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Geometri Kretschmann-Raether

2.6 ASID BORIK

2.6.3 Kesan Asid Borik Terhadap Kesihatan Manusia

Asid borik lazimnya digunakan sebagai bahan untuk membasmi serangga dan merencatkan pertumbuhan bakteria. Oleh itu, ianya sangat tidak selamat apabila digunakan dalam rutin harian manusia terutama dalam pemprosesan makanan. Pertubuhan Kesihatan Sedunia menyatakan bahawa pengambilan harian yang boleh diterima ( Tolerable Daily Intake (TDI)) bagi asid borik adalah 0.16 mg boron/kg berdasarkan panduan kandungan dalam air minuman (Janny 2009). Dos asid borik

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RUJUKAN

Abdelghani, A. & Jaffrezic-Renault, N. 2001. Spr Fibre Sensor Sensitised by Fluorosiloxane Polymers. Sensors and Actuators B: Chemical 74(1–3): 117-123.

Alanazi, F. K., Radwan, A. A. & Alsarra, I. A. 2010. Biopharmaceutical Applications of Nanogold. Saudi Pharmaceutical Journal 18(4): 179-193. Ali, M., Hashim, U., Mustafa, S., Man, Y., Yusop, M., Kashif, M., Dhahi, T. S., Bari,

M., Hakim (a), M. & Latif, M. 2011. Nanobiosensor for Detection and Quantification of DNA Sequences in Degraded Mixed Meats. Journal of Nanomaterials 2011(32.

Ali, M., Hashim, U., Mustafa, S., Man, Y. C., Yusop, M., Bari, M., Islam, K. N. & Hasan, M.(b) 2011. Nanoparticle Sensor for Label Free Detection of Swine DNA in Mixed Biological Samples. Nanotechnology 22(19): 195503.

Ali Umar, A. & Oyama, M. 2006. Formation of Gold Nanoplates on Indium Tin Oxide Surface: Two-Dimensional Crystal Growth from Gold Nanoseed Particles in the Presence of Poly (Vinylpyrrolidone). Crystal growth & design 6(4): 818-821.

Ali Umar, A., Oyama, M., Mat Salleh, M. & Yeop Majlis, B. 2010. Formation of Highly Thin, Electron-Transparent Gold Nanoplates from Nanoseeds in Ternary Mixtures of Cetyltrimethylammonium Bromide, Poly (Vinyl Pyrrolidone), and Poly (Ethylene Glycol). Crystal growth & design 10(8): 3694-3698.

Alinorm, N. 1963. Report of the First Session of the Joint Fao/Who Codex Alimentarius Commission. Food and Agriculture Organization of the United Nations, World Health Organization (WHO)

Anker, J. N., Hall, W. P., Lyandres, O., Shah, N. C., Zhao, J. & Van Duyne, R. P. 2008. Biosensing with Plasmonic Nanosensors. Nature materials 7(6): 442-453.

Balouch, A., Umar, A. A., Tan, S. T., Nafisah, S., Md Saad, S. K., Salleh, M. M. & Oyama, M. 2013. Fibrous, Ultra-Small Nanorod-Constructed Platinum Nanocubes Directly Grown on the Ito Substrate and Their Heterogeneous Catalysis Application. RSC Advances 3(43): 19789-19792.

Barnes, W. L., Dereux, A. & Ebbesen, T. W. 2003. Surface Plasmon Subwavelength Optics. Nature 424(6950): 824-830.

Brigo, L., Cittadini, M., Artiglia, L., Rizzi, G. A., Granozzi, G., Guglielmi, M., Martucci, A. & Brusatin, G. 2013. Xylene Sensing Properties of Aryl-Bridged Polysilsesquioxane Thin Films Coupled to Gold Nanoparticles. Journal of Materials Chemistry C 1(27): 4252-4260.

Busbee, B. D., Obare, S. O. & Murphy, C. J. 2003. An Improved Synthesis of High‐ Aspect‐Ratio Gold Nanorods. Advanced Materials 15(5): 414-416.

Cai, W. & Shalaev, V. M. 2010. Optical Metamaterials. Springer.

Cao, J., Sun, T. & Grattan, K. T. V. 2014. Gold Nanorod-Based Localized Surface Plasmon Resonance Biosensors: A Review. Sensors and Actuators B: Chemical 195(0): 332-351.

Chang, G., Shu, H., Ji, K., Oyama, M., Liu, X. & He, Y. 2014. Gold Nanoparticles Directly Modified Glassy Carbon Electrode for Non-Enzymatic Detection of Glucose. Applied Surface Science 288(0): 524-529.

Chapin, R. E. & Ku, W. W. 1994. The Reproductive Toxicity of Boric Acid. Environmental health perspectives 102(Suppl 7): 87.

Chau, L.-K., Lin, Y.-F., Cheng, S.-F. & Lin, T.-J. 2006. Fiber-Optic Chemical and Biochemical Probes Based on Localized Surface Plasmon Resonance. Sensors and Actuators B: Chemical 113(1): 100-105.

Chen, F., Fei, W., Sun, L., Li, Q., Di, J. & Wu, Y. 2014. Direct Growth of Coupled Gold Nanoparticles on Indium Tin Oxide Substrate and Construction of Biosensor Based on Localized Surface Plasmon Resonance. Sensors and Actuators B: Chemical 191(0): 337-343.

Chen, Y.-Q. & Lu, C.-J. 2009. Surface Modification on Silver Nanoparticles for Enhancing Vapor Selectivity of Localized Surface Plasmon Resonance Sensors. Sensors and Actuators B: Chemical 135(2): 492-498.

Chu, H.-C., Kuo, C.-H. & Huang, M. H. 2006. Thermal Aqueous Solution Approach for the Synthesis of Triangular and Hexagonal Gold Nanoplates with Three Different Size Ranges. Inorganic chemistry 45(2): 808-813. Corbierre, M. K., Beerens, J. & Lennox, R. B. 2005. Gold Nanoparticles Generated

by Electron Beam Lithography of Gold (I)-Thiolate Thin Films. Chemistry of Materials 17(23): 5774-5779.

111

De La Chapelle, M. L., Shen, H., Guillot, N., Frémaux, B., Guelorget, B. & Toury, T. 2013. New Gold Nanoparticles Adhesion Process Opening the Way of Improved and Highly Sensitive Plasmonics Technologies. Plasmonics 8(2): 411-415.

Ding, J., Lu, Z., Wang, R., Shen, G. & Xiao, L. 2014. Piezoelectric Immunosensor with Gold Nanoparticles Enhanced Competitive Immunoreaction Technique for 2,4-Dichlorophenoxyacetic Acid Quantification. Sensors and Actuators B: Chemical 193(0): 568-573.

Eisa, W. H. & Shabaka, A. A. 2013. Ag Seeds Mediated Growth of Au Nanoparticles within Pva Matrix: An Eco-Friendly Catalyst for Degradation of 4-Nitrophenol. Reactive and Functional Polymers 73(11): 1510-1516.

Eustis, S. & El-Sayed, M. A. 2006. Why Gold Nanoparticles Are More Precious Than Pretty Gold: Noble Metal Surface Plasmon Resonance and Its Enhancement of the Radiative and Nonradiative Properties of Nanocrystals of Different Shapes. Chemical Society Reviews 35(3): 209-217.

Fauzia, V., Umar, A. A., Salleh, M. M. & Yahaya, M. 2013. Effect of Gold Nanoparticles Density Grown Directly on the Surface on the Performance of Organic Solar Cell. Current Nanoscience 9(2): 187-191.

Fu, J., Park, B. & Zhao, Y. 2009. Limitation of a Localized Surface Plasmon Resonance Sensor for< I> Salmonella</I> Detection. Sensors and Actuators B: Chemical 141(1): 276-283.

Gaiduk, P. I., Chevallier, J., Prokopyev, S. L. & Nylandsted Larsen, A. 2014. Plasmonic-Based Sno2 Gas Sensor with in-Void Segregated Silver Nanoparticles. Microelectronic Engineering 125(0): 68-72.

Gao, S., Zhang, H., Wang, X., Mai, W., Peng, C. & Ge, L. 2005. Palladium Nanowires Stabilized by Thiol-Functionalized Ionic Liquid: Seed-Mediated Synthesis and Heterogeneous Catalyst for Sonogashira Coupling Reaction. Nanotechnology 16(8): 1234.

Ghosh, S. K. & Pal, T. 2007. Interparticle Coupling Effect on the Surface Plasmon Resonance of Gold Nanoparticles: From Theory to Applications. Chemical Reviews 107(11): 4797-4862.

Guerrero-Martínez, A., Barbosa, S., Pastoriza-Santos, I. & Liz-Marzán, L. M. 2011. Nanostars Shine Bright for You: Colloidal Synthesis, Properties and Applications of Branched Metallic Nanoparticles. Current Opinion in Colloid & Interface Science 16(2): 118-127.

Guo, L., Wang, D., Xu, Y., Qiu, B., Lin, Z., Dai, H., Yang, H.-H. & Chen, G. 2013. Discrimination of Enantiomers Based on Lspr Biosensors Fabricated with Weak Enantioselective and Nonselective Receptors. Biosensors and Bioelectronics 47(0): 199-205.

Haes, A. J., Chang, L., Klein, W. L. & Van Duyne, R. P. 2005. Detection of a Biomarker for Alzheimer's Disease from Synthetic and Clinical Samples Using a Nanoscale Optical Biosensor. Journal of the American Chemical Society 127(7): 2264-2271.

Haes, A. J., Stuart, D. A., Nie, S. & Van Duyne, R. P. (a) 2004. Using Solution-Phase Nanoparticles, Surface-Confined Nanoparticle Arrays and Single Nanoparticles as Biological Sensing Platforms. Journal of fluorescence 14(4): 355-367.

Haes, A. J., Zou, S., Schatz, G. C. & Van Duyne, R. P. (b) 2004. A Nanoscale Optical Biosensor: The Long Range Distance Dependence of the Localized Surface Plasmon Resonance of Noble Metal Nanoparticles. The Journal of Physical Chemistry B 108(1): 109-116.

Hall, D. G. 2006. Structure, Properties, and Preparation of Boronic Acid Derivatives. Overview of Their Reactions and Applications. John Wiley & Sons: Weinheim, Germany.

Hirsch, L. R., Stafford, R., Bankson, J., Sershen, S., Rivera, B., Price, R., Hazle, J., Halas, N. & West, J. 2003. Nanoshell-Mediated near-Infrared Thermal Therapy of Tumors under Magnetic Resonance Guidance. Proceedings of the National Academy of Sciences 100(23): 13549-13554.

Homola, J., Yee, S. S. & Gauglitz, G. 1999. Surface Plasmon Resonance Sensors: Review. Sensors and Actuators B: Chemical 54(1–2): 3-15.

Hong, Y., Huh, Y.-M., Yoon, D. S. & Yang, J. 2012. Nanobiosensors Based on Localized Surface Plasmon Resonance for Biomarker Detection. Journal of Nanomaterials 2012(111.

Huang, C.-J., Wang, Y.-H., Chiu, P.-H., Shih, M.-C. & Meen, T.-H. 2006. Electrochemical Synthesis of Gold Nanocubes. Materials Letters 60(15): 1896-1900.

Jana, N. R., Gearheart, L. & Murphy, C. J. 2001. Evidence for Seed-Mediated Nucleation in the Chemical Reduction of Gold Salts to Gold Nanoparticles. Chemistry of Materials 13(7): 2313-2322.

Janny, M. 2009. Boric Acid and Borax in Food. Incident in Focus. Risk Assessment Section,

113

Centre for Food Safety.

Ji, X., Song, X., Li, J., Bai, Y., Yang, W. & Peng, X. 2007. Size Control of Gold Nanocrystals in Citrate Reduction: The Third Role of Citrate. Journal of the American Chemical Society 129(45): 13939-13948.

Ji, X., Song, X., Li, J., Bai, Y., Yang, W. & Peng, X. 2007. Size Control of Gold Nanocrystals in Citrate Reduction:  The Third Role of Citrate. Journal of the American Chemical Society 129(45): 13939-13948.

Jiang, Z.-J. & Liu, C.-Y. 2003. Seed-Mediated Growth Technique for the Preparation of a Silver Nanoshell on a Silica Sphere. The Journal of Physical Chemistry B 107(45): 12411-12415.

Kah, J. C. Y., Kho, K. W., Lee, C. G. L. & Richard, C. J. 2007. Early Diagnosis of Oral Cancer Based on the Surface Plasmon Resonance of Gold Nanoparticles. International journal of nanomedicine 2(4): 785.

Kajita, T. & Oyama, M. 2011. Tuning of Nanostructures of Gold Nanoparticles on Indium Tin Oxide Surfaces Using a Seed-Mediated Growth Method. Journal of Electroanalytical Chemistry 656(1–2): 264-268.

Kawaguchi, T., Shankaran, D. R., Kim, S. J., Matsumoto, K., Toko, K. & Miura, N. 2008. Surface Plasmon Resonance Immunosensor Using Au Nanoparticle for Detection of Tnt. Sensors and Actuators B: Chemical 133(2): 467-472.

Khalavka, Y., Becker, J. & Sonnichsen, C. 2009. Synthesis of Rod-Shaped Gold Nanorattles with Improved Plasmon Sensitivity and Catalytic Activity. Journal of the American Chemical Society 131(5): 1871-1875.

Khee Chaw, N. & Wenlong, C. 2012. Fine-Tuning Longitudinal Plasmon Resonances of Nanorods by Thermal Reshaping in Aqueous Media. Nanotechnology 23(10): 105602.

Kreibig, U. & Vollmer, M. 1995. Optical Properties of Metal Clusters; Springer: Berlin 25(532.

Kreibig, U. & Zacharias, P. 1970. Surface Plasma Resonances in Small Spherical Silver and Gold Particles. Zeitschrift für Physik 231(2): 128-143.

Kreno, L. E., Hupp, J. T. & Van Duyne, R. P. 2010. Metal− Organic Framework Thin Film for Enhanced Localized Surface Plasmon Resonance Gas Sensing. Analytical Chemistry 82(19): 8042-8046.

Kretschmann, E. 1972. Decay of Non Radiative Surface Plasmons into Light on Rough Silver Films. Comparison of Experimental and Theoretical Results. Optics Communications 6(2): 185-187.

Kretschmann, E. & Raether, H. 1968. Radiative Decay of Non Radiative Surface Plasmons Excited by Light(Surface Plasma Waves Excitation by Light and Decay into Photons Applied to Nonradiative Modes). Zeitschrift Fuer Naturforschung, Teil A 23(2135.

Lai, T., Hou, Q., Yang, H., Luo, X. & Xi, M. 2010. Clinical Application of a Novel Sliver Nanoparticles Biosensor Based on Localized Surface Plasmon Resonance for Detecting the Microalbuminuria. Acta biochimica et biophysica Sinica 42(11): 787-792.

Li, Y., Liu, X. & Lin, Z. 2012. Recent Developments and Applications of Surface Plasmon Resonance Biosensors for the Detection of Mycotoxins in Foodstuffs. Food Chemistry 132(3): 1549-1554.

Liedberg, B., Nylander, C. & Lundström, I. 1995. Biosensing with Surface Plasmon Resonance — How It All Started. Biosensors and Bioelectronics 10(8): i-ix. Liedberg, B., Nylander, C. & Lunström, I. 1983. Surface Plasmon Resonance for

Gas Detection and Biosensing. Sensors and Actuators 4(0): 299-304.

Litovitz, T. L., Klein-Schwartz, W., Oderda, G. M. & Schmitz, B. F. 1988. Clinical Manifestations of Toxicity in a Series of 784 Boric Acid Ingestions. The American Journal of Emergency Medicine 6(3): 209-213.

Liu, B., Xie, J., Lee, J., Ting, Y. & Chen, J. P. 2005. Optimization of High-Yield Biological Synthesis of Single-Crystalline Gold Nanoplates. The Journal of Physical Chemistry B 109(32): 15256-15263.

Low, W. H. 1906. Boric Acid: Its Detection and Determination in Large or Small Amounts. Journal of the American Chemical Society 28(7): 807-823.

Lubbers, D. W. & Opitz, N. 1975. Eine Neue Pco2-Bzw: Po2-Messondezur Messung Des Pco2 Oder Po2 Von Gasen Und Flu¨ Ssigkeiten. Zeitschrift Fu¨ r Naturforschung C 30(532–533.

Ma, X., Truong, P. L., Anh, N. H. & Sim, S. J. 2014. Single Gold Nanoplasmonic Sensor for Clinical Cancer Diagnosis Based on Specific Interaction between Nucleic Acids and Protein. Biosensors and Bioelectronics

Manikandan, M., Nasser Abdelhamid, H., Talib, A. & Wu, H.-F. 2014. Facile Synthesis of Gold Nanohexagons on Graphene Templates in Raman

115

Spectroscopy for Biosensing Cancer and Cancer Stem Cells. Biosensors and Bioelectronics 55(0): 180-186.

Mayer, K. M. & Hafner, J. H. 2011. Localized Surface Plasmon Resonance Sensors. Chemical Reviews 111(6): 3828-3857.

Mie, G. 1908. Ann. Phys. (Weinheim, Ger.) 25(377.

Millstone, J. E., Métraux, G. S. & Mirkin, C. A. 2006. Controlling the Edge Length of Gold Nanoprisms Via a Seed‐Mediated Approach. Advanced Functional Materials 16(9): 1209-1214.

Miranda, A., Malheiro, E., Skiba, E., Quaresma, P., Carvalho, P. A., Eaton, P., De Castro, B., Shelnutt, J. A. & Pereira, E. 2010. One-Pot Synthesis of Triangular Gold Nanoplates Allowing Broad and Fine Tuning of Edge Length. Nanoscale 2(10): 2209-2216.

Monkawa, A., Nakagawa, T., Sugimori, H., Kazawa, E., Sibamoto, K., Takei, T. & Haruta, M. 2014. With High Sensitivity and with Wide-Dynamic-Range Localized Surface-Plasmon Resonance Sensor for Volatile Organic Compounds. Sensors and Actuators B: Chemical 196(0): 1-9.

Mulvaney, P. 1996. Surface Plasmon Spectroscopy of Nanosized Metal Particles. Langmuir 12(3): 788-800.

Murphy, C. J. & Jana, N. R. 2002. Controlling the Aspect Ratio of Inorganic Nanorods and Nanowires. Advanced Materials 14(1): 80.

Murray, W. A. & Barnes, W. L. 2007. Plasmonic Materials. Advanced Materials 19(22): 3771-3782.

Nengsih, S., Umar, A. A., Salleh, M. M. & Oyama, M. 2012. Detection of Formaldehyde in Water: A Shape-Effect on the Plasmonic Sensing Properties of the Gold Nanoparticles. Sensors 12(8): 10309-10325.

Nengsih, S., Umar, A. A., Salleh, M. M. & Yahaya, M. 2012. Detection of Formaldehyde Using Plasmonic Properties of Gold Nanoparticles. Key Engineering Materials 495(79-82.

Nikoobakht, B. & El-Sayed, M. A. 2003. Preparation and Growth Mechanism of Gold Nanorods (Nrs) Using Seed-Mediated Growth Method. Chemistry of Materials 15(10): 1957-1962.

Nylander, C., Liedberg, B. & Lind, T. 1982. Gas Detection by Means of Surface Plasmon Resonance. Sensors and Actuators 3(0): 79-88.

Otto, A. 1968. Excitation of Nonradiative Surface Plasma Waves in Silver by the Method of Frustrated Total Reflection. Zeitschrift für Physik 216(4): 398-410.

Oyama, M., Umar, A. A., Salle, M. M. & Majlis, Y. 2011. Chemical Synthesis of Metal Nanoparticles in Aqueous Solutions with the Presence of Some Additives. Sains Malaysiana 40(12): 1345-1353.

Petryayeva, E. & Krull, U. J. 2011. Localized Surface Plasmon Resonance: Nanostructures, Bioassays and Biosensing—a Review. Analytica Chimica Acta 706(1): 8-24.

Platt, U. & Stutz, J. 2008. Differential Absorption Spectroscopy. Springer.

Pockrand, I., Swalen, J. D., Gordon Ii, J. G. & Philpott, M. R. 1978. Surface Plasmon Spectroscopy of Organic Monolayer Assemblies. Surface Science 74(1): 237-244.

Purcell, E. M. & Pennypacker, C. R. 1973. Scattering and Absorption of Light by Nonspherical Dielectric Grains. The Astrophysical Journal 186(705-714. Ritchie, R. 1957. Plasma Losses by Fast Electrons in Thin Films. Physical Review

106(5): 874.

Rivero, P. J., Urrutia, A., Goicoechea, J. & Arregui, F. J. 2012. Optical Fiber Humidity Sensors Based on Localized Surface Plasmon Resonance (Lspr) and Lossy-Mode Resonance (Lmr) in Overlays Loaded with Silver Nanoparticles. Sensors and Actuators B: Chemical 173(0): 244-249.

Sagle, L. B., Ruvuna, L. K., Ruemmele, J. A. & Van Duyne, R. P. 2011. Advances in Localized Surface Plasmon Resonance Spectroscopy Biosensing. Nanomedicine 6(8): 1447-1462.

Sannomiya, T. & Vörös, J. 2011. Single Plasmonic Nanoparticles for Biosensing. Trends in Biotechnology 29(7): 343-351.

Scaffardi, L. B. & Tocho, J. O. 2006. Size Dependence of Refractive Index of Gold Nanoparticles. Nanotechnology 17(5): 1309.

Schillinger, B. M., Berstein, M., Goldberg, L. A. & Shalita, A. R. 1982. Boric Acid Poisoning. Journal of the American Academy of Dermatology 7(5): 667-673. See, A. S., Salleh, A. B., Bakar, F. A., Yusof, N. A., Abdulamir, A. S. & Heng, L. Y.

2010. Risk and Health Effect of Boric Acid. American Journal of Applied Sciences 7(5):

117

Sepúlveda, B., Angelomé, P. C., Lechuga, L. M. & Liz-Marzán, L. M. 2009. Lspr-Based Nanobiosensors. Nano Today 4(3): 244-251.

Shi, Q. W., Huang, W. X., Xu, Y. J., Zhang, Y. X., Yue, F., Qiao, S., Zheng, S. P. & Yan, J. Z. 2012. Synthesis and Terahertz Transmission Properties of Nano-Porous Vanadium Dioxide Films. Journal of Physics D: Applied Physics 45(38): 385302.

Shu, L., Zhou, J., Yuan, X., Petti, L., Chen, J., Jia, Z. & Mormile, P. 2014. Highly Sensitive Immunoassay Based on Sers Using Nano-Au Immune Probes and a Nano-Ag Immune Substrate. Talanta 123(0): 161-168.

Siti‐Mizura, S., Tee, E. & Ooi, H. 1991. Determination of Boric Acid in Foods: Comparative Study of Three Methods. Journal of the Science of Food and Agriculture 55(2): 261-268.

Srituravanich, W., Fang, N., Sun, C., Luo, Q. & Zhang, X. 2004. Plasmonic Nanolithography. Nano letters 4(6): 1085-1088.

Sun, S., Mendes, P., Critchley, K., Diegoli, S., Hanwell, M., Evans, S. D., Leggett, G. J., Preece, J. A. & Richardson, T. H. 2006. Fabrication of Gold Micro-and Nanostructures by Photolithographic Exposure of Thiol-Stabilized Gold Nanoparticles. Nano letters 6(3): 345-350.

Suzuki, M., Nakashima, Y. & Mori, Y. 1999. Spr Immunosensor Integrated Two Miniature Enzyme Sensors. Sensors and Actuators B: Chemical 54(1–2): 176-181.

Suzuki, S. 2005. Boric Acid. Dlm. (pnyt.). Drugs and Poisons in Humans, hlm. 431-435. Springer.

Swalen, J., Gordon, J., Philpott, M., Brillante, A., Pockrand, I. & Santo, R. 1980. Plasmon Surface Polariton Dispersion by Direct Optical Observation. Am. J. Phys 48(8): 669-672.

Tang, L. & Casas, J. 2014. Quantification of Cardiac Biomarkers Using Label-Free and Multiplexed Gold Nanorod Bioprobes for Myocardial Infarction Diagnosis. Biosensors and Bioelectronics 61(70-75.

Tao, H., Lin, Y., Yan, J. & Di, J. 2014. A Plasmonic Mercury Sensor Based on Silver–Gold Alloy Nanoparticles Electrodeposited on Indium Tin Oxide Glass. Electrochemistry Communications 40(0): 75-79.

Townshend, A. 1987. Official Methods of Analysis of the Association of Official Analytical Chemists, 14th Edn.: Sidney Williams (Ed.), Aoac, Arlington Va,

1984 (Isbn 0-935584-24-2). Xxvi+ 1141 Pp. Price $148.50 (USA), $151.50 (All Other Countries), Elsevier.

Tréguer-Delapierre, M., Majimel, J., Mornet, S., Duguet, E. & Ravaine, S. 2008. Synthesis of Non-Spherical Gold Nanoparticles. Gold Bulletin 41(2): 195-207.

Tsigara, A., Benkhial, A., Warren, S., Akkari, F., Wright, J., Frehill, F. & Dempsey, E. 2013. Metal Microelectrode Nanostructuring Using Nanosphere Lithography and Photolithography with Optimization of the Fabrication Process. Thin Solid Films 537(0): 269-274.

Umar, A., Oyama, M., Salleh, M. & Majlis, B. 2012. Silver Nanocombs and Branched Nanowires Formation in Aqueous Binary Surfactants Solution. Journal of Nanoparticle Research 14(7): 1-9.

Umar, A. A., Iwantono, I., Abdullah, A., Salleh, M. M. & Oyama, M. 2012. Gold Nanonetwork Film on the Ito Surface Exhibiting One-Dimensional Optical Properties. Nanoscale research letters 7(1): 1-9.

Umar, A. A. & Oyama, M. 2008. Synthesis of Palladium Nanobricks with Atomic-Step Defects. Crystal growth & design 8(6): 1808-1811.

Umar, A. A., Oyama, M., Salleh, M. M. & Majlis, B. Y. 2009. Formation of High-Yield Gold Nanoplates on the Surface: Effective Two-Dimensional Crystal Growth of Nanoseed in the Presence of Poly(Vinylpyrrolidone) and Cetyltrimethylammonium Bromide. Crystal Growth and Design 9(6): 2835-2840.

Valdes-Dapena, M. A. & Arey, J. B. 1962. Boric Acid Poisoning: Three Fatal Cases with Pancreatic Inclusions and a Review of the Literature. The Journal of Pediatrics 61(4): 531-546.

Wang, C., Kan, C., Zhu, J., Zeng, X., Wang, X., Li, H. & Shi, D. 2010. Synthesis of High-Yield Gold Nanoplates: Fast Growth Assistant with Binary Surfactants. Journal of Nanomaterials 2010(54.

Wang, S., Li, L., Jin, H., Yang, T., Bao, W., Huang, S. & Wang, J. 2013. Electrochemical Detection of Hepatitis B and Papilloma Virus Dnas Using Swcnt Array Coated with Gold Nanoparticles. Biosensors and Bioelectronics 41(0): 205-210.

Wang, T., Li, S., Jia, M., Guo, C. & Hu, J. 2013. A Seed-Mediated Growth Process for the Fabrication of a Novel Gold Nanoparticles-Attached Nh2+ Ions Implantation-Modified Indium Tin Oxide Electrode and Its Electrocatalytic

119

Activity. Colloids and Surfaces A: Physicochemical and Engineering Aspects 434(0): 229-235.

Wankhede, D. S. 2012. Refractive Index, Molar Refraction and Comparative Refractive Index Study of Propylene Carbonate Binary Liquid Mixtures. Acta Chim. Slov 59(258-263.

Weir Jr, R. J. & Fisher, R. S. 1972. Toxicologic Studies on Borax and Boric Acid. Toxicology and Applied Pharmacology 23(3): 351-364.

Wood, R. W. 1902. On a Remarkable Case of Uneven Distribution of Light in a Diffraction Grating Spectrum. Proceedings of the Physical Society of London 18(1): 269.

Wood, R. 1912. Xxvii. Diffraction Gratings with Controlled Groove Form and Abnormal Distribution of Intensity. The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science 23(134): 310-317.

Xu, M. & Zhang, Y. 2014. Seed-Mediated Approach for the Size-Controlled Synthesis of Flower-Like Ag Mesostructures. Materials Letters 130(0): 9-13. Yang, M., Yi, X., Wang, J. & Zhou, F. 2014. Electroanalytical and Surface Plasmon

Resonance Sensors for Detection of Breast Cancer and Alzheimer's Disease Biomarkers in Cells and Body Fluids. Analyst 139(8): 1814-1825.

Yang, W. H., Schatz, G. C. & Van Duyne, R. P. 1995. Discrete Dipole Approximation for Calculating Extinction and Raman Intensities for Small Particles with Arbitrary Shapes. The Journal of chemical physics 103(3): 869-875.

Yi, Z., Zhang, J.-B., He, H., Xu, B., Luo, B.-C., Li, B., Li, K., Niu, G., Tan, X.-L., Luo, J.-S., Tang, Y.-J., Wu, W.-D. & Yi, Y.-G. 2012. Convenient Synthesis of Silver Nanoplates with Adjustable Size through Seed Mediated Growth Approach. Transactions of Nonferrous Metals Society of China 22(4): 865-872.

Yuan, L., Yang, M., Qu, F., Shen, G. & Yu, R. 2008. Seed-Mediated Growth of Platinum Nanoparticles on Carbon Nanotubes for the Fabrication of Electrochemical Biosensors. Electrochimica Acta 53(10): 3559-3565.

Yurkin, M. A., De Kanter, D. & Hoekstra, A. G. 2010. Accuracy of the Discrete Dipole Approximation for Simulation of Optical Properties of Gold Nanoparticles. Journal of Nanophotonics 4(1): 041585-041585-041515. Zeng, L.-M., Wang, H.-Y. & Guo, Y.-L. 2010. Fast Quantitative Analysis of Boric

Selective Derivatization Reaction Using Triethanolamine. Journal of the American Society for Mass Spectrometry 21(3): 482-485.

Zhao, J., Zhang, X., Yonzon, C. R., Haes, A. J. & Van Duyne, R. P. 2006. Localized Surface Plasmon Resonance Biosensors.

Zhao, Y., Deng, Z.-Q. & Li, J. 2014. Photonic Crystal Fiber Based Surface Plasmon Resonance Chemical Sensors. Sensors and Actuators B: Chemical 202(0): 557-567.

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