This application claims the priority benefit of Taiwan application serial no. 104115562, filed on May 15, 2015. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of specification.
1. Field of the Invention
The invention relates to a fiber and an optical device, specifically to a sensing fiber and a sensing device.
2. Description of Related Art
Along with the development of science and technology, infoimation transfer has become one of the most promising science and technology to be developed. The capacity, stability, quality, and speed of infoll iation transmission always are the main topics of infoi nation transfer science and technology, so that the important role and the future development of the optical fiber communication are further highlighted and emphasized. In 1987, the two scientists Sajeev John and Eli Yablonovitch separately proposed the fundamental theory of photonic crystal structure having periodic property, and thus the refractive index or the dielectric constant of material changes periodically because of one dimensional, two dimensional, and three dimensional arrangement method. Furthermore, in 1996, Dr. Russell, Dr. J. C. Knight, et al., apply photonic crystal structure to the fiber by fabricating the cladding around the core of the fiber, and the cladding has a plurality of air holes periodically arranged, so as to form the photonic crystal fiber.
On the other hand, along with the development of science and technology, it was found in 1902 that the surface plasmon has been applied to many fields, such as chemical sensor, biomedical science, food examination, et al. The surface plasmon resonance is the coherence surface electromagnetic wave formed by free electrons existing on a metal and dielectric surface, the group behaviours of the free electrons is called as surface plasmon. When the surface plasmon is generated, the surface plasmon mode is limited to nearby the metal surface, and field strength of the electromagnetic wave on the metal surface and the dielectric surface has a maximum value, moves away from the metal surface, and presents a decreasing exponential property. This phenomenon shows a high sensitivity property of the surface plasmon, and thus be applied to measuring many types of surface spectroscopy, such as Surface-Enhanced Raman Spectroscopy (SERS).
However, application and sensitivity of the surface plasmon generated by the evanescent wave of the metal film is limited, and in the process of forming the metal film in the photonic crystal structure fiber having air holes, the shape of the air holes will be changed under high temperature condition, and it is very difficult to control the quality of the thickness of the metal film.
The invention provides a sensing fiber which has a high sensitivity.
The invention provides a sensing device which can provide a good sensing effect.
A sensing fiber in one embodiment of the invention is adapted to transmit a sensing light along a path and senses an object. The sensing fiber includes a core, a plurality of photonic crystal structures surrounding the core, a sensing surface and a metal sensing layer. The core is located at the center of the sensing fiber. The photonic crystal structures extend along the path. The sensing surface extends along a part of the path and be adjacent to the core, and the metal sensing layer having a plurality of metal grating structures is disposed on the sensing surface. When the sensing fiber senses the object, the metal sensing layer is located between the sensing surface and the object, and a part of the sensing light is converted into a signal light by the object on the metal sensor layer.
In one embodiment of the invention, a sensing device is adapted to sense an object, the sensing device includes a light source, the aforementioned sensing fiber, and a receiving unit. The sensing fiber is adapted to transmit the sensing light along the path and senses the object. The sensing fiber further includes a light-entering end and a light-exiting end, and the sensing surface is located between the light-entering end and the light-exiting end. The sensing light emitted by the light source enters the sensing fiber from the light-entering end, a part of the sensing light is converted into a signal light by the object on the metal sensor layer, and the signal light is emitted from the light-exiting end and enters the receiving unit.
In one embodiment of the invention, the metal grating structures of the metal sensing layer are arranged along a direction perpendicular to the path.
In one embodiment of the invention, the metal sensing layer has a total thickness in a direction perpendicular to the sensing surface, and the total thickness is greater than or equal to 40 nm and less than or equal to 80 nm.
In one embodiment of the invention, the metal sensing layer further has a first metal layer and a second metal layer located between the sensing surface and the first metal layer. The metal grating structures are formed at the first metal layer.
In one embodiment of the invention, the metal grating structures conform with
wherein d is a depth of the metal grating structures along a direction perpendicular to the sensing surface, A is a pitch of the metal grating structures.
In one embodiment of the invention, the receiving unit is an optical spectrum analyzer (OSA), a power meter, or a light meter.
Based on the above, the metal sensing layer on the sensing surface of the sensing fiber of the embodiments of the invention has the plurality of the metal grating structures. Therefore, when the sensing light is transmitted in the core, the sensing light can be effectively transmitted to the object on the metal sensing layer, and the signal light converted by the object is obtained to provide a good sensing effect. Because the sensing device of the embodiments of the invention has the sensing fiber, when the light source emits the sensing light to the sensing fiber, the receiving unit can all receive a good signal light of the object.
In order to make the aforementioned and other features and advantages of the invention comprehensible, several exemplary embodiments accompanied with figures are described in detail below.
Specifically, the sensing fiber 100 is, for example, a structure formed by machining a complete solid photonic crystal fiber, in fabricating process of the complete solid photonic crystal fiber, the solid columns, which are filled up with solid materials, are used to form the photonic crystal structures 120 and 130 of the complete solid photonic crystal fiber. In the present embodiment, the total number of coils of the photonic crystal structures 120 and 130 of the complete solid photonic crystal fiber is 5, but the total number of coils of the photonic crystal structure of the invention is not limited thereto.
In the first embodiment, the refractive coefficient of the photonic crystal structures 120 and 130 is smaller than the refractive coefficient of the core 110. Specifically, the refractive coefficient of the photonic crystal structures 120 and 130 ranges from 1.402 to 1.42, and the material of the core 110 is, for example, silica germanium which has the refractive coefficient ranging from 1.437 to 1.44, so that the refractive coefficient of the core is increased to make the sensing light L1 can be easily reflected inside the core 110 by the photonic crystal structures 120 and 130, and to increase the transmission efficiency.
In the present embodiment, the sensing surface 140 extends along a part of the path S 1 and be adjacent to the core 110. The sensing surface 140 in the present embodiment is, for example, formed by grinding and polishing the complete solid photonic crystal fiber. The metal sensing layer 150 is, for example, a film made by coating metal materials on the sensing surface 140. When the sensing fiber 100 senses the object 50, the metal sensing layer 150 is located between the sensing surface 140 and the object 50, and a part of the sensing light L1 is converted into a signal light L2 by the object 50 on the metal sensor layer 150.
In the present embodiment, because the sensing surface 140 and metal sensing layer 150 of the sensing fiber 100 have a good surface plasmon mode, the sensing light L1 is sufficiently converted into a signal light L2 by the object 50 on the metal sensor layer 150. Specifically, in the present embodiment, a claw layer (not shown) is disposed on the metal sensing layer 150 and adjusted to combine with the object 50, the metal sensing layer 150 is located between the claw layer and the sensing surface 140. The claw layer is, for example, an antigen, and the object is, for example, an antibody. The signal light that is generated by conversion of the sensing light L1 received by the antibody individually and the signal light that is generated by conversion of the sensing light L1 received by the combination of the antibody and the antigen have different spectral distributions. Because of the different spectra, the sensing fiber 100 of the present embodiment is based on the signal light L2 to detect the existence of the antigen in the object 50, so as to provide a good sensing effect. Furthermore, the sensing fiber 100 of the present embodiment can be applied to the biosensor, and can sense the photoluminescence spectrum or the Raman spectrum of the object through the enhanced surface plasmon mode.
In the present embodiment, the metal sensing layer 150 further has a first metal layer 161 and a second metal layer 162 located between the sensing surface 140 and the first metal layer 161. Specifically, the metal sensing layer 150 is, for example, made by coating the sensing surface 140 with the first metal layer 161, the second metal layer 162 is then coated with the first metal layer 161, and the metal grating structure 160 is formed by etching the first metal layer 161 periodically so that the metal grating structures 160 are formed at the first metal layer 161.
Referring to
Specifically, the first metal layer 161 and the second metal layer 162 of the present embodiment all are silver films having a thickness of 40 nm, so as to fabricate the metal grating having periodic variation of height by etching the second metal layer 162 periodically, but the invention is not limited thereto. In other embodiments of the invention, the material of the metal sensing layer can further includes gold, copper, and silver.
Referring to
Based on the above, the sensing fiber 100 of the present embodiment is foiined by grinding and polishing the complete solid photonic crystal fiber, a distance d 4 from the center of the core 110 to the sensing surface 140 is equal to 2.66 μm, but the invention is not limited thereto. In other embodiments of the invention, the distance between the sensing surface and the core ranges from 2 to 2.8 μm. On the other hand, in the present embodiment, the photonic crystal structures 120, 130 of the complete solid photonic crystal fiber are, for example, distributed to form a hexagonal distribution area inside the complete solid photonic crystal fiber, but the invention is not limited thereto.
In the present embodiment, the receiving unit is an optical spectrum analyzer, and the elements of the object can be manifested by the optical spectrum analyzer analyzing the spectrum of the signal light L4, but the invention is not limited thereto. In other embodiments of the invention, the receiving unit can be a power meter or a light meter.
Table 1 contains the experimental data of the third embodiment of the invention, and
wherein Sλ is the sensitivity having unit: nm/RIU (RIU is Refractive Index Unit), λpeak is the resonance wavelength when the coupled mode is generated, na is the reflective index of the analyzed object.
As shown in table 1, when the value of the period increases, the sensitivity also increases accordingly, so that the sensing fiber of the embodiments of the invention has the metal crystal structure which is arranged periodically, and the sensing fiber has a good sensitivity.
Table 2 contains the experimental data of the fourth embodiment of the invention, and
wherein Sλ is the sensitivity having unit: nm/RIU (RIU is Refractive Index Unit), λpeak is the resonance wavelength when the coupled mode is generated, na is the reflective index of the analyzed object.
In detail,
In summary, the sensing fiber of the embodiments of the invention has different metal sensing layers disposed on the sensing surface, the metal sensing layer has the plurality of the metal grating structures. When the sensing light is transmitted in the sensing fiber, the sensing fiber can have a good surface plasmon mode, so that the sensing light can sense the object on the metal sensing layer effectively, the signal light converted by the analyzed object is obtained to provide a good sensing effect. In other words, the sensing fiber of the embodiments of the invention are combined with the evanescent wave of the fiber and the metallic grating structure for the two kinds of generating mechanism of surface plasmon mode, so as to increase the sensitivity and practicality of the sensing fiber. Because the sensing device of the embodiments of the invention has the sensing fiber, when the light source emits the sensing light to the sensing fiber, the receiving unit can all receive a good signal light of the object.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosed embodiments without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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104115562 | May 2015 | TW | national |