362
33. Hossain, Md. Faruque. (2018). Transforming Dark Photon into Sustainable Energy.
International Journal of Energy and Environmental Engineering. https://doi.org/10.1007/
s40095-017-0257-1.
34. Huang, J. F., Shi, T., Sun, C. P. and Nori, F. Controlling single-photon transport in waveguides
with finite cross section. Phys. Rev. A 88, 013836 (2013).
35. Yan, W., Huang, J. and Fan, H. “Tunable single-photon frequency conversion in a Sagnac
interferometer”, Scientific Reports, 2013.
36. Yu, G.. “A novel two-mode MPPT control algorithm based on comparative study of existing
algorithms”, Solar Energy, 2004.
37. Shen, J. T. and Fan, S. Strongly correlated two-photon transport in a one-dimensional waveguide coupled to a two-level system. Phys. Rev. Lett. 98, 153003 (2007).
38. Yang, L., Wang, S., Zeng, Q., Zhang, Z., Pei, T., Li, Y. and Peng, L. (2011). Efficient photovoltage multiplication in carbon nanotubes. Nature Photonics pp 672 – 676.
39. Huang, Y., Min, C. and Veronis, G. Subwavelength slow-light waveguides based on a plasmonic analogue of electromagnetically induced transparency. Appl. Phys. Lett. 99, 143117
(2011).
40. Lang, C. et al. Observation of resonant photon blockade at microwave frequencies using correlation function measurements. Phys. Rev. Lett. 106, 243601 (2011).
41. Jentschura, U., Hencken, K. and Serbo, V. Revisiting unitarity corrections for electromagnetic
processes in collisions of relativistic nuclei. The European Physical Journal C, 58(2), pp. 281289. (2008).
42. Lei, C. U. and Zhang, W. M. A quantum photonic dissipative transport theory. Ann. Phys. 327,
1408 (2012).
43. Zhang, W. M., Lo, P. Y., Xiong, H. N., Tu, M. W. Y. and Nori, F. General Non-Markovian
Dynamics of Open Quantum Systems. Phys. Rev. Lett. 109, 170402 (2012).
44. H Rauh. “Optical transmittance of photonic structures with linearly graded dielectric constituents”, New Journal of Physics, 07/26/2010.
45. Zhu, Yu, Xiaoyong Hu, Hong Yang, and Qihuang Gong. “On-chip plasmon-induced transparency based on plasmonic coupled nanocavities”, Scientific Reports, 2014.
46. Tang, Jing, Weidong Geng, and Xiulai Xu. “Quantum Interference Induced Photon Blockade
in a Coupled Single Quantum Dot-Cavity System”, Scientific Reports, 2015.
47. Etienne Saloux, Alberto Teyssedou, Mikhaïl Sorin. “Explicit model of photovoltaic panels to
determine voltages and currents at the maximum power point”, Solar Energy, 2011.
48. Joannopoulos, J. D., Villeneuve, P. R. and Fan, S. Photonic crystals: putting a new twist on
light. Nature 386, 143 (1997).
49. Sánchez Muñoz, C., Laussy, F., Valle, E., Tejedor, C. and González-Tudela, A. (2018). Filtering
multiphoton emission from state-of-the-art cavity quantum electrodynamics. Optica, 5 (1),
14-26.
50. Tame, M. S., McEnery, K. R., Özdemir, Ş. K., Lee, J., Maier, S. A. and Kim, M. S. “Quantum
plasmonics”, Nature Physics, 2013.
51. Kai Hencken. “Transverse Momentum Distribution of Vector Mesons Produced in
Ultraperipheral Relativistic Heavy Ion Collisions”, Physical Review Letters, 01/2006.
52. Klein, S. A. Calculation of flat-plate collector loss coefficients. Solar Energy, 17:79–80, 1975.
53. Roy, D. Two-photon scattering of a tightly focused weak light beam from a small atomic
ensemble: An optical probe to detect atomic level structures. Phys. Rev. A 87, 063819 (2013).
54. Marco T. Manzoni, Darrick E. Chang, James S. Douglas. “Simulating quantum light propagation through atomic ensembles using matrix product states”, Nature Communications.
55. Poshakinskiy, Alexander V., Alexander, and Poddubny N. “Biexciton-mediated superradiant
photon blockade”, Physical Review A, 2016.
56. Matteo Mariantoni, H. Wang, Radoslaw C. Bialczak, M. Lenander et al. “Photon shell game in
three-resonator circuit quantum electrodynamics”, Nature Physics, 2011.
57. O’Shea, D., Junge, C., Volz, J. and Rauschenbeutel, A. Fiber-optical switch controlled by a
single atom. Phys. Rev. Lett. 111, 193601. (2013).
16 Sustainable Cities and Communities
33. Hossain, Md. Faruque. (2018). Transforming Dark Photon into Sustainable Energy.
International Journal of Energy and Environmental Engineering. https://doi.org/10.1007/
s40095-017-0257-1.
34. Huang, J. F., Shi, T., Sun, C. P. and Nori, F. Controlling single-photon transport in waveguides
with finite cross section. Phys. Rev. A 88, 013836 (2013).
35. Yan, W., Huang, J. and Fan, H. “Tunable single-photon frequency conversion in a Sagnac
interferometer”, Scientific Reports, 2013.
36. Yu, G.. “A novel two-mode MPPT control algorithm based on comparative study of existing
algorithms”, Solar Energy, 2004.
37. Shen, J. T. and Fan, S. Strongly correlated two-photon transport in a one-dimensional waveguide coupled to a two-level system. Phys. Rev. Lett. 98, 153003 (2007).
38. Yang, L., Wang, S., Zeng, Q., Zhang, Z., Pei, T., Li, Y. and Peng, L. (2011). Efficient photovoltage multiplication in carbon nanotubes. Nature Photonics pp 672 – 676.
39. Huang, Y., Min, C. and Veronis, G. Subwavelength slow-light waveguides based on a plasmonic analogue of electromagnetically induced transparency. Appl. Phys. Lett. 99, 143117
(2011).
40. Lang, C. et al. Observation of resonant photon blockade at microwave frequencies using correlation function measurements. Phys. Rev. Lett. 106, 243601 (2011).
41. Jentschura, U., Hencken, K. and Serbo, V. Revisiting unitarity corrections for electromagnetic
processes in collisions of relativistic nuclei. The European Physical Journal C, 58(2), pp. 281289. (2008).
42. Lei, C. U. and Zhang, W. M. A quantum photonic dissipative transport theory. Ann. Phys. 327,
1408 (2012).
43. Zhang, W. M., Lo, P. Y., Xiong, H. N., Tu, M. W. Y. and Nori, F. General Non-Markovian
Dynamics of Open Quantum Systems. Phys. Rev. Lett. 109, 170402 (2012).
44. H Rauh. “Optical transmittance of photonic structures with linearly graded dielectric constituents”, New Journal of Physics, 07/26/2010.
45. Zhu, Yu, Xiaoyong Hu, Hong Yang, and Qihuang Gong. “On-chip plasmon-induced transparency based on plasmonic coupled nanocavities”, Scientific Reports, 2014.
46. Tang, Jing, Weidong Geng, and Xiulai Xu. “Quantum Interference Induced Photon Blockade
in a Coupled Single Quantum Dot-Cavity System”, Scientific Reports, 2015.
47. Etienne Saloux, Alberto Teyssedou, Mikhaïl Sorin. “Explicit model of photovoltaic panels to
determine voltages and currents at the maximum power point”, Solar Energy, 2011.
48. Joannopoulos, J. D., Villeneuve, P. R. and Fan, S. Photonic crystals: putting a new twist on
light. Nature 386, 143 (1997).
49. Sánchez Muñoz, C., Laussy, F., Valle, E., Tejedor, C. and González-Tudela, A. (2018). Filtering
multiphoton emission from state-of-the-art cavity quantum electrodynamics. Optica, 5 (1),
14-26.
50. Tame, M. S., McEnery, K. R., Özdemir, Ş. K., Lee, J., Maier, S. A. and Kim, M. S. “Quantum
plasmonics”, Nature Physics, 2013.
51. Kai Hencken. “Transverse Momentum Distribution of Vector Mesons Produced in
Ultraperipheral Relativistic Heavy Ion Collisions”, Physical Review Letters, 01/2006.
52. Klein, S. A. Calculation of flat-plate collector loss coefficients. Solar Energy, 17:79–80, 1975.
53. Roy, D. Two-photon scattering of a tightly focused weak light beam from a small atomic
ensemble: An optical probe to detect atomic level structures. Phys. Rev. A 87, 063819 (2013).
54. Marco T. Manzoni, Darrick E. Chang, James S. Douglas. “Simulating quantum light propagation through atomic ensembles using matrix product states”, Nature Communications.
55. Poshakinskiy, Alexander V., Alexander, and Poddubny N. “Biexciton-mediated superradiant
photon blockade”, Physical Review A, 2016.
56. Matteo Mariantoni, H. Wang, Radoslaw C. Bialczak, M. Lenander et al. “Photon shell game in
three-resonator circuit quantum electrodynamics”, Nature Physics, 2011.
57. O’Shea, D., Junge, C., Volz, J. and Rauschenbeutel, A. Fiber-optical switch controlled by a
single atom. Phys. Rev. Lett. 111, 193601. (2013).
16 Sustainable Cities and Communities
