Typical values at TA = +25°C with
nominal supplies. Unless otherwise noted, TX input data rate = 491.52 MSPS,
fDAC = 11796.48 MSPS, interleave mode, AOUT = –1
dBFS, 1st Nyquist zone output, Internal PLL, fREF = 491.52
MSPS, 24x Interpolation, DSA = 0 dB, Sin(x)/x enabled, DSA calibrated
Including PCB and cable losses, Aout = -0.5
dFBS, DSA = 0, 0.8 GHz matching |
Figure 6-293 TX
Full Scale vs RF Frequency and Channel at 5898.24 MSPS, Straight
Mode
Including PCB and cable losses, Aout = -0.5
dFBS, DSA = 0, 0.8 GHz matching |
Figure 6-295 TX
Full Scale vs RF Frequency and Channel at 5898.24 MSPS, Interleave
Mode
Including PCB and cable losses, Aout = -0.5
dFBS, DSA = 0, 0.8 GHz matching |
Figure 6-297 TX
Full Scale vs RF Frequency and Channel at 11796.48 MSPS, Interleave
Modeincluding PCB and cable losses,
Aout = -0.5 dFBS, DSA = 0, 0.8 GHz
matching |
Figure 6-299 TX Output Fullscale vs Temperature
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Differential Gain Error = POUT(DSA Setting –
1) – POUT(DSA Setting) + 1 |
Figure 6-301 TX
Uncalibrated Differential Gain Error vs DSA Setting and Channel at 0.85
GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Integrated Gain Error = POUT(DSA Setting ) –
POUT(DSA Setting = 0) + DSA
Settings |
Figure 6-303 TX
Uncalibrated Integrated Gain Error vs DSA Setting and Channel at 0.85
GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Differential Gain Error = POUT(DSA Setting – 1) – POUT(DSA Setting) + 1 |
Figure 6-305 TX Uncalibrated Differential Gain Error vs DSA Setting and Temperature at 0.85 GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Integrated Gain Error = POUT(DSA Setting ) – POUT(DSA Setting = 0) + DSA Setting |
Figure 6-307 TX Uncalibrated Integrated Gain Error vs DSA Setting and Temperature at 0.85 GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Differential Phase Error = PhaseOUT(DSA
Setting – 1) – PhaseOUT(DSA Setting) |
Figure 6-309 TX
Uncalibrated Differential Phase Error vs DSA Setting and Channel at 0.85
GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Integrated Phase Error = PhaseOUT(DSA
Setting) – PhaseOUT(DSA Setting = 0) |
|
Figure 6-311 TX
Uncalibrated Integrated Phase Error vs DSA Setting and Channel at 0.85
GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Differential Phase Error = PhaseOUT(DSA Setting – 1) – PhaseOUT(DSA Setting) + 1 |
Figure 6-313 TX Uncalibrated Differential Phase Error vs DSA Setting and Temperature at 0.85 GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Integrated Phase Error = PhaseOUT(DSA Setting) – PhaseOUT(DSA Setting = 0) |
Figure 6-315 TX Uncalibrated Integrated Phase Error vs DSA Setting and Temperature at 0.85 GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz, POUT = –13 dBFS |
|
Figure 6-317 TX
Output Noise vs Channel and Attenuation at 0.85 GHz
fDAC = 5898.24 MSPS, straight mode,
fCENTER = 0.85 GHz, matching at 0.8 GHz,
–13 dBFS each tone |
Figure 6-319 TX
IMD3 vs Tone Spacing and Channel at 0.85 GHz
fDAC = 11796.48 MSPS, interleave mode,
fCENTER = 0.85 GHz, matching at 0.8 GHz,
–13 dBFS each tone |
Figure 6-321 TX
IMD3 vs Tone Spacing and Channel at 0.85 GHzfDAC = 8847.36 MSPS, straight mode,
fCENTER = 0.85 GHz, matching at 0.8 GHz,
–13 dBFS each tone, worst channel |
Figure 6-323 TX IMD3 vs Tone Spacing and Temperature at 0.85 GHz
fDAC = 5898.24 MSPS, straight mode,
fCENTER = 0.85 GHz, fSPACING =
20 MHz, matching at 0.8 GHz |
Figure 6-325 TX
IMD3 vs Digital Level at 0.85 GHz
fDAC = 11796.48 MSPS, interleave mode,
fCENTER = 0.85 GHz, fSPACING =
20 MHz, matching at 0.8 GHz |
Figure 6-327 TX
IMD3 vs Digital Level at 0.85 GHz
TM1.1,
POUT_RMS = –13 dBFS |
|
Figure 6-329 TX
20-MHz LTE Output Spectrum at 0.85 GHz
Matching at 0.8 GHz, single carrier 20-MHz BW TM1.1
LTE |
Figure 6-331 TX
20-MHz LTE alt-ACPR vs Digital Level at 0.85 GHz
Matching at 0.8 GHz, single carrier 20-MHz BW TM1.1
LTE |
Figure 6-333 TX
20-MHz LTE ACPR vs DSA at 0.85 GHz
Matching at 0.8 GHz, single carrier 100-MHz BW TM1.1
NR |
Figure 6-335 TX
100-MHz NR ACPR vs DSA at 0.85 GHz
Matching at 0.8 GHz, fDAC = 5898.24 GSPS,
straight mode |
Figure 6-337 TX
HD2 vs Digital Amplitude and Output Frequency at 0.85 GHz
Matching at 0.8 GHz, fDAC = 5898.24 MSPS,
straight mode, normalized to output power at harmonic
frequency |
Figure 6-339 TX
HD3 vs Digital Amplitude and Output Frequency at 0.85 GHzfDAC = 5898.24 MSPS, interleave
mode, 0.8 GHz matching, includes PCB and cable losses.
ILn = fS/n ± fOUT. |
Figure 6-341 TX Single Tone (–12 dBFS) Output Spectrum at 0.85 GHz (0-fDAC)fDAC = 5898.24 MSPS, interleave
mode, 0.8 GHz matching, includes PCB and cable losses.
ILn = fS/n ± fOUT. |
Figure 6-343 TX Single Tone (–6 dBFS) Output Spectrum at 0.85 GHz (0-fDAC)fDAC = 5898.24MSPS, interleave mode, 0.8 GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT. |
Figure 6-345 TX Single Tone (–1 dBFS) Output Spectrum at 0.85 GHz (0-fDAC)fDAC = 5898.24MSPS, straight mode, 0.8 GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT and is due to mixing with digital clocks. |
Figure 6-347 TX Single Tone (–12 dBFS) Output Spectrum at 0.85 GHz (0-fDAC)fDAC = 5898.24MSPS, straight mode, 0.8 GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT and is due to mixing with digital clocks. |
Figure 6-349 TX Single Tone (–6 dBFS) Output Spectrum at 0.85 GHz (0-fDAC)fDAC = 5898.24 MSPS, straight mode,
0.8 GHz matching, includes PCB and cable losses. ILn =
fS/n ± fOUT and is due to
mixing with digital clocks. |
Figure 6-351 TX Single Tone (–1 dBFS) Output Spectrum at 0.85 GHz (0-fDAC)
Including PCB and cable losses, Aout = -0.5
dFBS, DSA = 0, 0.8 GHzmatching |
Figure 6-294 TX
Full Scale vs RF Frequency and Channel at 8847.36 MSPS, Straight
Mode
Including PCB and cable losses, Aout = -0.5
dFBS, DSA = 0, 0.8 GHz matching |
Figure 6-296 TX
Full Scale vs RF Frequency and Channel at 8847.36 MSPS, Interleave
Modeincluding PCB and cable losses,
Aout = -0.5 dFBS, DSA = 0, 0.8 GHz
matching |
Figure 6-298 TX Output Fullscale vs Output Frequency
fDAC = 11796.48 MSPS, interleave mode,
Aout = -0.5 dFBS, matching 0.8
GHz |
|
Figure 6-300 TX
Output Power vs DSA Setting and Channel at 0.85 GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Differential Gain Error = POUT(DSA Setting –
1) – POUT(DSA Setting) + 1 |
Figure 6-302 TX
Calibrated Differential Gain Error vs DSA Setting and Channel at 0.85
GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Integrated Gain Error = POUT(DSA Setting ) –
POUT(DSA Setting = 0) + DSA
Setting |
Figure 6-304 TX
Calibrated Integrated Gain Error vs DSA Setting and Channel at 0.85
GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Differential Gain Error = POUT(DSA Setting – 1) – POUT(DSA Setting) + 1 |
Figure 6-306 TX Calibrated Differential Gain Error vs DSA Setting and Temperature at 0.85 GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Integrated Gain Error = POUT(DSA Setting ) – POUT(DSA Setting = 0) + DSA Setting |
Figure 6-308 TX Calibrated Integrated Gain Error vs DSA Setting and Temperature at 0.85 GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Differential Phase Error = PhaseOUT(DSA
Setting – 1) – PhaseOUT(DSA Setting) |
Phase
DNL spike may occur at any DSA setting. |
Figure 6-310 TX
Calibrated Differential Phase Error vs DSA Setting and Channel at 0.85
GHz
fDAC = 5898.24 MSPS, interleave mode,
matching at 0.8 GHz |
Integrated Phase Error = PhaseOUT(DSA
Setting) – PhaseOUT(DSA Setting = 0) |
Figure 6-312 TX
Calibrated Integrated Phase Error vs DSA Setting and Channel at 0.85
GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz, channel with the median
variation over DSA setting at 25°C |
Differential Phase Error = PhaseOUT(DSA Setting – 1) – PhaseOUT(DSA Setting) + 1 |
Figure 6-314 TX Calibrated Differential Phase Error vs DSA Setting and Temperature at 0.85 GHzfDAC = 5898.24 MSPS, interleave
mode, matching at 0.8 GHz |
Integrated Phase Error = PhaseOUT(DSA Setting) – PhaseOUT(DSA Setting = 0) |
Figure 6-316 TX Calibrated Integrated Phase Error vs DSA Setting and Temperature at 0.85 GHz
fDAC = 11796.48 MSPS, interleave mode,
fCENTER = 0.85 GHz, matching at 0.8 GHz,
–13 dBFS each tone |
Figure 6-318 TX
IMD3 vs DSA Setting at 0.85 GHz
fDAC = 8847.36 MSPS, straight mode,
fCENTER = 0.85 GHz, matching at 0.8 GHz,
–13 dBFS each tone |
Figure 6-320 TX
IMD3 vs Tone Spacing and Channel at 0.85 GHzfDAC = 5898.24 MSPS, straight mode,
fCENTER =0.85 GHz, matching at 0.8 GHz,
–13 dBFS each tone, worst channel |
Figure 6-322 TX IMD3 vs Tone Spacing and Temperature at 0.85 GHzfDAC = 11796.48 MSPS, straight
mode, fCENTER = 0.85 GHz, matching at 0.8
GHz, –13 dBFS each tone, worst channel |
Figure 6-324 TX IMD3 vs Tone Spacing and Temperature at 0.85 GHz
fDAC = 8847.36 MSPS, straight mode,
fCENTER = 0.85 GHz, fSPACING =
20 MHz, matching at 0.8 GHz |
Figure 6-326 TX
IMD3 vs Digital Level at 0.85 GHzMatching at 0.8 GHz, Single tone,
fDAC = 11.79648 GSPS, interleave mode,
40-MHz offset, DSA = 0dB |
Figure 6-328 TX Single Tone Output Noise vs Frequency and Amplitude at 0.85 GHz
Matching at 0.8 GHz, single carrier 20-MHz BW TM1.1
LTE |
Figure 6-330 TX
20-MHz LTE ACPR vs Digital Level at 0.85 GHz
Matching at 0.8 GHz, single carrier 20-MHz BW TM1.1
LTE |
Figure 6-332 TX
20-MHz LTE alt2-ACPR vs Digital Level at 0.85 GHz
Matching at 0.8 GHz, single carrier 20-MHz BW TM1.1
LTE |
Figure 6-334 TX
20-MHz LTE alt-ACPR vs DSA at 0.85 GHz
Matching at 0.8 GHz, single carrier 100-MHz BW TM1.1
NR |
|
Figure 6-336 TX
100-MHz NR alt-ACPR vs DSA at 0.85 GHz
Matching at 0.8 GHz, fDAC = 8847.36 GSPS,
straight mode |
|
Figure 6-338 TX
HD2 vs Digital Amplitude and Output Frequency at 0.85 GHz
Matching at 0.8 GHz, fDAC = 8847.36 MSPS,
straight mode, normalized to output power at harmonic
frequency |
Figure 6-340 TX
HD3 vs Digital Amplitude and Output Frequency at 0.85 GHzfDAC = 5898.24 MSPS, interleave
mode, 0.8 GHz matching, includes PCB and cable
losses |
Figure 6-342 TX Single Tone (–12 dBFS) Output Spectrum at 0.85 GHz (±300 MHz)fDAC = 5898.24MSPS, interleave mode, 0.8 GHz matching, includes PCB and cable losses |
Figure 6-344 TX Single Tone (–6 dBFS) Output Spectrum at 0.85 GHz (±300 MHz)fDAC = 5898.24MSPS, interleave mode, 0.8 GHz matching, includes PCB and cable losses |
|
Figure 6-346 TX Single Tone (–1 dBFS) Output Spectrum at 0.85 GHz (±300 MHz)fDAC = 5898.24 MSPS, straight mode,
0.8 GHz matching, includes PCB and cable losses |
|
Figure 6-348 TX Single Tone (–12 dBFS) Output Spectrum at 0.85 GHz (±300 MHz)fDAC = 5898.24 MSPS, straight mode,
0.8 GHz matching, includes PCB and cable losses |
|
Figure 6-350 TX Single Tone (–6 dBFS) Output Spectrum at 0.85 GHz (±300 MHz)fDAC = 5898.24MSPS, straight mode, 0.8 GHz matching, includes PCB and cable losses |
Figure 6-352 TX Single Tone (–1 dBFS) Output Spectrum at 0.85 GHz (±300 MHz)