This application claims priority to Chinese Application No. 202210267393.7, filed on Mar. 18, 2022, the entire content of which is incorporated herein by reference.
The present disclosure relates to sensors and, more particularly, to a fiber grating apparatus and a sensor device.
Fiber grating, as a passive filter device, is a grating formed by periodically modulating the refractive index of the fiber core in an axial direction. Fiber grating has small size and small fusion loss, is fully compatible with optical fibers, and can be embedded in smart materials. Further, the resonant wavelength of fiber grating is sensitive to changes in external environments such as temperature, strain, refractive index, and concentration. Therefore, fiber gratings are widely used in fiber lasers, optical fiber communication, and sensors.
In related technologies, the fabrication of fiber grating utilizes the photosensitivity of the fiber material, in which a coherent field pattern of incident light is written into a fiber core by ultraviolet light exposure to generate a periodic change of the refractive index along the axial direction of the fiber core, thus forming a permanent spatial phase grating. However, fiber gratings need to be independently fabricated using a specific process, resulting in high fabrication costs, low output, and complex grating fabrication processes. Further, the material of the fiber core is usually silicon oxide, which has a relatively low temperature coefficient, causing the sensing performance of fiber gratings to be poor.
In accordance with the disclosure, there is provided a fiber grating apparatus including a first optical fiber, an optical wave assembly coupled to the first optical fiber and having grating function, and a second optical fiber coupled to the optical wave assembly. The optical wave assembly includes a first substrate, a metalens assembly, a filter, and a second substrate. The first optical fiber, the optical wave assembly, and the second optical fiber are arranged on a same plane.
Also in accordance with the disclosure, there is provided a sensor device including a fiber grating apparatus. The fiber grating apparatus includes a first optical fiber, an optical wave assembly coupled to the first optical fiber and having grating function, and a second optical fiber coupled to the optical wave assembly. The optical wave assembly includes a first substrate, a metalens assembly, a filter, and a second substrate. The first optical fiber, the optical wave assembly, and the second optical fiber are arranged on a same plane.
Embodiments are described below in details for a better understanding of the disclosure. It will be apparent, however, to one skilled in the art that the disclosure can be implemented without these details. Terms such as “system,” “apparatus,” “device,” “unit,” and/or “module” used in this disclosure are to distinguish between different components, elements, parts, or assemblies, and they can be replaced by other terms where proper.
In this disclosure, when a device, unit, or module is referred to as being “on,” “connected to,” or “coupled to” another device, unit, or module, the former can be directly on, connected or coupled to, or communicate with the latter, or there may be intermediate device, unit, or module, unless the context clearly suggests otherwise. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.
The terminology used in the present disclosure is for describing specific embodiments only, and does not limit the scope of the present disclosure. In the present disclosure, terms such as “a,” “an,” and/or “the” do not necessarily mean singular, and can also include plural, unless the context clearly indicates otherwise. In general, terms such as “include,” “comprise,” and “contain” suggest the inclusion of clearly listed features, items, steps, operations, elements, and/or components, and do not suggest an exclusive list, while other features, items, steps, operations, elements, and/or components can also be included.
Features and characteristics, methods of operations, functions of relevant elements of structures, combinations of parts, and economies of manufacture of the present application can be better understood with reference to the following description and drawings, which form a part of the disclosure. The drawings are only for the purpose of illustration and description, and are not intended to limit the scope of the present disclosure. The drawings are not necessarily drawn to scale.
Various structural diagrams are used in this disclosure to illustrate various modifications of the embodiments according to the disclosure. The structures are not intended to limit the present disclosure.
In some embodiments, the first optical fiber 100, the optical wave assembly 200, and the second optical fiber 300 are on a same horizontal plane, and an optical axis of the first optical fiber 100, the optical wave assembly 200, and the second optical fiber 300 does not coincide with an optical axis of the first metalens assembly 220. For example, an angle exists between the optical axis of the first optical fiber 100, the optical wave assembly 200, and the second optical fiber 300 and the optical axis of the first metalens assembly 220. The existence of the angle makes it possible that no part of the light exiting from the optical wave assembly 200 to the first metalens assembly 220 is reflected back to the optical wave assembly 200, thereby avoiding light loss.
Fiber gratings consistent with the disclosure can be used to make, for example, strain sensors, temperature sensors, bandpass filters, add-drop multiplexers, and demultiplexers for wavelength division multiplexers, which can be uniform fiber gratings. Fiber gratings consistent with the disclosure can also be used to make uniform long-period fiber gratings, for example, sensors such as microbending sensors and refractive index sensors, erbium-doped fiber amplifiers, gain flatters, mode converters, and band-stop filters. Fiber gratings consistent with the disclosure can also be used to make apodized fiber gratings (such as dense wavelength division multiplexers), phase-shifting fiber gratings (such as band-pass filters), sampling fiber gratings (such as comb filters, which are add-drop multiplexing devices in wavelength division multiplexing (wdm) systems), chirped fiber gratings (such as dispersion compensators), and large chirped fiber gratings. Dispersion compensation (pulse widening/compression) is one of the key technologies in the field of ultrafast lasers. Fiber gratings consistent with the disclosure can be used in stable synthesis of multi-wavelength light sources, shaping of short fiber lasers, and the production of stable continuous wave and adjustable mode-locked external cavity semiconductor lasers. In the fiber grating sensing demodulation technology, large chirped fiber gratings with a special reflection waveform are also needed.
In some embodiments, the first substrate 210, the first metalens assembly 220, the first filter 230, and the second substrate 240 are sequentially coupled to each other. The first substrate 210, the first metalens assembly 220, the first filter 230, and the second substrate 240 are on the same axis along the first optical fiber 100, and the second substrate 240 is coupled to the second optical fiber 300.
In some embodiments, the first metalens assembly 220 includes a first metalens 222 or the first metalens 222 and a second filter 223. The first metalens assembly 220 further includes a protective film 221. In the embodiments that the first metalens assembly 220 includes the first metalens 222 and the second filter 223, the second filter 223 is arranged on a surface of the first metalens 222, and the protective film 221 completely wraps the second filter 223 and the first metalens 222. In this scenario, the first filter 230 can be omitted, i.e., the optical wave assembly 200 can include the first substrate 210, the first metalens lens 222, the second filter 223, and the second substrate 240. Arranging the second filter 223 on the surface of the first metalens 222 and omitting the first filter 230 can save costs, expand the space of the light wave assembly 200, and allow other components to be added. The first substrate 210 and the second substrate 240 can increase the thickness of the light transmission components and the focal length can be adjusted.
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The present disclosure also provides a sensor device, which includes a fiber grating apparatus consistent with the disclosure, such as one of the above-described example fiber grating apparatuses. The sensor device further includes a first waveguide and a second waveguide. In some embodiments, the sensor device includes a first optical fiber, an optical wave assembly having grating function, and the first waveguide or the second waveguide, coupled in sequence. In some embodiments, the sensor device includes the first waveguide, the optical wave assembly having grating function, and the second waveguide, coupled in sequence. The sensor device of the present disclosure has a low production cost and does not need a specific process to independently fabricate the optical fiber grating, which reduces the complexity of the fabrication process of the optical fiber grating and improves the sensing performance of the optical fiber grating.
The above specific implementation manners are only used to illustrate or explain the principle of the present disclosure, but not to limit the present disclosure. Therefore, any modification, equivalent replacement, improvement, etc., made without departing from the spirit and scope of the present disclosure shall fall within the scope of the present disclosure. Furthermore, the claims are intended to cover all changes and modifications that fall within the scope and metes and bounds, or equivalents of such scope and metes and bounds, of the claims.
Number | Date | Country | Kind |
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202210267393.7 | Mar 2022 | CN | national |