By M. Zborowski and J. J. Chalmers (Eds.)
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Additional resources for Magnetic Cell Separation
F. and Bruus, H. (2005). Theoretical comparison of magnetic and hydrodynamic interactions between magnetically tagged particles in microfluidic systems. J. Magn. Magn. Mater. 293, 578–83.  OberteuVer, J. A. (1973). High gradient magnetic separation. IEEE Trans. Magn. MAG‐9, 303–6. Laboratory Techniques in Biochemistry and Molecular Biology, Volume 32 Magnetic Cell Separation M. Zborowski and J. J. Chalmers (Editors) CHAPTER 2 Magnetic formulary Maciej Zborowski Department of Biomedical Engineering, Learner Research Institute, Cleveland Clinic, Cleveland, OH 44195, USA The behavior of the magnetic field in matter is a topic of numerous textbooks in physics and electrical engineering, and in scientific periodicals, of which only a limited number can be listed here.
Appl. Phys. A 87, 6200–4.  Bozorth, R. M. (1947). Magnetism. Rev. Mod. Phys. 19, 29–86.  Bleaney, B. I. and Bleaney, B. (1991). Electricity and magnetism, Vol. 1. Oxford University Press, Oxford.  Weast, R. C. (1986). CRC handbook of chemistry and physics. 67 ed. , Boca Raton, FL.  Pauling, L. and Coryell, C. D. (1936). The magnetic properties and structure of hemoglobin, oxyhemoglobin and carbonmonoxyhemoglobin. Proc. Natl. Acad. Sci. USA 22, 210–6.  Fabry, M. E. and San George, R.
The diamagnetic moment is orders of magnitude smaller than the paramagnetic or ferromagnetic dipole moments for fields under 1 T, and typically is neglected when considering forces in the magnetic field. However, the eVect does not saturate and in principle, for suYciently high magnetic fields, may produce suYciently high forces to counteract gravity (diamagnetic levitation) [62, 64, 65]. 11Â10À31 kg is the electron rest mass. 53 Â 10À10 m, or the Bohr radius.