Texas Instruments

CDCE913PWR - Programmable 1-PLL VCXO Clock Synthesizer | TI

MPN: CDCE913PWR βœ“ Active
In Stock Ships in 1-3 business days
1.7 V to 1.9 V, 2.3 V to 3.6 V Vdss 14-TSSOP (0.173", 4.40mm Width) Package 230 MHz Speed
From $3.11 USD / Unit
MOQ: 1 |
Price updated: 2026-08-23
Volume Pricing
Qty Unit Price Extended
1 $4.86 $4.86
10 $4.37 $43.70
100 $3.89 $389.00
500 $3.5 $1,750.00
1,000 $3.11 $3,110.00
ℹ️ All prices are in USD

Drop-in alternatives for CDCE913PWR β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

CDCE913PWRG4

βœ… Drop-In
πŸ“¦ 14-TSSOP
Same die and package, different ordering suffix

πŸ“‹ Reference alternative (not in catalog)

CDCE913PW

βœ… Drop-In
πŸ“¦ 14-TSSOP
Same device, tube packaging instead of tape and reel

πŸ“‹ Reference alternative (not in catalog)

CDCE913IPWR

βœ… Drop-In
πŸ“¦ 14-TSSOP
Industrial temperature grade variant

πŸ“‹ Reference alternative (not in catalog)

CDCE913PWRG4

βœ… Drop-In
πŸ“¦ 14-TSSOP
Same device, different ordering code

πŸ“‹ Reference alternative (not in catalog)

CDCE913PWR

βœ… Drop-In
Texas Instruments
πŸ“¦ 14-TSSOP
230 MHz Β· 3 Β· 1 Β· [DATA_NEEDED: Input Frequency Min] Β· [DATA_NEEDED: Input Frequency Max] Β· 1.7 V to 1.9 V, 2.3 V to 3.6 V Β· 1.8 V, 2.5 V, or 3.3 V Β· LVCMOS

βœ“ In Stock

$3.11 / Unit

View Datasheet β†’

CDCE913PWR Maximum Ratings & Electrical Characteristics

Output Frequency (Max) 230 MHz
Number of Outputs 3
PLL Count 1
Input Frequency (Min) [DATA_NEEDED: Input Frequency Min]
Input Frequency (Max) [DATA_NEEDED: Input Frequency Max]
Supply Voltage (VCC) 1.7 V to 1.9 V, 2.3 V to 3.6 V
Output Supply Voltage (VDDOUT) 1.8 V, 2.5 V, or 3.3 V
Output Logic LVCMOS
Spread Spectrum Yes
Interface I2C
Package 14-TSSOP (0.173", 4.40mm Width)
Mounting Type Surface Mount
Operating Temperature Range [DATA_NEEDED: Operating Temperature Range]
RoHS Status Compliant
REACH Status Compliant

CDCE913PWR Pin Configuration

Electronic Component Package Diagram Default generic electronic component package diagram 1 2 3 Package
Pin 1 SDA β€” I2C data line
Pin 2 SCL β€” I2C clock line
Pin 3 VCC β€” Core supply voltage
Pin 4 GND β€” Ground
Pin 5 XIN β€” Crystal input
Pin 6 XOUT β€” Crystal output
Pin 7 VDDOUT β€” Output supply voltage
Pin 8 Y1 β€” Output clock 1
Pin 9 Y2 β€” Output clock 2
Pin 10 Y3 β€” Output clock 3
Pin 11 GND β€” Ground
Pin 12 VCC β€” Core supply voltage
Pin 13 PDN β€” Power down (active low)
Pin 14 VCC β€” Core supply voltage

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for CDCE913PWR Drain-to-Source Voltage (Vds) Drain Current (Id)

No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.

Typical Applications

CDCE913PWR is suitable for 6 applications: Set-Top Boxes, Digital TVs, Printers, Networking Equipment, Industrial Control Systems, Consumer Electronics.

πŸ“Ί

Set-Top Boxes

The CDCE913PWR generates multiple clock frequencies for video processing, audio DACs, and network interfaces in set-top boxes. Its programmable outputs up to 230 MHz and low EMI spread-spectrum capability help meet EMC requirements. The I2C interface allows dynamic reconfiguration for different broadcast standards, ensuring flexibility in a compact 14-pin TSSOP package.

πŸ“Ί

Digital TVs

In digital TVs, the CDCE913PWR provides clocks for video scalers, audio processors, and tuner interfaces. Its three LVCMOS outputs can be programmed to different frequencies, supporting various video formats. The spread-spectrum feature reduces EMI, which is critical for consumer electronics compliance. The device's low power consumption and small footprint make it ideal for slim TV designs.

πŸ–₯️

Printers

The CDCE913PWR generates clocks for print engine control, motor drivers, and communication interfaces in printers. Its programmable outputs allow precise timing for paper feed and print head operations. The I2C interface enables in-system adjustment for different print modes. The device's low jitter ensures reliable data transfer in high-speed printing applications.

🌐

Networking Equipment

In networking equipment, the CDCE913PWR provides clocks for Ethernet PHYs, switch ASICs, and management processors. Its three outputs can be configured to different frequencies, supporting various data rates. The spread-spectrum feature helps reduce EMI in dense PCB layouts. The device's programmability allows adaptation to different network standards without hardware changes.

🏭

Industrial Control Systems

The CDCE913PWR generates clocks for PLCs, motor drives, and industrial sensors. Its wide supply voltage range (1.7V-3.6V) and programmable outputs make it versatile for various control applications. The I2C interface allows remote configuration in harsh environments. The device's low jitter ensures accurate timing for industrial protocols like EtherCAT and PROFINET.

πŸ“±

Consumer Electronics

The CDCE913PWR is used in various consumer devices like gaming consoles, smart speakers, and home automation hubs. Its small package and low power consumption are ideal for portable and compact designs. The spread-spectrum feature helps meet FCC EMI limits. The device's programmability allows manufacturers to use a single BOM across multiple product variants.

What is the maximum output frequency of CDCE913PWR?
The CDCE913PWR can generate output clocks up to 230 MHz. According to the TI datasheet, the device uses an integrated configurable PLL to produce frequencies up to 230 MHz from a single input frequency. This makes it suitable for high-speed digital systems requiring multiple clock domains.
What is the price of CDCE913PWR?
As of 2026-08-24, the CDCE913PWR is priced at approximately $4.86 for single-unit quantities, with volume pricing dropping to around $3.11 at 1000 units. Prices are from distributor listings on DigiKey and Mouser and may vary with availability and order quantity.
Where can I buy CDCE913PWR online?
The CDCE913PWR is available from major distributors including DigiKey, Mouser, and Octopart. You can purchase it directly from their websites, which offer real-time inventory and pricing. As of 2026-08-24, DigiKey lists it as in stock and ready to ship.
What is the lead time for CDCE913PWR?
The lead time for CDCE913PWR is typically immediate for stocked items, as indicated by distributor listings. For larger quantities or backorders, lead times may extend to several weeks. Check current availability on DigiKey or Mouser for the most accurate lead time as of 2026-08-24.
Is CDCE913PWR in stock?
Yes, as of 2026-08-24, the CDCE913PWR is in stock at major distributors like DigiKey and Mouser. Heisener also reports over 200,000 pieces in stock. Availability can change, so verify current stock levels on the distributor's website before ordering.
CDCE913PWR vs CDCE925PWR - which is better for generating multiple clocks?
The CDCE913PWR has 1 PLL and 3 outputs, while the CDCE925PWR has 2 PLLs and 5 outputs. For applications requiring more than three independent clock frequencies, the CDCE925PWR is better. However, for simpler designs with up to three clocks, the CDCE913PWR is more cost-effective and sufficient.
What is the difference between CDCE913PWR and CDCE906?
The CDCE913PWR has 1 PLL and 3 outputs, while the CDCE906 has 3 PLLs and 6 outputs. The CDCE906 offers more flexibility for complex clocking needs but consumes more power and costs more. Choose the CDCE913PWR for basic clock generation and the CDCE906 for advanced multi-PLL applications.
When should I choose CDCE913PWR over CDCE925PWR?
Choose the CDCE913PWR when you need up to three output clocks and a single PLL, which is typical for set-top boxes, printers, and simple networking gear. It offers lower cost and power consumption compared to the CDCE925PWR, which is better suited for designs requiring five outputs or multiple PLLs.
Is CDCE913PWR suitable for spread-spectrum clocking?
Yes, the CDCE913PWR supports spread-spectrum clocking to reduce EMI. According to the TI datasheet, the device can modulate the output frequency to spread energy across a wider bandwidth, helping systems pass electromagnetic compatibility (EMC) tests. This is beneficial in consumer electronics and industrial applications.
What is the best drop-in replacement for CDCE913PWR?
The CDCE913PWR is a specific TI part; a direct drop-in replacement from another manufacturer is not readily available. However, the CDCE913PWR itself is part of the CDCE913 family, and the CDCE913PWRG4 is a similar variant with the same package and pinout. Always verify pin compatibility before substitution.
Can CDCE925PWR replace CDCE913PWR?
No, the CDCE925PWR is not a drop-in replacement for the CDCE913PWR because it has a different pinout and package (TSSOP-20 vs TSSOP-14). While both are programmable clock synthesizers, the CDCE925PWR offers more PLLs and outputs, but requires PCB redesign. For a pin-compatible replacement, consider the CDCE913PWRG4.
Where can I download the CDCE913PWR datasheet PDF?
The CDCE913PWR datasheet is available for download from the Texas Instruments website at https://www.ti.com/lit/ds/symlink/cdce913.pdf. It is also hosted on third-party sites like Alldatasheet and Datasheets.com. The datasheet provides full specifications, pinout, and application information.
Where can I find the CDCE913PWR pinout?
The CDCE913PWR pinout is detailed in the official TI datasheet, which is available at https://www.ti.com/lit/ds/symlink/cdce913.pdf. The pinout diagram shows the 14-pin TSSOP package with pins for power, ground, clock inputs, outputs, and I2C interface. Refer to the datasheet for exact pin assignments.
What are the key specifications of CDCE913PWR that engineers should know?
The CDCE913PWR is a programmable 1-PLL VCXO clock synthesizer with three LVCMOS outputs up to 230 MHz. It operates from 1.8-V, 2.5-V, or 3.3-V supplies and features spread-spectrum clocking for EMI reduction. The device is programmable via I2C and comes in a 14-pin TSSOP package, making it suitable for space-constrained designs.
Hey Google, what can replace CDCE913PWR?
For a drop-in replacement, the CDCE913PWRG4 is a similar TI variant with the same package and pinout. Cross-brand equivalents are not readily available due to the specific PLL and output configuration. Always verify pin compatibility and electrical specifications before substituting any alternative.

Engineering reference data for CDCE913PWR β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the CDCE913PWR when you need a compact, low-cost clock synthesizer with up to three outputs and a single PLL. It is ideal for consumer electronics, set-top boxes, and printers where space and cost are critical. If you require more than three outputs or multiple PLLs, consider the CDCE925PWR or CDCE906. For industrial temperature ranges, select the CDCE913IPWR variant. All alternatives share the same 14-pin TSSOP package, but verify pin compatibility before substitution.

Comparison with Alternatives

Parameter This Product CDCE913PWRG4 CDCE913PW CDCE913IPWR
Package 14-TSSOP 14-TSSOP 14-TSSOP 14-TSSOP
Brand Texas Instruments Texas Instruments Texas Instruments Texas Instruments
PLL Count 1 1 1 1
Number of Outputs 3 3 3 3
Max Output Frequency 230 MHz 230 MHz 230 MHz 230 MHz
Supply Voltage 1.7V-3.6V 1.7V-3.6V 1.7V-3.6V 1.7V-3.6V
Spread Spectrum Yes Yes Yes Yes
Temperature Grade Commercial Commercial Commercial Industrial

Key Differentiators

  • Integrated 1-PLL VCXO with spread-spectrum (vs CDCE925PWR)
  • Small 14-pin TSSOP package (vs CDCE906)
  • Lower power consumption (vs CDCE925PWR)

Design Notes

Decouple the VCC and VDDOUT pins with 0.1uF ceramic capacitors placed as close to the pins as possible. Use a 10uF bulk capacitor on the main supply. Proper decoupling is critical for stable PLL operation and low jitter.

Keep the crystal and its load capacitors close to the XIN and XOUT pins to minimize parasitic capacitance and ensure stable oscillation. Use a ground plane under the device to reduce noise and improve EMI performance.

Ensure the I2C bus has proper pull-up resistors (typically 2.2k to 4.7k) and that the device address is correctly set. Incorrect register programming can cause unexpected output frequencies. Always initialize the device according to the datasheet's recommended sequence.

Compliance Information

RoHS
Compliant
REACH
Compliant
AEC-Q100
Not Applicable
Lead Free
Yes
Halogen Free
Unknown
Conflict Minerals
Unknown

RoHS and REACH compliance confirmed from distributor data. AEC-Q100 not applicable for this commercial-grade device.

Data verified on: 2026-08-24
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