GRATING SPECTROMETER HAVING V-SHAPED PROJECTION LIGHT AND CAPABLE OF ELIMINATING COMA ABERRATION

20230069726 · 2023-03-02

    Inventors

    Cpc classification

    International classification

    Abstract

    The present disclosure discloses a grating spectrometer having a V-shaped projection light path and capable of eliminating coma aberration. The grating spectrometer includes an entrance slit S1, a grating G, an entrance spherical reflector M1, a focusing spherical reflector M2, and an exit slit S2 which are arranged on a light path in sequence in a light transmission direction. The entrance slit S1 and the exit slit S2 are respectively arranged on two sides of the grating G, and a coaxial entrance light path formed by the entrance slit S1 and the entrance spherical reflector M1 and a coaxial diffraction light path formed by the grating G and the focusing spherical reflector M2 form a V-shaped structure by projection in a diffraction plane. The grating spectrometer has actual population and application value.

    Claims

    1. A grating spectrometer having a V-shaped projection light path and capable of eliminating coma aberration, comprising an entrance slit S1, a grating G, an entrance spherical reflector M1, a focusing spherical reflector M2, and an exit slit S2 which are arranged on a light path in sequence in a light transmission direction, wherein the entrance slit S1 and the exit slit S2 are respectively arranged on two sides of the grating G, and a coaxial entrance light path formed by the entrance slit S1 and the entrance spherical reflector M1 and a coaxial diffraction light path formed by the grating G and the focusing spherical reflector M2 form a V-shaped structure by projection in a diffraction plane.

    2. The grating spectrometer having the V-shaped projection light path and capable of eliminating coma aberration according to claim 1, wherein a light source forms an entrance light source L1 through the entrance slit S1 and the grating G and forms a collimation light source L2 after being reflected by the entrance spherical reflector M1; the entrance light source L1 and the collimation light path L2 are coaxial on a projection line of the diffraction plane; and an entrance off-axis angle is zero.

    3. The grating spectrometer having the V-shaped projection light path and capable of eliminating coma aberration according to claim 2, wherein the collimation light path L2 forms a diffraction light path L3 via diffraction of the grating G; the diffraction light path L3 is reflected by the focusing spherical reflector M2 to form a coaxial diffraction light path L4; the diffraction light path L3 and the coaxial diffraction light path L4 are coaxial on the projection line of the diffraction plane; and a diffraction off-axis angle is zero.

    4. The grating spectrometer having the V-shaped projection light path and capable of eliminating coma aberration according to claim 3, wherein the entrance slit S1 is arranged above the grating G; the exit slit S2 is arranged below the grating G or the entrance slit S1 is arranged below the grating G; and the exit slit S2 is arranged above the grating G.

    5. The grating spectrometer having the V-shaped projection light path and capable of eliminating coma aberration according to claim 4, wherein a grating combination number of the grating G is n, n≥1; and a mechanical transmission device is used for performing scanning control on the azimuth angle of the grating G.

    6. The grating spectrometer having the V-shaped projection light path and capable of eliminating coma aberration according to claim 1, wherein an adjustable width of the entrance slit S1 and an adjustable width of the exit slit S2 are both 0.01 to 1.0 mm.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0013] The accompanying drawings are used to provide a further understanding of the present disclosure and constitute a part of this specification to explain the present disclosure together with the embodiments of the present disclosure, and do not constitute restrictions to the present disclosure.

    [0014] In the drawings:

    [0015] FIG. 1 is a schematic top view of the structure of the present disclosure;

    [0016] FIG. 2 is a schematic side view of the structure of the present disclosure.

    DETAILED DESCRIPTION OF THE EMBODIMENTS

    [0017] The preferred embodiments of the present disclosure are described below with reference to the accompanying drawings, and it should be understood that the preferred embodiments described herein are merely illustrative and explanatory of the present disclosure and are not restrictive of the present disclosure.

    [0018] Embodiment: A grating spectrometer having a V-shaped projection light path and capable of eliminating coma aberration includes an entrance slit S1, a grating G, an entrance spherical reflector M1, a focusing spherical reflector M2, and an exit slit S2 which are arranged on a light path in sequence in a light transmission direction. The entrance slit S1 and the exit slit S2 are respectively arranged on two sides of the grating G, and a coaxial entrance light path formed by the entrance slit S1 and the entrance spherical reflector M1 and a coaxial diffraction light path formed by the grating G and the focusing spherical reflector M2 form a V-shaped structure by projection in a diffraction plane.

    [0019] A grating combination number of the grating G is n, n≥1; and a mechanical transmission device is used for performing scanning control on the azimuth angle of the grating G. An adjustable width of the entrance slit S1 and an adjustable width of the exit slit S2 are both 0.01 to 1.0 mm.

    [0020] Specifically, a light source forms an entrance light source L1 through the entrance slit S1 and the grating G and forms a collimation light source L2 after being reflected by the entrance spherical reflector M1. The entrance light source L1 and the collimation light path L2 are coaxial on a projection line of the diffraction plane; and an entrance off-axis angle is zero. The collimation light path L2 forms a diffraction light path L3 via diffraction of the grating G. The diffraction light path L3 is reflected by the focusing spherical reflector M2 to form a coaxial diffraction light path L4. The diffraction light path L3 and the coaxial diffraction light path L4 are coaxial on the projection line of the diffraction plane; and a diffraction off-axis angle is zero.

    [0021] The entrance slit S1 is arranged above the grating G, and the exit slit S2 is arranged below the grating G. Or, the entrance slit S1 is arranged below the grating G, and the exit slit S2 is arranged above the grating G. The positions of the entrance slit S1 and the exit slit S2 are interchangeable up and down.

    [0022] Referring to FIGS. 1-2, the schematic structural diagrams of the spectrometer are described respectively from the top view and the side view. The entrance slit S1 is arranged above the grating G. A spectral signal enters via the entrance slit S1. After the spectral signal passes through the grating G, the entrance light path L1 is formed, and the spectral signal enters the entrance spherical reflector M1, with a focal length F1=500 mm. After the spectral signal is reflected and collimated by the reflector M1, parallel light in the diffraction plane P is formed, thus forming the collimation light path L2 entering the grating G. The mechanical transmission device is used to scan the azimuth angle of the grating G. A work wavelength region is 200 to 1000 nm. Monochromatic light diffracted by the grating G forms the diffraction light path L3 entering the focusing spherical reflector M2, with a focal length F2=500 mm. The light is reflected by the focusing spherical reflector M2 to form the coaxial diffraction light path L4 and is focused and imaged on the exit slit S2. The exit slit S2 is arranged below the grating.

    [0023] Finally, it should be noted that: the above descriptions are only preferred examples of the present disclosure and are not intended to limit the present disclosure. Although the present disclosure has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions in the foregoing various embodiments, or equivalently replace partial technical features. Any modifications, equivalent replacements, improvements, and the like that are made within the spirit and principle of the present disclosure shall all fall within the protection scope of the present disclosure.