1. Field of the Invention
The present invention is generally related to an optical sensor and a method for measuring blood gas, and more particularly to an optical sensor and a method for measuring blood gas based on the light absorption sensing technique.
2. Description of the Prior Art
While measuring blood gas, a stable and easily continuously operational sensor is needed to measure the gas concentration in blood. However, a conventional electrode for measuring blood gas has high accuracy in measurement but is very expensive. In addition, it consumes the gas content in blood while taking measurement and has large volume so that it is not suitable for invading-type continuous measurement for human beings. Furthermore, a general biosensor is also too bulky to be used in home health care.
In addition, a conventional optical sensor for measuring blood gas has high production cost and is required to be in accord with the complicate circuit design to prevent measurement fault due to the environmental cause while taking measurement.
The present invention provides an optical sensor for measuring blood gas, used to measure gas concentration in a liquid, comprising: an indicator solution; a first conduit for filling with the indicator solution wherein the first conduit passes through the liquid and the gas in the liquid can diffuse into the first conduit to react with the indicator solution so as to change the color of the indicator solution; a second conduit for receiving the reacted indicator solution in the first conduit; and a light emitter and a photodetector provided in opposition to each other at the two sides of the second conduit wherein the light emitter emits light towards the second conduit and the photodetector receives the light passing through the second conduit and the reacted indicator solution and thereby outputs a sensing signal depending on the received light intensity; wherein the light absorbability of the color of said indicator solution with respect to the light emitted by said light emitter decreases as the to-be-measured gas concentration in the liquid increases.
The present invention further provides an optical sensor for measuring blood gas, used to measure gas concentration in a liquid, comprising: a first container for storing the liquid; a conduit passing through the first container for filling with an indicator solution wherein the gas in the liquid can diffuse into the conduit by liquid pressure to react with the indicator solution so as to change the color of the indicator solution and the light absorbability of the reacted indicator solution decreases as the concentration of the gas diffusing in the conduit increases; a second container connected to the conduit for receiving the reacted indicator solution in the conduit; and a light emitter and a photodetector provided in opposition to each other at the two sides of the second container wherein the light emitter emits light towards the second container and the photodetector receives the light passing through the second container and the reacted indicator solution and thereby outputs a sensing signal depending on the received light intensity.
The present invention further provides a method for measuring blood gas, used to measure gas concentration in a liquid, comprising: filling an indicator solution into a conduit wherein said conduit passes through the liquid; allowing the gas in the liquid diffusing into said conduit to react with said indicator solution so as to become a reacted indicator solution wherein the light absorbability of said reacted indicator solution decreases as the concentration of the gas diffusing into said conduit increases; using a light emitter for emitting light to let the light pass through said reacted indicator solution; and using a photodetector for receiving the light passing through said reacted indicator solution and thereby outputting a sensing signal depending on the received light intensity.
The present invention further provides an optical sensor for measuring blood gas, used to measure gas concentration in a liquid, comprising: a container with an opening for storing an indicator solution; a silica gel layer for sealing said opening; and a light emitter and a photodetector provided in opposition to each other at the two sides of said container wherein said photodetector receives the light emitted from said light emitter passing through said container and said indicator solution and thereby outputs a sensing signal depending on the received light intensity.
Some preferred embodiments of the present invention will now be described in greater detail in the following. However, it should be recognized that the present invention can be practiced in a wide range of other embodiments besides those explicitly described, that is, this invention can also be applied extensively to other embodiments, and the scope of the present invention is expressly not limited except as specified in the accompanying claims. In order to have clear description of the invention and better understanding for those who are skilled in the art, some part of the figures is not drawn in proportion, in which the size of some part has been exaggerated. Besides, some of irrelevant part is not shown for simplicity.
For further explanation of the above embodiment, when carbon dioxide in blood diffuses into the conduit 120, carbon dioxide reacts with the indicator solution (acid-base indicator). As the concentration of carbon dioxide in the measured blood is higher (That is, the amount of carbon dioxide diffusing into the conduit 120 is increased), the indicator solution changes color towards acid reaction. For example, the phenol red indicator solution changes its color towards yellow. As the concentration of carbon dioxide in the measured blood is lower (That is, the amount of carbon dioxide diffusing into the conduit 120 is decreased), the indicator solution changes color towards base reaction. For example, the phenol red indicator solution changes its color towards red. The above mentioned acid-base indicator solution and indicator solution are used only for example and not for limiting the scope of the present invention. The indicator solution changes reaction color in compliance with the gas concentration to be measured. The corresponding absorbability of the indicator solution is also changed at the same time as changing reaction color. For example in a phenol red indicator solution, as the color of the solution inclines towards yellow, the corresponding absorbability is lower (higher transparency). As the color inclines towards red, the corresponding absorbability is higher (lower transparency).
A second container 130 is connected to the conduit 120 for receiving the reacted indicator solution 114 in the conduit. In this embodiment, the second container is a quartz cuvette but it is not limited to this. The light absorbability of the reacted indicator solution 114 decreases as the concentration of carbon dioxide diffusing in the conduit 120 increases. A light emitter 140 and a photodetector 150 are provided in opposition to each other at the two sides of the second container 130. The photodetector 150 receives the light emitted from the light emitter 140 passing through the second container 130 and the reacted indicator solution 114. The photodetector 150 thereby outputs a sensing signal depending on the received light intensity. Therefore, as the light absorbability of the reacted indicator solution 114 is higher, the light received by the photodetector 150 decreases, accordingly. As the light absorbability of the reacted indicator solution 114 is lower, the light received by the photodetector 150 increases, accordingly. In this embodiment, the light emitter 140 is either a light emitting diode (LED) or a laser diode (LD) and the light emitted from the light emitter 140 is green light. A preferred wavelength is 555 nm. The photodetector 150 is a sensor to transform a light signal into a signal with the corresponding frequency. The light emitter 140 and the photodetector 150 can be surface mounting electronic components mounted on the two sides of the second container 130.
Obviously many modifications and variations are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims the present invention can be practiced otherwise than as specifically described herein. Although specific embodiments have been illustrated and described herein, it is obvious to those skilled in the art that many modifications of the present invention may be made without departing from what is intended to be limited solely by the appended claims.