Year 2024,
Volume: 7 Issue: 2, 200 - 207, 18.12.2024
Karzan Abdulkareem
,
Rebaz Omer
,
Karzan Mahmood
,
Fuad Abdullah
References
- J.L. Slavin and B. Lloyd, Health benefits of fruits and vegetables. Advances in nutrition, 2012. 3(4): p. 506-516.
- X.-F. Zhang, et al., Silver nanoparticles: synthesis, characterization, properties, applications, and therapeutic approaches. International journal of molecular sciences, 2016. 17(9): p. 1534.
- L. Mohammed, et al., Magnetic nanoparticles for environmental and biomedical applications: A review. Particuology, 2017. 30: p. 1-14.
- K. Mukunthan and S. Balaji, Cashew apple juice (Anacardium occidentale L.) speeds up the synthesis of silver nanoparticles. International Journal of Green Nanotechnology, 2012. 4(2): p. 71-79.
- A.K. Jha, et al., Plant system: nature's nanofactory. Colloids and Surfaces B: Biointerfaces, 2009. 73(2): p. 219-223.
- T.V. Duncan, Applications of nanotechnology in food packaging and food safety: barrier materials, antimicrobials and sensors. Journal of colloid and interface science, 2011. 363(1): p. 1-24.
- S. Halder, et al., Size‐Controlled Facile Synthesis of Silver Nanoparticles by Chemical Reduction Method and Analysis of Their Antibacterial Performance. ChemistrySelect, 2021. 6(36): p. 9714-9720.
- M. Ip, et al., Antimicrobial activities of silver dressings: an in vitro comparison. Journal of medical microbiology, 2006. 55(1): p. 59-63.
- M.A. Awad, et al., Silver nanoparticles biogenic synthesized using an orange peel extract and their use as an anti-bacterial agent. Int J Phys Sci, 2014. 9(3): p. 34-40.
- Y. Liu, et al., Toxicity of manufactured nanomaterials. Particuology, 2022. 69: p. 31-48.
- N. Ahmad, et al., Rapid synthesis of silver nanoparticles using dried medicinal plant of basil. Colloids and Surfaces B: Biointerfaces, 2010. 81(1): p. 81-86.
- N. Ahmad and S. Sharma, Biomediated AgNPs from some ethnobotanical weeds—Pyllanthus amarus. International Journal of Green Nanotechnology, 2011. 3(2): p. 109-117.
- B. Ankamwar, M. Chaudhary, and M. Sastry, Gold nanotriangles biologically synthesized using tamarind leaf extract and potential application in vapor sensing. Synthesis and Reactivity in Inorganic, Metal-Organic and Nano-Metal Chemistry, 2005. 35(1): p. 19-26.
- S.P. Dubey, et al., Bioprospective of Sorbus aucuparia leaf extract in development of silver and gold nanocolloids. Colloids and Surfaces B: Biointerfaces, 2010. 80(1): p. 26-33.
- C. Taleb, M. Pettai, and P. Pileni, Nanoparticles and nanostructured films: preparation, characterization and applications. Chem, 1998. 22: p. 1203.
- J.T. Huang, et al., A simple green route to prepare stable silver nanoparticles with pear juice and a new selective colorimetric method for detection of cysteine. Analyst, 2013. 138(18): p. 5296-5302.
- A.K. Jha, V. Kumar, and K. Prasad, Biosynthesis of metal and oxide nanoparticles using orange juice. Journal of Bionanoscience, 2011. 5(2): p. 162-166.
- M. Alam, Analyses of biosynthesized silver nanoparticles produced from strawberry fruit pomace extracts in terms of biocompatibility, cytotoxicity, antioxidant ability, photodegradation, and in-silico studies. Journal of King Saud University-Science, 2022. 34(8): p. 102327.
- M. Zia, et al., Green synthesis of silver nanoparticles from grape and tomato juices and evaluation of biological activities. IET Nanobiotechnology, 2017. 11(2): p. 193-199.
- Y. Gao, et al., Green Synthesis of Silver Nanoparticles at Room Temperature Using Kiwifruit Juice. Spectroscopy Letters, 2014. 47(10): p. 790-795.
- T.C. Prathna, et al., Biomimetic synthesis of silver nanoparticles by Citrus limon (lemon) aqueous extract and theoretical prediction of particle size. Colloids and Surfaces B: Biointerfaces, 2011. 82(1): p. 152-159.
- S.M. Gavade, et al., Green synthesis of silver nanoparticles by using carambola fruit extract and their antibacterial activity. Advances in Natural Sciences: Nanoscience and Nanotechnology, 2015. 6(4): p. 045015.
- A. Shore, Retraction: Shape-specific silver nanoparticles prepared by microwave-assisted green synthesis using pomegranate juice for bacterial inactivation and removal. RSC Advances, 2018. 8(69): p. 39785-39785.
- S.J. Mane Gavade, et al., Green synthesis of silver nanoparticles by using carambola fruit extract and their antibacterial activity. Advances in Natural Sciences: Nanoscience and Nanotechnology, 2015. 6(4): p. 045015.
- S. Iravani, Green synthesis of metal nanoparticles using plants. Green Chemistry, 2011. 13(10): p. 2638-2650.
- A. Mohammed, et al., Green Synthesis of Silver Nanoparticles Using Carica Papaya Juice and Study of their biochemical application. 2019. 11: p. 1025-1034.
- P. Tc, et al., Biomimetic synthesis of silver nanoparticles by Citrus limon (lemon) aqueous extract and theoretical prediction of particle size. Colloids and surfaces. B, Biointerfaces, 2011. 82: p. 152-9.
- S.L. Smitha, et al., Studies on surface plasmon resonance and photoluminescence of silver nanoparticles. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2008. 71(1): p. 186-190.
- V. Armendariz, et al., Size controlled gold nanoparticle formation by Avena sativa biomass: use of plants in nanobiotechnology. Journal of Nanoparticle Research, 2004. 6(4): p. 377-382.
- J.K. Patra and K.-H. Baek, Green Nanobiotechnology: Factors Affecting Synthesis and Characterization Techniques. Journal of Nanomaterials, 2014. 2014: p. 417305.
- B.S. Hungund, G.R. Dhulappanavar, and N.H. Ayachit, Comparative evaluation of antibacterial activity of silver nanoparticles biosynthesized using fruit juices. Journal of Nanomedicine & Nanotechnology, 2015. 6(2): p. 1.
- S.A. Umoren, et al., Green synthesis, characterization and antibacterial activities of silver nanoparticles from strawberry fruit extract. Polish Journal of Chemical Technology, 2017. 19(4): p. 128-136.
- J. Puišo, et al., Biosynthesis of silver nanoparticles using lingonberry and cranberry juices and their antimicrobial activity. Colloids and Surfaces B: Biointerfaces, 2014. 121: p. 214-221.
- S. Jabariyan and M.A. Zanjanchi, Colorimetric detection of cadmium ions using modified silver nanoparticles. Applied Physics A, 2019. 125(12): p. 872.
- B.B. Chen, et al., Rapid and convenient synthesis of stable silver nanoparticles with kiwi juice and its novel application for detecting protease K. New Journal of Chemistry, 2015. 39(2): p. 1295-1300.
- B. Mohapatra, et al., Biosynthesis Of High Concentration, Stable Aqueous Dispersions Of Silver Nanoparticles Using Citrus Limon extract. Advanced Materials Letters, 2015. 6(3): p. 228-234.
- T.L.A. Luu, et al., Simple Controlling Ecofriendly Synthesis of Silver Nanoparticles at Room Temperature Using Lemon Juice Extract and Commercial Rice Vinegar. Journal of Nanotechnology, 2020. 2020: p. 3539701.
- F. Ortega, V.B. Arce, and M.A. Garcia, Nanocomposite starch-based films containing silver nanoparticles synthesized with lemon juice as reducing and stabilizing agent. Carbohydrate Polymers, 2021. 252: p. 117208.
- E. Poyrazoğlu, V. Gökmen, and N. Artιk, Organic acids and phenolic compounds in pomegranates (Punica granatum L.) grown in Turkey. Journal of food composition and analysis, 2002. 15(5): p. 567-575.
- G. Gnanajobitha, et al., Preparation and characterization of fruit-mediated silver nanoparticles using pomegranate extract and assessment of its antimicrobial activity. J. Environ. Nanotechnol, 2013. 2(1): p. 04-10.
- J. Kubo, J.R. Lee, and I. Kubo, Anti-Helicobacter pylori Agents from the Cashew Apple. Journal of Agricultural and Food Chemistry, 1999. 47(2): p. 533-537.
- V. Kannan, et al., Microbial production of value-added products from cashew apples-an economical boost to cashew farmers. Journal of Pure and Applied Microbiology, 2021. 15(4): p. 1816-1832.
- C. Queiroz, et al., Polyphenol oxidase activity, phenolic acid composition and browning in cashew apple (Anacardium occidentale, L.) after processing. Food Chemistry, 2011. 125(1): p. 128-132.
- K.S. Mukunthan and S. Balaji, Cashew Apple Juice (Anacardium occidentale L.) Speeds Up the Synthesis of Silver Nanoparticles. International Journal of Green Nanotechnology, 2012. 4(2): p. 71-79.
- Y. Zhang, et al., One-pot photochemical synthesis of graphene composites uniformly deposited with silver nanoparticles and their high catalytic activity towards the reduction of 2-nitroaniline. Journal of Materials Chemistry, 2012. 22(15): p. 7245-7251.
- M.O. Nisperos-Carriedo, B.S. Buslig, and P.E. Shaw, Simultaneous detection of dehydroascorbic, ascorbic, and some organic acids in fruits and vegetables by HPLC. Journal of Agricultural and Food Chemistry, 1992. 40(7): p. 1127-1130.
- K. Anandalakshmi, Green Synthesis of Silver Nanoparticles Using Plant Extracts–a Review. Plant Arch, 2021. 21: p. 2091-2097.
- P. Sivakumar, C. Nethradevi, and S. Renganathan. SYNTHESIS OF SILVER NANOPARTICLES USING LANTANA CAMARA FRUIT EXTRACT AND ITS EFFECT ON PATHOGENS. 2012.
- A.M.H. Al-Rajhi, et al., Ecofriendly synthesis of silver nanoparticles using Kei-apple (Dovyalis caffra) fruit and their efficacy against cancer cells and clinical pathogenic microorganisms. Arabian Journal of Chemistry, 2022. 15(7): p. 103927.
- H. Zulfiqar, et al. Antibacterial, Antioxidant, and Phytotoxic Potential of Phytosynthesized Silver Nanoparticles Using Elaeagnus umbellata Fruit Extract. Molecules, 2022. 27, DOI: 10.3390/molecules27185847.
- S. Zafar and A. Zafar, Biosynthesis and Characterization of Silver Nanoparticles Using Phoenix dactylifera Fruits Extract and their In Vitro Antimicrobial and Cytotoxic Effects. The Open Biotechnology Journal, 2019. 13: p. 37-46.
- S.A. Umoren, et al., Green synthesis, characterization and antibacterial activities of silver nanoparticles from strawberry fruit extract. Polish Journal of Chemical Technology, 3917. 19(4): p. 128-136.
- N. Jayaprakash, et al., Green synthesis of Ag nanoparticles using Tamarind fruit extract for the antibacterial studies. J Photochem Photobiol B, 2017. 169: p. 178-185.
- 54. K. Logaranjan and P. Kannaiyan, Biogenic Synthesis of Silver Nanoparticles Using Fruit Extract of Ficus Carica and Study Its Antimicrobial Activity. nano biomedicine and Engineering, 2012. 4: p. 177.
Silver Nanoparticle Morphology Control via Fruit Juice: A Comprehensive Review
Year 2024,
Volume: 7 Issue: 2, 200 - 207, 18.12.2024
Karzan Abdulkareem
,
Rebaz Omer
,
Karzan Mahmood
,
Fuad Abdullah
Abstract
This review examines the impact of fruit juice on the morphology of silver nanoparticles. Fruit juice contains reducing agents that can be useful in synthesizing nanoparticles, potentially affecting their shape. The review also discusses the method of synthesizing silver nanoparticles using fruit juice as the reducing agent and the various characterization techniques used to determine their morphology. The results indicate that fruit juice plays a crucial role in controlling the shape of silver nanoparticles. Factors such as the type of fruit, concentration, mixing time, pH, ratio of silver nitrate, and temperature can influence the final size and shape of the nanoparticles. These findings suggest that using fruit juice as a reducing agent in nanoparticle synthesis can be a promising approach for manipulating their morphology. This review introduces new possibilities for the application of nanoparticles in healthcare, electronics, and catalysis.
References
- J.L. Slavin and B. Lloyd, Health benefits of fruits and vegetables. Advances in nutrition, 2012. 3(4): p. 506-516.
- X.-F. Zhang, et al., Silver nanoparticles: synthesis, characterization, properties, applications, and therapeutic approaches. International journal of molecular sciences, 2016. 17(9): p. 1534.
- L. Mohammed, et al., Magnetic nanoparticles for environmental and biomedical applications: A review. Particuology, 2017. 30: p. 1-14.
- K. Mukunthan and S. Balaji, Cashew apple juice (Anacardium occidentale L.) speeds up the synthesis of silver nanoparticles. International Journal of Green Nanotechnology, 2012. 4(2): p. 71-79.
- A.K. Jha, et al., Plant system: nature's nanofactory. Colloids and Surfaces B: Biointerfaces, 2009. 73(2): p. 219-223.
- T.V. Duncan, Applications of nanotechnology in food packaging and food safety: barrier materials, antimicrobials and sensors. Journal of colloid and interface science, 2011. 363(1): p. 1-24.
- S. Halder, et al., Size‐Controlled Facile Synthesis of Silver Nanoparticles by Chemical Reduction Method and Analysis of Their Antibacterial Performance. ChemistrySelect, 2021. 6(36): p. 9714-9720.
- M. Ip, et al., Antimicrobial activities of silver dressings: an in vitro comparison. Journal of medical microbiology, 2006. 55(1): p. 59-63.
- M.A. Awad, et al., Silver nanoparticles biogenic synthesized using an orange peel extract and their use as an anti-bacterial agent. Int J Phys Sci, 2014. 9(3): p. 34-40.
- Y. Liu, et al., Toxicity of manufactured nanomaterials. Particuology, 2022. 69: p. 31-48.
- N. Ahmad, et al., Rapid synthesis of silver nanoparticles using dried medicinal plant of basil. Colloids and Surfaces B: Biointerfaces, 2010. 81(1): p. 81-86.
- N. Ahmad and S. Sharma, Biomediated AgNPs from some ethnobotanical weeds—Pyllanthus amarus. International Journal of Green Nanotechnology, 2011. 3(2): p. 109-117.
- B. Ankamwar, M. Chaudhary, and M. Sastry, Gold nanotriangles biologically synthesized using tamarind leaf extract and potential application in vapor sensing. Synthesis and Reactivity in Inorganic, Metal-Organic and Nano-Metal Chemistry, 2005. 35(1): p. 19-26.
- S.P. Dubey, et al., Bioprospective of Sorbus aucuparia leaf extract in development of silver and gold nanocolloids. Colloids and Surfaces B: Biointerfaces, 2010. 80(1): p. 26-33.
- C. Taleb, M. Pettai, and P. Pileni, Nanoparticles and nanostructured films: preparation, characterization and applications. Chem, 1998. 22: p. 1203.
- J.T. Huang, et al., A simple green route to prepare stable silver nanoparticles with pear juice and a new selective colorimetric method for detection of cysteine. Analyst, 2013. 138(18): p. 5296-5302.
- A.K. Jha, V. Kumar, and K. Prasad, Biosynthesis of metal and oxide nanoparticles using orange juice. Journal of Bionanoscience, 2011. 5(2): p. 162-166.
- M. Alam, Analyses of biosynthesized silver nanoparticles produced from strawberry fruit pomace extracts in terms of biocompatibility, cytotoxicity, antioxidant ability, photodegradation, and in-silico studies. Journal of King Saud University-Science, 2022. 34(8): p. 102327.
- M. Zia, et al., Green synthesis of silver nanoparticles from grape and tomato juices and evaluation of biological activities. IET Nanobiotechnology, 2017. 11(2): p. 193-199.
- Y. Gao, et al., Green Synthesis of Silver Nanoparticles at Room Temperature Using Kiwifruit Juice. Spectroscopy Letters, 2014. 47(10): p. 790-795.
- T.C. Prathna, et al., Biomimetic synthesis of silver nanoparticles by Citrus limon (lemon) aqueous extract and theoretical prediction of particle size. Colloids and Surfaces B: Biointerfaces, 2011. 82(1): p. 152-159.
- S.M. Gavade, et al., Green synthesis of silver nanoparticles by using carambola fruit extract and their antibacterial activity. Advances in Natural Sciences: Nanoscience and Nanotechnology, 2015. 6(4): p. 045015.
- A. Shore, Retraction: Shape-specific silver nanoparticles prepared by microwave-assisted green synthesis using pomegranate juice for bacterial inactivation and removal. RSC Advances, 2018. 8(69): p. 39785-39785.
- S.J. Mane Gavade, et al., Green synthesis of silver nanoparticles by using carambola fruit extract and their antibacterial activity. Advances in Natural Sciences: Nanoscience and Nanotechnology, 2015. 6(4): p. 045015.
- S. Iravani, Green synthesis of metal nanoparticles using plants. Green Chemistry, 2011. 13(10): p. 2638-2650.
- A. Mohammed, et al., Green Synthesis of Silver Nanoparticles Using Carica Papaya Juice and Study of their biochemical application. 2019. 11: p. 1025-1034.
- P. Tc, et al., Biomimetic synthesis of silver nanoparticles by Citrus limon (lemon) aqueous extract and theoretical prediction of particle size. Colloids and surfaces. B, Biointerfaces, 2011. 82: p. 152-9.
- S.L. Smitha, et al., Studies on surface plasmon resonance and photoluminescence of silver nanoparticles. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2008. 71(1): p. 186-190.
- V. Armendariz, et al., Size controlled gold nanoparticle formation by Avena sativa biomass: use of plants in nanobiotechnology. Journal of Nanoparticle Research, 2004. 6(4): p. 377-382.
- J.K. Patra and K.-H. Baek, Green Nanobiotechnology: Factors Affecting Synthesis and Characterization Techniques. Journal of Nanomaterials, 2014. 2014: p. 417305.
- B.S. Hungund, G.R. Dhulappanavar, and N.H. Ayachit, Comparative evaluation of antibacterial activity of silver nanoparticles biosynthesized using fruit juices. Journal of Nanomedicine & Nanotechnology, 2015. 6(2): p. 1.
- S.A. Umoren, et al., Green synthesis, characterization and antibacterial activities of silver nanoparticles from strawberry fruit extract. Polish Journal of Chemical Technology, 2017. 19(4): p. 128-136.
- J. Puišo, et al., Biosynthesis of silver nanoparticles using lingonberry and cranberry juices and their antimicrobial activity. Colloids and Surfaces B: Biointerfaces, 2014. 121: p. 214-221.
- S. Jabariyan and M.A. Zanjanchi, Colorimetric detection of cadmium ions using modified silver nanoparticles. Applied Physics A, 2019. 125(12): p. 872.
- B.B. Chen, et al., Rapid and convenient synthesis of stable silver nanoparticles with kiwi juice and its novel application for detecting protease K. New Journal of Chemistry, 2015. 39(2): p. 1295-1300.
- B. Mohapatra, et al., Biosynthesis Of High Concentration, Stable Aqueous Dispersions Of Silver Nanoparticles Using Citrus Limon extract. Advanced Materials Letters, 2015. 6(3): p. 228-234.
- T.L.A. Luu, et al., Simple Controlling Ecofriendly Synthesis of Silver Nanoparticles at Room Temperature Using Lemon Juice Extract and Commercial Rice Vinegar. Journal of Nanotechnology, 2020. 2020: p. 3539701.
- F. Ortega, V.B. Arce, and M.A. Garcia, Nanocomposite starch-based films containing silver nanoparticles synthesized with lemon juice as reducing and stabilizing agent. Carbohydrate Polymers, 2021. 252: p. 117208.
- E. Poyrazoğlu, V. Gökmen, and N. Artιk, Organic acids and phenolic compounds in pomegranates (Punica granatum L.) grown in Turkey. Journal of food composition and analysis, 2002. 15(5): p. 567-575.
- G. Gnanajobitha, et al., Preparation and characterization of fruit-mediated silver nanoparticles using pomegranate extract and assessment of its antimicrobial activity. J. Environ. Nanotechnol, 2013. 2(1): p. 04-10.
- J. Kubo, J.R. Lee, and I. Kubo, Anti-Helicobacter pylori Agents from the Cashew Apple. Journal of Agricultural and Food Chemistry, 1999. 47(2): p. 533-537.
- V. Kannan, et al., Microbial production of value-added products from cashew apples-an economical boost to cashew farmers. Journal of Pure and Applied Microbiology, 2021. 15(4): p. 1816-1832.
- C. Queiroz, et al., Polyphenol oxidase activity, phenolic acid composition and browning in cashew apple (Anacardium occidentale, L.) after processing. Food Chemistry, 2011. 125(1): p. 128-132.
- K.S. Mukunthan and S. Balaji, Cashew Apple Juice (Anacardium occidentale L.) Speeds Up the Synthesis of Silver Nanoparticles. International Journal of Green Nanotechnology, 2012. 4(2): p. 71-79.
- Y. Zhang, et al., One-pot photochemical synthesis of graphene composites uniformly deposited with silver nanoparticles and their high catalytic activity towards the reduction of 2-nitroaniline. Journal of Materials Chemistry, 2012. 22(15): p. 7245-7251.
- M.O. Nisperos-Carriedo, B.S. Buslig, and P.E. Shaw, Simultaneous detection of dehydroascorbic, ascorbic, and some organic acids in fruits and vegetables by HPLC. Journal of Agricultural and Food Chemistry, 1992. 40(7): p. 1127-1130.
- K. Anandalakshmi, Green Synthesis of Silver Nanoparticles Using Plant Extracts–a Review. Plant Arch, 2021. 21: p. 2091-2097.
- P. Sivakumar, C. Nethradevi, and S. Renganathan. SYNTHESIS OF SILVER NANOPARTICLES USING LANTANA CAMARA FRUIT EXTRACT AND ITS EFFECT ON PATHOGENS. 2012.
- A.M.H. Al-Rajhi, et al., Ecofriendly synthesis of silver nanoparticles using Kei-apple (Dovyalis caffra) fruit and their efficacy against cancer cells and clinical pathogenic microorganisms. Arabian Journal of Chemistry, 2022. 15(7): p. 103927.
- H. Zulfiqar, et al. Antibacterial, Antioxidant, and Phytotoxic Potential of Phytosynthesized Silver Nanoparticles Using Elaeagnus umbellata Fruit Extract. Molecules, 2022. 27, DOI: 10.3390/molecules27185847.
- S. Zafar and A. Zafar, Biosynthesis and Characterization of Silver Nanoparticles Using Phoenix dactylifera Fruits Extract and their In Vitro Antimicrobial and Cytotoxic Effects. The Open Biotechnology Journal, 2019. 13: p. 37-46.
- S.A. Umoren, et al., Green synthesis, characterization and antibacterial activities of silver nanoparticles from strawberry fruit extract. Polish Journal of Chemical Technology, 3917. 19(4): p. 128-136.
- N. Jayaprakash, et al., Green synthesis of Ag nanoparticles using Tamarind fruit extract for the antibacterial studies. J Photochem Photobiol B, 2017. 169: p. 178-185.
- 54. K. Logaranjan and P. Kannaiyan, Biogenic Synthesis of Silver Nanoparticles Using Fruit Extract of Ficus Carica and Study Its Antimicrobial Activity. nano biomedicine and Engineering, 2012. 4: p. 177.