1. Field of the Invention
The present invention relates to a surface plasmon resonance fiber sensor and, more particularly, to a surface plasmon resonance fiber sensor having plural optical fiber sensing units arranged into a cascade form matrix, wherein the surface plasmon resonance fiber sensor is easy to operate, easily portable, having higher resolution and analyzing sensitivity, and being able to be applied in a surface plasmon resonance sensing apparatus.
2. Description of Related Art
Currently, in the medical detecting field or environment detecting field, it is important to detect immediately and accurately the kind and the concentration of a biomolecule under test. For example, in a site having a leakage of hazardous material, it is extremely important for the emergency management team to on-site identify the kind of the hazardous material and the concentration thereof immediately and accurately, in order to determine which is the proper procedure to solve the leakage situation and minimize the risk to the processing process. Therefore, it is important to improve the accuracy and sensitivity of the analyzing apparatus, to simplify the detecting process, and to improve the portability of the analyzing apparatus.
Therefore, a surface plasmon resonance sensing apparatus which is portable, easy to operate, and with an easily exchangeable bio-detecting unit is required. Besides, a surface plasmon resonance sensing apparatus with a higher detecting accuracy is also required.
The object of the present invention is to provide a surface plasmon resonance fiber sensor, which can lower noise occurring during the detection operation, improve the accuracy of the detection, and have the following advantages: shortened detection time, pre-labeling on the DUT before the detection being not required, only a small amount of sample being required, on-line detection of the interaction between the DUT and the corresponding ligand being possible, and the sensitivity of the detection being high.
Another object of the present invention is to provide a surface plasmon resonance sensing apparatus, which is easily portable, easy to operate, has a bio-detecting unit that is easily exchangeable, and has lower detecting noise and higher detecting accuracy.
To achieve the above objects, the surface plasmon resonance fiber sensor of the present invention comprises: an optical fiber member; and a plurality of optical fiber sensing units, each of the optical fiber sensing units having a cladding layer, a core layer, and a groove; wherein the plurality of the optical fiber sensing units is arranged into a cascade form matrix, the cladding layer is located at the periphery of the core layer, the maximum depth of the groove is larger than the thickness of the cladding layer, and the optical fiber member is connected with the optical fiber sensing units.
The optical fiber member of the surface plasmon resonance fiber sensor of the present invention can be a single-mode fiber or a multi-mode fiber, but preferably it is a multi-mode fiber.
According to one aspect of the present invention, the optical fiber member of the surface plasmon resonance fiber sensor can be connected with the optical fiber sensing units at the ends of the cascade form matrix through a welding process, or the optical fiber member and the optical fiber sensing units can be integrated as a whole.
According to another aspect of the present invention, the groove of each of the optical fiber sensing units of the surface plasmon resonance fiber sensor can be formed by any kind of process, but preferably it is formed by applying a side polishing process or an etching process on the optical fiber member. Besides, the surface of the groove of each of the optical fiber sensing units is preferably a polished surface. The length of the polished surface is not limited, but preferably the length is between 0.2 mm to 0.7 mm. The plurality of the optical fiber sensing units of the surface plasmon resonance fiber sensor of the present invention is arranged into a cascade form matrix, and the maximum depth of the groove of each of the optical fiber sensing units can be same with, or different from each other, preferably the maximum depths of the grooves of two neighboring optical fiber sensing units are the same.
According to still another aspect of the present invention, the surfaces of the grooves having the maximum depth of the plurality of the optical fiber sensing units of the surface plasmon resonance fiber sensor can be parallel or non-parallel with each other, but preferably the surfaces of the grooves having the maximum depth of two neighboring optical fiber sensing units are parallel with each other.
According to still another aspect of the present invention, the distance between the grooves of two neighboring optical fiber sensing units of the surface plasmon resonance fiber sensor is not limited, but preferably the distance between the grooves of two neighboring optical fiber sensing units is the same.
According to still another aspect of the present invention, the surfaces of the grooves of each of the plurality of the optical fiber sensing units of the surface plasmon resonance fiber sensor can be coated with any kind of metallic layer, but preferably the metallic layer is made of gold or silver. Besides, the thickness of the metallic layer is not limited, but preferably the thickness is between 10 nm to 60 nm. Moreover, the thickness of the metallic layer coated on the surface of the grooves of two neighboring optical fiber sensing units can be same with, or different from each other, but preferably the thicknesses of the metallic layer coated on the surface of the grooves of two neighboring optical fiber sensing units are the same as each other.
On the other hand, a biomolecule layer can be formed on the surface of the groove of each of the plurality of the optical fiber sensing units of the surface plasmon resonance fiber sensor. Besides, the biomolecule layer can also be formed on the surface of the metallic layer located on the surface of groove of each of the plurality of the optical fiber sensing units.
The surface plasmon resonance sensing apparatus of the present invention comprises: a light source; an optical signal detector; a plurality of fibers; a plurality of optical fiber sensing units, each of the optical fiber sensing units having a cladding layer, a core layer, and a groove; wherein the plurality of the optical fiber sensing units is arranged into a cascade form matrix, the cladding layer is located at the periphery of the core layer, the maximum depth of the groove is larger than the thickness of the cladding layer, and the plurality of the optical fiber sensing units is respectively connected with the light source and the optical signal detector by the plurality of fibers. The light source of the surface plasmon resonance sensing apparatus of the present invention can be any kind of light source, but preferably it is a laser diode.
According to one aspect of the present invention, the groove of each of the plurality of optical fiber sensing unit of the surface plasmon resonance sensing apparatus can be coated with any kind of metallic layer, but preferably the metallic layer is made of gold or silver. Besides, a biomolecule layer can also be formed on the surface of the groove of each of the plurality of optical fiber sensing unit of the surface plasmon resonance sensing apparatus of the present invention.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
It should be noted that the number of the grooves formed on the optical fiber sensing units of the optical fiber member is not limited. In the present embodiment, the first groove 331 and the second groove 332 are arranged in a cascade form matrix. That is, in other embodiments, the number of the optical fiber sensing units may be varied, depending on the samples to be detected or the environment in which the detection is executed. Moreover, for improving the intensity of the surface plasmon resonance signal and the stability of the bonding of the sample on the optical fiber sensing units, a metallic layer 34 can be formed on the surface of the first groove 331 and that of the second groove 332 by a sputtering process or other deposition methods. In the present embodiment, the metallic layer 34 is made of gold and the thickness thereof is about 40 nm. Moreover, the surface of the first groove 331 having the maximum depth is parallel with the surface of the second groove 332 having the maximum depth, and the maximum depths of these two grooves are the same. However, in other embodiments, depending on the samples to be detected or the environment in which the detection is executed, the surfaces of these grooves can be non-parallel with each other, and the maximum depths of these grooves may be different from each other.
It should be noted that the number of the grooves formed on the optical fiber sensing units of the optical fiber member is not limited. In the present embodiment, the first groove 431 and the second groove 432 are arranged in a cascade form matrix. That is, in other embodiment, the number of the optical fiber sensing units may be varied, depending on the samples to be detected or the environment in which the detection is executed. Moreover, for improving the intensity of the surface plasmon resonance signal and the stability of the bonding of the sample on the optical fiber sensing units, a metallic layer 44 can be formed on the surface of the first groove 431 and that of the second groove 432 by a sputtering process or other deposition methods. In the present embodiment, the metallic layer 44 is made of gold and the thickness thereof is about 40 nm. Moreover, the surface of the first groove 431 having the maximum depth is parallel with the surface of the second groove 432 having the maximum depth, and the maximum depths of these two grooves are the same. But, in other embodiments, depending on the samples to be detected or the environment in which the detection is executed, the surfaces of these grooves can be non-parallel with each other, and the maximum depths of these grooves may be different from each other.
In the present embodiment, the surface plasmon resonance fiber sensor of the present invention is applied in a surface plasmon resonance sensing apparatus, wherein the surface plasmon resonance sensing apparatus can be the one being used in the prior art application. The surface plasmon resonance sensing apparatus of the present invention will be explained in the following, along with
The surface plasmon resonance sensing apparatus of the present invention comprises a laser diode 22 as a light source, and the light emitted from the laser diode 22 is guided and incident into a sample tank 23 through a multi-mode fiber 221, wherein the surface plasmon resonance fiber sensor of the present invention (not shown) is installed in the sample tank 23. An optical signal detector 24 is connected with the optical fiber sensing unit (not shown) through another multi-mode fiber 222. The optical signal detector 24 transfers the light it received into corresponding voltage signals and transmits the voltage signals to a computing control unit (not shown), for analyzing and computing purpose.
Therefore, as shown in
In summary, the surface plasmon resonance fiber sensing method can have the following advantages, the pre-labeling on the DUT before the detection is not required, only a small amount of sample is required, the on-line detection of the interaction between the DUT and the corresponding ligand is possible, and the sensitivity of the detection is high. Thus, the surface plasmon resonance fiber sensing method can be applied in various fields, such as, detection on chemical gas or the solution having waste therein, monitoring on the polluted material, immunity medicine, and the filtration of disease. The Kretschmann-Raether method is an example of the conventional surface plasmon resonance fiber sensing method, wherein a prism, a thin layer of metallic material and a dielectric layer having the DUT therein are involved. However, the sensitivity and the resolution of the Kretschmann-Raether method cannot be effectively increased. On the contrary, by having plural optical fiber sensing unit arranged into a cascade form matrix, the surface plasmon resonance fiber sensor of the present invention can also have the advantages described above, such as, having the sensitivity higher than that of the conventional surface plasmon resonance fiber sensor, on-line and fast detection being possible, and having lower noise on the detection signal. Therefore, the cost and time of the detection process applying the surface plasmon resonance fiber sensor of the present invention can be reduced and shortened, respectively. Besides, the process of the surface plasmon resonance fiber sensing method of the present invention is also simplified.
Although the present invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the scope of the invention as hereinafter claimed.
Number | Date | Country | Kind |
---|---|---|---|
096139458 | Oct 2007 | TW | national |