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NXP Semiconductors PN7150B0UK/C11002Z

Part No.:
PN7150B0UK/C11002Z
Manufacturer:
NXP Semiconductors
Category:
RFID, RF Access, Monitoring ICs
Package:
42-UFBGA, WLCSP
Datasheet:
AetrixPN7150B0UK/C11002Z.pdf
Description:
IC RFID TRANSP 13.56MHZ 42WLCSP
Quantity:
Payment:
Payment
Shipping:
Shipping

Inventory:4,781

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Product details

Overview

PN7150B0UK/C11002Z from NXP Semiconductors is a high-performance NFC controller IC with integrated Arm Cortex-M0 core and preloaded firmware supporting full NFC Forum compliance-including ISO/IEC 14443A/B, ISO/IEC 15693, MIFARE Classic, FeliCa, and NFC-IP1/2 modes-at 13.56 MHz. It operates from 2.3 V to 5.5 V battery supply, delivers ultra-low 150 μA polling loop current, and interfaces via I²C-bus with NCI 1.0 protocol for Linux/Android host integration in wearables and home automation devices.

For engineers reviewing the PN7150B0UK/C11002Z datasheet, PN7150B0UK/C11002Z pinout, PN7150B0UK/C11002Z application, or PN7150B0UK/C11002Z equivalent, this page provides verified package mapping (WLCSP42), confirmed RF protocol support, validated power states (Monitor/Standby/Active/HPD), exact I²C address configuration pins (I2CADR0/I2CADR1), and real-world current consumption values across functional modes.

Technical Context

The PN7150B0UK/C11002Z implements an NCI 1.0-compliant host interface over I²C-bus High-Speed mode, with embedded firmware handling all real-time NFC constraints-polling loop sequencing, protocol arbitration, and device discovery-without host CPU intervention. Its RF front-end integrates a buffered transmitter (TX1/TX2), differential receiver (RXP/RXN), on-chip RF level detector, and programmable antenna tuning control.

Power management includes autonomous Hard Power Down (VEN-controlled), Monitor state for battery voltage hysteresis detection, and Standby state with wake-up via RF field, I²C activity, or internal 380 kHz oscillator-enabling sub-20 μA standby current. The integrated PMU accepts direct battery input (2.3–5.5 V) and supplies separate LDOs for digital (VDD), analog (VDDA), and transmitter (VDD(TX)) domains.

Key Specifications

ParameterValue and Actual Design Meaning
Battery Supply Range2.3 V to 5.5 V - enables direct connection to single-cell Li-ion or coin-cell batteries without external regulators
Polling Loop Current150 μA typical at 500 ms loop time - extends battery life in always-on NFC sensing applications like smart remotes
RF ProtocolsISO/IEC 14443A/B, ISO/IEC 15693, MIFARE Classic 1K/4K, FeliCa, NFC-IP1/2, NFC Forum T3T/T4T - supports full card emulation, reader, and peer-to-peer modes
Host InterfaceI²C-bus High-Speed mode (3.4 Mbps) with NCI 1.0 protocol - ensures seamless integration with Android/Linux HAL layers
Microcontroller CoreArm Cortex-M0 - executes integrated firmware for protocol stack, polling logic, and secure EEPROM management
PackageWLCSP42 (2.88 mm × 2.80 mm × 0.54 mm) - ultra-compact footprint for space-constrained wearables and IoT sensors
Operating Temperature−30 °C to +85 °C - qualified for industrial and consumer environments including home gateways and healthcare monitors

Pinout & Package

PN7150B0UK/C11002Z uses a wafer-level chip-scale package (WLCSP42) with 42 solder bumps, optimized for minimal PCB area and low-inductance RF routing. The package includes dedicated ground balls (B1, B2, B5, C4, C5) for RF stability and thermal dissipation, plus dual VBAT inputs (A1, D7) for robust power delivery.

Pin/TerminalCircuit RoleDesign Meaning
VBAT2 (A1)Battery supply inputPrimary VBAT connection; must be tied to main system battery rail
VBAT1 (A3)TXLDO input supplyProvides dedicated input to internal transmitter LDO for stable RF output power
TX1 / TX2 (A6, A7)Antenna driver outputsDifferential RF outputs driving external matching network; require impedance-controlled traces
RXP / RXN (B4, A4)Differential receiver inputsHigh-sensitivity analog inputs for demodulating weak tag responses; referenced to VDD(MID)
VDD(MID) (A5)Receiver reference supplyStable mid-rail bias for receiver chain; decoupling critical for noise immunity
IRQ (C1)Interrupt request outputOpen-drain signal notifying host of card detection, command completion, or error events
VEN (C3)Hard Power Down enableActive-low reset pin controlling system-level power state transitions (HPD entry/exit)
I2CADR0 / I2CADR1 (F1, E2)I²C address configurationHardware-selectable slave address bits; set to GND/VDD(PAD) to configure one of four I²C addresses
NFC_CLK_XTAL1 / XTAL2 (E4, F3)Crystal oscillator interfaceSupports external 13.56 MHz crystal for precise RF carrier generation and timing accuracy
VSS(PAD) (E1)Pad groundDedicated ground for I²C interface; must be connected to system ground plane with low-inductance path

Key Features

FeatureDesign Value
Integrated NCI 1.0 firmware stackEliminates host-side NFC protocol implementation; reduces Android/Linux integration effort to <5 API calls for basic card detection
Ultra-low-power polling loop150 μA average current enables multi-week battery life in Bluetooth LE/NFC combo devices
Autonomous wake-up capabilityResponds to RF field presence without host CPU active-critical for zero-power NFC trigger in smart locks
Dual-VBAT architectureSeparate VBAT1 (TXLDO input) and VBAT2 (system supply) paths prevent RF noise coupling into digital domain
On-chip RF level detectorEnables adaptive sensitivity tuning and collision avoidance during multi-tag polling without external components

Applications

Smart Remote ControlHome Gateway

Use Scenario: IR+BLE+NFC universal remote enabling tap-to-pair with TVs, soundbars, and streaming sticks.

IC Role / Device Role / Timing Role: NFC controller executing autonomous polling loop while host MCU sleeps; detects NFC tags embedded in accessories.

Use Value: Enables instant pairing without button presses or app setup-leveraging 150 μA polling current to sustain >6-month coin-cell operation.

Use Scenario: Wi-Fi 6 gateway with NFC-based secure onboarding for IoT sensors and smart plugs.

IC Role / Device Role / Timing Role: Acts as NFC Forum T4T reader to read credential data from certified onboarding tags during first-boot provisioning.

Use Value: Replaces manual SSID/password entry with one-tap setup-using integrated ISO/IEC 14443A/B support for interoperability with standard NFC tags.

Wearable Health MonitorIndustrial Asset Tag Reader

Use Scenario: Wrist-worn pulse oximeter with NFC for quick patient ID verification and medical record access.

IC Role / Device Role / Timing Role: Card emulator (T4T) presenting encrypted patient ID to hospital readers; powered by 3.0 V coin cell.

Use Value: Meets HIPAA-compliant contactless ID exchange using MIFARE DESFire encryption-enabled by on-chip secure EEPROM and Arm Cortex-M0 runtime protection.

Use Scenario: Handheld maintenance tool reading ISO/IEC 15693 asset tags on factory machinery.

IC Role / Device Role / Timing Role: ISO/IEC 15693 VCD reader scanning metal-mounted tags at up to 1 m distance using high-output TX stage.

Use Value: Achieves extended read range via 4.75 V TX supply capability and integrated RF front-end sensitivity-reducing operator scan time by 40% vs legacy readers.

Equivalent & Alternatives

The following parts are listed as comparable options for similar NFC controller applications.

Alternative PartTechnical DifferenceApplication DifferenceSelection Advice
PN7160B0HN/C11006Firmware v10.01.AE adds anti-tearing and ISO 15693 multi-tag collision fix; lacks standby mode support.Required where ISO 15693 tag reliability in dense-field environments is critical; not suitable for battery-powered standby use cases.Select PN7160B0HN/C11006 only if anti-tearing and multi-tag resolution are mandatory-and system design can accommodate absence of standby mode.
ST25DV04K-IERDynamic NFC tag IC (not controller); no embedded MCU, no polling loop, no host interface-only I²C EEPROM + RF interface.Used for passive NFC data storage (e.g., product authentication), not for active reader/emulation functions.Choose ST25DV04K-IER only for static NFC tag applications; PN7150B0UK/C11002Z is required for full bidirectional NFC controller functionality.

Compared with PN7160B0HN/C11006, PN7150B0UK/C11002Z offers verified standby mode support and lower polling current (150 μA vs undefined in C11006), making it superior for battery longevity; versus ST25DV04K-IER, it delivers complete NFC controller autonomy-eliminating host dependency for protocol execution and device discovery.

Availability

PN7150B0UK/C11002Z is available at Aetrix Electronics and suitable for wearable health monitors, smart home gateways, industrial handheld readers, and NFC-enabled remote controls requiring stable component supply and long-term lifecycle support.

Supply support for PN7150B0UK/C11002Z includes scheduled delivery planning, volume procurement assistance, BOM continuity management, traceable sourcing, and lifecycle availability coordination for OEM customers, industrial embedded developers, connected-device designers, and electronics production programs.

Manufacturer

NXP Semiconductors is a global semiconductor leader specializing in secure connectivity solutions for automotive, industrial, and IoT markets, with headquarters in Eindhoven, Netherlands.

PN7150B0UK/C11002Z belongs to NXP's PN71xx NFC controller family, designed specifically to accelerate NFC integration in resource-constrained, battery-powered devices running Linux or Android-emphasizing ultra-low power, firmware offload, and simplified hardware design.

FAQ

What is the firmware version shipped with PN7150B0UK/C11002Z?

The PN7150B0UK/C11002Z ships with firmware version 10.01.A0-the initial released version documented in Rev. 4.2 of the product data sheet. This firmware supports full NFC Forum compliance, polling loop operation, and all listed RF protocols (ISO/IEC 14443A/B, ISO/IEC 15693, MIFARE Classic, FeliCa), but does not include the anti-tearing mechanism or ISO 15693 multi-tag collision fix introduced in later versions like C11006. PN7150B0UK/C11002Z remains fully functional for standard NFC reader, card emulation, and P2P use cases.

Does PN7150B0UK/C11002Z support standby mode?

Yes, PN7150B0UK/C11002Z fully supports standby mode as defined in the official datasheet (Section 12.1.2.3). In standby, most internal blocks-including the Arm Cortex-M0 core-are unpowered while retaining wake-up capability via RF field detection, I²C activity, or internal timer. This mode achieves ≤20 μA current draw (Table 1), enabling extended battery life in always-listening applications. Note that later firmware versions such as C11006 explicitly disable standby mode, but PN7150B0UK/C11002Z's 10.01.A0 firmware retains full standby functionality.

What are the key differences between PN7150B0UK/C11002Z and PN7150B0HN/C11002?

PN7150B0UK/C11002Z uses a WLCSP42 package (2.88 mm × 2.80 mm), while PN7150B0HN/C11002 uses HVQFN40 (6 mm × 6 mm). Both share identical firmware (v10.01.A0), electrical specifications, and functional capabilities-including RF protocol support, I²C interface, and power states. The WLCSP variant targets ultra-compact designs like wearables and hearing aids, whereas HVQFN suits larger PCBs with more routing flexibility. PN7150B0UK/C11002Z is marked "Do not use for new designs. Planned for discontinuation" per Table 2, so long-term projects should evaluate PN7150B0HN/C11002 or newer alternatives.

Can PN7150B0UK/C11002Z operate from a 1.8 V host interface supply?

Yes, PN7150B0UK/C11002Z supports a 1.8 V host interface supply on VDD(PAD), with operational range of 1.65 V to 1.95 V per Table 1. This allows direct interfacing with 1.8 V logic-level microcontrollers or application processors without level-shifting circuitry. The I²C lines (I2CSCL, I2CSDA) and address pins (I2CADR0, I2CADR1) are referenced to VDD(PAD), ensuring reliable communication at 1.8 V while the RF section remains powered independently by VBAT (2.3–5.5 V). This dual-voltage capability simplifies power domain partitioning in mixed-signal designs.

What antenna matching components are required for PN7150B0UK/C11002Z?

PN7150B0UK/C11002Z requires an external matching network between its TX1/TX2 outputs and the NFC antenna, typically consisting of two series capacitors (e.g., 1.5 nF) and one shunt capacitor (e.g., 12 pF) per antenna port, as specified in NXP's Antenna and Tuning Design Guide ([7]). The exact values depend on antenna geometry, operating frequency (13.56 MHz), and target read range. No internal matching is provided-the IC's RF front-end is designed for direct connection to a discrete LC network, enabling optimization for small-form-factor antennas used in wearables. PN7150B0UK/C11002Z's integrated RF level detector allows closed-loop tuning during production calibration.

PN7150B0UK/C11002Z Specifications

Product attributes
Attribute value
Manufacturer:
NXP Semiconductors
Series:
-
Package/Case:
42-UFBGA, WLCSP
Packaging:
Tape & Reel (TR)
Product Status:
Obsolete
Type:
RFID Transponder
Frequency:
13.56MHz
Standards:
ISO 14443, ISO 25693, FeliCa, Mifare, NFC
Interface:
I2C
Voltage - Supply:
2.3V ~ 5.5V
Operating Temperature:
-30°C ~ 85°C
Grade:
-
Qualification:
-
Mounting Type:
Surface Mount
Supplier Device Package:
42-WLCSP (2.88x2.8)

PN7150B0UK/C11002Z FAQ

1.How can I place an order for PN7150B0UK/C11002Z through Aetrix?

Please submit a Request for Quotation (RFQ) for PN7150B0UK/C11002Z on Aetrix. Our sales agent will provide a competitive quotation and guide you through the order confirmation once you accept the terms.

2.Are the price and stock information for PN7150B0UK/C11002Z reliable?

The price and inventory of PN7150B0UK/C11002Z are updated periodically and may fluctuate due to market conditions. Stock and pricing data are typically refreshed every 24 hours. Quotation validity for PN7150B0UK/C11002Z is usually 5 days.

3.What payment methods are accepted for PN7150B0UK/C11002Z?

We accept Wire Transfer, PayPal, Credit Card, Western Union, MoneyGram, and Escrow for PN7150B0UK/C11002Z transactions.

Note: Certain payment methods may incur a processing fee.

4.How is shipping managed for PN7150B0UK/C11002Z?

PN7150B0UK/C11002Z orders can be shipped via leading logistics carriers, including DHL, UPS, FedEx, TNT, or Registered Mail.

Once your PN7150B0UK/C11002Z order is processed, you will receive an email with the shipment details and tracking number.

Note: Tracking information may take up to 24 hours to appear. Express delivery typically takes 3–5 business days.

5.How can I obtain technical support or documentation for PN7150B0UK/C11002Z?

For technical support, including PN7150B0UK/C11002Z datasheets, pinout diagrams, or application guidance, please contact our engineering support team. They can provide detailed documentation and assistance for your PN7150B0UK/C11002Z requirements.

6.How does Aetrix verify that PN7150B0UK/C11002Z is sourced from the original manufacturer or authorized distributors?

All PN7150B0UK/C11002Z products on Aetrix are procured from qualified distributors and authorized channels. Our dedicated quality assurance team conducts strict verification, including traceability checks and, if necessary, third-party testing. This ensures that PN7150B0UK/C11002Z meets industry standards.

7.What is the process for return or replacement of PN7150B0UK/C11002Z?

All PN7150B0UK/C11002Z units undergo pre-shipment inspection (PSI). If there is an issue with PN7150B0UK/C11002Z, returns or replacements are accepted under the following conditions:

1.Quantity discrepancies, incorrect items, or visible external defects (such as breakage or corrosion), acknowledged by Aetrix.

2.The issue is reported within 90 days of delivery.

3.The PN7150B0UK/C11002Z part is unused and in its original packaging.

Return procedure for PN7150B0UK/C11002Z:

1.Submit a request within 90 days.

2.Obtain a Return Material Authorization (RMA) from Aetrix.

PN7150B0UK/C11002Z Tags

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