9 Si Nanopowder for Photoluminescence and Hydrogen Generation Materials
381
make them really healthy. The decrease of oxidative stress by internal hydrogen
generation can also retard aging, which can extend health life expectancy.
Si-based agent which can generate a high amount of hydrogen in bowels is now
being developed in our laboratory. Contrary to conventional medicines, Si-based
agent isn’t absorbed in the body, but only hydrogen generated from the agent is
absorbed. Therefore, a medicine with great medical effects but without any side
effects is expected to be developed using Si-based agent.
References
1. N. O’Farrell, A. Houlton, B.R. Horrocks, Int. J. Nanomed. 1, 451 (2006)
2. Z. Kang, Y. Liu, C.H.A. Tsang, D.D.D. Ma, X. Fan, N.-B. Wong, S.-T. Lee, Adv. Mater. 21,
661 (2009)
3. X.P. Zhu, T. Yukawa, M. Hirai, T. Suzuki, H. Suematsu, W. Jiang, K. Yatsui, Appl. Surf. Sci.
242, 256 (2005)
4. M. Inada, H. Nakagawa, I. Umezu, A. Sugimura, Mater. Sci. Eng. B101, 283 (2003)
5. L. Mangolini, J. Vac. Sci. Technol. B 31, 020801 (2013)
6. O.B. Gusev, A.N. Poddubny, A.A. Prokofiev, I.N. Yassievich, Semiconductors 47(2), 183–202
(2013)
7. Z. Gu, X.-Y. Chen, Q.-D. Shen, H.-X. Ge, H.-H. Xu, Polymer 51, 902 (2010)
8. E. Fazio, F. Barreca, S. Spadaro, G. Currò, F. Neri, Mater. Chem. Phys. 130, 418 (2011)
9. K. Watanabe, K. Sawada, M. Koshiba, M. Fujii, S. Hayashi, Appl. Surf. Sci. 197–198, 635
(2002)
10. L. Nikolova, R.G. Saint-Jacques, C. Dahmoune, G.G. Ross, Surf. Coat. Technol. 203, 2501
(2009)
11. P.T. Huy, V.V. Thu, N.D. Chien, C.A.J. Ammerlaan, J. Weber, Physica B 376–377, 868 (2006)
12. C. Lam, Y.F. Zhang, Y.H. Tang, C.S. Lee, I. Bello, S.T. Lee, J. Crystal Growth 220, 466 (2000)
13. Y.V. Ryabchikov, S.A. Alekseev, V. Lysenko, G. Bremond, J.-M. Bluet, J. Nanopart. Res. 15,
1535 (2013)
14. M. Imamura, J. Nakamura, S. Fujimasa, H. Yasuda, H. Kobayashi, Y. Negishi, Eur. Phys. J. D
63, 289 (2011)
15. Y.C. Fang, Y. Zhang, H.Y. Gao, L.G. Chen, B. Gao, W.Z. He, Q.S. Meng, C. Zhang, Z.C. Dong,
Appl. Surf. Sci. 285P, 572 (2013)
16. T. Matsumoto, M. Maeda, H. Kobayashi, Nanoscale Res. Lett. 11, 7 (2016)
17. M. Maeda, T. Matsumoto, H. Kobayashi, Phys. Chem. Chem. Phys. 19, 21856 (2017)
18. T. Matsumoto, M. Maeda, J. Furukawa, W.-B. Kim, H. Kobayashi, J. Nanopart. Res. 16, 2240
(2014)
19. M. Maeda, K. Imamura, T. Matsumoto, H. Kobayashi, Appl. Surf. Sci. 312, 39 (2014)
20. T. Ida, S. Shimazaki, H. Hibino, H. Toraya, J. Appl. Cryst. 36, 1107 (2003)
21. G. Conibeer, Silicon nanocrystals, Pavesi and R. Turan (eds.), Wiley-VCH Verlag GmbH &
Co. KGaA, Weinheim, pp. 555–561, 2010.
22. J.P. Wilcoxon, G.A. Samara, P.N. Provencio, Phys. Rev. B 60, 2704 (1999)
23. K. Ohno, Chem. Phys. Lett. 53, 571 (1978)
24. A. Henβge, J. Acker, C. Müller, Talanta 68, 581 (2006)
25. K. Oura, VG. Lifshits, AA. Saranin, AV. Zotov, and M. Katayama, Surface Science, Springer,
Berlin/Heiderberg/New York, p. 267, 2003.
26. D.R. Johar, L.H. Bernstein, Diab. Res. Clin. Pract. 126, 222 (2017)
27. K. Takeshita, C. Chi, H. Hirata, M. Oho, T. Ozawa, Free Radic. Biol. Med. 40, 876 (2006)
381
make them really healthy. The decrease of oxidative stress by internal hydrogen
generation can also retard aging, which can extend health life expectancy.
Si-based agent which can generate a high amount of hydrogen in bowels is now
being developed in our laboratory. Contrary to conventional medicines, Si-based
agent isn’t absorbed in the body, but only hydrogen generated from the agent is
absorbed. Therefore, a medicine with great medical effects but without any side
effects is expected to be developed using Si-based agent.
References
1. N. O’Farrell, A. Houlton, B.R. Horrocks, Int. J. Nanomed. 1, 451 (2006)
2. Z. Kang, Y. Liu, C.H.A. Tsang, D.D.D. Ma, X. Fan, N.-B. Wong, S.-T. Lee, Adv. Mater. 21,
661 (2009)
3. X.P. Zhu, T. Yukawa, M. Hirai, T. Suzuki, H. Suematsu, W. Jiang, K. Yatsui, Appl. Surf. Sci.
242, 256 (2005)
4. M. Inada, H. Nakagawa, I. Umezu, A. Sugimura, Mater. Sci. Eng. B101, 283 (2003)
5. L. Mangolini, J. Vac. Sci. Technol. B 31, 020801 (2013)
6. O.B. Gusev, A.N. Poddubny, A.A. Prokofiev, I.N. Yassievich, Semiconductors 47(2), 183–202
(2013)
7. Z. Gu, X.-Y. Chen, Q.-D. Shen, H.-X. Ge, H.-H. Xu, Polymer 51, 902 (2010)
8. E. Fazio, F. Barreca, S. Spadaro, G. Currò, F. Neri, Mater. Chem. Phys. 130, 418 (2011)
9. K. Watanabe, K. Sawada, M. Koshiba, M. Fujii, S. Hayashi, Appl. Surf. Sci. 197–198, 635
(2002)
10. L. Nikolova, R.G. Saint-Jacques, C. Dahmoune, G.G. Ross, Surf. Coat. Technol. 203, 2501
(2009)
11. P.T. Huy, V.V. Thu, N.D. Chien, C.A.J. Ammerlaan, J. Weber, Physica B 376–377, 868 (2006)
12. C. Lam, Y.F. Zhang, Y.H. Tang, C.S. Lee, I. Bello, S.T. Lee, J. Crystal Growth 220, 466 (2000)
13. Y.V. Ryabchikov, S.A. Alekseev, V. Lysenko, G. Bremond, J.-M. Bluet, J. Nanopart. Res. 15,
1535 (2013)
14. M. Imamura, J. Nakamura, S. Fujimasa, H. Yasuda, H. Kobayashi, Y. Negishi, Eur. Phys. J. D
63, 289 (2011)
15. Y.C. Fang, Y. Zhang, H.Y. Gao, L.G. Chen, B. Gao, W.Z. He, Q.S. Meng, C. Zhang, Z.C. Dong,
Appl. Surf. Sci. 285P, 572 (2013)
16. T. Matsumoto, M. Maeda, H. Kobayashi, Nanoscale Res. Lett. 11, 7 (2016)
17. M. Maeda, T. Matsumoto, H. Kobayashi, Phys. Chem. Chem. Phys. 19, 21856 (2017)
18. T. Matsumoto, M. Maeda, J. Furukawa, W.-B. Kim, H. Kobayashi, J. Nanopart. Res. 16, 2240
(2014)
19. M. Maeda, K. Imamura, T. Matsumoto, H. Kobayashi, Appl. Surf. Sci. 312, 39 (2014)
20. T. Ida, S. Shimazaki, H. Hibino, H. Toraya, J. Appl. Cryst. 36, 1107 (2003)
21. G. Conibeer, Silicon nanocrystals, Pavesi and R. Turan (eds.), Wiley-VCH Verlag GmbH &
Co. KGaA, Weinheim, pp. 555–561, 2010.
22. J.P. Wilcoxon, G.A. Samara, P.N. Provencio, Phys. Rev. B 60, 2704 (1999)
23. K. Ohno, Chem. Phys. Lett. 53, 571 (1978)
24. A. Henβge, J. Acker, C. Müller, Talanta 68, 581 (2006)
25. K. Oura, VG. Lifshits, AA. Saranin, AV. Zotov, and M. Katayama, Surface Science, Springer,
Berlin/Heiderberg/New York, p. 267, 2003.
26. D.R. Johar, L.H. Bernstein, Diab. Res. Clin. Pract. 126, 222 (2017)
27. K. Takeshita, C. Chi, H. Hirata, M. Oho, T. Ozawa, Free Radic. Biol. Med. 40, 876 (2006)
