360
Conclusions
In recent decades, concern about the deadly risks of greenhouse gases (GHGs) has
been growing due to their level of accumulation in the atmosphere and the adverse
impact on earth due to the conventional development of the cities and communities
throughout the world. Given that conventional energy consumption by these traditional cities and communities is the final factor that leads to environmental perplexity and climate change, the intelligent deployment of solar energy, in effect, for a
better methodological application to mitigate global environmental perplexity and
climate changes is an urgent demand. In addition, the limited nature of the fossil
fuel reserve poses a serious challenge for future energy supply as the consumption
of fossil fuels will end in the next 65 years. In this study, it is therefore proposed to
ensure an economical, reliable, and sustainable energy technology to meet the future
energy demand which is also climate friendly in order to secure sustainable cities
and communities throughout the world. Simply capturing solar thermal energy
using exterior curtain wall of buildings and houses demonstrated in this research
shall indeed be the innovative technology to meet the total energy demand to secure
the development of sustainable cities and communities throughout the world.
Acknowledgements This research was supported by Green Globe Technology, Inc. under the
grant RD-02018-03 for building a better environment. Any findings, predictions, and conclusions
described in this chapter are solely those of the authors, who confirm that the review has no conflicts of interest for publication in a suitable journal.
References
1. Artemyev, N., Jentschura, U. D., Serbo, V. G., Surzhykov, A. Strong Electromagnetic Field
EFFECTS in Ultra-Relativistic Heavy-Ion Collisions. Eur. Phys. J. C 72, 1935 (2012).
2. Birnbaum, K. M. et al. Photon blockade in an optical cavity with one trapped atom. Nature
436, 87–90 (2005).
3. Xiao, Y. F. et al. Asymmetric Fano resonance analysis in indirectly coupled microresonators.
Phys. Rev. A 82, 065804 (2010).
4. Busch, K., von Freymann, G., Linden, S., Mingaleev, S. F., Tkeshelashvili, L. and Wegener,
M. Periodic nanostructures for photonics. Phys. Rep. 444, 101 (2007).
5. Chang, D. E., Sørensen, A. S., Demler, E. A. and Lukin, M. D. A single-photon transistor using
nanoscale surface plasmons. Nature Physics. 3, 807–812 (2007).
6. Cheng, M. and Song, Y. Fano resonance analysis in a pair of semiconductor quantum dots
coupling to a metal nanowire. Opt. Lett. 37, 978–980 (2012).
7. Armani, D. K., Kippenberg, T. J., Spillane, S. M. and Vahala, K. J. Ultra-high-Q toroid microcavity on a chip. Nature 421, 925 (2003).
8. Chen, J., Wang, C., Zhang, R. and Xiao, J. Multiple plasmon-induced transparencies in coupled-resonator systems. Opt. Lett. 37,5133–5135 (2012).
9. Gupta, N., Singh, S.P., Dubey, S.P. and Palwalia, D.K., Fuzzy logic controlled three-phase
three-wired shunt active power filter for power quality improvement, (2011) International
Review of Electrical Engineering (IREE), 6 (3), pp. 1118-1129.
16 Sustainable Cities and Communities
Conclusions
In recent decades, concern about the deadly risks of greenhouse gases (GHGs) has
been growing due to their level of accumulation in the atmosphere and the adverse
impact on earth due to the conventional development of the cities and communities
throughout the world. Given that conventional energy consumption by these traditional cities and communities is the final factor that leads to environmental perplexity and climate change, the intelligent deployment of solar energy, in effect, for a
better methodological application to mitigate global environmental perplexity and
climate changes is an urgent demand. In addition, the limited nature of the fossil
fuel reserve poses a serious challenge for future energy supply as the consumption
of fossil fuels will end in the next 65 years. In this study, it is therefore proposed to
ensure an economical, reliable, and sustainable energy technology to meet the future
energy demand which is also climate friendly in order to secure sustainable cities
and communities throughout the world. Simply capturing solar thermal energy
using exterior curtain wall of buildings and houses demonstrated in this research
shall indeed be the innovative technology to meet the total energy demand to secure
the development of sustainable cities and communities throughout the world.
Acknowledgements This research was supported by Green Globe Technology, Inc. under the
grant RD-02018-03 for building a better environment. Any findings, predictions, and conclusions
described in this chapter are solely those of the authors, who confirm that the review has no conflicts of interest for publication in a suitable journal.
References
1. Artemyev, N., Jentschura, U. D., Serbo, V. G., Surzhykov, A. Strong Electromagnetic Field
EFFECTS in Ultra-Relativistic Heavy-Ion Collisions. Eur. Phys. J. C 72, 1935 (2012).
2. Birnbaum, K. M. et al. Photon blockade in an optical cavity with one trapped atom. Nature
436, 87–90 (2005).
3. Xiao, Y. F. et al. Asymmetric Fano resonance analysis in indirectly coupled microresonators.
Phys. Rev. A 82, 065804 (2010).
4. Busch, K., von Freymann, G., Linden, S., Mingaleev, S. F., Tkeshelashvili, L. and Wegener,
M. Periodic nanostructures for photonics. Phys. Rep. 444, 101 (2007).
5. Chang, D. E., Sørensen, A. S., Demler, E. A. and Lukin, M. D. A single-photon transistor using
nanoscale surface plasmons. Nature Physics. 3, 807–812 (2007).
6. Cheng, M. and Song, Y. Fano resonance analysis in a pair of semiconductor quantum dots
coupling to a metal nanowire. Opt. Lett. 37, 978–980 (2012).
7. Armani, D. K., Kippenberg, T. J., Spillane, S. M. and Vahala, K. J. Ultra-high-Q toroid microcavity on a chip. Nature 421, 925 (2003).
8. Chen, J., Wang, C., Zhang, R. and Xiao, J. Multiple plasmon-induced transparencies in coupled-resonator systems. Opt. Lett. 37,5133–5135 (2012).
9. Gupta, N., Singh, S.P., Dubey, S.P. and Palwalia, D.K., Fuzzy logic controlled three-phase
three-wired shunt active power filter for power quality improvement, (2011) International
Review of Electrical Engineering (IREE), 6 (3), pp. 1118-1129.
16 Sustainable Cities and Communities
