Scale and manufacturing method of the same
11307058 · 2022-04-19
Assignee
Inventors
Cpc classification
G02B5/1861
PHYSICS
G02B5/1857
PHYSICS
International classification
G02B7/00
PHYSICS
Abstract
A scale includes: a substrate that is made of low expansion glass of which a thermal expansion coefficient is 1×10.sup.−7/K or less; and scale gratings having a plurality of gratings that are arranged on a first face of the substrate at a predetermined interval and are made of a transparent inorganic material of which a thermal expansion coefficient is more than 1×10.sup.−7/K.
Claims
1. A scale comprising: a substrate that is made of low expansion glass of which a thermal expansion coefficient is 1×10.sup.−7/K or less; and scale gratings having a plurality of gratings that are arranged on a first face of the substrate at a predetermined interval and are made of a transparent inorganic material of which a thermal expansion coefficient is more than 1×10.sup.−7/K, wherein the scale gratings have a structure in which the plurality of gratings are provided on a layer-shaped portion made of the transparent inorganic material, on the first face of the substrate, wherein the layer-shaped portion is directly provided on the first face of the substrate, and wherein the layer-shaped portion has a thickness of more than 0.5 μm and 2.5 μm or less.
2. The scale as claimed in claim 1, wherein a diffraction index of the transparent inorganic material is a diffraction index of the low expansion glass or less.
3. The scale as claimed in claim 1, wherein the transparent inorganic material is SiO.sub.2 or MgF.sub.2.
4. The scale as claimed in claim 1, further comprising: a stress suppression layer that is provided on a second face of the substrate and suppresses stress of the layer-shaped portion applied to the substrate, the second face facing the first face.
5. The scale as claimed in claim 4, wherein the scale gratings are covered by a reflection layer.
6. The scale as claimed in claim 5, wherein the reflection layer is a metal layer.
7. The scale as claimed in claim 1, wherein the layer-shaped portion has the thickness of 1.0 μm or more and 2.5 μm or less.
8. The scale as claimed in claim 1, wherein the substrate is an ultra-low expansion glass-ceramics, and wherein the scale gratings are SiO.sub.2.
9. The scale as claimed in claim 1, wherein the transparent inorganic material is MgF.sub.2.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(11) The following is a description of embodiments, with reference to the accompanying drawings.
First Embodiment
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(13) The substrate 10 is made of zero expansion glass. The zero expansion glass is low expansion glass of which a thermal expansion coefficient is 1×10.sup.−7/K or less. For example, the zero expansion glass may be made by dispersing crystallized glass into amorphous glass. CLEARCERAM (registered trademark), Zerodur (registered trademark) may be used as the zero expansion glass.
(14) The scale gratings 20 have only to be a transparent inorganic material of which the thermal expansion coefficient is more than 1×10.sup.−7/K. Transparent oxide such as glass, SiO.sub.2 (silicon dioxide) or TiO.sub.2 (titanium dioxide) or transparent fluoride such as MgF.sub.2 (magnesium fluoride) may be used as the transparent inorganic material.
(15) In the embodiment, the substrate 10 is made of the zero expansion glass. Therefore, the thermal expansion coefficient of the scale 100 is small. And, the scale 100 is hardly subjected to influence of changing of an environmental temperature. The scale gratings 20 are made of the transparent inorganic material. In this case, in comparison to a case where scale gratings are made of resin, sufficient environment resistance, chronological stability and so on are achieved. Thus, chronological degradation is suppressed. It is therefore possible to provide the scale 100 having characteristic in which chronological degradation is suppressed and the influence of the changing of the environment temperature is suppressed.
(16) It is preferable that a relationship of nf≤ns is satisfied, when a diffraction index of the scale gratings 20 is “nf” and a diffraction index of the substrate 10 is “ns”. When the relationship is satisfied, influence of changing of a grating height of a diffraction grating is suppressed. It is therefore possible to improve a yield or throughput of grating forming.
(17) When the scale 100 is used as a reflection type diffraction grating is used, a reflection layer 30 may cover an exposed portion of the first face of the substrate 10 and the scale gratings 20 as illustrated in
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(19) Next, as illustrated in
(20) In the manufacturing method, an etching rate of the substrate 10 is smaller than that of the layer 50 to be etched, due to a difference of chemical stability. Therefore, when the layer 50 to be etched is etched, the scale gratings 20 are formed on the substrate 10. The substrate 10 is made of the zero expansion glass. And the scale gratings 20 are made of the transparent inorganic material other than the zero expansion glass. It is therefore possible to manufacture the scale 100 having characteristic in which the chronological degradation is suppressed and the influence of the changing of the environment temperature is suppressed.
Second Embodiment
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(22) In the embodiment, the substrate 10 is made of the zero expansion glass. Therefore, the thermal expansion coefficient of the scale 100a is small. And, the scale 100a is hardly subjected to influence of changing of an environmental temperature. The scale gratings 20a are made of the transparent inorganic material. In this case, in comparison to a case where scale gratings are made of resin, sufficient environment resistance, chronological stability and so on are achieved. Thus, chronological degradation is suppressed. It is therefore possible to provide the scale 100a having characteristic in which the chronological degradation is suppressed and the influence of the changing of the environment temperature is suppressed. Moreover, each of the gratings 22 is connected by the layer-shaped portion 21. Therefore, in comparison to a case where the layer-shaped portion 21 is not formed, it is possible to suppress the changing of the diffraction index with respect to a light entering the scale 100a. Thus, reflected lights are intensified with each other by interference effect. It is therefore possible to enlarge diffraction efficiency.
(23) It is preferable that a relationship of nf≤ns is satisfied, when a diffraction index of the layer-shaped portion 21 and the scale gratings is “nf” and a diffraction index of the substrate 10 is “ns”. When the relationship is satisfied, influence of changing of a grating height of a diffraction grating is suppressed. It is therefore possible to improve a yield or throughput of grating forming.
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(25) When the scale gratings 20a have the layer-shaped portion 21, stress may occur on the first face side of the substrate 10. And so, as illustrated in
(26) When the scale 100a is used as a reflection type diffraction grating, the exposed portion of the first face of the substrate and the scale gratings 20a may be covered by the reflection layer 30 descried in the first embodiment, as illustrated in
(27) Alternatively, as illustrated in
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(29) In the manufacturing method of the second embodiment, it is possible to form the gratings 22 while the layer-shaped portion 21 is left. Thus, it is possible to form the scale gratings 20a on the substrate 10. The substrate 10 is made of the zero expansion glass, and the scale gratings 20a are made of a transparent inorganic material other than the zero expansion material. It is therefore possible to manufacture the scale 100a having characteristic in which chronological degradation is suppressed and influence of changing of an environment temperature is suppressed. And, it is possible to suppress the changing of the diffraction index with respect to a light entering the scale 100a, because the gratings 22 are connected by the layer-shaped portion 21. It is therefore possible to enlarge the diffraction efficiency.
(30) The present invention is not limited to the specifically disclosed embodiments and variations but may include other embodiments and variations without departing from the scope of the present invention.