1. Field of the Invention
The present invention relates to a measuring method of determining component concentrations in a solution including an efficient determination of a calibration coefficient from a solution spectrum and solvent spectrum to enable measurement.
2. Description of the Prior Art
It is necessary in various industrial and scientific fields to accurately measure the components in a sample or in a production environment. For example, in manufacturing semiconductor components high accuracy is required and the concentration of components in any chemical solution used must be carefully controlled in the production process. Additionally, temperature can also have an impact and will effect the measurement calculations. For example, to calculate component concentrations in a fluid solution at various temperatures, heretofor, calibration coefficients Mij(T1), Mij(T2), . . . Mij(Tk) at a plurality of different temperatures T1, T2, . . . Tk had to be determined, and at T=about Tk, the component concentration in solution Ci(T) was calculated by the following formula:
In formula (1), i denotes a component, λj denotes j-th wavelength, and S(λj, T) denotes the solution spectrum at arbitrary temperature T in j-th wavelength λj.
As can be determined a significant number of technical steps had to be performed by a skilled technician to obtain a large number of calibration coefficients.
Thus, there is a need for improving the ability to efficient control the measurement of components in a fluid solution.
An object of the present invention is to provide a measuring method of determining the amount of component concentration in a fluid solution by at various temperatures in a small number of steps. To achieve this object, a measuring method measures the component concentration in solution at an arbitrary temperature T by using a solution spectrum and solvent spectrum at each wavelength, a preliminarily determination of the calibration coefficient Mij(TO) for measuring concentration Ci of component i in solution at reference temperature TO, is obtained from a differential spectrum of solution spectrum S(λj, T) at temperature T in j-th wavelength λj and solvent spectrum B (λj, T) at temperature in j-th wavelength λj, for calculating the calibration coefficient Mij(TO).
In the invention, the solvent spectrum B (λj, T) is preferred to be expressed as
wherein ki (λj): coefficient of degree of i about temperature in j-th wavelength λj.
By calculating the differential spectrum of solution spectrum S (λj, T) at temperature T in j-th wavelength λj and solvent spectrum B (λj, T) at temperature T in j-th wavelength λj, with the calibration coefficient Mij(TO) for measurement of concentration Ci of component i in the solution at reference temperature TO determined preliminarily, the concentration of component i in the solution can be calculated. That is, in the invention, solution spectrum S (λj, T) and solvent spectrum B (λj, T) at various temperatures T can be determined as measured physical quantities, and instead of using plural calibration coefficients Mij(T1), Mij(T2), . . . Mij(Tk) at plural temperatures T1, T2, . . . Tk as in the conventional method, by using only one calibration coefficient Mij(TO)(i is component in solution, and j is wavelength point) at reference temperature TO, components concentration in solution at various temperatures can be accurately calculated. This invention requires only one calibration coefficient and since a determination of a calibration calculation takes most of the time and labor, the number of steps for acquiring the calibration coefficients is saved.
Also in the invention, the solvent spectrum B (λj, T) at temperature T in j-th wavelength λj is expressed as
wherein ki(λj): coefficient of degree of i about temperature in j-th wave length λj, and B (λj, T) is used by defining the n-th degree function of (T-TO).
For example, the invention can be applied in support of concentration management in a one-bath apparatus (see
a quick measuring response is realized when monitoring the concentration, and the follow-up performance depending on concentration changes of the chemical solution can be enhanced.
The objects and features of the present invention, which are believed to be novel, are set forth with particularity in the appended claims. The present invention, both as to its organization and manner of operation, together with further objects and advantages, may best be understood by reference to the following description, taken in connection with the accompanying drawings.
Reference will now be made in detail to the preferred embodiments of the invention which set forth the best modes contemplated to carry out the invention, examples of which are illustrated in the accompanying drawings. While the invention will be described in conjunction with the preferred embodiments, it will be understood that they are not intended to limit the invention to these embodiments. On the contrary, the invention is intended to cover alternatives, modifications and equivalents, which may be included within the spirit and scope of the invention as defined by the appended claims. Furthermore, in the following detailed description of the present invention, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be obvious to one of ordinary skill in the art that the present invention may be practiced without these specific details. In other instances, well known methods, procedures, components, and circuits have not been described in detail as not to unnecessarily obscure aspects of the present invention.
Preferred embodiments of the present invention are described below by referring to the accompanying drawings. It must be noted, however, that the invention should not be limited by the illustrated preferred embodiments.
In a measuring method of determining component concentration in a solution, first calibration coefficient Mij(TO) is determined preliminarily to measure the concentration Ci of component i in the solution at a reference temperature TO (for example, 25° C.). At this time,
Ci(To)=ΣMij(To) S(λj, To)+Mio(To)
wherein S(λj, TO) indicates the solution spectrum (absorbance spectrum, etc.) at reference temperature TO in j-th wavelength λj, and MiO(TO) is a constant not depending on the solution spectrum S(λj, TO), and relating to component i at the reference temperature TO.
Suppose the solvent spectrum of solvent (for example, H2O) as a principal component of the solution at a temperature T in j-th wavelength λj to be B (λj, T). At this time, it is defined so that the solvent spectrum B (λj, TO) at reference temperature TO in j-th wavelength λj may be zero in all wavelengths (the reference is shifted). That is,
B(λj,TO)=0 (3)
At this time, as shown in
S(λj,T)−B(λj,T)=S(λj,To)−B(λj,T0)=S(λj,To) (4)
Therefore, putting S(λj, TO) in formula (2) into formula (4), and replacing Ci(TO) in formula (2) with Ci(T), the component concentration at temperature T after temperature correction can be expressed in the following formula.
Accordingly, the present inventors have provided an equation which can be implemented in a control system, for example, with the assistance of a computer to enable a constant monitoring of the components in a fluid solution with adjustments for temperature correction. The empirical derivation of this improvement verified the relationships and led the present inventors to simplifying the determination of a relevant calibration coefficient to enable an efficient and accurate determination of components in a fluid solution.
In the embodiment shown in
From formula (5), it is possible by only determining the calibration coefficient Mij(TO) of solution at reference temperature TO, and solution spectrum S (λj, T) and solvent spectrum B (λj, T) at various temperatures, for the component concentrations in the solution to be calculated, and only one calibration coefficient consuming time step in calculation is enough, and a number of preparatory measurement steps can be saved.
As known from
Referring to
To monitor the cleansing bath, measurements of the temperature of the bath are periodically taken and the component concentration is also measured at the flow cell over a predetermined range of wavelengths to determine absorbance for each wavelength point. Theses values can be used with the calibration coefficient in accordance with Equitation 5 to determine the specific level of concentrations adjusted by the current temperature of the bath.
Thus, it is possible to monitor and when necessary to adjust the ratio of components in the bath to maintain an optimum level.
Those skilled in the art will appreciate that various adaptations and modifications of the just-described preferred embodiment can be configured without departing from the scope and spirit of the invention. Therefore, it is to be understood that, within the scope of the amended claims, the invention may be practiced other than as specifically described herein.
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