LP2967ITP-2830/NO Texas Instruments Integrated Circuit (BGA) In Stock
LP2967ITP-2830/NO is a dual-output low-dropout linear voltage regulator from Texas Instruments providing fixed 2.8 V and 3.0 V regulated outputs in a compact BGA package. It features low quiescent current and enables independent regulation for mixed-supply embedded systems. Available in stock worldwide with fast shipping.
- Manufacturer
- Texas Instruments
- Package
- BGA
- Pin Count
- 8
- Lifecycle
- ACTIVE
- Datasheet
- LP2967ITP-2830/NO Datasheet PDF
- Category
- Integrated Circuit
- RoHS
- Compliant
- Lead Time
- 3–7 business days
- Shipping
- DHL Express · Worldwide
What are the key features of LP2967ITP-2830/NO?
- Dual independent LDO outputs with fixed 2.8 V and 3.0 V rails enable supply sequencing for mixed-voltage SoC designs
- Ultra-low dropout voltage minimizes power dissipation and extends battery life in portable applications
- Compact BGA package reduces board footprint compared to traditional SOT or SOIC regulators
What is LP2967ITP-2830/NO used for?
LP2967ITP-2830/NO is designed for portable consumer electronics and wireless modules requiring two independent regulated voltages from a single LDO device. The 2.8 V output is well suited for camera sensor power rails and RF front-end supplies, while the 3.0 V output powers microcontrollers and memory devices. Its small BGA footprint makes it ideal for space-constrained handset and IoT designs where board area is at a premium.
Compliance & Regulatory
| RoHS Status | Compliant |
| Lead-Free | Yes (Pb-Free) |
Where can I find the LP2967ITP-2830/NO datasheet?
LP2967ITP-2830/NO Datasheet DownloadOfficial datasheet from Texas Instruments
What are equivalent replacements for LP2967ITP-2830/NO?
No known alternates. Submit an RFQ and our team can suggest alternatives.
Frequently Asked Questions
What are the two fixed output voltages of LP2967ITP-2830/NO and which subsystems do they typically power?
LP2967ITP-2830/NO provides fixed 2.8 V and 3.0 V outputs; the 2.8 V rail is commonly used for camera sensors, RF transceivers, and analog front-ends, while the 3.0 V rail powers microcontrollers, SRAM, and display logic in mobile and IoT platforms.
How does the LDO topology of LP2967ITP-2830/NO help extend battery runtime in handheld devices?
As a low-dropout regulator, LP2967ITP-2830/NO maintains regulation with an input voltage only slightly above its output, typically requiring less than 300 mV dropout, which means a 3.3 V or 3.6 V Li-Ion cell can power the 3.0 V rail down to near the battery depleted voltage without switching noise.
In what package does LP2967ITP-2830/NO ship, and what PCB design considerations does that entail?
The device ships in a BGA package, which requires via-in-pad or escape routing techniques on the PCB; however, the BGA footprint is significantly smaller than equivalent 8-pin SOIC packages, enabling a sub-10 mm squared placement area for both regulated outputs combined.
Can LP2967ITP-2830/NO support independent enable or sequencing control on each output?
Yes, the dual-channel architecture allows the two outputs to be enabled independently, enabling power sequencing where the 2.8 V supply for analog peripherals is brought up after the 3.0 V digital core, meeting the startup requirements of many SoC reference designs that mandate at least a 1 ms delay between rails.
What input voltage range keeps LP2967ITP-2830/NO in full regulation at maximum load?
To maintain full regulation on both outputs, the input supply must remain at least 300 mV above the higher 3.0 V output, meaning a minimum of approximately 3.3 V; most designs use a 3.6 V to 5.0 V input from a Li-Ion cell or USB rail to ensure regulation margin across the full operating temperature range of -40 degrees C to 125 degrees C.
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Why Buy from FindMyChip
About Texas Instruments
Texas Instruments (TI) is a global semiconductor company headquartered in Dallas, Texas. TI designs and manufactures analog and embedded processing chips used in industrial, automotive, consumer, communications, and enterprise systems.
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