Nanolaser for generating coherent electromagnetic radiation
Nanolaser for generating coherent electromagnetic radiation, comprising at least one nanoparticle of metal, preferably silver, or semiconductor, at least one exciting element, preferably a quantum dot, for exciting plasmon resonance of the at least one nanoparticle, wherein the at least one nanoparticle and the at least one exciting element are embedded in a matrix of Photonic or Polaritonic Band-gap (PGB)-material, preferably Silica Carbide (SiC).
1. Nanolaser for generating coherent electromagnetic radiation, comprising
at least one nanoparticle of metal,
at least one exciting element for exciting plasmon resonance of the at least one nanoparticle,
wherein the at least one nanoparticle and the at least one exciting element are embedded in a matrix of Photonic or Polaritonic Band-gap (PGB)-material,
wherein the at least one exciting element is a quantum dot, and
wherein the at least one nanoparticle is formed of silver or gold, and the Photonic or Polaritonic Band-gap (PBG)-material is Silica Carbide (SiC).
2. Nanolaser according to claim 1 , wherein the at least one exciting element has two active energy levels.
3. Nanolaser according to claim 1 , further comprising a pumping means for pumping the at least one exciting element.
4. Nanolaser according to claim 1 , comprising only a single nanoparticle and only a single exciting element.
5. Nanolaser according to claim 4 , wherein the nanoparticle is spherical and has a diameter r 1 , the exciting element is spherical and has a diameter r 2 and the distance R between the nanoparticle and the exciting element is as follows:
R ≦( r 1 /2 +r 2 /2)+max( r 1 ,r 2 ).
6. Nanolaser according to claim 1 , comprising at least two nanoparticles and only a single exciting element.
7. Nanolaser according to claim 1 , comprising only a single nanoparticle and at least two exciting elements.
8. Nanolaser according to claim 1 , comprising at least two nanoparticles and at least two exciting elements.
9. Nanolaser according to claim 2 , further comprising a pumping means for pumping the at least one exciting element.
10. Nanolaser according to claim 2 , comprising only a single nanoparticle and only a single exciting element.
11. Nanolaser according to claim 10 , wherein the nanoparticle is spherical and has a diameter r 1 , the exciting element is spherical and has a diameter r 2 and the distance R between the nanoparticle and the exciting element is as follows:
R ≦( r 1 /2 +r 2 /2)+max( r 1 ,r 2 ).
12. Nanolaser according to claim 3 , comprising only a single nanoparticle and only a single exciting element.
13. Nanolaser according to claim 12 , wherein the nanoparticle is spherical and has a diameter r 1 , the exciting element is spherical and has a diameter r 2 and the distance R between the nanoparticle and the exciting element is as follows:
R ≦( r 1 /2 +r 2 /2)+max( r 1 ,r 2 ).
14. Nanolaser according to claim 9 , comprising only a single nanoparticle and only a single exciting element.
15. Nanolaser according to claim 14 , wherein the nanoparticle is spherical and has a diameter r 1 , the exciting element is spherical and has a diameter r 2 and the distance R between the nanoparticle and the exciting element is as follows:
R ≦( r 1 /2 +r 2 /2)+max( r 1 ,r 2 ).
16. Nanolaser according to claim 8 , wherein the nanoparticles are arranged in a layer or layers.
17. Nanolaser according to claim 8 , wherein the exciting elements are arranged in a layer or layers.
18. Nanolaser for generating coherent electromagnetic radiation, comprising
at least one nanoparticle of silver or gold or semiconductor,
at least one exciting element for exciting plasmon resonance of the at least one nanoparticle,
wherein the at least one nanoparticle and the at least one exciting element are embedded in a matrix of Photonic or Polaritonic Band-gap (PBG)-material, the at least one exciting element is a quantum dot, the Photonic or Polaritonic Band-gap (PBG)-material is Silica Carbide (SiC), the at least one exciting element has two active energy levels and the nanolaser further comprises a pumping means; and
wherein the Photonic or Polaritonic Band-gap (PBG)-material reduces spectral width of light emitted by the nanolaser with an order of about 1000 or more compared to a material other than the Photonic or Polaritonic Band-gap (PBG)-material.
19. Nanolaser according to claim 18 , wherein intensity of the light emitted by the nanolaser is amplified at least one hundred times compared to a material other than the Photonic or Polaritonic Band-gap (PBG)-material.
20. Nanolaser according to claim 1 , wherein
the Photonic or Polaritonic Band-gap (PBG)-material reduces spectral width of light emitted by the nanolaser with an order of about 1000 or more compared to a material other than the Photonic or Polaritonic Band-gap (PBG)-material, or
intensity of the light emitted by the nanolaser is amplified at least one hundred times compared to a material other than the Photonic or Polaritonic Band-gap (PBG)-material, or
both the Photonic or Polaritonic Band-gap (PBG)-material reduces spectral width of light emitted by the nanolaser with an order of about 1000 or more compared to a material other than the Photonic or Polaritonic Band-gap (PBG)-material, and intensity of the light emitted by the nanolaser is amplified at least one hundred times compared to a material other than the Photonic or Polaritonic Band-gap (PBG)-material.