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«SMALL QUANTUM DOTS OF DILUTED MAGNETIC III-V SEMICONDACTOR COMPOUNDS Liudmila A. Pozhar PermaNature, Birmingham, AL 35242 Home Address: 149 Essex ...»

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100. Koppens, F. H. L., Buizert, C., Tielrooij, K. J., Vink, I. T., Nowack, K. C., Meunier, T., Kouwenhoven, L. P., and Vandersypen, L. M. K. (2006). Driven coherent oscillations of a single electron spin in a quantum dot. Nature 442, 766-771.

101. Kitchens, D., Richardella, A., Tang, J.-M., Flatte, M. E., and Yazdani, A. (2006). Atomby-atom substitution of Mn in GaAs and visualization of their hole-mediated interactions.

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102. Nogues, J., Sort, J., Langlais, V., Skumryev, V., Sarinach, S., Munoz, J. S., Baro, M. D.

(2005). Exchange bias in nanostructures. Phys. Reports, 422, 65-117.

103. Hu, X., and Das Sarma, S. (2000). Hilbert-space structure of a solid-state quantum computer: two-electron states of a double –quantum-dot artificial molecule. Phys. Rev. A 61, 062301(19).

104. Recher, P., Sukhorukov, E, V., and Loss, D. (2000). Quantum dot as spin filter and spin memory. Phys. Rev. Lett. 85, 1962-1965.

105. Meier, F., Levy, J., and Loss, D. (2003). Quantum computing with antiferromagnetic spin clusters. Phys. Rev. B 68, 134417 (15).

106. Scrola, V. W., and Das Sarma, S. (2005). Exchange gate in solid-state quantum computation: the applicability of the Heisenberg model. Phys. Rev. A 71, 032340(12).

107. Mizel, A., and Lidar, D. A. (2004). Exchange interaction between three and four coupled quantum dots: theory and applications to quantum computing. Phys.Rev. B 70, 115310(13).

108. Meier, F., Carletti, V., Gywat, O., Loss, D., and Awschalom, D. D. (2004). Molecular spintronics: coherent spin transfer in coupled quantum dots. Phys. Rev. B 69, 195315(12).

109. Lehmann, J., and Loss, D. (2006). Cotunneling current through quantum dots with phonon-assisted spin-flip processes. Phys. Rev. B 73, 045328 (10).

110. Datta, S. N. (2005). Derivation of quantum Langevin equation from an explicit molecular-medium treatment in interaction picture. J. Phys. Chem. A 109, 11417-11423.

111. Reimann, S. M., and Manninen, M. (2002). Electronic structure of quantum dots. Rev.

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112. Ohya, S., Takata, K., Tanaka, M. (2011). Nearly non-magnetic valence band of the ferromagnetic semiconductor GaMnAs. Nature Physics 7, 342 – 347.

113. Oszwaldowski, R., Žutić, I., and Petukhov, A. G. (2011). Magnetism in closed-shell quantum dots: emergence of magnetic bipolars. Phys. Rev. Lett. 106, 177201 (4).

114. Wijnheijmer, A. P., Makarovsky, O., Garleff, J. K., Eaves, L., Campion, R. P., Gallagher, B. L., and Koenraad, P. (2010). Nanoscale potential fluctuations in (Ga,Mn)As/GaAs heterostructuresfrom individual ions to charged clusters and electrostatic quantum dots.

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115. Gan’shina, E. A., Golik, L. L., Kovalev, V. I., Kun’kova, Z. E., Temiryazeva, M. P., Danilov, Y. A., Viktorova, O. V., Zvonkov, B. N., Rubacheva A. D., Tcherbak, P. N., and Vinogradov, A. N. (2011). On nature of resonant transversal Kerr effect in InMnAs and GaMnAs layers. Solid State Phenomena 168-169, 35-38.

116. Placidi, E., Zallo, E., Arciprete, F., Fantoni, M., Patella, F., and Balzarotti, A. (2011) Comparative study of low temperature growth of InAs and InMnAs quantum dots.

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117. Hai, P. N., Ohya, S., and Tanaka, M. (2010). Long spin-relaxation time in a single metal nanoparticle. Nature Nanotechnology 5, 593 – 596.

118. Šliwa, C., and Dietl, T. (2011). Thermodynamic and thermoelectric properties of (Ga,Mn)As and related compounds. Phys. Rev. B 83, 245210 (7).

119. Pozhar, L. A., Yeates, A. T., Szmulowicz, F., and Mitchel, W. C. (2006). Virtual synthesis of artificial molecules of In, Ga and As with pre-designed electronic properties using a self-consistent field method. Phys. Rev. B 74, 085306 (11). See also: (2006).

Virtual J. Nanoscale Sci & Technol. 14, No. 8, http://www.vjnano.org.

120. Pozhar, L. A., Yeates, A. T., Szmulowicz, F., and Mitchel, W. C. (2005). Small atomic clusters as prototypes for sub-nanoscale heterostructure units with pre-designed charge transport properties. EuroPhys. Lett. 71, 380-386.

121. Pozhar, L. P., and Mitchel, W. C. (2009). Virtual synthesis of electronic nanomaterials:

fundamentals and prospects. In “Toward Functional Nanomaterials. Lecture Notes in Nanoscale Science and Technology” (Z. Wang, A. Waag and G. Salamo, Eds.), Vol. 5, pp. 423-474. Springer, New York.

122. Boldyrev, A. I., and Wang, L.-S. (2001). Beyond classical stoichiometry: experiment and theory. J. Phys. Chem. 105, 10759-10775.

123. Pozhar, L. A., and Mitchel, W. C. (2007). Collectivization of Electronic Spin Distributions and Magneto-Electronic Properties of Small Atomic Clusters of Ga and In with As, V and Mn. IEEE Trans. Magn. 43, 3037-3039.

124. Pozhar, L. A., Yeates, A. T., Szmulowicz, F., and Mitchel, W. C. (2006). MagnetoOptical Properties of Small Atomic Clusters of Ga or In with As, V and Mn. Mater. Res.

Soc. Proc. 906E, 0906-HH01-05 (6).

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