By Enrico Drioli, Lidietta Giorno
This multivolume paintings covers all features of membrane technology and technology--from uncomplicated phenomena to the main complicated functions and destiny views. smooth membrane engineering is critical to the improvement of process-intensification ideas and to the stimulation of industrial growth. The paintings offers researchers and commercial managers with an crucial device towards attaining those aims.Covers membrane technological know-how idea and economics, in addition to purposes starting from chemical purification and average fuel enrichment to potable waterIncludes contributions and case reports from internationally recognized experts and from up-and-coming researchers operating during this multi-billion greenback box Takes a special, multidisciplinary process that stimulates learn in hybrid applied sciences for present (and destiny) life-saving functions (artificial organs, drug supply)
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Additional info for Comprehensive Membrane Science and Engineering
1989, 90, 1980–1994.  Robb, I. , Stevenson, P. Langmuir 2000, 16, 7168–7172.  Ladhe, A. , Bhattacharyya, D. J. Membr. Sci. 2009, 326, 460–471.  Hestekin, J. , Bachas, L. , Bhattacharyya, D. Ind. Eng. Chem. Res. 2001, 40, 2668–2678.  Ritchie, S. M. , Bachas, L. , Sikdar, S. , Bhattacharyya, D. Langmuir 1999, 15, 6346–6357.  Hollman, A. , Bhattacharyya, D. Langmuir 2002, 18, 5946–5952.  Hollman, A. , Scherrer, N. , Bhattacharyya, D. J. Membr. Sci. 2004, 239, 65–79. , Nilsson, S.
In fact, demanding separation processes nowadays call for materials that can offer a sieving operation at the molecular scale, thus excluding the passage of certain mixture species and selectively allow the transmission of others. A significant amount of research work has already been devoted to the indepth understanding and quantification of the structure-to-separation interrelation using a multitude of experimental and theoretical techniques. Modeling and simulation techniques in membrane science have traditionally relied on similar efforts in the context of porous materials and have adapted appropriately structure approximations and flux relations.
In the next section, application of membrane-immobilized metal nanoparticles for catalytic dechlorination of chloro-organics are discussed. 1 Membrane-Immobilized Nanoparticles for Chloro-Organic Dechlorination Zero-valent iron-based bimetallic nanoparticles are known for the degradation of toxic-chlorinated organic compounds which is important for groundwater remediation. Nanoparticle synthesis in aqueous phase for dechlorination studies has been reported [49–51]. However, in the absence of polymers or surfactants, the nanoparticles can easily aggregate into large particles with wide size distribution.