By Lukman Ismail, Khairun Azizi Azizli, Thanabalan Murugesan, Saibal Ganguly, Yoshimitsu Uemura
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Shin, C. G. Lee, G. T. Kim, H. S. Park, and J. K. Lee, Investigation on characteristics of thermal conductivity enhancement of nanofluids, Curr. Appl. Phys. 6 (2006) 1068-1071.  H. U. Kang, S. H. Kim, and J. M. Oh, Estimation of thermal conductivity of nanofluid using experimental effective particle volume, Exp. Heat Transfer, 19 (2006) 181-191.  S. P. Jang, and Choi, Role of brownian motion in the enhanced thermal conductivity of nanofluids, J. Appl. Phys. 84 (2004) 3.  S. P. Jang and S.
Guenbour, and A. Ben Bachir, Corrosion inhibition under heat transfer of 904L stainless steel in phosphoric acid by benzotriazole, Prog. Org. 41 (2001) 121127.  S. Y. Zhang, Y. Kong, Z. S. Zhang, and X. Y. Zhang, Hydrophobic interfacing layers for improvement of corrosion protection by polymeric coatings, J. Appl. Electrochem. 33 (2003) 10631068.  R. F. V. Villamil, P. Corio, J. C. Rubim, and S. M. L. Agostinho, Sodium dodecylsulfatebenzotriazole synergistic effect as an inhibitor of processes on copper chloridric acid interfaces, J.
7° of 2θ respectively . Comparing the width and intensity of the peaks, the spectra show no significant difference as the percentage of water content increases. According to Y. Leng , the peak width is the result of the size of the crystals. This implies that the nanocrystallite size and crystallinity of the prepared samples were not much affected by the percentage of the water content added during hydrolysis process. Hence, using Scherer formula Eq. (1) and XRD line broadening, the crystallite size, d was estimated to validate the hypothesis.