SNAS849A December   2024  – July 2026 LMX2624-SP

PRODUCTION DATA  

  1.   1
  2. Features
  3. Applications
  4. Description
  5. Pin Configuration and Functions
  6. Specifications
    1. 5.1 Absolute Maximum Ratings
    2. 5.2 ESD Ratings
    3. 5.3 Recommended Operating Conditions
    4. 5.4 Thermal Information
    5. 5.5 Electrical Characteristics
    6. 5.6 Timing Requirements
    7. 5.7 Timing Diagrams
    8. 5.8 Typical Characteristics
  7. Detailed Description
    1. 6.1 Overview
    2. 6.2 Functional Block Diagram
    3. 6.3 Feature Description
      1. 6.3.1  Reference Oscillator Input
      2. 6.3.2  Reference Path
        1. 6.3.2.1 OSCin Doubler (OSC_2X)
        2. 6.3.2.2 Pre-R Divider (PLL_R_PRE)
        3. 6.3.2.3 Post-R Divider (PLL_R)
      3. 6.3.3  State Machine Clock
      4. 6.3.4  PLL Phase Detector and Charge Pump
      5. 6.3.5  N Divider and Fractional Circuitry
      6. 6.3.6  MUXout Pin
        1. 6.3.6.1 Serial Data Output for Readback
        2. 6.3.6.2 Lock Detect Indicator Set as Type “VCOcal” or "Vtune and VCOcal"
      7. 6.3.7  VCO (Voltage-Controlled Oscillator)
        1. 6.3.7.1 VCO Calibration
        2. 6.3.7.2 Determining the VCO Gain
        3. 6.3.7.3 Double Buffering (Shadow Registers)
        4. 6.3.7.4 Watchdog Feature
        5. 6.3.7.5 RECAL Feature
      8. 6.3.8  Channel Divider
      9. 6.3.9  Output Mute Pin and Ping Pong Approaches
      10. 6.3.10 Output Frequency Doubler
      11. 6.3.11 Output Buffer
      12. 6.3.12 Power-Down Modes
      13. 6.3.13 Phase Synchronization
        1. 6.3.13.1 General Concept
        2. 6.3.13.2 Categories of Applications for SYNC
        3. 6.3.13.3 Procedure for Using SYNC
      14. 6.3.14 SYSREF
        1. 6.3.14.1 Programmable Fields
        2. 6.3.14.2 Examples
        3. 6.3.14.3 SYSREF Procedure
      15. 6.3.15 Pin-Mode Integer Frequency Generation
        1. 6.3.15.1 4-level Pins Using GPIOs
        2. 6.3.15.2 Pin-Mode Example
      16. 6.3.16 Device Functional Modes
    4. 6.4 Treatment of Unused Pins
    5. 6.5 Programming
      1. 6.5.1 Recommended Initial Power-Up Sequence
      2. 6.5.2 Recommended Sequence for Changing Frequencies
      3. 6.5.3 Register Maps
        1. 6.5.3.1 Device Registers
  8. Application and Implementation
    1. 7.1 Application Information
      1. 7.1.1 OSCin Configuration
      2. 7.1.2 OSCin Slew Rate
      3. 7.1.3 RF Output Buffer Power Control
      4. 7.1.4 RF Output Buffer
      5. 7.1.5 RF Output Treatment for the Complimentary Side
        1. 7.1.5.1 Single-ended Termination of Unused Output
    2. 7.2 Typical Application
      1. 7.2.1 Design Requirements
      2. 7.2.2 Detailed Design Procedure
      3. 7.2.3 Application Curve
    3. 7.3 Power Supply Recommendations
    4. 7.4 Layout
      1. 7.4.1 Layout Guidelines
      2. 7.4.2 Layout Example
      3. 7.4.3 Footprint Example on PCB Layout
      4. 7.4.4 Radiation Environments
        1. 7.4.4.1 Total Ionizing Dose
        2. 7.4.4.2 Single Event Effect
  9. Device and Documentation Support
    1. 8.1 Device Support
      1. 8.1.1 Development Support
    2. 8.2 Documentation Support
      1. 8.2.1 Related Documentation
    3. 8.3 Receiving Notification of Documentation Updates
    4. 8.4 Support Resources
    5. 8.5 Trademarks
    6. 8.6 Electrostatic Discharge Caution
    7. 8.7 Glossary
  10. Revision History
  11. 10Mechanical, Packaging, and Orderable Information
    1. 10.1 Engineering Samples
    2. 10.2 Package Option Addendum
    3. 10.3 Tape and Reel Information

N Divider and Fractional Circuitry

The N divider includes fractional compensation and can achieve any fractional denominator from 1 to (232 – 1). The integer portion of N is the whole part of the N divider value, and the fractional portion, Nfrac = NUM / DEN, is the remaining fraction. In general, the total N divider value is determined by PLL_N + PLL_NUM / PLL_DEN. The PLL_N, PLL_NUM and PLL_DEN are software programmable in SPI mode. Pin-mode option has integer frequency generation and refer Pin-mode description details in Pin-mode section for more details.

The higher the denominator, the finer the resolution step of the output. For example, even when using fPD = 200MHz, the output can increment in steps of 200MHz /( 232 – 1) = 0.047Hz. Equation 2 shows the relationship between the phase detector and VCO frequencies. Note that in SYNC mode, there is an IncludedDivide divider that is not shown in Equation 2.

Equation 2. f V C O = f p d × IncludedDivide × N + N U M D E N

The sigma-delta modulator that controls this fractional division is also programmable from integer mode to third order. To make the fractional spurs consistent, the modulator is reset any time that the R0 register is programmed.

The N divider has minimum value restrictions based on the modulator order and VCO frequency. Furthermore, the PFD_DLY bit must be programmed in accordance to the Table 6-2. In SYNC mode, IncludedDivide can be larger than one, otherwise IncludedDivide is one.

Table 6-2 Minimum N Divider Restrictions
MASH_ORDERfVCO / IncludedDivide (MHz)MINIMUM NPFD_DLY
0≤ 12500291
> 12500332
1≤ 10000301
10000 – 12500342
>12500383
2≤ 4000311
7500 – 10000332
>10000373
3≤ 4000331
7500 – 10000413
>10000454