Clock/Timing - Clock Buffers, Drivers

Image Part Number Description / PDF Quantity Rfq
LMK00308SQE/NOPB

LMK00308SQE/NOPB

Texas Instruments

IC CLK BUFFER 3:9 3.1GHZ 40WQFN

180

CDC319DBR

CDC319DBR

Texas Instruments

CDC319 1-LINE TO 10-LINE CLOCK D

15900

CDCLVP110VF

CDCLVP110VF

Texas Instruments

IC CLK BUFFER 2:10 3.5GHZ 32LQFP

160

CDCLVD1208RHDT

CDCLVD1208RHDT

Texas Instruments

IC CLK BUFFER 2:8 800MHZ 28VQFN

375

CDCVF111FN

CDCVF111FN

Texas Instruments

CDCVF111 1:9 DIFFERENTIAL LVPECL

15161

CDC318DLR

CDC318DLR

Texas Instruments

LOW SKEW CLOCK DRIVER

1000

CDCVF2310PW

CDCVF2310PW

Texas Instruments

IC CLK BUF 1:10 200MHZ 24TSSOP

25

CDC318ADLG4

CDC318ADLG4

Texas Instruments

IC CLK BUFFER 1:18 100MHZ 48SSOP

0

CDC337DWG4

CDC337DWG4

Texas Instruments

IC CLK BUFFER 1:8 80MHZ 20SOIC

0

DS90LV110TMTCX/NOPB

DS90LV110TMTCX/NOPB

Texas Instruments

IC CLK BUF 1:10 400MHZ 28TSSOP

0

CDCLVP1102RGTT

CDCLVP1102RGTT

Texas Instruments

IC CLK BUFFER 1:2 2GHZ 16QFN

1495

LMK00308SQ/NOPB

LMK00308SQ/NOPB

Texas Instruments

IC CLK BUFFER 3:9 3.1GHZ 40WQFN

1489

LMK00304SQX/NOPB

LMK00304SQX/NOPB

Texas Instruments

IC CLK BUFFER 3:5 3.1GHZ 32WQFN

0

CDC111FNR

CDC111FNR

Texas Instruments

LOW SKEW CLOCK DRIVER

6000

CDCV304TPWREP

CDCV304TPWREP

Texas Instruments

IC CLK BUFFER 1:4 200MHZ 8TSSOP

1647

LMH2191TME/NOPB

LMH2191TME/NOPB

Texas Instruments

IC CLK BUFFER 1:2 52MHZ 8DSBGA

188

CDC319DBRG4

CDC319DBRG4

Texas Instruments

IC CLK BUFFER 1:10 100MHZ 28SSOP

0

LMH2180TMX/NOPB

LMH2180TMX/NOPB

Texas Instruments

LMH2180 75 MHZ DUAL CLOCK BUFFER

25879

CDC319DB

CDC319DB

Texas Instruments

CDC319 1-LINE TO 10-LINE CLOCK D

5577

LMK01801BISQ/NOPB

LMK01801BISQ/NOPB

Texas Instruments

LMK01801 LMK01801 DUAL CLOCK DIS

7004

Clock/Timing - Clock Buffers, Drivers

1. Overview

Clock buffers and drivers are integrated circuits (ICs) designed to distribute clock signals in electronic systems. They amplify, condition, and route timing signals to multiple destinations while minimizing skew, jitter, and signal degradation. These components are critical in synchronizing operations across processors, memory modules, communication interfaces, and other timing-sensitive circuits. Their importance spans industries such as telecommunications, automotive, and high-performance computing.

2. Main Types and Functional Classification

Type Functional Characteristics Application Examples
Clock Buffers Single-input, multiple-output devices with low phase noise and skew CPU clock distribution, FPGA systems
Clock Drivers High-drive capability for fan-out applications Networking switches, server motherboards
Differential Clock Buffers Supports LVDS, HCSL, and CML signal types High-speed ADC/DAC systems, RF transceivers
Programmable Clock Buffers Configurable output frequency/division ratios Industrial automation, test equipment

3. Structure and Composition

Clock buffers/drivers typically consist of:

  • Input receivers (single-ended or differential)
  • Internal amplification stages
  • Output drivers with controlled impedance
  • Power supply decoupling structures
  • Thermal management pads (in QFN/SSOP packages)
They are fabricated using CMOS, Bipolar, or SiGe processes to optimize speed and noise performance.

4. Key Technical Specifications

Parameter Description Importance
Max Operating Frequency Up to 1.2 GHz (CMOS), 3.2 GHz (SiGe) Determines application suitability for high-speed systems
Additive Phase Jitter 0.05 ps RMS to 1 ps RMS Impacts timing precision in data converters
Propagation Delay 50 ps to 5 ns Critical in synchronized multi-channel systems
Output Voltage Levels LVCMOS, LVDS, HSTL, etc. Ensures compatibility with downstream circuits
Supply Voltage 1.8V to 5V Affects power consumption and integration

5. Application Areas

  • Telecommunications: 5G base stations, optical transceivers
  • Computing: Servers, workstations, high-end PCs
  • Industrial: PLCs, motor controllers, test instruments
  • Automotive: ADAS clock synchronization, infotainment systems
Case Study: In 5G massive MIMO systems, low-jitter clock drivers ensure phase coherence across 64+ antenna elements.

6. Leading Manufacturers and Products

Manufacturer Representative Product Key Specifications
TI (Texas Instruments) CDCE62005 3.2 GHz LVDS driver, 0.1 ps RMS jitter
Analog Devices ADCLK846 16-output clock buffer, 1.6 GHz bandwidth
STMicroelectronics DF1610S 1.8V/3.3V dual supply buffer, 8 outputs
ON Semiconductor MC100EP195 Differential ECL buffer, 2.5 GHz operation

7. Selection Recommendations

Key considerations:

  • Match output type to receiver requirements (LVDS/CML/LVCMOS)
  • Calculate required fan-out capacity with voltage margin
  • Specify jitter budget (e.g., <0.3 ps RMS for 10 Gbps SerDes)
  • Consider temperature stability (-40 C to +125 C automotive grade)
  • Optimize package size vs. thermal dissipation needs

8. Industry Trends

Future developments include:

  • Sub-100 fs jitter performance using advanced CMOS processes
  • Integration with PLL/VCO for clock generation
  • Multi-die packaging for hybrid signal conditioning
  • Energy-efficient designs for battery-powered IoT devices
  • Automotive-grade ICs with AEC-Q100 qualification

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