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CA25L16007HNR

In Stock 8550 pcs Reference Price(In US Dollars)
3000+
$3.8005
Manufacturer Part Number:
CA25L16007HNR
Manufacturer / Brand
CTS-Frequency Controls
Part of Description:
2.5mmx2.0mm Surface Mount Automo
Datasheets:
CA25L16007HNR.pdf
Lead Free Status / RoHS Status:
ROHS3 Compliant
Stock Condition:
New original, 8550 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
Shipment Way:
DHL/Fedex/TNT/UPS

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Part Number CA25L16007HNR
Manufacturer / Brand CTS-Frequency Controls
Stock Quantity 8550 pcs Stock
Category Crystals, Oscillators, Resonators > Oscillators
Description 2.5mmx2.0mm Surface Mount Automo
Lead Free Status / RoHS Status: ROHS3 Compliant
Voltage - Supply 2.5V
Type XO (Standard)
Spread Spectrum Bandwidth -
Size / Dimension 0.098" L x 0.079" W (2.50mm x 2.00mm)
Series CA25L
Ratings AEC-Q200
Package / Case 6-SMD, No Lead
Package Tape & Reel (TR)
Output LVDS
Operating Temperature -40°C ~ 125°C
Mounting Type Surface Mount
Height - Seated (Max) 0.043" (1.10mm)
Function Standby (Power Down)
Frequency Stability ±150ppm
Frequency 160 MHz
Current - Supply (Max) 60mA
Current - Supply (Disable) (Max) 15µA
Base Resonator Crystal
Base Product Number CA25
Absolute Pull Range (APR) -

Packaging & ESD

Industry-standard static shielding packaging is used for electronic components.Anti-static, light-transparent materials allow easy identification of ICs and PCB assemblies.
The packaging structure provides electrostatic protection based on Faraday cage principles.This helps protect sensitive components from static discharge during handling and transportation.


All products are packed in ESD-safe anti-static packaging. Outer packaging labels include part number, brand, and quantity for clear identification. Goods are inspected prior to shipment to ensure proper condition and authenticity.

ESD protection is maintained throughout packing, handling, and global transportation. Secure packaging provides reliable sealing and resistance during transit. Additional cushioning materials are applied when required to protect sensitive components.

QC(Part Testing by IC Components)Quality Warranty

We can offer worldwide express delivery service, such as DHLor FedEx or TNT or UPS or other forwarder for shipment.

Global Shipment by DHL/FedEx/TNT/UPS

Shipping Fees reference DHL/FedEx
1). You can offer your express delivery account for shipment, ifyou haven’t any express account for shipment, we can offer our account inadvance.
2). Use our account for shipment, Shipment charges(Reference DHL/FedEx, Different Countries has different price.)
Shipment charges: (Reference DHL and FedEX)
Weight(KG): 0.00kg-1.00kg Price(USD$) : USD$60.00
Weight(KG): 1.00kg-2.00kg Price(USD$) : USD$80.00
* The price of cost is reference with DHL/FedEx. The detail charges, please contact us. Different country the express charges are different.



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Beneficiary Bank Address : Tsuen Wan Market Street Branch 53 Market Street, Tsuen Wan N.T., Hong Kong

Any inquires or questions, please kindly contact us Email: Info@IC-Components.com


Frequently Asked Questions

Can the CA25L16007HNR be used directly with 1.8 V or 3.3 V logic inputs, or does it need LVDS termination and a specific receiver?
The CA25L16007HNR is a 2.5 V LVDS oscillator, so the output should be routed into an LVDS-compliant receiver or input stage that supports LVDS common-mode and differential signaling. It is not a direct-drop-in source for single-ended 1.8 V or 3.3 V CMOS inputs unless the downstream device explicitly accepts LVDS. In a design-in review, the CA25L16007HNR should be paired with the correct line termination and input biasing expected by the receiver to avoid signal integrity or threshold issues.
Is the CA25L16007HNR suitable when I need to replace a CMOS oscillator with an LVDS part?
The CA25L16007HNR can be a workable replacement only if the clock receiver and board routing are already designed for differential LVDS signaling. Replacing a CMOS oscillator with the CA25L16007HNR usually requires checking the input termination, trace pair routing, logic standard, and the receiving device’s allowable common-mode range. If the original design expects a single-ended clock, the migration will typically need a receiver or buffer change as well.
What design checks are needed before using the CA25L16007HNR in a high-speed FPGA or ASIC clock path?
For the CA25L16007HNR, verify that the FPGA or ASIC clock input supports LVDS at 160 MHz and that the clock pin bank is powered and configured for differential reception. You should also confirm the board uses controlled-impedance routing, matched pair length, and the termination scheme recommended by the receiving device. If the clock tree includes a PLL or jitter-sensitive subsystem, validate the oscillator phase noise and startup behavior in the actual load environment, not just on paper.
Can the CA25L16007HNR be used in automotive electronics or other harsh environments?
The CA25L16007HNR carries AEC-Q200: rating and a -40°C to 125°C operating range, which makes it a candidate for automotive and industrial designs that need extended temperature tolerance. For long-life use, the main checks are thermal cycling, board-level stress, and whether the 2.5 V rail remains within tolerance during cranking, load dump protection stages, or supply transients. The part’s suitability still depends on the full system qualification, including vibration, PCB strain, and EMC behavior.
How should I use the standby or power-down function on the CA25L16007HNR without causing clock glitches?
The CA25L16007HNR includes a standby power-down function, so the shutdown sequence should be coordinated with the downstream clock consumer. In practice, disable or isolate the receiver before asserting power-down if the system cannot tolerate missing or malformed clocks. After re-enabling the CA25L16007HNR, allow for oscillator and PLL reacquisition time before releasing reset or enabling timing-critical logic.
What should I check when migrating from another 160 MHz oscillator to the CA25L16007HNR?
When migrating to the CA25L16007HNR, compare the output standard, supply voltage, enable or standby polarity, startup time, and footprint compatibility rather than matching frequency alone. A 160 MHz oscillator can still fail as a replacement if the old part was CMOS, clipped-sine, or had a different pinout. The CA25L16007HNR is a 6-SMD, no-lead LVDS device, so the layout and receiver interface need to match that electrical and mechanical format.
Is the CA25L16007HNR appropriate for low-power designs that spend much of the time in idle mode?
The CA25L16007HNR can fit low-duty-cycle systems because the disable current is specified at 15 µA max in standby. The practical question is whether the system can tolerate the wake-up and clock stabilization interval when the oscillator is re-enabled. If the clock is frequently cycled, check whether the total power saved outweighs the recovery time and any downstream synchronization overhead.
What PCB layout practices reduce risk with the CA25L16007HNR LVDS output?
The CA25L16007HNR should be placed close to the receiving device, with the differential pair routed symmetrically and kept away from aggressors such as switching regulators and fast I/O buses. Maintain consistent impedance, minimize stubs, and place termination according to the receiver topology. Because the package is only 2.5 mm by 2.0 mm, assembly and rework quality also matter for maintaining solder joint reliability.
How tight is the frequency tolerance of the CA25L16007HNR for systems that need precise clocks?
The CA25L16007HNR has a frequency stability of ±150 ppm, which is suitable for many digital timing applications but may not be enough for systems that need tighter frequency error budgets without compensation. If the clock feeds SERDES, synchronous interfaces, or protocol timing with narrow margins, confirm that the combined error from oscillator tolerance, temperature drift, and any board-level effects stays inside the system budget. The CA25L16007HNR is a fixed-frequency XO, so it is not intended for applications that need field trim or pull range.
What alternatives should I consider if I need a pin-compatible or functionally similar replacement for the CA25L16007HNR?
For a replacement of the CA25L16007HNR, start by comparing other CA25-series 160 MHz LVDS oscillators from CTS-Frequency Controls with the same supply voltage, package, and enable behavior. Cross-brand alternatives should only be treated as candidates if the output standard, pinout, footprint, and startup characteristics align closely enough for the target receiver. Even when the frequency matches, differences in jitter, power-up timing, and disable behavior can affect the clock tree design.

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