Gradient index lens using effective refractive index of microstructure arranged in radial pattern, and method for manufacturing same
09772476 · 2017-09-26
Assignee
Inventors
Cpc classification
B29C45/372
PERFORMING OPERATIONS; TRANSPORTING
G02B2207/107
PHYSICS
B29D11/00028
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29D11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided are a gradient index lens using the effective refractive index of a microstructure operating in the terahertz frequency regions and mid-infrared regions at wavelengths of 0.8 m to 3 mm and a method for manufacturing the same. Based on the effective medium theorem, the effective refractive index is controlled by using a structure smaller than the mid-infrared and terahertz wavelength, and a gradient can be provided for the refractive index in a radial direction and in an axial direction. Thus, beams in the mid-infrared and terahertz frequency region can be converged.
Claims
1. A gradient index lens using an effective refractive index of a microstructure converging an electromagnetic wave from mid-infrared to terahertz wave, comprising: a flat plate type substrate consisting of Si or GaAs and having a predetermined thickness; and microstructures formed in the substrate to control an effective refractive index of the flat plate type substrate, wherein the microstructures include through-holes arranged in the substrate, the through-holes having a circular shape, a polygonal shape, or a composite shape, the through-holes having a diameter smaller than a wavelength of the electromagnetic wave, wherein each of the through-holes does not enclose one another, and wherein the diameter of the through-holes or an interval therebetween is gradually increased or reduced radially from a center of the substrate such that the refractive index of the microstructure gradually changes radially from the center of the substrate.
2. The gradient index lens of claim 1, wherein the substrate is a single dielectric substrate.
3. The gradient index lens of claim 1, wherein the microstructure is a structure that is formed by dry etch or wet etch.
4. The gradient index lens of claim 1, wherein the microstructure is arrayed so that a distribution of refractive index of the substrate has one of parabolic equation, multi-order equation, square root of a multi-order equation, and sphere distributions, in a surface direction and a depth direction.
5. A method for manufacturing a gradient index lens using an effective refractive index of a microstructure converging an electromagnetic wave from mid-infrared to terahertz wave, the method comprising: providing a flat plate type master substrate consisting of Si or GaAs; forming a mask layer on the master substrate; forming an etch pattern for forming the microstructure having a diameter smaller than a wavelength of the electromagnetic wave on the mask layer; etching the substrate using the patterned mask layer as an etch mask; removing the remaining mask layer; injecting a polymer into the etched substrate; hardening the injected polymer; and separating the hardened polymer from the etched substrate to form a polymer lens in which the microstructure is formed, wherein in the forming of the etch pattern of the microstructure, the etch pattern is formed so that through-holes having a circular shape, a polygonal shape, or a composite shape are arranged in the substrate, the through-holes having a diameter being smaller than the wavelength of the electromagnetic wave, wherein each of the through-holes does not enclose one another, and wherein the diameter of the through-holes or an interval therebetween is gradually increased or reduced radially from a center of the substrate such that the refractive index of the microstructure gradually changes radially from the center of the substrate.
6. The method of claim 5, wherein in the etching of the substrate, the substrate is etched by dry etch or wet etch.
7. The method of claim 6, wherein the dry etch uses at least one of reactive ion etch, deep reactive ion etch, and plasma etch.
8. The method of claim 6, wherein the wet etch uses isotropic wet etch or anisotropic wet etch.
9. The method of claim 5, wherein the microstructure is arrayed so that a distribution of refractive index of the substrate has one of parabolic equation, multi-order equation, square root of a multi-order equation, and sphere distributions, in a surface direction and a depth direction.
10. The gradient index lens of claim 1, wherein the electromagnetic wave travels parallel to the direction to which the through-holes are extended such that the electromagnetic wave is converged.
11. The method of claim 5, wherein the electromagnetic wave travels parallel to the direction to which the through-holes are extended such that the electromagnetic wave is converged.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
(8) Hereinafter, a gradient index lens using an effective refractive index of a microstructure and a method for manufacturing the same according to an exemplary embodiment of the present invention will be described with reference to the accompanying drawings.
(9) The following description is only an example of the present invention and therefore it is to be noted that the present invention is not limited to contents of the following exemplary embodiments.
(10) That is, the present invention generally relates to a gradient index lens using an effective refractive index of a microstructure operated for an electromagnetic wave having a wavelength of 3 μm to 3 mm and a method for manufacturing the same.
(11) In more detail, as described below, the present invention is to solve a disadvantage of the existing parabolic mirror used to converge beams in a mid-infrared region and a terahertz frequency region which has a complicated optical path and is difficult to implement a small optical system, a disadvantage of the existing silicon lens which is difficult to be manufactured and thus is expensive, and a disadvantage of the existing polymer lens used in a visible light region which has a lost specific bandwidth since most polymers have an absorption peak in the corresponding region.
(12) To this end, the present invention provides the gradient index lens using an effective refractive index of a microstructure and the method for manufacturing the same capable of controlling an effective refractive index through a structure smaller than a wavelength based on an effective medium theorem, providing the gradient to the refractive index in a radial direction and an axial direction, and converging mid-infrared and terahertz beams based on the provided gradient.
(13) Further, in the following description, the term ‘smaller than a wavelength’ collectively represents all the cases in which a size of a structure needs to be smaller than a wavelength in order for an inhomogeneous structure to have homogeneous optical characteristics and wavelengths at which each lens is operated may be different and therefore the size of the structure having a size smaller than the wavelength of the mid-infrared and the terahertz wave may also be different.
(14) That is, for example, in an optical region, in order for the structure to have the effective refractive index characteristics in connection with light having a wavelength of 10 μm, the size of the structure needs to be smaller than 10 μm and the wavelength 3 μm to 3 mm and therefore the structure of the ‘smaller than a wavelength’ used in the present invention may be a structure having a size from 3 μm to 3 mm.
(15) Herein, since there are limitations in a process, considering the limitations, the structure of the ‘smaller than a wavelength’ substantially becomes a structure of 3 μm to 0.8 μm.
(16) Further, in the present specification, the term ‘effective refractive index has a gradient’ means that a spatial difference in the effective refractive index in a structure having different sizes. That is, the present invention uses a phenomenon that light is refracted depending on the gradient due to the spatial difference in the effective refractive index.
(17) To be continued, the gradient index lens using an effective refractive index of a microstructure and the method for manufacturing the same according to the exemplary embodiment of the present invention will be described with reference to the accompanying drawings.
(18) Referring first to
(19) Herein, the gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention is configured to include a substrate having various types of structure to control the refractive index and in more detail, pillars or holes having a diameter smaller than a wavelength of the mid-infrared and terahertz wave are arrayed on the substrate and the effective refractive index has the gradient. The present exemplary embodiment describes an array of the microstructure in which the diameter of the hole is gradually increased, but according to the purpose, an array in which the diameter of the microstructure is gradually reduced is also possible.
(20) The gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention is configured to include a substrate 30 which has hexahedral lattice form and is provided with circular holes having the diameter smaller than the wavelength of the mid-infrared and terahertz wave by dry etch or wet etch.
(21) Herein, the dry etch may use at least one of reactive ion etch, deep reactive ion etch, and plasma etch and the wet etch may use isotropic wet etch or anisotropic wet etch.
(22) Further, the exemplary embodiment illustrated in
(23) Further, the exemplary embodiment illustrated in
(24) Herein, the structure may be formed so that a vertical section thereof has one of a triangular shape, a quadrangular shape, a semi-circular shape, and a semi-oval shape and the shape, size, position, and number of holes or structures are variously formed to be smaller than the wavelength for the effective refractive index to be obtained.
(25) Further, as the substrate, Si, GaAs, glass substrates, or the like may be used and a distribution of the refractive index depends on one of a parabolic equation, a multi-order equation, a square root of a multi-order equation, and sphere distributions in a surface direction and a depth direction.
(26) Therefore, as described above, the gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention forms the circular or polygonal pillars or the holes having the diameter smaller than the wavelength of the mid-infrared and terahertz wave on the substrate formed in the lattice form by the dry etch or the wet etch to provide the gradient to the effective refractive index according to the spatially change in the effective refractive index and refract light within the substrate to converge the mid-infrared and terahertz wave.
(27) That is, the gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention as described above uses the effective refractive index changing according to the form of the structure having the size smaller than the wavelength of the mid-infrared and terahertz wave to provide the spatial refractive index gradient and converge the mid-infrared and terahertz wave based on the gradient.
(28) In more detail, for example, as illustrated in
(29) Therefore, the gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention may converge the mid-infrared and terahertz wave based on the principle as described above.
(30) To be continued, a method for manufacturing a gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention as described above will be described with reference to
(31) That is, referring to
(32) In more detail, first, as illustrated in
(33) Next, as illustrated in
(34) Next, as illustrated in
(35) Alternatively, by using the substrate-type gradient index lens as described above with reference to
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(37) Using the gradient index lens using an effective refractive index of a microstructure according to the exemplary embodiment of the present invention manufactured as described above, the disadvantage of the existing parabolic mirror which has the complicated optical path and is difficult to implement the small optical system, the disadvantage of the existing silicon lens which is difficult to be manufactured and thus is expensive, and the disadvantage of the existing polymer lens which has the lost specific bandwidth in the mid-infrared and terahertz frequency regions may be solved.
(38) Hereinabove, the exemplary embodiments of the present invention describe in detail the gradient index lens using an effective refractive index of a microstructure and the method for manufacturing the same, but the present invention is not limited to the contents of the foregoing exemplary embodiments and therefore the present invention may be variously modified, changed, combined, and replaced according to a necessity of design and other various factors by a person having ordinary skill in the art to which the present invention pertains.
INDUSTRIAL APPLICABILITY
(39) The present invention may be applied to the gradient index lens using an effective refractive index of a microstructure.