New Era of Formulation as Silver Nanoparticles in Pharma
Abstract
In various fields of science, nanoparticles of noble metals, particularly silver nanoparticles, have been widely used. Its specific properties, which can be integrated into the materials of biosensors, composite fabrics, cosmetics, antimicrobial applications, conducting materials, and electronic components, make it a very interesting topic to be studied in the fields of chemistry, biology, healthcare, electronics, and other related fields. Such unique features depending on the size, and shape of the silver nanoparticles. Various methods of preparation for the synthesis of silver nanoparticles have been reported, such as electron irradiation, laser ablation, chemical reduction and biological methods.
Keywords: silver nanoparticles (AgNPs), particle size, localized surface plasmonic resonance (LSPR), characterization, application
Keywords:
silver nanoparticles (AgNPs), particle size, localized surface plasmonic resonance (LSPR), characterization, applicationDOI
https://doi.org/10.22270/jddt.v11i2-S.4643References
Cushing BL, Kolesnichenko VL, O'connor CJ. Recent advances in the liquid-phase syntheses of inorganic nanoparticles. Chemical reviews. 2004 Sep 8; 104(9):3893-946.
Ajitha B, Reddy YA, Reddy PS. Green synthesis and characterization of silver nanoparticles using Lantana camara leaf extract. Materials science and engineering: C. 2015; 49:373-81.
Dos Santos MM, Queiroz MJ, Baptista PV. Enhancement of antibiotic effect via gold: silver-alloy nanoparticles. Journal of Nanoparticle Research. 2012; 14(5):1-8.
Aritonang HF, Onggo D, Ciptati C, Radiman CL. Synthesis of platinum nanoparticles from K2PtCl4 solution using bacterial cellulose matrix. Journal of Nanoparticles. 2014; 2014.
Raut RW, Haroon AS, Malghe YS, Nikam BT, Kashid SB. Rapid biosynthesis of platinum and palladium metal nanoparticles using root extract of Asparagus racemosus Linn. Adv Mater Lett. 2013; 4(8):650-4.
Chen X, Schluesener HJ. Nanosilver: a nanoproduct in medical application. Toxicology letters. 2008; 176(1):1-2.
Tran QH, Le AT. Silver nanoparticles: synthesis, properties, toxicology, applications and perspectives. Advances in Natural Sciences: Nanoscience and Nanotechnology. 2013; 4(3):033001.
Levard C, Hotze EM, Lowry GV, Brown Jr GE. Environmental transformations of silver nanoparticles: impact on stability and toxicity. Environmental science & technology. 2012; 46(13):6900-14.
Larese FF, D’Agostin F, Crosera M, Adami G, Renzi N, Bovenzi M, Maina G. Human skin penetration of silver nanoparticles through intact and damaged skin. Toxicology. 2009; 255(1-2):33-7.
Evanoff DD, Chumanov G. Size-controlled synthesis of nanoparticles. 1.“Silver-only” aqueous suspensions via hydrogen reduction. The Journal of Physical Chemistry B. 2004; 108(37):13948-56.
Mallick K, Witcomb M, Scurrell M. Silver nanoparticle catalysed redox reaction: an electron relay effect. Materials chemistry and physics. 2006; 97(2-3):283-7.
Ahmed S, Ahmad M, Swami BL, Ikram S. A review on plants extract mediated synthesis of silver nanoparticles for antimicrobial applications: a green expertise. Journal of advanced research. 2016; 7(1):17-28.
Ren X, Meng X, Chen D, Tang F, Jiao J. Using silver nanoparticle to enhance current response of biosensor. Biosensors and Bioelectronics. 2005; 21(3):433-7.
Leopold N, Lendl B. A new method for fast preparation of highly surface-enhanced Raman scattering (SERS) active silver colloids at room temperature by reduction of silver nitrate with hydroxylamine hydrochloride. The Journal of Physical Chemistry B. 2003; 107(24):5723-7.
Zhang Z, Zhao B, Hu L. PVP protective mechanism of ultrafine silver powder synthesized by chemical reduction processes. Journal of Solid-State Chemistry. 1996; 121(1):105-10.
Jia H, Zeng J, Song W, An J, Zhao B. Preparation of silver nanoparticles by photo-reduction for surface-enhanced Raman scattering. Thin Solid Films. 2006; 496(2):281-7.
Mafune F, Kohno JY, Takeda Y, Kondow T, Sawabe H. Formation and size control of silver nanoparticles by laser ablation in aqueous solution. The Journal of Physical Chemistry B. 2000; 104(39):9111-7.
Wang H, Qiao X, Chen J, Wang X, Ding S. Mechanisms of PVP in the preparation of silver nanoparticles. Materials Chemistry and Physics. 2005; 94(2-3):449-53.
Ahmed S, Ahmad M, Swami BL, Ikram S. A review on plants extract mediated synthesis of silver nanoparticles for antimicrobial applications: a green expertise. Journal of advanced research. 2016; 7(1):17-28.
Zhang XF, Liu ZG, Shen W, Gurunathan S. Silver nanoparticles: synthesis, characterization, properties, applications, and therapeutic approaches. International journal of molecular sciences. 2016; 17(9):1534.
Prabhu S, Poulose EK. Silver nanoparticles: mechanism of antimicrobial action, synthesis, medical applications, and toxicity effects. International nano letters. 2012; 2(1):1-0.
Rai M, Yadav A, Gade A. Silver nanoparticles as a new generation of antimicrobials. Biotechnology advances. 2009; 27(1):76-83.
Lin Z, Monteiro‐Riviere NA, Riviere JE. Pharmacokinetics of metallic nanoparticles. Wiley Interdisciplinary Reviews: Nanomedicine and Nanobiotechnology. 2015; 7(2):189-217.
Li M, Zou P, Tyner K, Lee S. Physiologically based pharmacokinetic (PBPK) modeling of pharmaceutical nanoparticles. The AAPS journal. 2017; 19(1):26-42.
East BW, Boddy K, Williams ED, Macintyre D, McLay AL. Silver retention, total body silver and tissue silver concentrations in argyria associated with exposure to an anti‐smoking remedy containing silver acetate. Clinical and experimental dermatology. 1980; 5(3):305-11.
Hadrup N, Lam HR. Oral toxicity of silver ions, silver nanoparticles and colloidal silver–a review. Regulatory Toxicology and Pharmacology. 2014; 68(1):1-7.
Furchner JE, Richmond CR, Drake GA. Comparative metabolism of radionuclides in mammals-IV. Retention of silver-110m in the mouse, rat, monkey, and dog. Health Physics. 1968; 15(6):505-14.
Van der Zande M, Vandebriel RJ, Van Doren E, Kramer E, Herrera Rivera Z, Serrano-Rojero CS, Gremmer ER, Mast J, Peters RJ, Hollman PC, Hendriksen PJ. Distribution, elimination, and toxicity of silver nanoparticles and silver ions in rats after 28-day oral exposure. ACS nano. 2012; 6(8):7427-42.
Scherrer P. Nachrichten von der Gesellschaft der Wissenschaften zu Göttingen. Mathematisch-Physikalische Klasse. 1918; 2:98-100.
Wiley B, Sun Y, Xia Y. Synthesis of silver nanostructures with controlled shapes and properties. Accounts of chemical research. 2007;40(10):1067-76.
Gmoshinski IV, Khotimchenko SA, Popov VO, Dzantiev BB, Zherdev AV, Demin VF, Buzulukov YP. Nanomaterials and nanotechnologies: methods of analysis and control. Russian Chemical Reviews. 2013; 82(1):48.
Tiede K, Boxall AB, Tear SP, Lewis J, David H, Hassellöv M. Detection and characterization of engineered nanoparticles in food and the environment. Food additives and contaminants. 2008; 25(7):795-821.
Henglein A. Physicochemical properties of small metal particles in solution:" microelectrode" reactions, chemisorption, composite metal particles, and the atom-to-metal transition. The Journal of Physical Chemistry. 1993; 97(21):5457-71.
Seney CS, Gutzman BM, Goddard RH. Correlation and characterization of three-dimensional morphologically dependent localized surface plasmon resonance spectra of single silver nanoparticles using dark-field optical microscopy and spectroscopy and atomic force microscopy. J. Phys. Chem. C. 2009; 113:74.
Liang H, Li Z, Wang Z, Wang W, Rosei F, Ma D, Xu H. Enormous Surface‐Enhanced Raman Scattering from Dimers of Flower‐Like Silver Mesoparticles. Small. 2012; 8(22):3400-5.
Mirkin CA. Programming the assembly of two-and three-dimensional architectures with DNA and nanoscale inorganic building blocks. Inorganic chemistry. 2000; 39(11):2258-72.
Brennan SA, Fhoghlú CN, Devitt BM. FJ O′ mahony, D. Brabazon and A. Walsh. Bone Joint J. 2015; 97:582-9.
Jiang Z, Chen Y, Liang A, Tao H, Tang N, Zhong F. Silver nanoparticle labeled immunoresonance scattering spectral assay for trace fibrinogen. Science in China Series B: Chemistry. 2007; 50(3):345-50.
Yan M. Nanoporous gold catalyst for highly selective semihydrogenation of alkynes: Remarkable effect of amine additives. InDevelopment of New Catalytic Performance of Nanoporous Metals for Organic Reactions 2014 (pp. 55-91). Springer, Tokyo.
Yoon KY, Byeon JH, Park CW, Hwang J. Antimicrobial effect of silver particles on bacterial contamination of activated carbon fibers. Environmental science & technology. 2008; 42(4):1251-5.
Chouhan N. Silver nanoparticles: synthesis, characterization and applications.
Rai M, Birla S, Ingle AP, Gupta I, Gade A, Abd-Elsalam K, Marcato PD, Duran N. Nanosilver: an inorganic nanoparticle with myriad potential applications. Nanotechnology Reviews. 2014; 3(3):281-309.
Holladay RJ, inventor. Toothpaste or tooth gel containing silver nano particles coated with silver oxide. United States patent application US 2013; 13:135,575.
Chung BH, Lim YT, Kim JK, Jeong JY, Ha TH, inventors; Korea Research Institute of Bioscience, Biotechnology KRIBB, assignee. Cosmetic pigment composition containing gold or silver nano-particles. United States patent application US 2009; 11:847,995
Published



How to Cite
Issue
Section
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC 4.0). that allows others to share the work with an acknowledgment of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgment of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).