Cavitation: A Novel Energy-Efficient Technique for the by Sivakumar Manickam, Muthupandian Ashokkumar

By Sivakumar Manickam, Muthupandian Ashokkumar

As nanomaterials and their finish items occupy the head place of patron markets, it turns into important to investigate their iteration procedures. one of many eco-friendly chemistry rules underlines the necessity for strange strength resources to generate them. using the intense power from the cave in of cavitation bubbles, generated via both ultrasound or hydrodynamic forces, for the new release of nanomaterials is a benefit to think about during this "Green Chemical Processing Era."

A wide selection of nanomaterials were built some time past decade utilizing cavitation or coupling cavitation with different concepts resembling microwave, photochemistry, and electrochemistry, leading to nanomaterials with detailed morphologies, decreased measurement, slim dimension distribution, and innumerous merits. whereas a number of at the moment on hand books take care of the elemental facets of cavitation and sonochemistry, this e-book is dedicated particularly to the technologically vital nanomaterials got through cavitation.

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S. (2001). Sonoluminescence and Sonochemistry: Encyclopedia of Physical Science and Technology. , R. A. Meyers. San Diego: Academic Press. Suslick, K. , Gawienowski, J. , Schubert, P. F. and Wang, H. H. (1983). Alkane sonochemistry. J. Phys. , 87, pp. 2299–2301. , Guo, W. (2008). Sonochemistry-assisted microwave synthesis and optical study of single-crystalline CdS nanoflowers. Ultrason. , 15(4), pp. 350–356. , and Li, D. (2012). Synthesis of CdSe and CdSe/ TiO2 nanoparticles under multibubble sonoluminescence condition.

2012). Ultrasound-assisted synthesis of Li-rich mesoporous LiMn2O4 nanospheres for enhancing the electrochemical performance in Li-ion secondary batteries. Ultrason. , 19(3), pp. 627–631. , Xue, Z. and Liu, X. (2012). A simple and an efficient strategy to synthesize multicomponent nanocomposites for biosensor applications. Anal. Chim. Acta, 711, pp. 40–45. , Michel, J. and Fricoteaux, P. (2010). Sono and electrochemical synthesis and characterization of copper core–silver shell nanoparticles. Ultrason.

11). The ultrasound irradiation of 35 kHz at 320 W showed an enhanced diffusion of MNP to the HAP host matrix and led to the formation of m-HAP. This sonochemical method was rapid and cheaper as compared to other conventional methods as it does not require high temperature and stabilizer. This study also confirmed the formation of pure m-HAP nanocomposite with distinctive magnetic properties needed for biological applications. 11 TEM images of (A) m-HAP synthesized at 28 kHz and at 150 W and (B) m-HAP synthesized at 35 kHz and at 320 W.

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