SLVSML2 August   2026 AFE7900-SEP

PRODMIX  

  1.   1
  2. 1Features
  3. 2Applications
  4. 3Description
  5. 4Specifications
    1. 4.1  Absolute Maximum Ratings
    2. 4.2  ESD Ratings
    3. 4.3  Recommended Operating Conditions
    4. 4.4  Thermal Information
    5. 4.5  Transmitter Electrical Characteristics
    6. 4.6  RF ADC Electrical Characteristics
    7. 4.7  PLL/VCO/Clock Electrical Characteristics
    8. 4.8  Digital Electrical Characteristics
    9. 4.9  Power Supply Electrical Characteristics
    10. 4.10 Timing Requirements
    11. 4.11 Switching Characteristics
    12. 4.12 Typical Characteristics
      1. 4.12.1  RX Typical Characteristics 30MHz and 400MHz
      2. 4.12.2  RX Typical Characteristics at 800MHz
      3. 4.12.3  RX Typical Characteristics 1.75GHz to 1.9GHz
      4. 4.12.4  RX Typical Characteristics 2.6GHz
      5. 4.12.5  RX Typical Characteristics 3.5GHz
      6. 4.12.6  RX Typical Characteristics 4.9GHz
      7. 4.12.7  RX Typical Characteristics 6.8GHz
      8. 4.12.8  TX Typical Characteristics at 30MHz and 400MHz
      9. 4.12.9  TX Typical Characteristics at 800MHz
      10. 4.12.10 TX Typical Characteristics at 1.8GHz
      11. 4.12.11 TX Typical Characteristics at 2.6GHz
      12. 4.12.12 TX Typical Characteristics at 3.5GHz
      13. 4.12.13 TX Typical Characteristics at 4.9GHz
      14. 4.12.14 TX Typical Characteristics at 7.1GHz
      15. 4.12.15 PLL and Clock Typical Characteristics
  6. 5Device and Documentation Support
    1. 5.1 Receiving Notification of Documentation Updates
    2. 5.2 Support Resources
    3. 5.3 Trademarks
    4. 5.4 Electrostatic Discharge Caution
    5. 5.5 Glossary
  7. 6Revision History
  8. 7Mechanical, Packaging, and Orderable Information

TX Typical Characteristics at 2.6GHz

Typical values at TA = +25°C with nominal supplies. Unless otherwise noted, TX input data rate = 491.52MSPS, fDAC = 11796.48MSPS, interleave mode, AOUT = –1dBFS, 1st Nyquist zone output, Internal PLL, fREF = 491.52MSPS, 24x Interpolation, DSA = 0dB, Sin(x)/x enabled, DSA calibrated.

AFE7900-SEP TX Full Scale vs RF Frequency at 5898.24MSPS
Including PCB and cable losses, Aout = -0.5dBFS, DSA = 0, 2.6GHz matching
Figure 4-380 TX Full Scale vs RF Frequency at 5898.24MSPS
AFE7900-SEP TX Full Scale vs RF Frequency at 11796.48MSPS
Including PCB and cable losses, Aout = -0.5dBFS, DSA = 0, 2.6GHz matching
Figure 4-382 TX Full Scale vs RF Frequency at 11796.48MSPS
AFE7900-SEP TX Output Power vs DSA
                        Setting and Channel at 2.6GHz
fDAC = 8847.36 MSPS, Aout = -0.5dBFS, matching 2.6GHz
Figure 4-384 TX Output Power vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Calibrated
                        Differential Gain Error vs DSA Setting and Channel at 2.6GHz
fDAC=8847.36MSPS, straight mode, matching at 2.6GHz
Differential Gain Error = POUT(DSA Setting – 1) – POUT(DSA Setting) + 1
Figure 4-386 TX Calibrated Differential Gain Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Calibrated Integrated
                        Gain Error vs DSA Setting and Channel at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz
Integrated Gain Error = POUT(DSA Setting) – POUT(DSA Setting = 0) + (DSA Setting)
Figure 4-388 TX Calibrated Integrated Gain Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Calibrated
                        Differential Gain Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Differential Gain Error = POUT(DSA Setting – 1) – POUT(DSA Setting) + 1
Figure 4-390 TX Calibrated Differential Gain Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Calibrated Integrated
                        Gain Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Integrated Gain Error = POUT(DSA Setting) – POUT(DSA Setting = 0) + (DSA Setting)
Figure 4-392 TX Calibrated Integrated Gain Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Calibrated
                        Differential Phase Error vs DSA Setting and Channel at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz
Differential Phase Error = PhaseOUT(DSA Setting – 1) – PhaseOUT(DSA Setting)
Phase DNL spike may occur at any DSA setting.
Figure 4-394 TX Calibrated Differential Phase Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Calibrated Integrated
                        Phase Error vs DSA Setting and Channel at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz
Integrated Phase Error = Phase(DSA Setting) – Phase(DSA Setting = 0)
Figure 4-396 TX Calibrated Integrated Phase Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Calibrated
                        Differential Phase Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Differential Phase Error = PhaseOUT(DSA Setting – 1) – PhaseOUT(DSA Setting)
Figure 4-398 TX Calibrated Differential Phase Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Calibrated Integrated
                        Phase Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Integrated Phase Error = Phase(DSA Setting) – Phase(DSA Setting = 0)
Figure 4-400 TX Calibrated Integrated Phase Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX IMD3 vs DSA Setting at
                        2.6GHz
fDAC = 8847.36MSPS, straight mode, fCENTER = 2.6GHz, matching at 2.6GHz, –13dBFS each tone
Figure 4-402 TX IMD3 vs DSA Setting at 2.6GHz
AFE7900-SEP TX IMD3 vs Tone Spacing
                        and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, fCENTER = 2.6GHz, matching at 2.6GHz, –13dBFS each tone, worst channel.
Figure 4-404 TX IMD3 vs Tone Spacing and Temperature at 2.6GHz
AFE7900-SEP TX IMD3 vs Tone Spacing and Temperature
fDAC = 8847.36MSPS, straight mode, fCENTER = 2.6GHz, matching at 2.6GHz, –13dBFS each tone
Figure 4-406 TX IMD3 vs Tone Spacing and Temperature
AFE7900-SEP TX 20MHz LTE Output
                        Spectrum at 2.6GHz (Band 41)
TM1.1, POUT_RMS = –13dBFS
Figure 4-408 TX 20MHz LTE Output Spectrum at 2.6GHz (Band 41)
AFE7900-SEP TX 20MHz LTE alt-ACPR vs
                        Digital Level at 2.6GHz
Matching at 2.6GHz, single carrier 20MHz BW TM1.1 LTE
Figure 4-410 TX 20MHz LTE alt-ACPR vs Digital Level at 2.6GHz
AFE7900-SEP TX 100MHz NR ACPR vs
                        Digital Level at 2.6GHz
Matching at 2.6GHz, single carrier 100MHz BW TM1.1 NR
Figure 4-412 TX 100MHz NR ACPR vs Digital Level at 2.6GHz
AFE7900-SEP TX 20MHz LTE ACPR vs DSA
                        at 2.6GHz
Matching at 2.6GHz, single carrier 20MHz BW TM1.1 LTE
Figure 4-414 TX 20MHz LTE ACPR vs DSA at 2.6GHz
AFE7900-SEP TX 100MHz NR ACPR vs DSA
                        at 2.6GHz
Matching at 2.6GHz, single carrier 100MHz BW TM1.1 NR
Figure 4-416 TX 100MHz NR ACPR vs DSA at 2.6GHz
AFE7900-SEP TX HD2 vs Digital
                        Amplitude and Output Frequency at 2.6GHz
Matching at 2.6GHz, fDAC = 11.79648GSPS, interleave mode, normalized to output power at harmonic frequency
Figure 4-418 TX HD2 vs Digital Amplitude and Output Frequency at 2.6GHz
AFE7900-SEP Two Tone Inband SFDR vs
                        Digital Amplitude at 2.6GHz
Inband = 2600MHz ± 600MHz, fDAC = 12GSPS, not including FS/3 and FS/4, external clock mode, non-interleave mode
Figure 4-420 Two Tone Inband SFDR vs Digital Amplitude at 2.6GHz
AFE7900-SEP TX Single Tone (–12dBFS)
                        Output Spectrum at 2.6GHz (0-fDAC)
fDAC = 8847.36MSPS, interleave mode, 2.6GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT.
Figure 4-422 TX Single Tone (–12dBFS) Output Spectrum at 2.6GHz (0-fDAC)
AFE7900-SEP TX Single Tone (–6dBFS)
                        Output Spectrum at 2.6GHz (0-fDAC)
fDAC = 8847.36MSPS, interleave mode, 2.6GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT.
Figure 4-424 TX Single Tone (–6dBFS) Output Spectrum at 2.6GHz (0-fDAC)
AFE7900-SEP TX Single Tone (–1dBFS)
                        Output Spectrum at 2.6GHz (0-fDAC)
fDAC = 8847.36MSPS, interleave mode, 2.6GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT.
Figure 4-426 TX Single Tone (–1dBFS) Output Spectrum at 2.6GHz (0-fDAC)
AFE7900-SEP TX Single Tone (–12dBFS)
                        Output Spectrum at 2.6GHz (0-fDAC)
fDAC = 8847.36MSPS, straight mode, 2.6GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT and is due to mixing with digital clocks.
Figure 4-428 TX Single Tone (–12dBFS) Output Spectrum at 2.6GHz (0-fDAC)
AFE7900-SEP TX Single Tone (–6dBFS)
                        Output Spectrum at 2.6GHz (0-fDAC)
fDAC = 8847.36MSPS, straight mode, 2.6GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT and is due to mixing with digital clocks.
Figure 4-430 TX Single Tone (–6dBFS) Output Spectrum at 2.6GHz (0-fDAC)
AFE7900-SEP TX Single Tone (–1dBFS)
                        Output Spectrum at 2.6GHz (0-fDAC)
fDAC = 8847.36MSPS, straight mode, 2.6GHz matching, includes PCB and cable losses. ILn = fS/n ± fOUT and is due to mixing with digital clocks.
Figure 4-432 TX Single Tone (–1dBFS) Output Spectrum at 2.6GHz (0-fDAC)
AFE7900-SEP TX Dual Tone Output
                        Spectrum at 2.6GHz, -7dBFS each (0 - DAC)
fDAC = 9000MSPS, external clock mode, non-interleave mode
Figure 4-434 TX Dual Tone Output Spectrum at 2.6GHz, -7dBFS each (0 - DAC)
AFE7900-SEP TX Dual Tone Output
                        Spectrum at 2.6GHz, -13dBFS each (0 - DAC)
fDAC = 9000MSPS, external clock mode, non-interleave mode
Figure 4-436 TX Dual Tone Output Spectrum at 2.6GHz, -13dBFS each (0 - DAC)
AFE7900-SEP TX Dual Tone Output
                        Spectrum at 2.6GHz, -30dBFS each (0 - DAC)
fDAC = 9000MSPS, external clock mode, non-interleave mode
Figure 4-438 TX Dual Tone Output Spectrum at 2.6GHz, -30dBFS each (0 - DAC)
AFE7900-SEP TX Output Noise vs Supply
                        Voltage at 2.6GHz
fDAC = 11796.48MSPS, interleave mode, 2.6GHz matching. 40MHz offset from tone. Output Power = –1 dBFS. All supplies simultaneously at MIN, TYP, or MAX voltages.
Figure 4-440 TX Output Noise vs Supply Voltage at 2.6GHz
AFE7900-SEP IMD3 vs Tone Spacing and
                        Channel at 2.6GHz
fDAC = 9000MSPS, non-interleave mode, external clock mode
Figure 4-442 IMD3 vs Tone Spacing and Channel at 2.6GHz
AFE7900-SEP IMD3 vs Digital Amplitude
                        and Channel at 2.6GHz
fDAC = 9000MSPS, non-interleave mode, external clock mode
Figure 4-444 IMD3 vs Digital Amplitude and Channel at 2.6GHz
AFE7900-SEP NSD vs Digital Amplitude
                        and Channel at 2.6GHz
fDAC = 9000MSPS, non-interleave mode, external clock mode, 50MHz offset
Figure 4-446 NSD vs Digital Amplitude and Channel at 2.6GHz
AFE7900-SEP External Clock Additive
                        Phase Noise at 2.6GHz
fDAC = fCLK = 9000MSPS, non-interleave mode
Figure 4-448 External Clock Additive Phase Noise at 2.6GHz
AFE7900-SEP TX Full Scale vs RF Frequency at 8847.36MSPS
Including PCB and cable losses, Aout = -0.5dBFS, DSA = 0, 2.6GHz matching
Figure 4-381 TX Full Scale vs RF Frequency at 8847.36MSPS
AFE7900-SEP TX Output Fullscale vs Output Frequency and Channel
fDAC = 8847.36MSPS, interleave mode, including PCB and cable losses, Aout = -0.5dBFS, DSA = 0, 2.6GHz matching
Figure 4-383 TX Output Fullscale vs Output Frequency and Channel
AFE7900-SEP TX Uncalibrated
                        Differential Gain Error vs DSA Setting and Channel at 2.6GHz
fDAC=8847.36MSPS, straight mode, matching at 2.6GHz
Differential Gain Error = POUT(DSA Setting – 1) – POUT(DSA Setting) + 1
Figure 4-385 TX Uncalibrated Differential Gain Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Integrated Gain Error vs DSA Setting and Channel at 2.6GHz
fDAC=8847.36MSPS, straight mode, matching at 2.6GHz
Integrated Gain Error = POUT(DSA Setting) – POUT(DSA Setting = 0) + (DSA Setting)
Figure 4-387 TX Uncalibrated Integrated Gain Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Differential Gain Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Differential Gain Error = POUT(DSA Setting – 1) – POUT(DSA Setting) + 1
Figure 4-389 TX Uncalibrated Differential Gain Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Integrated Gain Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Integrated Gain Error = POUT(DSA Setting) – POUT(DSA Setting = 0) + (DSA Setting)
Figure 4-391 TX Uncalibrated Integrated Gain Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Differential Phase Error vs DSA Setting and Channel at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz
Differential Phase Error = PhaseOUT(DSA Setting – 1) – PhaseOUT(DSA Setting)
Figure 4-393 TX Uncalibrated Differential Phase Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Integrated Phase Error vs DSA Setting and Channel at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz
Integrated Phase Error = Phase(DSA Setting) – Phase(DSA Setting = 0)
Figure 4-395 TX Uncalibrated Integrated Phase Error vs DSA Setting and Channel at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Differential Phase Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the median variation over DSA setting at 25°C
Differential Phase Error = PhaseOUT(DSA Setting – 1) – PhaseOUT(DSA Setting)
Figure 4-397 TX Uncalibrated Differential Phase Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Uncalibrated
                        Integrated Phase Error vs DSA Setting and Temperature at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, channel with the medium variation over DSA setting at 25°C
Integrated Phase Error = Phase(DSA Setting) – Phase(DSA Setting = 0)
Figure 4-399 TX Uncalibrated Integrated Phase Error vs DSA Setting and Temperature at 2.6GHz
AFE7900-SEP TX Output Noise vs
                        Channel and Attenuation at 2.6GHz
fDAC = 8847.36MSPS, straight mode, matching at 2.6GHz, POUT = –13dBFS
Figure 4-401 TX Output Noise vs Channel and Attenuation at 2.6GHz
AFE7900-SEP TX IMD3 vs Tone Spacing
                        and Channel at 2.6GHz
fDAC = 8847.36MSPS, straight mode, fCENTER = 2.6GHz, matching at 2.6GHz, –13dBFS each tone
Figure 4-403 TX IMD3 vs Tone Spacing and Channel at 2.6GHz
AFE7900-SEP TX IMD3 vs Digital Level
                        at 2.6GHz
fDAC = 8847.36MSPS, straight mode, fCENTER = 2.6GHz, fSPACING = 20MHz, matching at 2.6GHz
Figure 4-405 TX IMD3 vs Digital Level at 2.6GHz
AFE7900-SEP TX Single Tone Output
                        Noise vs Frequency and Amplitude at 2.6GHz
Matching at 2.6GHz, Single tone, fDAC = 11.79648GSPS, interleave mode, 40MHz offset
Figure 4-407 TX Single Tone Output Noise vs Frequency and Amplitude at 2.6GHz
AFE7900-SEP TX 20MHz LTE ACPR vs
                        Digital Level at 2.6GHz
Matching at 2.6GHz, single carrier 20MHz BW TM1.1 LTE
Figure 4-409 TX 20MHz LTE ACPR vs Digital Level at 2.6GHz
AFE7900-SEP TX 20MHz LTE alt2-ACPR vs
                        Digital Level at 2.6GHz
Matching at 2.6GHz, single carrier 20MHz BW TM1.1 LTE
Figure 4-411 TX 20MHz LTE alt2-ACPR vs Digital Level at 2.6GHz
AFE7900-SEP TX 100MHz NR alt-ACPR vs
                        Digital Level at 2.6GHz
Matching at 2.6GHz, single carrier 100MHz BW TM1.1 NR
Figure 4-413 TX 100MHz NR alt-ACPR vs Digital Level at 2.6GHz
AFE7900-SEP TX 20MHz LTE alt-ACPR vs
                        DSA at 2.6GHz
Matching at 2.6GHz, single carrier 20MHz BW TM1.1 LTE
Figure 4-415 TX 20MHz LTE alt-ACPR vs DSA at 2.6GHz
AFE7900-SEP TX 100MHz NR alt-ACPR vs
                        DSA at 2.6GHz
Matching at 2.6GHz, single carrier 100MHz BW TM1.1 NR
Figure 4-417 TX 100MHz NR alt-ACPR vs DSA at 2.6GHz
AFE7900-SEP TX HD3 vs Digital
                        Amplitude and Output Frequency at 2.6GHz
Matching at 2.6GHz, fDAC = 11.79648GSPS, interleave mode, normalized to output power at harmonic frequency
Figure 4-419 TX HD3 vs Digital Amplitude and Output Frequency at 2.6GHz
AFE7900-SEP Two Tone Inband Fixed
                        Spurs vs Digital Amplitude at 2.6GHz
Inband = 2600MHz ± 600MHz, fDAC = 12GSPS, external clock mode, non-interleave mode
Figure 4-421 Two Tone Inband Fixed Spurs vs Digital Amplitude at 2.6GHz
AFE7900-SEP TX Single Tone (–12dBFS)
                        Output Spectrum at 2.6GHz (±300MHz)
fDAC = 8847.36MSPS, interleave mode, 2.6GHz matching, includes PCB and cable losses
Figure 4-423 TX Single Tone (–12dBFS) Output Spectrum at 2.6GHz (±300MHz)
AFE7900-SEP TX Single Tone (–6dBFS)
                        Output Spectrum at 2.6GHz (±300MHz)
fDAC = 8847.36MSPS, interleave mode, 2.6GHz matching, includes PCB and cable losses
Figure 4-425 TX Single Tone (–6dBFS) Output Spectrum at 2.6GHz (±300MHz)
AFE7900-SEP TX Single Tone (–1dBFS)
                        Output Spectrum at 2.6GHz (±300MHz)
fDAC = 8847.36MSPS, interleave mode, 2.6GHz matching, includes PCB and cable losses
Figure 4-427 TX Single Tone (–1dBFS) Output Spectrum at 2.6GHz (±300MHz)
AFE7900-SEP TX Single Tone (–12dBFS)
                        Output Spectrum at 2.6GHz (±300MHz)
fDAC = 8847.36MSPS, straight mode, 2.6GHz matching, includes PCB and cable losses
Figure 4-429 TX Single Tone (–12dBFS) Output Spectrum at 2.6GHz (±300MHz)
AFE7900-SEP TX Single Tone (–6dBFS)
                        Output Spectrum at 2.6GHz (±300MHz)
fDAC = 8847.36MSPS, straight mode, 2.6GHz matching, includes PCB and cable losses
Figure 4-431 TX Single Tone (–6dBFS) Output Spectrum at 2.6GHz (±300MHz)
AFE7900-SEP TX Single Tone (–1dBFS)
                        Output Spectrum at 2.6GHz (±300MHz)
fDAC = 8847.36MSPS, straight mode, 2.6GHz matching, includes PCB and cable losses
Figure 4-433 TX Single Tone (–1dBFS) Output Spectrum at 2.6GHz (±300MHz)
AFE7900-SEP TX Dual Tone Output
                        Spectrum at 2.6GHz, -7dBFS each (±600MHz)
fDAC = 9000MSPS, external clock mode, non-interleave mode
Figure 4-435 TX Dual Tone Output Spectrum at 2.6GHz, -7dBFS each (±600MHz)
AFE7900-SEP TX Dual Tone Output
                        Spectrum at 2.6GHz, -13dBFS each (±600MHz)
fDAC = 9000MSPS, external clock mode, non-interleave mode
Figure 4-437 TX Dual Tone Output Spectrum at 2.6GHz, -13dBFS each (±600MHz)
AFE7900-SEP TX Dual Tone Output
                        Spectrum at 2.6GHz, -30dBFS each (±600MHz)
fDAC = 9000MSPS, external clock mode, non-interleave mode
Figure 4-439 TX Dual Tone Output Spectrum at 2.6GHz, -30dBFS each (±600MHz)
AFE7900-SEP TX IMD3 vs Supply Voltage
                        at 2.6GHz
fDAC = 11796.48MSPS, interleave mode, 2.6GHz matching. 40MHz offset from tone. Output Power = –13dBFS. All supplies simultaneously at MIN, TYP, or MAX voltages.
Figure 4-441 TX IMD3 vs Supply Voltage at 2.6GHz
AFE7900-SEP IMD3 vs Tone Spacing and
                        Amplitude at 2.6GHz
fDAC = 9000MSPS, non-interleave mode, external clock mode
Figure 4-443 IMD3 vs Tone Spacing and Amplitude at 2.6GHz
AFE7900-SEP IMD3 vs Digital Amplitude
                        and Temperature at 2.6GHz
fDAC = 9000MSPS, non-interleave mode, external clock mode
Figure 4-445 IMD3 vs Digital Amplitude and Temperature at 2.6GHz
AFE7900-SEP NSD vs Digital Amplitude
                        and Temperature at 2.6GHz
fDAC = 9000MSPS, non-interleave mode, external clock mode, 50MHz offset
Figure 4-447 NSD vs Digital Amplitude and Temperature at 2.6GHz