1. Field of the Invention
The present invention generally relates to a capacitively coupled plasma generator and, more particularly, to a large-area capacitively coupled plasma generator using an RF power supply to provide the two input ports with RF power. The input impedance at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity.
2. Description of the Prior Art
With the increase in the size of glass substrates for thin-film solar cells, the size of the large-area plasma generator has to be larger. Therefore, it is crucial to eliminate standing wave in the large-area plasma generator.
The large-area plasma generator is widely used in plasma-enhanced chemical vapor-phase deposition (PECVD) for thin-film solar cells (especially thin-film solar cells on the glass substrate). Unlike the linear plasma generator wherein plasma extends in one dimension, the large-area plasma generator generates plasma that extends in two dimensions. The size of the currently available glass substrate exceeds 1 m2 and, therefore, the size of the large-area plasma generator has to exceed 1 m2. On the other hand, the plasma generator for depositing Si thin films is mostly realized by the capacitively coupled plasma generator operating in the VHF band (40˜80 MHz). Two reasons for generating plasma in the VHF band are: 1. The capacitively coupled plasma generator operating in the VHF band generates plasma with higher plasma density than the conventional plasma generator operating in the HF band (13.56 MHz); and 2. Lower plasma sheath potential. High plasma density results in higher deposition rate, while lower plasma sheath potential leads to reduced ion bombardment onto the thin film to improve the film quality. However, the higher operating frequency often causes significant standing wave. Especially when the size of the capacitively coupled plasma generator is larger than m2 and the operating frequency increases from the HF band to the VHF band, the effect due to standing wave becomes significant to worsen the plasma uniformity, and hence the thickness uniformity of the thin film.
Since the currently available glass substrates for thin-film solar cells are rectangular or square, the capacitively coupled plasma generator uses rectangular or square electrodes. However, the standing wave is inevitable. The electric field distribution of the capacitively coupled plasma generator with the electrodes having the size of 1 m2 can be analyzed with Maxwell Equations by a high-frequency structure simulator. It is noted that higher frequency leads to more significant standing wave.
To eliminate standing wave in the capacitively coupled plasma generator with rectangular electrodes, U.S. Pat. No. 7,141,516 discloses an RF plasma generator, as shown in
Therefore, there is need in providing a capacitively coupled plasma generator using an RF power supply to provide the two input ports with RF power. The input impedance at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity.
The present invention provides a capacitively coupled plasma generator using an RF power supply to provide the two input ports with RF power. The input impedance at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity.
The present invention further provides a capacitively coupled plasma generator using an RF power supply to provide the two input ports with RF power. The phase difference at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity.
In one embodiment, the present invention provides a capacitively coupled plasma generator, comprising: a first input port, being coupled to a rectangular electrode; a first input port, being coupled to a rectangular electrode; a second input port, being coupled to the rectangular electrode; a first impedance modulator, being coupled to the first input port; a second impedance modulator, being coupled to the second input port; an impedance matching circuit, being coupled to the first impedance modulator and the second impedance modulator, respectively; and an RF power supply, being coupled to the impedance matching circuit.
In another embodiment, the present invention further provides a capacitively coupled plasma generator, comprising: a first input port, being coupled to a rectangular electrode; a second input port, being coupled to the rectangular electrode; a phase delay device, being coupled to the first input port; an impedance matching circuit, being coupled to the phase delay device and the second input port, respectively; and an RF power supply, being coupled to the impedance matching circuit.
In another embodiment, the present invention further provides a capacitively coupled plasma generator, comprising: a first input port, being coupled to a rectangular electrode; a second input port, being coupled to the rectangular electrode; a pair of transmission lines with phase delay, being coupled to the first input port and the second input port, respectively; an impedance matching circuit, being coupled to the pair of transmission lines with phase delay, respectively; and an RF power supply, being coupled to the impedance matching circuit.
The objects, spirits and advantages of various embodiments of the present invention will be readily understood by the accompanying drawings and detailed descriptions, wherein:
The present invention can be exemplified but not limited by the embodiments as described hereinafter.
Please refer to
In the present embodiment, the first impedance modulator 23 comprises an inductor and a variable resistor. The input impedance of the first input port 21 is determined by selecting and adjusting the values of the passive elements. Preferably, the second impedance modulator 24 comprises a variable resistor. The input impedance of the second input port 22 is determined by selecting and adjusting the values of the passive elements. For example, the input impedance of the first input port 21 is R1+jX1, while the input impedance of the second input port 22 is R2+jX2. In the present embodiment, only an RF power supply is used to provide the two input ports with RF power. The input impedance at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity.
Moreover, the first input port 21 and the second input port 22 are respectively disposed on two opposite sides of the rectangular electrode 201 and are symmetric to each other with respect to a central line to achieve plasma uniformity.
Please refer to
In the present embodiment, the phase delay device 33 is a transmission line with phase delay. In the present embodiment, only an RF power supply is used to provide the two input ports with RF power. The phase difference at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity.
Moreover, the first input port 31 and the second input port 32 are respectively disposed on two opposite sides of the rectangular electrode 301 and are symmetric to each other with respect to a central line to achieve plasma uniformity.
In addition to the above two embodiments, anyone with ordinary skill in the art can make modifications without departing from the spirit and scope of the present invention. For example, to achieve the phase difference between the two input ports 31 and 32 in
Accordingly, the present invention discloses a capacitively coupled plasma generator using an RF power supply to provide the two input ports with RF power. The input impedance at each of the input ports is adjustable so that the standing wave between two rectangular electrodes can be eliminated to achieve plasma uniformity. Therefore, the present invention is useful, novel and non-obvious.
Although this invention has been disclosed and illustrated with reference to particular embodiments, the principles involved are susceptible for use in numerous other embodiments that will be apparent to persons skilled in the art. This invention is, therefore, to be limited only as indicated by the scope of the appended claims.
Number | Date | Country | Kind |
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097147755 | Dec 2008 | TW | national |