1. Field of the Invention
The instant disclosure relates to a diffusion furnace; more particularly, to a diffusion furnace having a plurality of partially exposed infrared heating elements.
2. Description of Related Art
In general, the fabrication of CIGS (copper indium gallium selenide) thin-film solar cell (TFSC) involves the following procedures. First, a molybdenum layer (Mo), serving as a back contact, will be coated on a substrate (such as glass, stainless steel, etc.). Then, a CIGS precursor film of corresponding thickness is formed on the molybdenum layer. The deposition of copper (Cu), indium (In), and gallium (Ga) film can be done by methods including physical vapor deposition (PVD), electro-less plating, and electroplating. Then, the substrate having a film that comprises copper, indium, and gallium is placed in a diffusion furnace with selenide vapor introduced therein and undergoes an annealing process under high temperature condition (typically between 500˜600 degree Celsius) to form the final CIGS thin film.
A diffusion furnace usually has a plurality of heating elements. Conventional heating elements generally consist of heating wires recessively arranged in the ceramic insulating layer of the furnace. However, these heating elements may deform due to thermal expansion, which can cause premature failures and misplacements of the heating elements. In addition, when power is cut off to the heating wires, a majority of residual heat in the device will remain in the ceramic insulating layer. Therefore, the furnace can not quickly cool down after operation.
To address the above issues, the inventors strive via industrial experience and academic research to present the instant disclosure, which can effectively improve the limitations described above.
The instant disclosure relates to a diffusion furnace. The heating elements of this diffusion furnace would not deform due to thermal expansion. The heating elements can be firmly secured and cool down quickly after operation.
The diffusion furnace of the instant disclosure comprises an outer housing, an inner housing, and a plurality of infrared heating elements. The inner housing is arranged inside the outer housing, and a chamber is formed within the inner housing. At least a portion of each infrared heating element is disposed on the outer housing. Each of these infrared heating elements has a heating portion and a fixing portion connected thereto. The heating portion is positioned inside of the outer housing, and the fixing portion is secured externally on the outer housing.
The instant disclosure also provides a diffusion furnace that comprises an outer housing, an inner housing, and a plurality of infrared heating elements. The inner housing is arranged within the outer housing, and a chamber is formed within the inner housing. At least a portion of each infrared heating element is disposed on the outer housing. Each of these infrared heating elements has a heating portion, each of which is positioned inside of the outer housing.
The diffusion furnace of the instant disclosure has the following advantages. The infrared heating elements do not distort due to thermal expansion. Such ability allows the infrared heating elements to be free from premature failures and be fixed securingly. Moreover, after the power is turned off, the infrared heating elements retain less residual heat. Therefore, the furnace can cool down more quickly after operation.
In order to further appreciate the characteristics and technical contents of the instant disclosure, references are hereunder made to the detailed descriptions and appended drawings in connection with the instant disclosure. However, the appended drawings are merely shown for exemplary purposes, rather than being used to restrict the scope of the instant disclosure.
Please refer to
The inner housing 2 is a hollowed structure, which is fabricated of quartz or other materials. The inner housing 2 is arranged within the outer housing 1, and a chamber 21 is defined by the hollowed structure of the inner housing 2. An opening 22 is formed at least on one end of the inner housing 2. The chamber 21 communicates with the opening 22 to accept objects for thermal treatment. A metallic cover 23 can be arranged over the opening 22, and a furnace door (not shown) can be mounted on the cover 23. At least two support members 24 fabricated of fire brick can be used for mounting the inner housing 2 within the outer housing 1.
The shape and structural configuration of the infrared heating elements 3 are not restricted. For this embodiment, the infrared heating elements 3 use a filament 31 as the emitting body, such as a tungsten wire. The filament 31 is protected within a quartz tube 32, as shown in
Each infrared heating element 3 is partially mounted on the outer housing 1, while the heating portion 3a is arranged within the outer housing 1. The heating portion 3a and the inner wall of the outer housing 1 have a clearance formed therebetween. The two fixing portions 3b of each infrared heating element 3 are secured on the outer housing 1. As shown in
After the infrared heating elements 3 are turned on, the emitted infrared energy is used to heat up the inner housing 2 and the objects within the chamber 21. The reactant gases can also be introduced into the diffusion furnace for pre-determined thermal treatment process.
The diffusion furnace of the instant disclosure utilizes the infrared heating elements 3 as the heat source for thermal treatment. The fixing portions 3b of each infrared heating element 3 can protrude from the outer housing 1. The protruded fixing portions 3b are secured to the outer housing 1 by the corresponding mounting devices 4. The infrared heating elements 3 are fabricated of quartz tubes 32. Therefore, the heating elements would not distort due to thermal expansion, which can prevent premature failures and ensure the heating elements to be firmly secured to the outer housing 1. In addition, after the infrared heating elements 3 are powered off, less residual heat is retained by the infrared heating elements 3. Thus, the infrared heating elements 3 have a higher cooling rate. Moreover, the infrared heating elements 3 can heat rapidly and have more uniform heat distribution.
Please refer to
The descriptions illustrated supra set forth simply the preferred embodiment of the instant disclosure; however, the characteristics of the instant disclosure are by no means restricted thereto. All changes, alternations, or modifications conveniently considered by those skilled in the art are deemed to be encompassed within the scope of the instant disclosure delineated by the following claims.
Number | Date | Country | Kind |
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99220775 | Oct 2010 | TW | national |