HIGH-CONTRAST PHOTONIC CRYSTAL "AND" LOGIC GATE
20170307820 · 2017-10-26
Inventors
Cpc classification
G02B6/1225
PHYSICS
B82Y20/00
PERFORMING OPERATIONS; TRANSPORTING
G02B2006/1213
PHYSICS
International classification
Abstract
The present invention discloses a high-contrast photonic crystal AND logic gate, comprising a five-port two-dimensional photonic crystal, a nonlinear cavity unit and a Y-shape AND logic gate unit; and it includes a reference-light input port, two signal-input ports, a system signal-output port and an idle port; the nonlinear cavity unit is coupled with the Y-shape AND logic gate unit. The structure of the present invention, which is compact in structure and ease of integration with other optical logic elements, not only can realize the functions of the high-contrast photonic and logic gate, but also has high contrast of high and low logic output; and is widely applicable to optical communication bands.
Claims
1. A high-contrast photonic crystal (PhC) AND logic gate, wherein said high-contrast PhC AND logic gate is a structure of five-port two-dimensional (2D) PhC, comprising: a nonlinear cavity unit and a Y-shape AND logic gate unit, including a reference-light input port, two signal-input ports, a system signal-output port and an idle port; said nonlinear cavity unit is coupled with said Y-shape AND logic gate unit.
2. The high-contrast PhC AND logic gate of claim 1, wherein said nonlinear unit is a 2D PhC cross-waveguide nonlinear cavity; and said nonlinear cavity unit includes a reference signal-input port, an intermediate signal-input port, a second system signal-output port and an idle port.
3. The high-contrast PhC AND logic gate of claim 1, wherein said Y-shape AND logic gate unit includes two signal-input ports and an intermediate signal-output end.
4. The high-contrast PhC AND logic gate of claim 1, wherein said intermediate signal-input port of said nonlinear cavity unit is connected with said intermediate signal-output end of said Y-shape AND logic gate unit.
5. The high-contrast PhC AND logic gate of claim 1, wherein said 2D PhC cross-waveguide nonlinear cavity includes a high-refractive-index dielectric pillar; said 2D PhC cross intersected waveguide is a four-port network; a left port of said four-port network is the reference-light input port, a lower end of said four-port network is the intermediate signal-input port, an upper port of said four-port network is the system signal-output port, and a right end of said four-port network is the idle port; two mutually-orthogonal quasi-one-dimensional (1D) PhC structures are placed in two waveguide directions crossed at a center of said cross waveguide; a dielectric pillar is arranged in a middle of said cross waveguide, said dielectric pillar is made of a nonlinear material, a cross section of said dielectric pillar is square, polygonal circular, or oval, and a refractive index of the dielectric pillar is 3.4 or another value greater than 2; a dielectric constant of the rectangular linear-dielectric pillar clinging to the central dielectric pillar and close to the signal-output end is equal to that of the central dielectric pillar under low-light-power conditions; and the quasi-1D PhC structures and the dielectric pillars constitute a waveguide defect cavity.
6. The high-contrast PhC AND logic gate of claim 1, wherein twelve rectangular high-refractive-index linear-dielectric pillars and one square dielectric pillar are arranged in the center of the 2D PhC cross-waveguide nonlinear cavity in a form of the quasi-1D PhC along longitudinal and transverse waveguide directions, the central dielectric pillar clings to a four adjacent rectangular linear-dielectric pillars and a distance therebetween is 0, and every two adjacent rectangular linear-dielectric pillars are spaced 0.2668 d from each other.
7. The high-contrast PhC AND logic gate of claim 1, wherein said Y-shape AND logic gate unit is of a three-port waveguide network PhC structure, the lower ends of said three-port network are respectively the two signal-input ends, and the upper end of said three-port network is the immediate signal-output end; a dielectric pillar is made of a nonlinear material arranged at the intersection of the three-port waveguide, and said dielectric pillar is a circular nonlinear-dielectric pillar; and a radius of the nonlinear-dielectric pillar is the same as that of the linear-dielectric pillar.
8. The high-contrast PhC AND logic gate of claim 1, wherein the cross section of said high-refractive-index linear-dielectric pillar of said 2D PhC is circular, elliptic, polygonal or triangular.
9. The high-contrast PhC AND logic gate of claim 1, wherein a background filling material for said 2D PhC is air or another low-refractive-index dielectric having a refractive index less than 1.4.
10. The high-contrast PhC AND logic gate of claim 1, wherein said 2D PhC structure is a (2m+1)×(2n+1) array structure, where m is an integer more than or equal to 4, and where n is an integer more than or equal to 7.
11. The high-contrast PhC AND logic gate of claim 4, wherein the cross section of said high-refractive-index linear-dielectric pillar of said 2D PhC is circular, elliptic, polygonal or triangular.
12. The high-contrast PhC AND logic gate of claim 4, wherein said background filling material for the 2D PhC is air or another low-refractive-index dielectric having a refractive index less than 1.4.
13. The high-contrast PhC AND logic gate of claim 4, wherein said 2D PhC structure is a (2m+1)×(2n+1) array structure, where m is an integer more than or equal to 4, and n is an integer more than or equal to 7.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The present invention is more specifically described in the following paragraphs by reference to the drawings attached only by way of example.
[0029]
[0030] In
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0038] The terms a or an, as used herein, are defined as one or more than one, The term plurality, as used herein, is defined as two or more than two. The term another, as used herein, is defined as at least a second or more.
[0039] As shown in
[0040] The nonlinear cavity unit 01 is a 2D PhC cross-waveguide nonlinear cavity and is a 2D PhC cross-waveguide four-port network formed by high-refractive-index dielectric pillars, wherein the left port of the four-port network is a reference signal-input port, the lower port of the four-port network is an intermediate signal-input port, the upper port of the four-port network is a signal-output port, and the right port of the four-port network is an idle port; two mutually-orthogonal quasi-1D PhC structures are placed in two waveguide directions crossed at the center of a cross-waveguide, wherein a dielectric pillar is arranged in the middle of the cross waveguide, the dielectric pillar is a square nonlinear-dielectric pillar; the dielectric pillar is made of a nonlinear material, the cross section of the dielectric pillar is square, polygonal circular, or oval, and the refractive index of the dielectric pillar is 3.4 or another value more than 2; and the dielectric constant of a rectangular linear pillar clinging to the central dielectric pillar and close to the signal-output port is equal to that of the central dielectric pillar under low-light-power conditions; the quasi-1D PhC structures and the dielectric pillar constitute a waveguide defect cavity. Twelve rectangular high-refractive-index linear-dielectric pillars and one square nonlinear-dielectric pillar are arranged in the center of the 2D PhC cross-waveguide nonlinear cavity in the form of a quasi-1D PhC along longitudinal and transverse waveguide directions, the first rectangular high-refractive-index linear-dielectric pillar 16 has a refractive index of 3.4; the second rectangular high-refractive-index linear-dielectric pillar has a dielectric constant being the same as that of a nonlinear-dielectric pillar under low-light-power conditions, every two adjacent rectangular linear-dielectric pillars are spaced 0.2668 d from each other, and the central square nonlinear-dielectric pillar in the cross-waveguide nonlinear cavity is made of a Kerr type nonlinear material, and a dielectric pillar constant of 7.9 under low-light-power conditions; the central square nonlinear-dielectric pillar clings to the four adjacent rectangular linear-dielectric pillars and the distance there between is 0; circular high-refractive-index linear-dielectric pillar 19 in the cross-waveguide nonlinear cavity is made of a Si nonlinear material, and has a refractive index of 3.4.
[0041] The present invention is based on the Photonic Bandgap (PBG) characteristic, quasi-1D PhC defect state, tunneling effect and optical Kerr nonlinear effect of the 2D PhC cross-waveguide nonlinear cavity shown in
[0042] For the lattice constant d of 1 μm and the operating wavelength of 2.976 μm, referring to the 2D PhC cross-waveguide nonlinear cavity 01 shown in
Y=AB+BC (1)
That is
[0043]
Q.sup.n+1=AB+BQ.sup.n (2)
[0044] Referring to the PhC Y-shape AND logic gate structure shown in
Q.sup.n+1=G (3)
[0045] Finally, the system output port 15 will output the high-contrast AND logic signal G.
[0046] The 2D PhC structure of the device of the present invention is a (2m+1)×(2n+1) array structure, where m is an integer more than or equal to 4, and where n is an integer more than or equal to 7, Design and simulation results will be provided below in an embodiment given in combination with the accompanying drawings, wherein the embodiment is exemplified by a 17×27 array structure, and design and simulation results are given, taking the lattice constant d of the 2D PhC array being 1 μm and 0.5208 μm respectively as an example.
Embodiment 1
[0047] Referring to that shown in
[0048] Referring to the structure shown in
Embodiments 2
[0049] The lattice constant d is 0.5208 μm; the operating wavelength is 1.55 μm; the radius of the circular high-refractive-index linear-dielectric pillar 19 is 0.0937 μm; the long sides of the first rectangular high-refractive-index linear-dielectric pillar 16 are 0.3193 μm, and the short sides are 0.0844 μm; the size of the second rectangular high-refractive-index linear-dielectric pillar 17 is the same as that of the first rectangular high-refractive-index linear-dielectric pillar 16; the side length of square nonlinear-dielectric pillar 18 is 0.7812 μm, and the third-order nonlinear coefficient is 1.33×10.sup.−2 μm.sup.2/V.sup.2; and the distance between every two adjacent rectangular linear-dielectric pillars is 0.1389 μm; the radius of the circular nonlinear-dielectric pillar 20 is 0.0937 μm, and the third-order nonlinear coefficient is 1×10.sup.−4 μm.sup.2/V.sup.2;
[0050] As shown in
[0051] As the waveform of “Output 3” in
[0052] While the invention has been described in terms of various specific embodiments, those skilled in the art will recognize that the invention can be practiced with modification within the spirit and scope of the claims.