331
standard oak tree can transpire 40,000 gallons (151,000 L) per year, tug down of
100% water vapor by HSEF described above will require only four standard oak
trees to satisfy the total water demand for a small family.
Conclusions
Water and environmental vulnerability are the top two problems on earth where
trees play a significant role in creating these problems by the process of transpiration. To mitigate these problems, transpiration mechanism has been proposed to
transform and convert it into clean water to meet the global water demand and
reduce the global warming by the utilization of electrostatic force to capture this
transpiration water vapor and treat in situ by UV application which would indeed be
a novel, integrated, and innovative field in science to console the global water
demand and global warming crisis.
Acknowledgements This research was supported by Green Globe Technology under the grant
RD-02018-06 for building a better environment. Any findings, predictions, and conclusions
described in this chapter are solely performed by the authors and we confirm that there is no conflict of interest for publishing in a suitable journal.
References
1. Josette, M., Scott, R. The ERECTA gene regulates plant transpiration efficiency in Arabidopsis.
Nat. 436, 866–870 (2005).
2. Lang, C. et al. Observation of resonant photon blockade at microwave frequencies using correlation function measurements. Phys. Rev. Lett. 106, 243601 (2011).
3. Reed, M., Maxwell, L. Connections between groundwater flow and transpiration partitioning.
Sci. 353, 377-380 (2015).
4. Scott, J., Zachary, D. Terrestrial water fluxes dominated by transpiration. Nat. 496,
347–350 (2013).
5. Andreas, Reinhard. Strongly correlated photons on a chip. Nat. Phot. 6, 93-96 (2012).
6. Tame, M., McEnery, S., et al. Quant. Plas. 9, 329–340 (2013).
7. Douglas, S., Habibian, H., et al. Quantum many-body models with cold atoms coupled to
photonic crystals. Nat. Phot, 9, 326-331 (2015).
8. Leijing, Y., Sheng, W., Qingsheng, Z., Zhiyong, Z., Tian, P., Yan, L. Efficient photovoltage
multiplication in carbon nanotubes. Nat. Phot. 8, 672 – 676 (2011).
9. Langer, L., Poltavtsev, S., Bayer, M. Access to long-term optical memories using photon
echoes retrieved from semiconductor spins. Nat. Phot. 8, 851–857 (2014).
10. Pregnolato, T., Lee, E., Song, J., Stobbe, D., Lodahl, P. Single-photon non-linear optics with a
quantum dot in a waveguide. Nat. Commun. 6, 8655 (2015).
11. Yuwen, W., Yongyou, Z., Qingyun, Z., Bingsuo, Z., Udo, S. “Dynamics of single photon transport in a one-dimensional waveguide two-point coupled with a Jaynes-Cummings system”.
Sci. Rep. 6, 33867 (2016).
12. Li, Q., Xu, D. Recoil effects of a motional scatterer on single-photon scattering in one dimension. Sci. Rep. 8, 3144 (2013).
References
standard oak tree can transpire 40,000 gallons (151,000 L) per year, tug down of
100% water vapor by HSEF described above will require only four standard oak
trees to satisfy the total water demand for a small family.
Conclusions
Water and environmental vulnerability are the top two problems on earth where
trees play a significant role in creating these problems by the process of transpiration. To mitigate these problems, transpiration mechanism has been proposed to
transform and convert it into clean water to meet the global water demand and
reduce the global warming by the utilization of electrostatic force to capture this
transpiration water vapor and treat in situ by UV application which would indeed be
a novel, integrated, and innovative field in science to console the global water
demand and global warming crisis.
Acknowledgements This research was supported by Green Globe Technology under the grant
RD-02018-06 for building a better environment. Any findings, predictions, and conclusions
described in this chapter are solely performed by the authors and we confirm that there is no conflict of interest for publishing in a suitable journal.
References
1. Josette, M., Scott, R. The ERECTA gene regulates plant transpiration efficiency in Arabidopsis.
Nat. 436, 866–870 (2005).
2. Lang, C. et al. Observation of resonant photon blockade at microwave frequencies using correlation function measurements. Phys. Rev. Lett. 106, 243601 (2011).
3. Reed, M., Maxwell, L. Connections between groundwater flow and transpiration partitioning.
Sci. 353, 377-380 (2015).
4. Scott, J., Zachary, D. Terrestrial water fluxes dominated by transpiration. Nat. 496,
347–350 (2013).
5. Andreas, Reinhard. Strongly correlated photons on a chip. Nat. Phot. 6, 93-96 (2012).
6. Tame, M., McEnery, S., et al. Quant. Plas. 9, 329–340 (2013).
7. Douglas, S., Habibian, H., et al. Quantum many-body models with cold atoms coupled to
photonic crystals. Nat. Phot, 9, 326-331 (2015).
8. Leijing, Y., Sheng, W., Qingsheng, Z., Zhiyong, Z., Tian, P., Yan, L. Efficient photovoltage
multiplication in carbon nanotubes. Nat. Phot. 8, 672 – 676 (2011).
9. Langer, L., Poltavtsev, S., Bayer, M. Access to long-term optical memories using photon
echoes retrieved from semiconductor spins. Nat. Phot. 8, 851–857 (2014).
10. Pregnolato, T., Lee, E., Song, J., Stobbe, D., Lodahl, P. Single-photon non-linear optics with a
quantum dot in a waveguide. Nat. Commun. 6, 8655 (2015).
11. Yuwen, W., Yongyou, Z., Qingyun, Z., Bingsuo, Z., Udo, S. “Dynamics of single photon transport in a one-dimensional waveguide two-point coupled with a Jaynes-Cummings system”.
Sci. Rep. 6, 33867 (2016).
12. Li, Q., Xu, D. Recoil effects of a motional scatterer on single-photon scattering in one dimension. Sci. Rep. 8, 3144 (2013).
References
