SK hynix

H5ANAG4NBJR-UHC - 4Gb DDR4 SDRAM 1.6GHz FBGA-96 | SK hynix

MPN: H5ANAG4NBJR-UHC ✓ Active
In Stock Ships in 1-3 business days
1.14 V to 1.26 V (nominal 1.2 V) Vdss FBGA-96 (PBGA96) Package 1.6 GHz Speed DDR4 SDRAM Memory
From $8.09 USD / Unit
MOQ: 1 |
Price updated: 2026-09-04
Volume Pricing
Qty Unit Price Extended
1 $9.74 $9.74
10 $9.3 $93.00
100 $8.9 $890.00
500 $8.5 $4,250.00
1,000 $8.09 $8,090.00
ℹ️ All prices are in USD

Drop-in alternatives for H5ANAG4NBJR-UHC — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool — Select alternative parts for side-by-side comparison:

H5ANAG4NBJR-RDC

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA-96 (PBGA96)
DDR4 SDRAM · 16 Gb (2 GB) · 4G x 4 · 1.2 V · 2666 MT/s (speed bin NBJR, [DATA_NEEDED: exact MT/s confirmation from datasheet]) · 78-ball FBGA · Surface Mount · 16n (bank group architecture)

✓ In Stock

$5.75 / Unit

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H5ANAG4NBJR-PBC

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA-96 (PBGA96)
SK hynix · H5ANAG4NBJR-xxC 16Gb DDR4 SDRAM · DDR4 SDRAM · 16 Gbit · TFBGA · Rectangular · 96 · DDR4 parallel interface

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Contact for price

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H5AN4G6NBJR-UHC

✅ Drop-In
SK hynix
📦 FBGA-96 (PBGA96)
DDR4 SDRAM · 4 Gbit · 256M x 16 · 1.6 GHz · 1.14 V to 1.26 V · CMOS · -40C to +95C · FBGA-96 (PBGA-96)

✓ In Stock

$8.09 / Unit

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H5ANAG6NBJR-UHC

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA-96 (PBGA96)
DDR4 SDRAM · 4 Gb · 256M x 16 · DDR4 (CMOS) · PBGA96 / FBGA-96 (TFBGA) · 13 mm length (per JESD-30 R-PBGA-B96) · Multi Bank, Page Burst · -40C to +95C

✓ In Stock

$8.09 / Unit

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H5ANAG8NBJR-UHC

✅ Drop-In ⚠️ 参数待验证
📦 FBGA-96 (PBGA96)
8Gbit density vs 4Gbit (+100% capacity), same x16 organization and FBGA-96 footprint, different row/column addressing

📋 Reference alternative (not in catalog)

H5AN4G8NBJR-UHC

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA-96 (PBGA96)
DDR4 SDRAM · 4 Gbit · 512M x 8 · 2400 Mbps (PC2400) · 1.2 V · DDR4 (JEDEC) · TFBGA-78 (11 x 7.5 mm) · Surface Mount

✓ In Stock

$3.18 / Unit

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H5ANAG4NBJR-UHC Maximum Ratings & Electrical Characteristics

Memory Type DDR4 SDRAM
Density 4 Gbit
Organization 256M x16
Supply Voltage (VDD) 1.14 V to 1.26 V (nominal 1.2 V)
Clock / Data Rate 1.6 GHz
Package FBGA-96 (PBGA96)
Operating Temperature -40C to +95C
Interface CMOS, DDR4 (double data rate)
Data Mask (DM) Yes
Asynchronous Reset Yes
On-Die Termination (ODT) Dynamic ODT
ZQ Calibration Yes
Write Leveling Yes
CRC Function Yes
Auto Self-Refresh Yes
Mounting Type Surface Mount (BGA)
RoHS Status Compliant

H5ANAG4NBJR-UHC fbga-96 (pbga96) Pin Configuration Guide

Complete pinout information for H5ANAG4NBJR-UHC (fbga-96 (pbga96) package). This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.

fbga-96 (pbga96) package pinout diagram for H5ANAG4NBJR-UHC

No detailed pinout data available for H5ANAG4NBJR-UHC.

Refer to the datasheet for full pin configuration.

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for H5ANAG4NBJR-UHC 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

H5ANAG4NBJR-UHC is suitable for 6 applications: Industrial Controllers and Automation, FPGA Processing Cards, Embedded Computing Modules, Networking and Communication Equipment, Data Logging and Firmware Boot Systems, Test and Measurement Instrumentation.

🏭

Industrial Controllers and Automation

The H5ANAG4NBJR-UHC's -40C to +95C rating directly matches industrial control environments where cabinets and motor drives see temperature extremes. Its 4Gbit x16 organization provides 512MB of working memory for PLC logic, motion profiles, and HMI buffers without requiring a 64-bit memory bus, simplifying PCB routing on dense controller boards. Features such as asynchronous reset enable deterministic recovery after brown-out events, while auto self-refresh preserves process data during power-saving states. Placing the FBGA-96 close to an SoC or FPGA memory controller with fly-by addressing and dynamic ODT yields a robust soldered-down memory subsystem that outperforms socketed alternatives in vibration-prone factory settings.

🔧

FPGA Processing Cards

FPGA-based data acquisition, image processing, and protocol conversion cards frequently pair an Arria 10-class device with one or two x16 DDR4 components. The H5ANAG4NBJR-UHC's 1.6 GHz-class interface matches the hardened DDR4 memory controllers in these FPGAs, and its x16 data width allows two devices to form a 32-bit bus for higher aggregate bandwidth. Write leveling and ZQ calibration features are essential for the fly-by address topology these cards use, tightening timing margins at the DDR4-1600 operating point. The soldered FBGA-96 footprint withstands PCIe card handling better than SODIMM sockets, and the 1.2V rail integrates cleanly with the card's low-voltage power tree.

🖥️

Embedded Computing Modules

System-on-module (SoM) and computer-on-module designs use soldered x16 DDR4 for reliability and height constraints. The H5ANAG4NBJR-UHC offers 512MB in a compact 96-ball FBGA that fits under or beside the processor on a sub-100mm module, and its -40C to +95C range supports conformally coated modules deployed outdoors or in vehicles. The data mask function allows byte-granular writes from the CPU caches without read-modify-write overhead, and CRC improves link reliability when modules operate in electrically noisy enclosures. Its 1.14V to 1.26V supply range tolerates rail droop from shared module regulators, and power estimators can use the DDR4 IDD tables for thermal budgeting inside sealed housings.

🌐

Networking and Communication Equipment

Switch, router, and gateway line cards use DDR4 for packet buffers, flow tables, and management-plane memory. The H5ANAG4NBJR-UHC supplies 4Gbit per device, and its CRC and write-leveling features align with the long, lightly loaded trace topologies typical of telecom boards. Dynamic ODT lets the controller retune termination as bus loading changes between training and runtime, protecting eye margins across the -40C to +95C telecom temperature envelope. The x16 width is efficient for 16- or 32-bit buffer architectures common in embedded network processors, and the asynchronous reset pin supports the watchdog-driven recovery schemes required for carrier-grade uptime targets.

🧩

Data Logging and Firmware Boot Systems

Distributor listings for this DDR4 family cite embedded logging and firmware boot as core use cases. The H5ANAG4NBJR-UHC's auto self-refresh maintains logged data during standby with microamp-class retention current, making it suitable as high-speed scratch memory ahead of nonvolatile storage in data recorders. Its 512MB capacity holds vibration, telemetry, or diagnostic logs collected at kHz sample rates, and the asynchronous reset input allows a supervisor IC to deterministically recover the memory subsystem after a fault. The FBGA-96 package's low profile suits recorders and gateway devices with constrained enclosure heights, and the 1.2V rail keeps standby power budgets low in battery-backed designs.

🔧

Test and Measurement Instrumentation

Oscilloscope, logic analyzer, and data-acquisition front ends require deep capture memory with guaranteed timing across the full operating range. The H5ANAG4NBJR-UHC's 1.6 GHz-class interface supports the sustained streaming rates these instruments need when x16 devices are ganged into 32- or 64-bit capture banks, delivering several GB/s of aggregate write bandwidth. Write leveling and ZQ calibration maintain timing closure on the long, impedance-controlled traces typical of instrument mainboards, while the -40C to +95C rating covers bench-to-field deployment. The soldered FBGA-96 mounting eliminates socket contact resistance that would otherwise degrade high-speed DQS strobe integrity in repeated thermal-cycling service.

What is the H5ANAG4NBJR-UHC and what are its key specifications?
The H5ANAG4NBJR-UHC is a SK hynix 4Gbit DDR4 SDRAM organized as 256M x16. It operates from a 1.14V to 1.26V supply, supports data rates up to 1.6 GHz, and comes in a 96-ball FBGA (PBGA96) package rated from -40C to +95C. Per the manufacturer and distributor listings, it also supports auto self-refresh, data mask, asynchronous reset, dynamic ODT, ZQ calibration, write leveling, and CRC functions, making it suitable for embedded and industrial memory designs.
Where can I buy H5ANAG4NBJR-UHC and how much does it cost?
The H5ANAG4NBJR-UHC can be sourced from distributors such as LCSC, Ampheo, JAK Electronics, and Win Source, with pricing visible on Octopart across 11 distributors. As of 2026-09-05, LCSC listed the part from approximately $8.09 to $9.74 per unit depending on quantity, though stock status has varied between in-stock and out-of-stock. XAIPART offers RFQ-based sourcing with tier pricing from 1 to 1000 pieces; request a quote for current lead time and stock confirmation.
Is H5ANAG4NBJR-UHC in stock, and what is the typical lead time?
Stock status for the H5ANAG4NBJR-UHC fluctuates. LCSC showed the part out of stock in one listing and in stock in another, with prices from $8.09 to $9.74 as of 2026-09-05. JAK Electronics states it can dispatch in 24 hours when stock is available. For DDR4 SDRAM parts, when authorized stock runs dry, lead times can extend to several weeks via allocation. Contact XAIPART for a real-time stock and lead-time check before scheduling production.
What is the difference between H5ANAG4NBJR-UHC and H5ANAG4NBJR-RDC?
Both parts are SK hynix 4Gbit DDR4 SDRAMs in the same FBGA-96 package and pinout; the suffix letters encode speed grade and operating temperature range. The -UHC grade supports operation up to +95C with its associated speed bin, while -RDC denotes a different grade code with its own speed/temperature combination. Both are electrically drop-in compatible on the same PCB footprint, but you must verify that your memory controller timing (CAS latency, tCK) supports the target grade before substituting. Consult the SK hynix DDR4 datasheet ordering-information table for exact grade definitions.
What is the best drop-in replacement for H5ANAG4NBJR-UHC?
The best drop-in replacements are same-family SK hynix parts sharing the 4Gbit x16 FBGA-96 footprint: H5ANAG4NBJR-RDC and H5ANAG4NBJR-PBC are pin-to-pin compatible with different speed/temperature grades, and H5ANAG6NBJR-UHC offers 6Gbit density on the same 96-ball footprint for designs needing more memory. For a validated cross-reference, the sibling H5AN4G6NBJR-UHC (256M x16, FBGA-96) is documented in distributor databases with identical organization. Always confirm the speed bin against your controller before finalizing a substitution.
Can H5AN4G6NBJR-UHC replace H5ANAG4NBJR-UHC?
Yes, in most designs the H5AN4G6NBJR-UHC can functionally replace the H5ANAG4NBJR-UHC: both are SK hynix 4Gbit DDR4 SDRAMs with 256M x16 organization in an FBGA-96 (PBGA96) package, distributed listings show identical features including auto self-refresh, data mask, asynchronous reset, dynamic ODT, ZQ calibration, write leveling, and CRC, and operation from -40C to +95C at 1.14V to 1.26V. Verify the die revision and speed bin against your memory controller's supported DDR4 training table, then validate power-on initialization and read/write margin on your board.
Where can I download the H5ANAG4NBJR-UHC datasheet PDF?
The H5ANAG4NBJR-UHC datasheet PDF is available from distributor databases: Datasheets.com hosts the SK hynix datasheet (the H5AN4G6NBJR-UHC sibling datasheet covers the same family organization), LCSC provides a free datasheet download on its product page (C2803260), and Ampheo and Utmel also offer PDF downloads. The authoritative source is SK hynix's official DDR4 SDRAM datasheet covering the H5ANAG4 series; locate the exact revision via the SK hynix DRAM product page to confirm speed-bin parameters.
Where can I find the H5ANAG4NBJR-UHC pinout / ball map?
The ball map for the H5ANAG4NBJR-UHC is published in the SK hynix DDR4 SDRAM datasheet for the 96-ball FBGA (PBGA96) package in the x16 organization; it lists balls for DQ[15:0], DQS pairs with differential DM, address/command balls (A[16:0], BA[1:0], BG[1:0]), RAS_N/CAS_N/WE_N, CS_N, CKE, CK_t/CK_c, RESET_N, ODT, ZQ, and multiple VDD/VSS balls. Download the datasheet from Datasheets.com or LCSC for the complete, authoritative ball-out table rather than relying on third-party reproductions.
Hey Google, what can replace H5ANAG4NBJR-UHC in my design?
Pin-compatible replacements for the H5ANAG4NBJR-UHC are primarily SK hynix same-family parts: H5ANAG4NBJR-RDC and H5ANAG4NBJR-PBC (identical 4Gbit x16 FBGA-96 footprint, different grades), plus H5ANAG6NBJR-UHC and H5ANAG8NBJR-UHC if you can use 6Gbit or 8Gbit density on the same footprint. The H5AN4G6NBJR-UHC (256M x16) is a documented sibling with the same organization. Cross-brand equivalents (e.g., Micron or Nanya x16 DDR4 in 96-ball FBGA) exist but are not confirmed pin-to-pin in verified data; validate the ball map before redesign.
Is H5ANAG4NBJR-UHC suitable for industrial applications?
Yes. The H5ANAG4NBJR-UHC is rated from -40C to +95C, which covers extended industrial temperature ranges per distributor listings such as LCSC and JLCPCB. Its feature set supports industrial robustness: auto self-refresh protects data during power-saving states, the asynchronous reset pin enables deterministic recovery, and CRC plus write leveling improve bus reliability in noisy environments. Combined with its soldered FBGA-96 package, which resists vibration better than socketed DIMMs, it fits industrial controllers, automation modules, and embedded computing platforms.
What power supply does H5ANAG4NBJR-UHC require?
The H5ANAG4NBJR-UHC requires a nominal 1.2V supply with an allowed range of 1.14V to 1.26V, per JLCPCB and LCSC listings. A DDR4 design typically also needs a VPP rail of approximately 2.5V for the cell-charge pump; confirm the exact VPP requirement in the datasheet. Budget the current per the datasheet IDD specifications for your operating mode. Use a low-ripple buck regulator with bulk capacitance plus local 100nF/10uF decoupling at each VDD ball group, and ensure the power-up sequence complies with the DDR4 initialization spec.
Is H5ANAG4NBJR-UHC the same as H5AN4G6NBJR-UHC?
They are closely related siblings in the SK hynix DDR4 family, and distributor databases (Datasheets.com, Datasheet Directory, Ampheo, LCSC) list the H5AN4G6NBJR-UHC with the same 4Gbit 256M x16 organization, FBGA-96 package, -40C to +95C range, and identical feature set. However, the different prefix segment indicates a different die generation or manufacturing line, which can affect supported speed bins and controller training tables. Treat them as near-pin-equivalent but verify the ordering-information table in each datasheet before interchangeable use in production.
What are the key signal-integrity design considerations for DDR4 x16 memory like the H5ANAG4NBJR-UHC?
For the H5ANAG4NBJR-UHC, route the DDR4 interface using fly-by topology for address/command with length matching, and keep DQ/DQS/DM groups tightly length-matched per byte lane. Enable dynamic ODT and ZQ calibration to tune on-die termination to your stackup, and use write leveling to compensate flight-time skew at the controller. The 96-ball FBGA benefits from via-in-pad or short escape routing on a 4+ layer board with solid reference planes. Run controller memory training at temperature extremes (-40C and +85C) to confirm margin across the rated range.
Is H5ANAG4NBJR-UHC RoHS compliant and lead-free?
Yes. The JLCPCB parts listing for this H5ANAG4 DDR4 family explicitly marks the part as ROHS compliant, and SK hynix FBGA-packaged DRAM is supplied lead-free. REACH, halogen-free, and conflict-minerals statuses should be confirmed from the official SK hynix product compliance documentation for the exact date code, as compliance statements are tied to specific manufacturing lots. The FBGA-96 package uses standard lead-free solder-ball metallurgy compatible with conventional reflow profiles up to approximately 245C to 260C peak.
H5ANAG4NBJR-UHC vs H5ANAG6NBJR-UHC - which should I choose?
Choose the H5ANAG4NBJR-UHC when 4Gbit (512MB at x16) meets your capacity requirement and you want the lowest cost, as listed pricing for the family starts around $8 to $10 per unit as of 2026-09-05. Choose the H5ANAG6NBJR-UHC when you need 6Gbit on the same FBGA-96 footprint, since both share the same package and pinout within the SK hynix DDR4 BJ (x16) series, enabling a footprint-compatible capacity upgrade. Note that higher-density dies may have different row/column addressing and supported speed bins, so confirm controller compatibility with the specific density before populating.

Engineering reference data for H5ANAG4NBJR-UHC — comparison, design guidance, and compliance information.

Selection Guide

Choose the H5ANAG4NBJR-UHC when you need 4Gbit (256M x16) DDR4 in a soldered-down FBGA-96 for an extended-temperature (-40C to +95C) embedded, industrial, or FPGA-based design running at DDR4-1600-class rates. Choose H5ANAG4NBJR-RDC or -PBC only if your controller supports their specific speed/temperature grades - all three share the same footprint, enabling grade swap without PCB change. Choose H5ANAG6NBJR-UHC or H5ANAG8NBJR-UHC when capacity headroom is needed and controller addressing supports higher-density dies on the same 96-ball footprint. The H5AN4G6NBJR-UHC serves as a near-identical sibling with the same organization and package for supply-chain flexibility, but validate die generation against your controller training table. Cross-brand equivalents from Micron or Nanya may exist parametrically but are not pin-verified in available data - require ball-map validation before a cross-brand redesign.

Comparison with Alternatives

Parameter This Product H5ANAG4NBJR-RDC H5ANAG4NBJR-PBC H5AN4G6NBJR-UHC H5ANAG6NBJR-UHC H5ANAG8NBJR-UHC
Package FBGA-96 (PBGA96) FBGA-96 - same FBGA-96 - same FBGA-96 - same FBGA-96 - same FBGA-96 - same
Brand SK hynix SK hynix SK hynix SK hynix SK hynix SK hynix
Density 4 Gbit 4 Gbit 4 Gbit 4 Gbit 6 Gbit 8 Gbit
Organization 256M x16 256M x16 256M x16 256M x16 x16 (verify per datasheet) x16 (verify per datasheet)
Supply Voltage 1.14 V to 1.26 V 1.14 V to 1.26 V 1.14 V to 1.26 V 1.14 V to 1.26 V 1.14 V to 1.26 V 1.14 V to 1.26 V
Operating Temperature -40C to +95C [DATA_NEEDED] [DATA_NEEDED] -40C to +95C [DATA_NEEDED] [DATA_NEEDED]
Speed Grade / Data Rate 1.6 GHz class (-UHC grade) [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]
Key Features Auto self-refresh, DM, async reset, dynamic ODT, ZQ cal, write leveling, CRC Same DDR4 feature set Same DDR4 feature set Same feature set (per LCSC listing) Same DDR4 feature set Same DDR4 feature set

Key Differentiators

  • Extended industrial temperature range (vs H5ANAG4NBJR-PBC)
  • Cost-efficient 4Gbit capacity point (vs H5ANAG8NBJR-UHC)
  • Documented sibling with verified distributor data (vs H5AN4G6NBJR-UHC)

Design Notes

Route the DDR4 x16 interface with fly-by topology for address/command/control and point-to-point for DQ/DQS/DM. Length-match each DQS pair to its DQ byte lane within the tolerance recommended in the Intel/Arria 10 memory design guidelines, and match CK to address/command per the controller's calibration budget. Use solid, unbroken reference planes beneath all DDR4 traces; on a 4-layer board place VSS as the reference for DQ routing. The FBGA-96 escape pattern requires via-in-pad or dog-bone escapes with short stubs to preserve signal integrity at DDR4-1600-class rates.

Supply the H5ANAG4NBJR-UHC from a 1.2V rail regulated within 1.14V to 1.26V. Estimated: at DDR4-1600 with moderate activity, a 4Gbit x16 device draws on the order of a few hundred milliamperes average; use the datasheet IDD tables for your exact read/write mix to size the regulator. Provide bulk capacitance (e.g., 47uF to 100uF per device group) plus 0.1uF/10uF ceramics at VDD ball groups. Confirm whether VPP (approx. 2.5V) is required per the datasheet pin list and decouple it separately. Verify power-up ramp-rate compliance for correct DDR4 initialization.

Enable ZQ calibration (drive a precision RZQ resistor, typically 240 ohm, to ZQ ball) and configure dynamic ODT in the controller so termination adapts between write and read phases; this recovers eye margin lost to stubs and plane discontinuities. Run memory training at both -40C and +85C board temperatures to confirm read/write margins across the full -40C to +95C range, since DDR4 timing parameters shift with temperature and ODT accuracy depends on the calibration. Keep DQS strobes as the timing reference per byte lane and use write leveling to remove flight-time skew on the fly-by address bus.

Compliance Information

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

JLCPCB listing explicitly marks the part as ROHS. REACH, halogen-free, and conflict-minerals status not stated in provided data.

Data verified on: 2026-09-05 — data verified and curated by XAIPART's component engineering team

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Related Components & Terms

SK hynix H5ANAG4NBJR-UHC H5AN4G6NBJR-UHC H5ANAG6NBJR-UHC H5ANAG8NBJR-UHC DDR4 SDRAM DRAM double data rate memory FBGA-96 PBGA96 surface mount BGA package family RoHS JEDEC DDR4 interface on-die termination (ODT) ZQ calibration write leveling auto self-refresh CRC industrial automation Intel Arria 10 FPGA memory controller training 256M x16 organization
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