Signal transmission with improved counter intermodulation performance
An electronic circuit is provided. The electronic circuit includes an input port configured to receive an in-phase (I) data signal and a quadrature (Q) data signal. The electronic circuit includes a conversion circuit configured to convert the I data signal and the Q data signal to a plurality of differential signal pairs. The electronic circuit includes a mixer circuit configured to mix the plurality of differential signal pairs with a plurality of pulse signals to obtain a pair of differential mixer output signals. The electronic circuit includes a variable gain amplifier (VGA) configured to generate an output signal based on the pair of differential mixer output signals. The plurality of pulse signals have a same duty ratio that is greater than 1 0 0 N % , where N is a total number of the plurality of pulse signals. A phase difference between two consecutive pulse signals equals 3 6 0 N ∘ . Also provided is a method.
1 . An electronic circuit comprising:
an input port configured to receive an in-phase (I) data signal and a quadrature (Q) data signal;
a conversion circuit configured to convert the I data signal and the Q data signal to a plurality of differential signal pairs;
a mixer circuit configured to mix the plurality of differential signal pairs with a plurality of pulse signals to obtain a pair of differential mixer output signals; and
a variable gain amplifier (VGA) configured to generate an output signal based on the pair of differential mixer output signals,
wherein the plurality of pulse signals have a same duty ratio that is greater than
1
0
0
N
%
,
where N is a total number of the plurality of pulse signals,
wherein a phase difference between two consecutive pulse signals equals
3
6
0
N
∘
,
wherein the mixer circuit comprises one of a four-phase mixer or a six-phase mixer,
wherein, when the mixer circuit comprises the four-phase mixer, the mixer circuit is configured to mix the plurality of differential signal pairs with a plurality of pulse signals having the same duty ratio greater than 25%, and
wherein, when the mixer circuit comprises the six-phase mixer, the mixer circuit is configured to mix the plurality of differential signal pairs with a plurality of pulse signals having the same duty ratio greater than 16.7%.
2 . The electronic circuit of claim 1 ,
wherein, when the mixer circuit comprises the four-phase mixer,
the plurality of differential signal pairs comprises a positive I signal, a negative I signal, a positive Q signal, and a negative Q signal, and the pair of differential mixer output signals comprise a positive mixer output signal and a negative mixer output signal,
the mixer circuit comprises a positive path configured to generate the positive mixer output signal and a negative path configured to generate the negative mixer output signal,
the positive path is configured to mix a first pulse signal of the plurality of pulse signals, a second pulse signal of the plurality of pulse signals, a third pulse signal of the plurality of pulse signals, and a fourth pulse signal of the plurality of pulse signals with the positive I signal, the positive Q signal, the negative I signal, and the negative Q signal, respectively, and
the negative path is configured to mix the first pulse signal, the second pulse signal, the third pulse signal, and the fourth pulse signal with the negative I signal, the negative Q signal, the positive I signal, and the positive Q signal, respectively.
3 . The electronic circuit of claim 2 , wherein the same duty ratio equals 41.67%.
4 . The electronic circuit of claim 2 ,
wherein the same duty ratio is about 41.67%.
5 . The electronic circuit of claim 1 ,
wherein, when the mixer circuit comprises the six-phase mixer,
the plurality of differential signal pairs comprises a first differential signal pair, a second differential signal pair that has a phase difference of 120° from the first differential signal pair, and a third differential signal pair that has a phase difference of 120° from the second differential signal pair,
the pair of differential mixer output signals comprise a positive mixer output signal and a negative mixer output signal,
the mixer circuit comprises a positive path configured to generate the positive mixer output signal and a negative path configured to generate the negative mixer output signal,
the positive path is configured to mix
(a) a first pulse signal of the plurality of pulse signals, (b) a second pulse signal of the plurality of pulse signals, (c) a third pulse signal of the plurality of pulse signals, (d) a fourth pulse signal of the plurality of pulse signals, (e) a fifth pulse signal of the plurality of pulse signals, and (f) a sixth pulse signal of the plurality of pulse signals, with
(i) a first signal of the first differential signal pair, (ii) a second signal of the third differential signal pair, (iii) a first signal of the second differential signal pair, (iv) a second signal of the first differential signal pair, (v) a first signal of the third differential signal pair, and (vi) a second signal of the second differential signal pair, respectively, and
the negative path is configured to mix
(a) the first pulse signal of the plurality of pulse signals, (b) the second pulse signal of the plurality of pulse signals, (c) the third pulse signal of the plurality of pulse signals, (d) the fourth pulse signal of the plurality of pulse signals, (e) the fifth pulse signal of the plurality of pulse signals, and (f) the sixth pulse signal of the plurality of pulse signals, with
(i) the second signal of the first differential signal pair, (ii) the first signal of the third differential signal pair, (iii) the second signal of the second differential signal pair, (iv) the first signal of the first differential signal pair, (v) the second signal of the third differential signal pair, and (vi) the first signal of the second differential signal pair, respectively.
6 . The electronic circuit of claim 5 , wherein the same duty ratio equals 26.67%.
7 . The electronic circuit of claim 5 ,
wherein the same duty ratio is about 26.67%.
8 . The electronic circuit of claim 1 ,
wherein the conversion circuit comprises a digital-to-analog converter (DAC) and a low pass filter (LPF) for each of the plurality of differential signal pairs.
9 . The electronic circuit of claim 1 , wherein the mixer circuit comprises a plurality of duty ratio adjustment circuits configured to adjust the same duty ratio by adjusting a threshold voltage.
10 . The electronic circuit of claim 1 , further comprising a frequency synthesizer circuit that generates the plurality of pulse signals.
11 . The electronic circuit of claim 1 , further comprising:
a power amplifier (PA) configured to amplify the output signal to obtain an amplified signal; and
a radio frequency (RF) front end (RFFE) circuit configured to convert the amplified signal to a RF signal.
12 . A method comprising:
receiving an in-phase (I) data signal and a quadrature (Q) data signal;
converting the I data signal and the Q data signal to a plurality of differential signal pairs;
mixing the plurality of differential signal pairs with a plurality of pulse signals to obtain a pair of differential mixer output signals; and
generating an output signal based on the pair of differential mixer output signals,
wherein the plurality of pulse signals have a same duty ratio that is greater than
1
0
0
N
%
,
where N is a total number of the plurality of pulse signals,
wherein a phase difference between two consecutive pulse signals equals
3
6
0
N
∘
,
wherein, based on the plurality of pulse signals comprising four pulse signals, Nis 4 and the four pulse signals have the same duty ratio greater than 25%, and
wherein, based on the plurality of pulse signals comprising six pulse signals, N is 6 and the six pulse signals have the same duty ratio greater than 16.7%.
13 . The method of claim 12 ,
wherein N=4,
wherein the plurality of differential signal pairs comprises a positive I signal, a negative I signal, a positive Q signal, and a negative Q signal, and the pair of differential mixer output signals comprise a positive mixer output signal and a negative mixer output signal, and
wherein mixing the plurality of differential signal pairs with a plurality of pulse signals comprises:
mixing the a first pulse signal of the plurality of pulse signals, a second pulse signal of the plurality of pulse signals, a third pulse signal of the plurality of pulse signals, and a fourth pulse signal of the plurality of pulse signals with the positive I signal, the positive Q signal, the negative I signal, and the negative Q signal, respectively, and
mixing the first pulse signal, the second pulse signal, the third pulse signal, and the fourth pulse signal with the negative I signal, the negative Q signal, the positive I signal, and the positive Q signal, respectively.
14 . The method of claim 13 , wherein the same duty ratio equals 41.67%.
15 . The method of claim 13 ,
wherein the same duty ratio is about 41.67%.
16 . The method of claim 12 ,
wherein N=6,
wherein the plurality of differential signal pairs comprises a first differential signal pair, a second differential signal pair that has a phase difference of 120° from the first differential signal pair, and a third differential signal pair that has a phase difference of 120° from the second differential signal pair,
wherein the pair of differential mixer output signals comprise a positive mixer output signal and a negative mixer output signal,
wherein mixing the plurality of differential signal pairs with a plurality of pulse signals comprises:
mixing (a) a first pulse signal of the plurality of pulse signals, (b) a second pulse signal of the plurality of pulse signals, (c) a third pulse signal of the plurality of pulse signals, (d) a fourth pulse signal of the plurality of pulse signals, (e) a fifth pulse signal of the plurality of pulse signals, and (f) a sixth pulse signal of the plurality of pulse signals, with
(i) a first signal of the first differential signal pair, (ii) a second signal of the third differential signal pair, (iii) a first signal of the second differential signal pair, (iv) a second signal of the first differential signal pair, (v) a first signal of the third differential signal pair, and (vi) a second signal of the second differential signal pair, respectively, and
mixing (a) the first pulse signal of the plurality of pulse signals, (b) the second pulse signal of the plurality of pulse signals, (c) the third pulse signal of the plurality of pulse signals, (d) the fourth pulse signal of the plurality of pulse signals, (e) the fifth pulse signal of the plurality of pulse signals, and (f) the sixth pulse signal of the plurality of pulse signals, with
(i) the second signal of the first differential signal pair, (ii) the first signal of the third differential signal pair, (iii) the second signal of the second differential signal pair, (iv) the first signal of the first differential signal pair, (v) the second signal of the third differential signal pair, and (vi) the first signal of the second differential signal pair, respectively.
17 . The method of claim 16 , wherein the same duty ratio equals 26.67%.
18 . The method of claim 16 ,
wherein the same duty ratio is about 26.67%.
19 . The method of claim 12 , further comprising: adjusting the same duty ratio by adjusting a threshold voltage.
20 . The method of claim 12 , further comprising: generating the plurality of pulse signals using a frequency synthesizer circuit.