Biomass-derived nano-black carbon film electrode for the electrochemical detection of hazardous ions
Tài liệu tham khảo
Guo, 2018, A bovine serum albumin-coated magnetoelastic biosensor for the wireless detection of heavy metal ions, Sens. Actuators B, 256, 318, 10.1016/j.snb.2017.10.040
Ma, 2020, Controllable synthesis of an intercalated ZIF-67/EG structure for the detection of ultratrace Cd2+, Cu2+, Hg2+ and Pb2+ ions, Chem. Eng. J., 395, 10.1016/j.cej.2020.125216
Awual, 2019, Offering an innovative composited material for effective lead (II) monitoring and removal from polluted water, J. Clean. Prod., 231, 214, 10.1016/j.jclepro.2019.05.125
Wu, 2010, A Critical Review on the Bio-removal of Hazardous Heavy Metals from Contaminated Soils: Issues, Progress, Eco-environmental Concerns and Opportunities, J. Hazard. Mater., 174, 1, 10.1016/j.jhazmat.2009.09.113
Awual, 2019, Introducing an alternate conjugated material for enhanced lead (II)capturing from wastewater, J. Clean. Prod., 224, 920, 10.1016/j.jclepro.2019.03.241
Hu, 2020, Synchrotron-based techniques for studying the environmental health effects of heavy metals: Current status and future perspectives, Trend. Anal. Chem., 122, 10.1016/j.trac.2019.115721
Shih, 2016, A high-throughput solid-phase extraction microchip combined with inductively coupled plasma-mass spectrometry for rapid determination of trace heavy metals in natural water, Anal. Chim. Acta, 916, 24, 10.1016/j.aca.2016.02.027
Siraj, 2013, Analysis of copper, zinc and lead using atomic absorption spectrophotometer in ground water of Jimma town of Southwestern Ethiopia, Int. J. Chem. Anal. Sci., 4, 201, 10.1016/j.ijcas.2013.07.006
Pytlakowska, 2020, Determination of heavy metal ions by energy dispersive X-ray fluorescence spectrometry using reduced graphene oxide decorated with molybdenum disulfide as solid adsorbent, Spectrochim. Acta B At. Spectrosc., 167, 10.1016/j.sab.2020.105846
Bansod, 2017, A review on various electrochemical techniques for heavy metal ions detection with different sensing platforms, Biosens. Bioelectron., 94, 443, 10.1016/j.bios.2017.03.031
Liu, 2017, Progress on sensors based on nanomaterials for rapid detection of heavy metal ions, Sci. China-Chem., 60, 329, 10.1007/s11426-016-0253-2
Yu, 2022, Nanomaterials-based ion-imprinted electrochemical sensors for heavy metal ions detection: a review, Biosensors, 12, 1096, 10.3390/bios12121096
Wang, 2015, Carbon nanomaterial-based electrochemical biosensors: an overview, Nanoscale, 7, 6420, 10.1039/C5NR00585J
Szabó, 2010, Synthesis methods of carbon nanotubes and related materials, Materials, 3, 3092, 10.3390/ma3053092
Xu, 2018, A review of functionalized carbon nanotubes and graphene for heavy metal adsorption from water: Preparation, application, and mechanism, Chemosphere, 195, 351, 10.1016/j.chemosphere.2017.12.061
Raju, 2023, Emerging insights into the use of carbon-based nanomaterials for the electrochemical detection of heavy metal ions, Coord. Chem. Rev., 476
H.J. Song, M.Z. Huo, M.M. Zhou, H.G. Chang, J.R. L, Q.X. Zhang, Y.X. Fang, H.X Wang, D. Zhang, Carbon Nanomaterials-Based Electrochemical Sensors for Heavy Metal Detection, Crit. Rev. Anal. Chem., https://doi.org/10.1080/10408347.2022.2151832.
P. Dimple, A. Ankita, F. Fiona, S.J. Mannekote, S. Ganesan, K. Mahaveer, H. Gurumurthy, A. Tejraj M. Cost effective porous areca nut carbon nanospheres for adsorptive removal of dyes and their binary mixtures. 224 (2023) 115521.
B. Krishnappa, V. S. Bhat, V. Ancy, J.C. Joshi, J. M. S, M. Naik, G. Hegde, Biowaste-Derived, Highly Efficient, Reusable Carbon Nanospheres for Speedy Removal of Organic Dyes from Aqueous Solutions. Molecules 27 (2022) 7017.
Ahlawat, 2020, Carbonaceous nanomaterials as effective and efficient platforms for removal of dyes from aqueous systems, Environ. Res., 181, 10.1016/j.envres.2019.108904
Bhat, 2020, Influence of surface properties on electro-chemical supercapacitors utilizing Callerya atropurpurea pod derived porous nanocarbons: Structure property relationship between porous structures to energy storage devices, Nano Select, 1, 226, 10.1002/nano.202000013
Baptista, 2015, Recent developments in carbon nanomaterial sensors, Chem. Soc. Rev., 44, 4433, 10.1039/C4CS00379A
Bilge, 2021, Green synthesis and characterization of carbon-based materials for sensitive detection of heavy metal ions, Trends Anal. Chem., 145, 10.1016/j.trac.2021.116473
Veerakumar, 2016, Palladium Nanoparticle Incorporated Porous Activated Carbon: Electrochemical Detection of Toxic Metal Ions, ACS Appl. Mater. Interfaces, 8, 1319, 10.1021/acsami.5b10050
Zhu, 2019, Synthesis of 3D hierarchically porous carbon@Bi-BiOCl nanocomposites via in situ generated NaCl crystals as templates for highly sensitive detection of Pb2+and Cd2+, Electrochim. Acta, 318, 460, 10.1016/j.electacta.2019.06.098
Kan, 2016, Lignocellulosic biomass pyrolysis: A review of product properties and effects of pyrolysis parameters, Renew. Sustain. Energy Rev., 57, 1126, 10.1016/j.rser.2015.12.185
Hoang, 2021, Progress on the lignocellulosic biomass pyrolysis for biofuel production toward environmental sustainability, Fuel Process. Technol., 223, 10.1016/j.fuproc.2021.106997
Jia, 2023, ji’an a, Study of the dynamics of material removal processes in combined pulse laser drilling of alumina ceramic, Opt. Laser Technol., 160, 10.1016/j.optlastec.2022.109053
Manshor, 2015, Effects of TiO2 addition on the phase, mechanical properties, and microstructure of zirconia-toughened alumina ceramic composite, Ceram. Int., 41, 3961, 10.1016/j.ceramint.2014.11.080
Gawade, 2022, Sugarcane waste based synthesized graphene like nanocarbon (GNC) for shock absorption application, Phys. Scr., 97, 10.1088/1402-4896/ac96d8
Lin, 2018, Bridging the Gap between Reality and Ideal in Chemical Vapor Deposition Growth of Graphene, Chem. Rev., 118, 9281, 10.1021/acs.chemrev.8b00325
Al-Gaashani, 2019, XPS and structural studies of high quality graphene oxide and reduced graphene oxide prepared by different chemical oxidation methods, Ceram. Int., 45, 14439, 10.1016/j.ceramint.2019.04.165
Torrisi, 2020, Graphene oxide as a radiation sensitive material for XPS dosimetry, Vacuum, 173, 10.1016/j.vacuum.2020.109175
Chen, 2020, Biomass-derived porous graphitic carbon materials for energy and environmental applications, J. Mater. Chem. A, 8, 5773, 10.1039/C9TA11618D
Qiao, 2021, Biochar derived from waste peanut shells as the electrode materials with excellent performance in Zinc-air battery and supercapacitance, Waste Manag., 125, 257, 10.1016/j.wasman.2021.02.057
Wei, 2012, SnO2/reduced graphene oxide nanocomposite for the simultaneous electrochemical detection of cadmium(II), lead(II), copper(II), and mercury(II): An interesting favorable mutual interference, J. Phys. Chem. C, 116, 1034, 10.1021/jp209805c
Lu, 2019, Graphene Aerogel–Metal–Organic Framework-Based Electrochemical Method for Simultaneous Detection of Multiple Heavy-Metal Ions, Anal. Chem., 91, 888, 10.1021/acs.analchem.8b03764
G. A. Oliveira , A. Gevaerd, A.S. Mangrich, L.H. Marcolino- a, M.F. Bergamini, Biochar obtained from spent coffee grounds: Evaluation of adsorption properties and its application in a voltammetric sensor for lead (II) ions, Microchem. J., 165 (2021) 106114.
S.F. Zhou , J.J.Wang, L. Gan , X.J. Han , H.L. Fan , L.Y. Mei , J.Huang, Y.Q. Liu Individual and simultaneous electrochemical detection toward heavy metal ions based on L-cysteine modified mesoporous MnFe2O4 nanocystal clusters. J. Alloys. Compd, 721 (2017) 492–500.
Ratte, 1999, Bioaccumulation and Toxicity of Silver compounds: A Review, Environ. Toxicol. Chem., 18, 89, 10.1002/etc.5620180112
Xie, 2015, Graphene/CeO2 hybrid materials for the simultaneous electrochemical detection of cadmium (II), lead (II), copper (II), and mercury (II), J. Electroanal. Chem., 757, 235, 10.1016/j.jelechem.2015.09.043
Gumpu, 2017, Simultaneous electrochemical detection of Cd(II), Pb(II), As(III) and Hg(II) ions using ruthenium(II)-textured graphene oxide nanocomposite, Talanta, 162, 574, 10.1016/j.talanta.2016.10.076
Qu, 2016, Preparation of eggplant-derived macroporous carbon tubes and composites of EDMCT/Co (OH)(CO3)0.5 nano-cone-arrays for high-performance supercapacitors, J. Mater. Chem. A, 4, 4296, 10.1039/C5TA09948J
Ling, 2016, Sustainable Synthesis and Assembly of Biomass-Derived B/N Co-Doped Carbon Nanosheets with Ultrahigh Aspect Ratio for High-Performance Supercapacitors, Adv. Funct. Mater., 26, 111, 10.1002/adfm.201504004
Li, 2018, N/P Codoped porous carbon/one-dimensional hollow tubular carbon heterojunction from biomassinherent structure for supercapacitors, ACS Sustain. Chem. Eng., 7, 1337, 10.1021/acssuschemeng.8b05022
Guo, 2015, Microporous carbon nanosheets derived from corncobs for lithium– sulfur batteries, Electrochim. Acta, 176, 853, 10.1016/j.electacta.2015.07.077
Sun, 2004, Colloidal carbon spheres and their core/shell structures with noble-metal nanoparticles, Angew. Chem. Int. Ed., 43, 597, 10.1002/anie.200352386
Sevilla, 2009, Chemical and Structural Properties of Carbonaceous Products Obtained by Hydrothermal Carbonization of Saccharides, Chem. A Eur. J., 15, 4195, 10.1002/chem.200802097
Hao, 2017, Preparation of porous carbon sphere from waste sugar solution for electric double-layer capacitor, J. Power Sources, 361, 249, 10.1016/j.jpowsour.2017.06.086
Zhang, 2012, Hydrophobic precipitation of carbonaceous spheres from fructose by a hydrothermal process, Carbon, 50, 2155, 10.1016/j.carbon.2012.01.024
Liu, 2018, A microwave synthesized mesoporous carbon sponge as an effificient adsorbent for Cr(VI) removal, RSC Adv., 8, 7892, 10.1039/C8RA00012C
Liu, 2019, Rapid microwave activation of waste palm into hierarchical porous carbons for supercapacitors using biochars from different carbonization temperatures as catalysts, RSC Adv., 9, 19441, 10.1039/C9RA03031J
Wahi, 2011, The use of microwave derived activated carbon for removal of heavy metal in aqueous solution, J. Sci. Technol., 3, 97
Zhang, 2013, Review of Chemical Vapor Deposition of Graphene and Related Applications, Acc. Chem. Res., 46, 2329, 10.1021/ar300203n
Park, 2013, A review of fabrication and applications of carbon nanotube film-based flexible electronics, Nanoscale, 5, 1727, 10.1039/c3nr33560g
Cassell, 1999, Large Scale CVD Synthesis of Single-Walled Carbon Nanotubes, J. Phys. Chem. B, 103, 6484, 10.1021/jp990957s
Hata, 2004, Water-Assisted Highly Efficient Synthesis of Impurity-Free Single Walled Carbon Nanotubes, Science, 306, 1362, 10.1126/science.1104962
Chiang, 2001, Purification And Characterization of Single-Wall Carbon Nanotubes (SWNTs) Obtained from The Gas Phase Decomposition of CO (HiPCo process), J. Phys. Chem. B, 105, 8297, 10.1021/jp0114891
Zheng, 2002, Efficient CVD Growth of Single-Walled Carbon Nanotubes on Surfaces Using Carbon Monoxide Precursor, Nano Lett., 2, 895, 10.1021/nl025634d
Bachilo, 2003, Narrow (n, m)-Distribution of Single-Walled Carbon Nanotubes Grown Using A Solid Supported Catalyst, J. Am. Chem. Soc., 125, 11186, 10.1021/ja036622c
Richter, 2008, Vander Sande, Large Scale Combustion Synthesis of Single-Walled Carbon Nanotubes and Their Characterization, J. Nanosci. Nanotechnol., 8, 6065, 10.1166/jnn.2008.SW07
Farid, 2022, A route towards graphene from lignocellulosic biomass: Technicality, challenges, and their prospective applications, J. Clean. Prod., 380
Asadian, 2019, Electrochemical sensing based on carbon nanoparticles: A review, Sens. Actuators B Chem., 293, 183, 10.1016/j.snb.2019.04.075
Zhu, 2019, Oxygen-Defects Functionalized Graphite Nanoplatelets as Electrode Materials for Electrochemical Sensing, J. Electrochem. Soc., 166, B1400, 10.1149/2.0271915jes
Adam, 2011, Wanekaya, Applications of nanoscale carbon-based materials in heavy metal sensing and detection, Analyst, 136, 4383, 10.1039/c1an15574a
Guo, 2022, Functionalised multi-walled carbon nanotubes-based electrochemical sensor: synergistic effect of graphitisation and carboxylation on detection performance of methyl parathion, Mater. Res. Innov., 26, 324, 10.1080/14328917.2022.2093525
Zhu, 2022, Electrochemical Sensor for Highly Sensitive Detection of Gallic Acid Based on Graphitized and Carboxylated Multi-Walled Carbon Nanotubes modified Glassy Carbon Electrode, Int. J. Electrochem. Sci., 17, 221035, 10.20964/2022.10.02
Zhang, 2019, Detection of trace Cd2+, Pb2+ and Cu2+ ions via porous activated carbon supported palladium nanoparticles modified electrodes using SWASV, Mater. Chem. Phys., 225, 433, 10.1016/j.matchemphys.2019.01.010
S. T. Palisoc, Joshua Micah O. Bentulan, Michelle T. Natividad, Determination of trace heavy metals in canned food using Graphene/AuNPs/[Ru(NH3)6]3+/Nafion modified glassy carbon electrodes, Journal of Food Measurement and Characterization (2019) 13:169–176.