journal article Sep 27, 2021

Synthesis of different nanometals using Citrus Sinensis peel (orange peel) waste extraction for valuable functionalization of cotton fabric

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References
86
[1]
AATCC Test Method (66–2014) (2017) Wrinkle recovery of fabric: recovery angle method. Technical manual method American association of textile chemists and colorists. p 113–116.
[2]
AATCC Test Method (147–2016) (2017) Antibacterial activity assessment of textile materials: parallel streak. Technical manual method american association of textile chemists and colorists. p 275–276.
[3]
AATCC Test Method (100–2019) (2019) Assessment Of antimicrobial finishes on textile materials. Technical manual method american association of textile chemists and colorists.
[4]
Abarca-Vargas R, Peña Malacara CF, Petricevich VL (2016) Characterization of chemical compounds with antioxidant and cytotoxic activities in Bougainvillea × buttiana holttum and standl, (var. Rose) extracts. Antioxidants (Basel) 5(4):45. https://doi.org/10.3390/antiox5040045 10.3390/antiox5040045
[5]
Abd El-Rahman M, Darwish S, Megali H, Abd El-Hakim H (2019) Characterization of β-carotene extracted from orange peels and its use as a natural colorant and antioxidant in ice cream. Egy J Food Sci 47:173–185
[6]
Abdel-Halim ES, Abdel-Mohdy FA, Fouda MMG, El-Sawy SM, Hamdy IA, Al-Deyab SS (2011) Antimicrobial activity of monochlorotriazinyl-β-cyclodextrin/ chlorohexidin diacetate finished cotton fabrics. Carbohyd Polym 86:1389–1394. https://doi.org/10.1016/j.carbpol.2011.06.039 10.1016/j.carbpol.2011.06.039
[7]
Abdel-Mohdy FA, Fouda MMG, Rehan MF, Aly AS (2008) Repellency of controlled-release treated cotton fabrics based on cypermethrin and prallethrin. Carbohyd Polym 73:92–97. https://doi.org/10.1016/j.carbpol.2007.11.006 10.1016/j.carbpol.2007.11.006
[8]
Abdel-Mohdy FA, Fouda MMG, Rehan MF, Ali AS (2009) Repellency of controlled-release treated-cotton fabrics based on permethrin and bioallethrin against mosquitoes. J Text Instit 100:695–701. https://doi.org/10.1080/00405000802170275 10.1080/00405000802170275
[9]
Polyaconitic acid/functional amine/azo dye composite as a novel hyper-branched polymer for cotton fabric functionalization

Asmaa Aboelnaga, Sahar Shaarawy, Ahmed G. Hassabo

Colloids and Surfaces B: Biointerfaces 2018 10.1016/j.colsurfb.2018.09.012
[10]
Ajayi E, Afolayan A (2017) Green synthesis, characterization and biological activities of silver nanoparticles from alkalinized Cymbopogon citratus Stapf. Adv Nat Sci Nanosci Nanotechnol 8:015017. https://doi.org/10.1088/2043-6254/aa5cf7 10.1088/2043-6254/aa5cf7
[11]
Anwar Y, Alghamdi KM (2020) Imparting antibacterial, antifungal and catalytic properties to cotton cloth surface via green route. Polym Test 81:106258. https://doi.org/10.1016/j.polymertesting.2019.106258 10.1016/j.polymertesting.2019.106258
[12]
Total Phenolic Content, Flavonoid Content and Antioxidant Potential of Wild Vegetables from Western Nepal

Sushant Aryal, Manoj Kumar Baniya, Krisha Danekhu et al.

Plants 2019 10.3390/plants8040096
[13]
ASTM Standard Test Method (D1388 − 14e1) (2016) Standard test methods for stiffness of fabrics. West Conshohocken, PA: ASTM International.
[14]
ASTM Standard Test Method (D7127 − 13) (2016) Standard test method for measurement of surface roughness of abrasive blast cleaned metal surfaces using a portable stylus instrument1. West Conshohocken, PA: ASTM International.
[15]
ASTM Standard Test Method (E11 - 17) (2017) Standard specification for woven wire test sieve cloth and test sieves. ASTM International.
[16]
ASTM Standard Test Method (D5035–2011 (Reapproved 2019)) (2019) Standard test method for breaking force and elongation of textile fabrics (Strip Method). ASTM International.
[17]
Australian/New Zealand Standard AS/NZS 4399:1996 (1996) Sun protective clothing—Evaluation and classification.
[18]
Bonnia NN, Kamaruddin MS, Nawawi MH, Ratim S, Azlina HN, Ali ES (2016) Green biosynthesis of silver nanoparticles using ‘polygonum hydropiper’ and study its catalytic degradation of methylene blue. Proced Chem 19:594–602. https://doi.org/10.1016/j.proche.2016.03.058 10.1016/j.proche.2016.03.058
[19]
Carmona-Ribeiro A, de Melo CL (2013) Cationic antimicrobial polymers and their assemblies. Int J Mol Sci 14:9906. https://doi.org/10.3390/ijms14059906 10.3390/ijms14059906
[20]
Surface modification of SiO 2 coated ZnO nanoparticles for multifunctional cotton fabrics

Mehrez E. El-Naggar, Ahmed G. Hassabo, Amina L. Mohamed et al.

Journal of Colloid and Interface Science 2017 10.1016/j.jcis.2017.03.080
[21]
Elsayed GA, Hassabo AG (2022) Insect repellent of cellulosic fabrics (a review). Lett Appl NanoBioSci 11:3181–3190
[22]
El-Sayed GA, Diaa M, Hassabo AG (2021) Potential uses of aloe vera extract in textile wet process. J Text Color Polym Sci https://doi.org/10.21608/jtcps.2021.79784.1065 10.21608/jtcps.2021.79784.1065
[23]
Fahmy H, Okda H, Elrafie M, Hassabo A, Youssef MA (2021) Synthesis and application of new silicone based water repellents. Egy J Chem https://doi.org/10.21608/ejchem.2021.89016.4275 10.21608/ejchem.2021.89016.4275
[24]
Fernandes RPP, Trindade MA, Tonin FG, Lima CG, Pugine SMP, Munekata PES, Lorenzo JM, De Melo MP (2016) Evaluation of antioxidant capacity of 13 plant extracts by three different methods: cluster analyses applied for selection of the natural extracts with higher antioxidant capacity to replace synthetic antioxidant in lamb burgers. J Food Sci Technol 53:451–460. https://doi.org/10.1007/s13197-015-1994-x 10.1007/s13197-015-1994-x
[25]
Gao D-G, Li X, Li Y, Lyu B, Ren J, Ma J (2021) Long-acting antibacterial activity on the cotton fabric. Cellulose 28:1–20. https://doi.org/10.1007/s10570-020-03560-5 10.1007/s10570-020-03560-5
[26]
Gupta A, Singh A (2017) Efficacy of orange peel as a mosquito repellent Int. J Home Sci 3:143–146
[27]
Hassabo AG (2005) Preparation, characterisation and utilization of some textile auxiliaries. MSc. Thesis, El-Azhar University
[28]
Hassabo AG (2011) Synthesis and deposition of functional nano-materials on natural fibres polymer chemistry. RWTH Aachen University, Germany
[29]
Hassabo AG, Mohamed AL (2019) Novel flame retardant and antibacterial agent containing MgO NPs, phosphorus, nitrogen and silicon units for functionalise cotton fabrics. Biointerf Res Appl Chem 9:4272–4278 10.33263/briac95.272278
[30]
Hassabo AG, Mohamed AL, Shaarawy S, Hebeish A (2018) Novel micro-composites based on phosphorylated biopolymer/polyethyleneimine/clay mixture for cotton multi-functionalities performance. Biosci Res 15:2568–2582
[31]
Hassabo AG, Sharaawy S, Mohamed AL (2019) Unsaturated fatty acids based materials as auxiliaries for printing and finishing of cellulosic fabrics. Biointerf Res Appl Chem 9:4284–4291 10.33263/briac95.284291
[32]
Hassabo AG, Shaarawy S, Mohamed AL, Hebiesh A (2020) Multifarious cellulosic through innovation of highly sustainable composites based on Moringa and other natural precursors. Int J Biol Macromol 165:141–155. https://doi.org/10.1016/j.ijbiomac.2020.09.125 10.1016/j.ijbiomac.2020.09.125
[33]
Hebeish A, Fouda MMG, Hamdy IA, El-Sawy SM, Abdel-Mohdy FA (2008) Preparation of durable insect repellent cotton fabric: limonene as insecticide. Carbohyd Polym 74:268–273. https://doi.org/10.1016/j.carbpol.2008.02.013 10.1016/j.carbpol.2008.02.013
[34]
Hebeish A, Shaarawy S, Hassabo AG, El-Shafei A (2016) Eco-friendly multifinishing of cotton through inclusion of motmorillonite/chitosan hybrid nanocomposite. Der Phar Chem 8:259–271
[35]
Hou X, Chen X, Cheng Y, Xu H, Chen L, Yang Y (2013) Dyeing and UV-protection properties of water extracts from orange peel. J Clean Produc 52:410–419. https://doi.org/10.1016/j.jclepro.2013.03.004 10.1016/j.jclepro.2013.03.004
[36]
Hussain KA, Tarakji B, Kandy BP, John J, Mathews J, Ramphul V, Divakar DD (2015) Antimicrobial effects of Citrus Sinensis peel extracts against periodontopathic bacteria: an in vitro study. Rocz Panstw Zakl Hig 66:173–178
[37]
Ibrahim NA, Nada AA, Hassabo AG, Eid BM, Noor El-Deen AM, Abou-Zeid NY (2017) Effect of different capping agents on physicochemical and antimicrobial properties of ZnO nanoparticles. Chem Pap 71:1365–1375. https://doi.org/10.1007/s11696-017-0132-9 10.1007/s11696-017-0132-9
[38]
Ibrahim NA, Nada AA, Eid BM, Al-Moghazy M, Hassabo AG, Abou-Zeid NY (2018) Nano-structured metal oxides: synthesis, characterization and application for multifunctional cotton fabric. Adv Nat Sci Nanosci Nanotechnol 9:035014 10.1088/2043-6254/aadc2c
[39]
Ikeda T, Hirayama H, Suzuki K, Yamaguchi H, Tazuke S (1986) Biologically active polycations, 6. Polymeric pyridinium salts with well-defined main chain structure. Die Makromo Chem 187:333–340. https://doi.org/10.1002/macp.1986.021870212 10.1002/macp.1986.021870212
[40]
Iravani S, Korbekandi H, Mirmohammadi SV, Zolfaghari B (2014) Synthesis of silver nanoparticles: chemical, physical and biological methods. Res Pharm Sci 9:385–406
[41]
ISO 565:1990 (2017) Test sieves—Metal wire cloth, perforated metal plate and electroformed sheet—Nominal sizes of openings.
[42]
ISO 3310–1:2016 (2017) Test sieves. Technical requirements and testing. Test sieves of metal wire cloth.
[43]
Kalia S, Dufresne A, Cherian BM, Kaith BS, Avérous L, Njuguna J, Nassiopoulos E (2011) Cellulose-based bio- and nanocomposites: a review. Intern J Polym Sci 2011:1–35. https://doi.org/10.1155/2011/837875 10.1155/2011/837875
[44]
Kamel MY, Hassabo AG (2021) Anti-microbial finishing for natural textile fabrics. J Text Color Polym Sci 18:83–95
[45]
Khattab TA, Mohamed AL, Hassabo AG (2020) Development of durable superhydrophobic cotton fabrics coated with silicone/stearic acid using different cross-linkers. Mater Chem Phys. https://doi.org/10.1016/j.matchemphys.2020.122981 10.1016/j.matchemphys.2020.122981
[46]
Kubelka P, Munk F (1931) Ein Beitrag zur Optik der Farbanstriche. Z Tech Phys 12:593. https://doi.org/10.1007/978-3-642-27851-8_300-1 10.1007/978-3-642-27851-8_300-1
[47]
Kwaambwa HM, Maikokera R (2007) A fluorescence spectroscopic study of a coagulating protein extracted from Moringa oleifera seeds. Colloids Surf B 60:213–233. https://doi.org/10.1016/j.colsurfb.2007.06.015 10.1016/j.colsurfb.2007.06.015
[48]
Maqbool M (2021) Comparison of dyeing and functionalization potential of some selected plant extracts applied on cotton fabric. J Nat Fiber 18:42–50. https://doi.org/10.1080/15440478.2019.1612304 10.1080/15440478.2019.1612304
[49]
Marcus AC, Nwineewii JD (2015) Studies on the crude extract of moringa oleifera leaf for preliminary identification of some phytochemicals and organic functions. J Appl Chem 8:1–5. https://doi.org/10.9790/5736-081220105 10.9790/5736-081220105
[50]
Mehta KT, Bhavsar MC, Vora PM, Shah HS (1984) Estimation of the Kubelka-Munk scattering coefficient from single particle scattering parameters. Dyes Pigm 5:329–340. https://doi.org/10.1016/0143-7208(84)80027-3 10.1016/0143-7208(84)80027-3

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Published
Sep 27, 2021
Vol/Issue
76(2)
Pages
639-660
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Cite This Article
Menna Zayed, Heba Ghazal, Hanan A. Othman, et al. (2021). Synthesis of different nanometals using Citrus Sinensis peel (orange peel) waste extraction for valuable functionalization of cotton fabric. Chemical Papers, 76(2), 639-660. https://doi.org/10.1007/s11696-021-01881-8