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activity, carbon intensity, and efficiency of natural sinks, P. Natl. Acad. Sci. USA, 104, 1886618870, 2007.
2. Denman, K.L., Brasseur, G., Chdidthaisong, A., Ciais, P., Cox, P.M., Dickinson, et al,
Cambridge University Press, Cambridge, UK and New York, USA, 2007.
3. Hossain, M. F. (2018). Bose-Einstein (B-E) Photonic Energy Structure Reformation for
Cooling and Heating the Premises Naturally. 142, 100-109 https://doi.org/10.1016/j.applthermaleng.2018.06.057. Advanced Thermal Engineering. (Elsevier).
4. Corinne Le Querel, Robbie M. Andrew et al. Global Carbon Budget 2016. Earth System
Science Data, 8, 605-649, 2016. https://doi.org/10.5194/essd-8-605-2016.
5. Earles, J.M. Yeh, S., and Skog, K.E: Timing of carbon emissions from global forest clearance,
Nature Climate Change, 2, 682-685, 2012.
6. Erb, K-H, et al: Bias in the attribution of forest carbon sinks, Nature Climate Change, 3, 854856, 2013.
7. Gonzalez-Gaya, et al: High atmospheric – ocean exchange of semivolatile aromatic hydrocarbons, Nat. Geosci., 9, 438-442, https://doi.org/10.1038/ngeo2714, 2016.
8. Alfredo, M. et al. “In Focus: Biotechnology and chemical technology for biorefineries and
biofuel production”, Journal of Chemical Technology & Biotechnology, 2017.
9. Achard, F., et al: Determination of tropical deforestation rates and related carbon losses from
1990 to 2010. Glob. Change Biol., 20. 2540-2554, 2014.
10. Yin, Y., Ciais, P., Chevallier, F et al.: Variability of fire carbon emissions in Equatorial Asia and
its non-linear sensitivity to El, Nino, Geophys. Res. Lett., 43, 10472-10479, 2016.
11. Ashley, B. et al. “Accelerating net terrestrial carbon uptake during the warming hiatus due to
reduced respiration”, Nature Climate Change, 2017.
12. Hossain, M. F. (2019). Breakdown of Bose-Einstein Photonic Structure to Produce Sustainable
Energy. 5, 202-209. Energy Report. (Elsevier). 2018.
13. Hossain, M. F. (2018). Green Science: Decoding Dark Photon Structure to Produce Clean
Energy. Energy Reports. 4; 41-48. (Elsevier).
14. Hossain, M. F. (2019). Sustainable Technology for Energy and Environmental Benign Building
Design. 22, 130-139. Journal of Building Engineering. (Elsevier).
15. J.J.: El Nino and a record CO 2 rise, Nature Climate Change, 6, 806-810, 2016.
16. Li, W., Ciais, P., Wang, Y., Peng, S. et al: Reducing uncertainties in decadal variability of the
global carbon budget with multiple datasets, P. Natl. Acad. Sci. USA, https://doi.org/10.1073/
pnas.1603956113, in press, 2016.
17. J.W.C: Increase in observed net carbon dioxide uptake by land and oceans during the last 50
years. Nature, 488, 70-72, 2012.
18. Hossain, M. F. (2016). Production of Clean Energy from Cyanobacterial Biochemical Products.
Strategic Planning for Energy and the Environment. 3; 6-23 (Taylor and Francis).
19. Karl, David M., and Matthew J. Church. “Microbial oceanography and the Hawaii Ocean
Time-series programme”, Nature Review Microbiology, 2014.
20. Liu, Y., Xie, J., Ong, C., Vecitis, C. and Zhou, Z. (2015). Electrochemical wastewater treatment with carbon nanotube filters coupled with in situ generated H 2 O 2 . Environmental
Science: Water Research & Technology, 1(6), pp. 769-778.
21. Anav Alessandro, Prince Friedlingstein et al. “Spatio-temporal patterns of terrestrial gross
primary production: A review: GPP spatio-temporal patterns”, Reviews of Geophysics, 2015.
22. Hossain, M. F. “Global environmental vulnerability and the survival period of all living beings
on earth”, International Journal of Environmental Science and Technology, 2018.
23. Hossain, M. F. (2018). Photonic Thermal Energy Control to Naturally Cool and Heat the
Building. Applied Thermal Engineering. 131, 576–586. (Elsevier).
References
References
1. Canadell, J.G. et al: Contributions to accelerating atmospheric CO 2 growth from economic
activity, carbon intensity, and efficiency of natural sinks, P. Natl. Acad. Sci. USA, 104, 1886618870, 2007.
2. Denman, K.L., Brasseur, G., Chdidthaisong, A., Ciais, P., Cox, P.M., Dickinson, et al,
Cambridge University Press, Cambridge, UK and New York, USA, 2007.
3. Hossain, M. F. (2018). Bose-Einstein (B-E) Photonic Energy Structure Reformation for
Cooling and Heating the Premises Naturally. 142, 100-109 https://doi.org/10.1016/j.applthermaleng.2018.06.057. Advanced Thermal Engineering. (Elsevier).
4. Corinne Le Querel, Robbie M. Andrew et al. Global Carbon Budget 2016. Earth System
Science Data, 8, 605-649, 2016. https://doi.org/10.5194/essd-8-605-2016.
5. Earles, J.M. Yeh, S., and Skog, K.E: Timing of carbon emissions from global forest clearance,
Nature Climate Change, 2, 682-685, 2012.
6. Erb, K-H, et al: Bias in the attribution of forest carbon sinks, Nature Climate Change, 3, 854856, 2013.
7. Gonzalez-Gaya, et al: High atmospheric – ocean exchange of semivolatile aromatic hydrocarbons, Nat. Geosci., 9, 438-442, https://doi.org/10.1038/ngeo2714, 2016.
8. Alfredo, M. et al. “In Focus: Biotechnology and chemical technology for biorefineries and
biofuel production”, Journal of Chemical Technology & Biotechnology, 2017.
9. Achard, F., et al: Determination of tropical deforestation rates and related carbon losses from
1990 to 2010. Glob. Change Biol., 20. 2540-2554, 2014.
10. Yin, Y., Ciais, P., Chevallier, F et al.: Variability of fire carbon emissions in Equatorial Asia and
its non-linear sensitivity to El, Nino, Geophys. Res. Lett., 43, 10472-10479, 2016.
11. Ashley, B. et al. “Accelerating net terrestrial carbon uptake during the warming hiatus due to
reduced respiration”, Nature Climate Change, 2017.
12. Hossain, M. F. (2019). Breakdown of Bose-Einstein Photonic Structure to Produce Sustainable
Energy. 5, 202-209. Energy Report. (Elsevier). 2018.
13. Hossain, M. F. (2018). Green Science: Decoding Dark Photon Structure to Produce Clean
Energy. Energy Reports. 4; 41-48. (Elsevier).
14. Hossain, M. F. (2019). Sustainable Technology for Energy and Environmental Benign Building
Design. 22, 130-139. Journal of Building Engineering. (Elsevier).
15. J.J.: El Nino and a record CO 2 rise, Nature Climate Change, 6, 806-810, 2016.
16. Li, W., Ciais, P., Wang, Y., Peng, S. et al: Reducing uncertainties in decadal variability of the
global carbon budget with multiple datasets, P. Natl. Acad. Sci. USA, https://doi.org/10.1073/
pnas.1603956113, in press, 2016.
17. J.W.C: Increase in observed net carbon dioxide uptake by land and oceans during the last 50
years. Nature, 488, 70-72, 2012.
18. Hossain, M. F. (2016). Production of Clean Energy from Cyanobacterial Biochemical Products.
Strategic Planning for Energy and the Environment. 3; 6-23 (Taylor and Francis).
19. Karl, David M., and Matthew J. Church. “Microbial oceanography and the Hawaii Ocean
Time-series programme”, Nature Review Microbiology, 2014.
20. Liu, Y., Xie, J., Ong, C., Vecitis, C. and Zhou, Z. (2015). Electrochemical wastewater treatment with carbon nanotube filters coupled with in situ generated H 2 O 2 . Environmental
Science: Water Research & Technology, 1(6), pp. 769-778.
21. Anav Alessandro, Prince Friedlingstein et al. “Spatio-temporal patterns of terrestrial gross
primary production: A review: GPP spatio-temporal patterns”, Reviews of Geophysics, 2015.
22. Hossain, M. F. “Global environmental vulnerability and the survival period of all living beings
on earth”, International Journal of Environmental Science and Technology, 2018.
23. Hossain, M. F. (2018). Photonic Thermal Energy Control to Naturally Cool and Heat the
Building. Applied Thermal Engineering. 131, 576–586. (Elsevier).
References
