6 Group 13–15 Needle-Shaped Oligomers and Nanorods: Structures. . .
263
ALD approach in our opinion is potentially very powerful tool to controllably
produce the functionalized rod-shaped 13–15 oligomers.
Another important issue which is of interest to both theoreticians and experimentalists is to study how the functionalization of rod-shaped 13–15 oligomers
with photoactive, luminescent, red-ox, or other functional groups will affect the
properties of the constructed multipurpose composite functional materials. Thus,
we believe that expansion of chemistry of rod-shaped 13–15 oligomers will be
beneficial and highly rewarding both from fundamental and applied point of view.
Acknowledgments Authors thank Resource Center Computer Center of SPSU for the computer
time. This research was supported by SPSU grants 12.50.1563.2013 and 12.38.255.2014.
References
1. A.C. Jones, P. O’Brien, CVD of Compound Semiconductors: Precursor Synthesis, Development and Applications (VCH, Weinheim, 1997)
2. S.P. DenBaars, Proc. IEEE 85, 1740 (1997)
3. W.M. Chen, E. O’Reilly, A. Forchel, C.W. Tu (eds.), N-Containing III-V Semiconductors:
Fundamentals and Applications. European Materials Research Society Symposia Proceedings, (Elsevier, Amsterdam, 2003), p. 136; Solid State Electron. 47, 385(2003)
4. J. Emsley, Chem. World 1(3), 30 (2004)
5. F. Medjdoub, Gallium Nitride (GaN): Physics, Devices, and Technology (CRC Press, Boca
Raton, 2017)
6. G. Meneghesso, M. Meneghini, E. Zanoni (eds.), Gallium Nitride-enabled High Frequency
and High Efficiency Power Conversion (Springer, Cham, 2018)
7. H.-G. Hong, S.-S. Kim, D.-Y. Kim, T. Lee, J.-O. Song, J.H. Cho, C. Sone, Y. Park, T.-Y.
Seong, Appl. Phys. Lett. 88, 103505 (2006)
8. M. Veith, Chem. Rev. 90(1), 3 (1990)
9. F.C. Sauls, L.V. Interrante, Coord. Chem. Rev. 128, 193 (1993)
10. C.J. Carmalt, Coord. Chem. Rev. 223, 217 (2001)
11. W. Uhl, Structure and Bonding, vol 105 (Springer-Verlag, New York, 2003), p. 42
12. M. Cesari, S. Cucinella, The Chemistry of Inorganic Homo- and Heterocycles, vol 1
(Academic Press, London, 1987), p. 167
13. G. Dozzi, S. Cucinella, A. Mazzei, T. Salvatory, Inorg. Chim. Acta 15, 179 (1975)
14. G. H. Robinson (ed.), Coordination Chemistry of Aluminum (VCH, New York, 1993)
15. A. J. Downs (ed.), Chemistry of Aluminum, Gallium, Indium and Thallium (Chapman & Hall,
New York, 1993)
16. C. E. Housecroft (ed.), Comprehensive Organometallic Chemistry, vol 1 (Pergamon, London,
1995)
17. I. Haiduc, The Chemistry of Inorganic Ring Systems (Wiley-Interscience, London, 1970)
18. I. Haiduk, T.F. Edelmann, Supramolecular Organometallic Chemistry (Wiley-VCH, Weinhiem, 1999)
19. S. Aldridge, T. Downs (eds.), The Group 13 Metals Aluminium, Gallium, Indium and
Thallium. Chemical Patterns and Peculiarities (Wiley & Sons Ltd, 2011), p. 726.
https://doi.org/10.1002/9780470976548
20. A.Y. Timoshkin, Coord. Chem. Rev. 249, 2094 (2005)
21. A.Y. Timoshkin, Russ. J. Phys. Chem. A 81, 515 (2007)
22. A.Y. Timoshkin, H.F. Schaefer, J. Phys. Chem. C 112, 13816 (2008)
23. A.Y. Timoshkin, H.F. Schaefer, Inorg. Chem. 44, 843 (2005)
263
ALD approach in our opinion is potentially very powerful tool to controllably
produce the functionalized rod-shaped 13–15 oligomers.
Another important issue which is of interest to both theoreticians and experimentalists is to study how the functionalization of rod-shaped 13–15 oligomers
with photoactive, luminescent, red-ox, or other functional groups will affect the
properties of the constructed multipurpose composite functional materials. Thus,
we believe that expansion of chemistry of rod-shaped 13–15 oligomers will be
beneficial and highly rewarding both from fundamental and applied point of view.
Acknowledgments Authors thank Resource Center Computer Center of SPSU for the computer
time. This research was supported by SPSU grants 12.50.1563.2013 and 12.38.255.2014.
References
1. A.C. Jones, P. O’Brien, CVD of Compound Semiconductors: Precursor Synthesis, Development and Applications (VCH, Weinheim, 1997)
2. S.P. DenBaars, Proc. IEEE 85, 1740 (1997)
3. W.M. Chen, E. O’Reilly, A. Forchel, C.W. Tu (eds.), N-Containing III-V Semiconductors:
Fundamentals and Applications. European Materials Research Society Symposia Proceedings, (Elsevier, Amsterdam, 2003), p. 136; Solid State Electron. 47, 385(2003)
4. J. Emsley, Chem. World 1(3), 30 (2004)
5. F. Medjdoub, Gallium Nitride (GaN): Physics, Devices, and Technology (CRC Press, Boca
Raton, 2017)
6. G. Meneghesso, M. Meneghini, E. Zanoni (eds.), Gallium Nitride-enabled High Frequency
and High Efficiency Power Conversion (Springer, Cham, 2018)
7. H.-G. Hong, S.-S. Kim, D.-Y. Kim, T. Lee, J.-O. Song, J.H. Cho, C. Sone, Y. Park, T.-Y.
Seong, Appl. Phys. Lett. 88, 103505 (2006)
8. M. Veith, Chem. Rev. 90(1), 3 (1990)
9. F.C. Sauls, L.V. Interrante, Coord. Chem. Rev. 128, 193 (1993)
10. C.J. Carmalt, Coord. Chem. Rev. 223, 217 (2001)
11. W. Uhl, Structure and Bonding, vol 105 (Springer-Verlag, New York, 2003), p. 42
12. M. Cesari, S. Cucinella, The Chemistry of Inorganic Homo- and Heterocycles, vol 1
(Academic Press, London, 1987), p. 167
13. G. Dozzi, S. Cucinella, A. Mazzei, T. Salvatory, Inorg. Chim. Acta 15, 179 (1975)
14. G. H. Robinson (ed.), Coordination Chemistry of Aluminum (VCH, New York, 1993)
15. A. J. Downs (ed.), Chemistry of Aluminum, Gallium, Indium and Thallium (Chapman & Hall,
New York, 1993)
16. C. E. Housecroft (ed.), Comprehensive Organometallic Chemistry, vol 1 (Pergamon, London,
1995)
17. I. Haiduc, The Chemistry of Inorganic Ring Systems (Wiley-Interscience, London, 1970)
18. I. Haiduk, T.F. Edelmann, Supramolecular Organometallic Chemistry (Wiley-VCH, Weinhiem, 1999)
19. S. Aldridge, T. Downs (eds.), The Group 13 Metals Aluminium, Gallium, Indium and
Thallium. Chemical Patterns and Peculiarities (Wiley & Sons Ltd, 2011), p. 726.
https://doi.org/10.1002/9780470976548
20. A.Y. Timoshkin, Coord. Chem. Rev. 249, 2094 (2005)
21. A.Y. Timoshkin, Russ. J. Phys. Chem. A 81, 515 (2007)
22. A.Y. Timoshkin, H.F. Schaefer, J. Phys. Chem. C 112, 13816 (2008)
23. A.Y. Timoshkin, H.F. Schaefer, Inorg. Chem. 44, 843 (2005)
