PROSTATE CANCER SCREENING MODULE AND METHOD FOR OPERATING THE SAME
20170199146 ยท 2017-07-13
Inventors
Cpc classification
G01N27/4161
PHYSICS
G01N27/4035
PHYSICS
International classification
Abstract
The present invention relates to a prostate screening module and the method for operating the same. It uses nanometer-grade nickel oxide as the screening film. By contacting nickel oxide with hydrogen peroxide having various concentrations, the surface potential of nickel oxide will be changed and resulting in voltage shift, which can be used to judge the concentration of hydrogen peroxide. The sample for screening is urine or blood serum. After the sarcosine in urine or blood serum is oxidized and forming hydrogen peroxide, the content of sarcosine in the sample can be deduced by means of the reaction between hydrogen peroxide and nickel oxide. Accordingly, the possibility of prostate cancer can be evaluated.
Claims
1. A prostate cancer screening module, comprising: a conductive substrate; a p-type silicon semiconductor layer, disposed on said conductive substrate; a silicon dioxide layer, disposed on said p-type silicon semiconductor layer; a sensing film, disposed on said silicon dioxide layer for carrying a sample; and a reference electrode, located above said sensing film for contacting said sample; wherein the material of the sensing film is selected from the group consisting of NiO.sub.x, IrO.sub.x, GdO.sub.x, Pt, WO.sub.x, Si, Ge, Os, Pd, CrO.sub.x, CeO.sub.x, TaO.sub.x, ErO.sub.x, YO.sub.x, HfO.sub.x, ZrO.sub.x, SnO.sub.x, PrO.sub.x, SmO.sub.x, NbO.sub.x, ZnO.sub.x, LuO.sub.x, RuO.sub.x, MoS.sub.2O.sub.x, TmO.sub.x, HoO.sub.x, DyO.sub.x, YbO.sub.x, EuO.sub.x, TbO.sub.x, IGZO.sub.x, InNO.sub.x, NdO.sub.x, Al, Ti, and graphene oxide.
2. The prostate cancer screening module of claim 1, wherein said conductive substrate is a copper-plated printed circuit board.
3. The prostate cancer screening module of claim 1, wherein an aluminum electrode layer is disposed between said p-type silicon semiconductor layer and said conductive substrate.
4. The prostate cancer screening module of claim 1, wherein the thickness of said sensing film is between 1 and 2 nanometers.
5. The prostate cancer screening module of claim 1, and further comprising one or more resin block on said silicon dioxide layer for partitioning and giving a screening space, and said sensing film located on said silicon dioxide layer in said screening space.
6. The prostate cancer screening module of claim 1, wherein said sample is urine or blood serum.
7. The prostate cancer screening module of claim 1, and further comprising a titanium film disposed below said sensing film.
8. The prostate cancer screening module of claim 1, and further comprising a titanium film mixed with said sensing film and disposed on silicon dioxide layer.
9. A method for operating a prostate cancer screening module, comprising steps of: using a reference electrode to approach a sensing film and giving a first voltage; disposing a sample between said reference electrode and said sensing film, giving a second voltage, and said sample being urine or blood serum; and comparing said first voltage and said second voltage for giving a difference value, and using said difference value to judge the content of sarcosine in said sample; wherein the material of the sensing film is selected from the group consisting of NiO.sub.x, IrO.sub.x, GdO.sub.x, Pt, WO.sub.x, Si, Ge, Os, Pd, CrO.sub.x, CeO.sub.x, TaO.sub.x, ErO.sub.x, YO.sub.x, HfO.sub.x, ZrO.sub.x, SnO.sub.x, PrO.sub.x, SmO.sub.x, NbO.sub.x, ZnO.sub.x, LuO.sub.x, RuO.sub.x, MoS.sub.2O.sub.x, TmO.sub.x, HoO.sub.x, DyO.sub.x, YbO.sub.x, EuO.sub.x, TbO.sub.x, IGZO.sub.x, InNO.sub.x, NdO.sub.x, Al, Ti, and graphene oxide.
10. The method for operating a prostate cancer screening module of claim 9, wherein said sample contains a sarcosine oxidase.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0017] In order to make the structure and characteristics as well as the effectiveness of the present invention to be further understood and recognized, the detailed description of the present invention is provided as follows along with embodiments and accompanying figures.
[0018] Please first refer to
[0019] In the structure according to the above preferred embodiment, the conductive substrate 1 is a copper-plated printed circuit board and can be used as an electrode corresponding to the reference electrode 5. The p-type silicon semiconductor layer 2 and the silicon dioxide layer 3 above the conductive substrate 1 enable the present invention to own the characteristics of an electrolyte-insulator-semiconductor sensor. The fabrication method for the structure is similar to normal semiconductor processes. By using chemical vapor deposition (CVD), plasma-enhanced CVD (PECVD), vapor deposition, e-gun vapor deposition, and radio-frequency (RF) sputtering, layers of different materials can be stacked. In order to increase electrical conductivity, according to a preferred embodiment, an aluminum electrode layer 6 is further included between the p-type silicon semiconductor layer 2 and the conductive substrate 1. Silver-silver chloride or other reference electrodes having a fixed potential difference can be selected to be the reference electrode 5.
[0020] According to a preferred embodiment, the sensing film 4 made by NiO.sub.x does not cover completely the silicon dioxide layer 3 in a thick film manner. Instead, nickel oxide is distributed on the silicon dioxide layer 4 in the form of nanometer particles. The thickness of the film is 1 to 5 nanometers and preferably 2 nanometers. According to another embodiment, titanium-oxide nanometer particles are further used to form a titanium oxide film. Nonetheless, the present invention is not limited to the use of titanium-oxide nanometer particles only to form the film. The titanium oxide film can be disposed below the sensing film 4. Alternatively, sputtering can be adopted to mix nickel-oxide nanometer particles and titanium-oxide nanometer particles and form the film. In other words, the titanium film and the sensing film 4 are disposed on the silicon dioxide layer 3 in a mixed fashion. According to still another preferred embodiment, after preparation of the titanium oxide film, a 650 C. annealing process can be performed for 30 minutes in ambient oxygen.
[0021] Please refer to
[0022] In addition, the prostate cancer screening module can further comprise a housing 8 formed by epoxy resin. The housing 8 can protect the layers inside from pollution or oxidation and thus extending the lifetime of the prostate cancer screening module.
[0023] As described above, when the structure disclosed in the present invention is operating, the liquid sampled is dripped on the surface of the sensing film 4. According to a preferred embodiment of the present invention, the gradient of the sample is urine. Presently, it is known the content of sarcosine in urine is closely related to the screening of prostate cancer. Accordingly, the present invention makes use of chemical reactions to detect C-V (capacitance-to-voltage) changes and hence judging if the urine or blood serum contains sarcosine.
[0024] The sample used in the present invention is urine or blood serum. If the urine contains sarcosine, the following reaction will occur:
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[0025] After oxidation, the sarcosine in urine produces hydrogen peroxide. Namely, if hydrogen peroxide exists in the sample, it implies existence of sarcosine in the urine. If the concentration of hydrogen peroxide is higher, then the content of sarcosine is greater, meaning that the characteristics of prostate cancer are more apparent. Sarcosine oxidase (SOD) can be added to the sample in the above oxidation reaction and acting as the catalyst. In order to make sure the existence and the concentrate of hydrogen peroxide, according to the present invention, the sample contacts the sensing film. When nickel oxide contacts hydrogen peroxide, the following reduction reactions occur:
NiO+OH.sup..fwdarw.NiOOH (2)
2NiOOH+H.sub.2O.sub.2.fwdarw.2NiO+2H.sub.2O+O.sub.2 (3)
[0026] In Formula (2), nickel oxide produces nickel oxyhydroxide in alkaline ambience. Then, in Formula (3), the oxyhydroxide further reacts with hydrogen peroxide and is reduced to nickel oxide. The oxidation number of nickel is changed from +2 to +3. Besides, the potential is changed and thereby the screening module as described above can be used to detect changes in voltage. Consequently, the content of sarcosine in urine can be judged sensitively and real-timely for evaluating if a prostate cancer occurs.
[0027] Please refer to
[0031] Please refer to
[0032] Please refer to
[0033] Besides, while applying the present invention, a buffer solution can be further added between the sensing film and the reference electrode. The function of this buffer solution is to influence the pH value of the sample and thus adjusting the substrate bias.
[0034] To sum up, the present invention discloses in detail a prostate cancer screening module and the method for operating the same. The sample for detection is urine or blood serum. If the urine or blood serum contains elevated level of sarcosine, which is relevant to the prostate cancer, the sarcosine can be oxidized to produce hydrogen peroxide by reacting with an enzyme sarcosine oxidase. Then a sensing film made of nickel oxide can be used to react with the hydrogen peroxide and changing the surface of the sensing film. By detecting the voltage changes, the concentration of the hydrogen peroxide can be judged and hence deducing the content of sarcosine in the sample. The present invention owns the feature of rapid screening and high sensitivity. Accordingly, it is undoubtedly an extremely valuable prostate cancer screening module and the method for operating the same.
[0035] Accordingly, the present invention conforms to the legal requirements owing to its novelty, nonobviousness, and utility. However, the foregoing description is only embodiments of the present invention, not used to limit the scope and range of the present invention. Those equivalent changes or modifications made according to the shape, structure, feature, or spirit described in the claims of the present invention are included in the appended claims of the present invention.