nano Lett 2008;9:30–5.