This application claims the priority benefit of Taiwan application serial no. 99147308, filed Dec. 31, 2010. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a balun structure, and more particularly to an on-chip balun structure.
A balun is typically disposed on a chip to receive differential signals. Referring to
An on-chip balun effectively combining received differential signals and generating single-end output signals is introduced herein.
An input apparatus for differential signals effectively combining received differential signals and generating single-end output signals is introduced herein.
According to an exemplary embodiment, an on-chip balun includes a first transmission line, a second transmission line, and a coupling transmission line. The first transmission line has a terminal receiving a first signal, the second transmission line has a terminal receiving a second signal, and the other terminals thereof are coupled to a reference voltage. The coupling transmission line has a terminal receiving the reference voltage and another terminal directly connected to the other terminal of the first transmission line. The coupling transmission line and the second transmission line are disposed in parallel for coupling the second signal to generate a coupling signal on the coupling transmission line. Moreover, the first signal and the second signal are differential signals, and the phases of the second signal and the coupling signal are opposite.
According to an exemplary embodiment, an input apparatus for differential signals is disposed on a chip and adapted for receiving a plurality of differential signals. The input apparatus for differential signals includes a plurality of baluns, in which each of the baluns includes a first transmission line, a second transmission line, and a coupling transmission line. The first transmission line has a terminal receiving a first signal, the second transmission line has a terminal receiving a second signal, and the other terminals thereof are coupled to a reference voltage. The coupling transmission line has a terminal receiving the reference voltage and another terminal directly connected to the other terminal of the first transmission line. The coupling transmission line and the second transmission line are disposed in parallel for coupling the second signal to generate a coupling signal on the coupling transmission line. Moreover, the first signal and the second signal are differential signals, and the phases of the second signal and the coupling signal are opposite.
Several exemplary embodiments accompanied with figures are described in detail below to further describe the disclosure in details.
The accompanying drawings are included to provide a further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments and, together with the description, serve to explain the principles of the disclosure.
Referring to
Accordingly, terminal P6 of the coupling transmission line 330 is directly connected to the other terminal P2 of the transmission line 310. Therefore, the coupling signal CVIN2 and the transmission signal TVIN1 may be directly added on a common connection point between the terminal P6 of the coupling transmission line 330 and the terminal P2 of the transmission line 310, and thereby obtaining an output signal Vout having twice the voltage as the transmission signal TVIN1.
A practical operation based on the on-chip balun 300 is described below as an illustrative example. When the transmission line 310 receives a positive signal VIN1 through the terminal P1, the positive signal VIN1 is transmitted to the terminal P2 and becomes the transmission signal TVIN1. Conversely, the transmission line 320 receives a negative signal VIN2 through the terminal P3, and the terminal P4 of the transmission line 320 is coupled to the ground voltage (i.e. 0 V) serving as the reference voltage GND. The coupling transmission line 330 is coupled to the negative signal VIN2 received by the transmission line 320 to generate the coupling signal CVIN2 on the coupling transmission line 330 having an opposite phase (i.e. positive) relative to the phase of the signal VIN2. A polarity inversion function is achieved by the coupling of the coupling transmission line 330 and the transmission line 320 and due to the reverse current flow induced in the coupling transmission line 330. Accordingly, the coupling signal CVIN2 and the transmission signal TVIN1 are added to each other on the common connection point between the coupling transmission line 320 and the transmission line 310, and thereby the output signal Vout which is twice the signal TVIN1 is generated.
It should be noted that, the transmission lines 310 and 320 and the coupling transmission line 330 may all be formed by a material (e.g. a metallic layer) used in a chip manufacturing process to construct transmission lines.
Referring to
The coupling section 430_1 and the transmission section 420_1 are disposed in parallel for coupling the signal VIN2 to generate a coupling signal on the coupling transmission section 430_1. Moreover, the coupling section 430_2 and the transmission section 420_2 are disposed in parallel to transmit the coupling signal CVIN2 on the coupling transmission section 430_2.
Referring to
The isolating transmission lines 511 and 512 are disposed in parallel at two sides of the transmission line 510, and the isolating transmission lines 511 and 512 are coupled to the reference voltage (i.e. the ground voltage). The isolating coupling transmission section 521_1 is disposed at a first side of the transmission section 520_1, and the isolating coupling transmission section 521_2 is disposed at a second side of the coupling transmission section 530_2. The first side and the second side are on different sides with respect to the coupling transmission section 530_1 and the coupling transmission section 530_2. Moreover, one terminal of the isolating coupling transmission section 521_1 and the coupling transmission section 530_1 is coupled to the ground voltage GND, and the terminals of the isolating coupling transmission section 521_1 and the coupling transmission section 530_1 which are not coupled to the ground voltage GND are coupled to each other. Similarly, one terminal of the transmission section 520_2 and the isolating coupling transmission section 521_2 is coupled to the ground voltage GND, and the terminals of the transmission section 520_2 and the isolating coupling transmission section 521_2 which are not coupled to the ground voltage GND are coupled to each other.
Referring to
In addition, one or a plurality of the expanded isolating coupling transmission sections (not drawn) may be disposed at a side of the coupling transmission section 530_1 not adjacent to the transmission section 520_1 (i.e., one side of the transmission section 520_1). These expanded isolating coupling transmission sections and the expanded isolating transmission sections 540_1 are alternately disposed at the side of the coupling transmission section 530_1 not adjacent to the transmission section 520_1. One terminal of these expanded isolating coupling transmission sections is coupled to the ground voltage GND, and the other terminals of the expanded isolating coupling transmission sections are coupled to the terminals of the coupling transmission section 530_1 and the isolating coupling transmission section 521_1 which are not coupled to the ground voltage GND.
Furthermore, one or a plurality of expanded isolating coupling transmission sections (not drawn) may be disposed at a side of the isolating coupling transmission section 521_1 not adjacent to the transmission section 520_1. These expanded isolation coupling transmission sections and the expanded isolation coupling transmission section 550_1 are alternately disposed at the side of the coupling transmission section 521_1 not adjacent to the transmission section 520_1. One terminal of these expanded isolating coupling transmission sections is coupled to the ground voltage GND, and the other terminals of the expanded isolating coupling transmission sections are coupled to the terminals of the coupling transmission section 530_1 and the isolating coupling transmission section 521_1 which are not coupled to the ground voltage GND.
As a matter of course, the expanded isolating coupling transmission section 560_2 and the expanded coupling transmission section 550_2 are disposed in sequence at the side of the transmission section 520_2 not adjacent to the coupling transmission section 530_2. Moreover, the expanded coupling transmission section 550_2 has a terminal coupled to the ground voltage GND. Additionally, the terminal of the expanded coupling transmission section 550_2 not coupled to the ground voltage GND is coupled to the terminals of the isolation transmission section 521_2 and the transmission section 520_2 which are not coupled to the ground voltage GND. The two terminals of the expanded isolating coupling section 560_2 are coupled to the two terminals of the coupling transmission section 530_2. Furthermore, one or a plurality of sets of the expanded isolating coupling transmission sections and the expanded isolating transmission sections, such as the expanded isolating coupling transmission section 560_2 and the expanded isolating transmission section 550_2 may be alternately disposed at the side of the transmission section 520_2 not adjacent to the coupling transmission section 530_2. Moreover, by alternately coupling a plurality of transmission lines, the amount of signal coupling can be effectively increased.
Naturally, the afore-described expanded isolating coupling transmission section 560_2 and the expanded isolating transmission section 550_2 may also be disposed at the side of the isolating transmission section 521_2 not adjacent to the coupling transmission section 530_2 (i.e., one side of the transmission section 520_2) as an expanded. Further, by alternately coupling a plurality of transmission lines, the amount of signal coupling can be effectively enhanced.
In the exemplary embodiment shown in
Referring to
A directly connected terminal of the transmission line 611 and the coupling transmission line 613 in the balun 610 is coupled to a directly connected terminal of the transmission line 621 and the coupling transmission line 623 in the balun 620, for forming an output terminal of the input apparatus 600 for differential signals to generate an output signal Vout. In the present embodiment, since two stages of the baluns 610 and 620 are parallel connected, the output signal Vout is four times the signal VIN1 (i.e., when the signals VIN1 and VIN2 are equal in magnitude, the signals VIN1 and VIN2 are differential signals, and the signals VIN3 and VIN4 are differential signals).
In view of the foregoing, an output signal from a single-end terminal is generated by using parallel-coupled transmission lines and coupling transmission lines for coupling and reversing one of the differential signals, and adding the other one of the differential signals with the reversed different signal. Accordingly, the disclosed balun needs only transmission lines to construct, without the need for extremely long transmission lines and a large layout area. Moreover, by adopting a directly connected signal addition operation, the loss resulting from an insufficient coupling rate can be prevented. In addition, with transmission lines being used as the essential components, the issue of electromagnetic flux leakage is mitigated.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
99147308 | Dec 2010 | TW | national |