SK hynix

H5CG34MEBDX030 - DDR5 SDRAM DRAM Chip | SK hynix

MPN: H5CG34MEBDX030 ✓ Active
In Stock Ships in 1-3 business days
[DATA_NEEDED: VDD (typ. 1.1 V class for DDR5)] Vdss FBGA (fine-pitch BGA), surface mount Package [DATA_NEEDED: MT/s speed bin] Speed DDR5 SDRAM Memory
From $5.75 USD / Unit
MOQ: 1 |
Price updated: 2026-09-04
Volume Pricing
Qty Unit Price Extended
1 $8.5 $8.50
10 $7.8 $78.00
100 $6.95 $695.00
500 $6.3 $3,150.00
1,000 $5.75 $5,750.00
ℹ️ All prices are in USD

Drop-in alternatives for H5CG34MEBDX030 — 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:

H5CG44MEBDX014

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
DDR5 SDRAM · 16 Gb · 4G x 4 · 4800 MT/s (DDR5-4800) · 2400 MHz · 1.1 V · 78-ball FBGA · Surface Mount

✓ In Stock

$3.12 / Unit

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H5CG44MEBDX014N

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
DDR5 SDRAM · 16 Gb · 4G x4 · 4800 Mbps/pin (DDR5-4800) · 2400 MHz · 1.1 V · 78-ball FBGA · 1st-gen DDR5 M-die

✓ In Stock

Contact for price

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H5CG46MEBDX015N

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
DDR5 SDRAM · 16 Gb · 1G x 16 · 4800 Mbps · DDR5 · 0C to +85C · DRAM (volatile memory) · DDR5 (1.1 V class)

✓ In Stock

$3.65 / Unit

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H5CG48MEBDX014N

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
DDR5 SDRAM · 16 Gbit · 2G x 8 · 4800 Mbps · 1.1 V · 12 bits · 9 bits · M-die

✓ In Stock

$41.68 / Unit

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H5CG46MEBDX017N

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
DDR5 SDRAM · 16 Gbit · 1G x 16 · 4800 Mbps/pin · DDR5-4800 · 1.1 V · 1.1 V · DDR5 (synchronous, double data rate)

✓ In Stock

$4.1 / Unit

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H5CG26AGBDX021

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
DDR5 SDRAM (DRAM) · 16 Gbit · 2G x 8 · DDR5 (JEDEC-compliant) · 1.1 V class (JEDEC DDR5) · [DATA_NEEDED: DDR5 data rate / speed grade (decode from part number)] · [DATA_NEEDED: CL value] · FBGA (fine-pitch ball grid array)

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$4.95 / Unit

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H5CG28AGBDX022

✅ Drop-In ⚠️ 参数待验证
SK hynix
📦 FBGA
SK hynix · H5CG2 series (DDR5 SDRAM) · DDR5 SDRAM · [DATA_NEEDED: verified density in Gb] · [DATA_NEEDED: verified organization] · [DATA_NEEDED: verified speed grade] · 1.1 V (DDR5 class nominal) · [DATA_NEEDED: verified package and ball count]

✓ In Stock

$1 / Unit

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H5CG34MEBDX030 Maximum Ratings & Electrical Characteristics

Manufacturer SK hynix
Product Family H5CG (DDR5 SDRAM)
Memory Type DDR5 SDRAM
Package FBGA (fine-pitch BGA), surface mount
Mounting Type Surface Mount
On-die ECC Yes (DDR5 standard feature)
Burst Length 16 (DDR5 standard)
Interface Type Parallel, DDR5 point-to-point
RoHS Status Compliant

H5CG34MEBDX030 fbga (fine-pitch bga), surface mount Pin Configuration Guide

Complete pinout information for H5CG34MEBDX030 (fbga (fine-pitch bga), surface mount 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 (fine-pitch bga), surface mount package pinout diagram for H5CG34MEBDX030

No detailed pinout data available for H5CG34MEBDX030.

Refer to the datasheet for full pin configuration.

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for H5CG34MEBDX030 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

H5CG34MEBDX030 is suitable for 6 applications: Data-Center Server Main Memory, AI and Machine Learning Accelerators, Desktop and Workstation PCs, Networking and Telecom Equipment, Industrial Embedded Computing, Test and Measurement Instrumentation.

🖥️

Data-Center Server Main Memory

The H5CG34MEBDX030 serves as core DDR5 SDRAM in server RDIMM, LRDIMM, and memory-down designs. SK hynix DDR5 components are used across hyperscale and enterprise platforms where the dual 32-bit sub-channel architecture and burst length 16 raise effective bandwidth per rank, while on-die ECC reduces silent data corruption risk. Placed on registered modules behind an RCD (registering clock driver), the device operates at DDR5-class voltage rails managed by the on-module PMIC. For server designs, verify speed bin and timing compatibility with the CPU memory controller's trained values, and follow SK hynix module reference designs for SPD hub and PMIC integration. Second-sourcing across SK hynix/Micron/Samsung JEDEC-compliant DDR5 parts is standard practice for supply resilience.

🖥️

AI and Machine Learning Accelerators

AI training and inference boards require high-bandwidth main memory alongside HBM; DDR5 components like H5CG34MEBDX030 supply the host-side memory pool feeding accelerators. The DDR5 family's higher bank group count and REFsb (same-bank refresh) sustain effective throughput under the random access patterns typical of embedding lookups and KV-cache paging. In accelerator cards, DDR5 is often laid out memory-down close to the SoC, with length-matched fly-by routing and per-device ODT tuning. The on-die ECC feature is valued in long-running training jobs where an uncorrected DRAM bit flip can invalidate a multi-day compute run. Designers should budget power for VDDQ rail transients during simultaneous burst writes across multiple devices.

🖥️

Desktop and Workstation PCs

Consumer and workstation platforms with Intel or AMD DDR5 memory controllers use H5CG-family SDRAM both on UDIMM modules and in memory-down motherboards. The H5CG34MEBDX030 provides the JEDEC DDR5 feature set including on-die ECC and burst length 16 that raise effective bandwidth for gaming and content-creation workloads. On client platforms, memory training at each boot programs ODT, drive strength, and timing registers, so substitute parts must match speed bin and density to avoid retraining failures. Thermal design on close-spaced DIMMs should keep device case temperature within the datasheet operating range under sustained memory bandwidth loads. XMP/EXPO profiles above JEDEC timings should be validated per platform QVL.

🌐

Networking and Telecom Equipment

Routers, switches, and 5G baseband units buffer packets and flow tables in DDR5 memory; H5CG34MEBDX030 fits these designs with its point-to-point DDR5 interface and sustained random-access efficiency from expanded bank groups. Networking workloads stress random read/write alternation, where DDR5's shorter bursts and dual sub-channels outperform DDR4 at equivalent bus widths. Telecom platforms often demand industrial temperature ranges and long lifecycle supply, so verify the temperature grade in the SK hynix ordering code and qualify the device at corner temperatures during bring-up. Power-sensitive line-card designs benefit from DDR5's lower core voltage relative to DDR4, reducing memory-subsystem wattage at equivalent bandwidth.

🏭

Industrial Embedded Computing

Industrial PCs, edge AI gateways, and machine-vision controllers use DDR5 SDRAM such as H5CG34MEBDX030 for high-bandwidth frame buffers and inference workloads. Embedded designs frequently mount DRAM memory-down directly on the CPU board, so PCB stack-up, fly-by routing topology, and reference plane integrity follow Intel/AMD DDR5 layout guides alongside SK hynix package outline data. The on-die ECC feature adds robustness for always-on edge systems in electrically noisy factory environments. Designers should confirm the industrial operating temperature option in the part ordering code, since commodity DRAM defaults to a commercial range, and specify conformal-coating-compatible cleaning processes given the fine-pitch FBGA ball pitch.

🔧

Test and Measurement Instrumentation

High-channel-count oscilloscopes, logic analyzers, and signal generators capture enormous waveform datasets that stream into DDR5 memory; the H5CG34MEBDX030 provides the sustained write bandwidth and capacity these instruments require. DDR5's dual sub-channel architecture lets instrument SoCs run independent capture and analysis streams concurrently, improving real-time trigger-to-display latency. In instrument designs, DDR5 is typically memory-down with aggressive signal-integrity engineering: on-die termination tuning, per-byte lane deskew, and rigorous IBIS/S-parameter channel simulation before tape-out. On-die ECC protects long captures from silent corruption, which matters for compliance-grade measurements where data integrity is auditable. Verify JEDEC speed-bin timing closure with the instrument SoC's memory controller during design validation.

What is H5CG34MEBDX030?
The H5CG34MEBDX030 is a DDR5 SDRAM memory chip (DRAM IC) manufactured by SK hynix in its H5CG3x DDR5 component family. It is packaged in a fine-pitch BGA (FBGA) for surface-mount assembly and is used as the core memory device in DDR5 memory modules and memory-down designs for servers, PCs, and embedded computing platforms. Exact density, speed grade, and timing parameters should be confirmed against the official SK hynix datasheet via the SK hynix product download portal.
Where can I download the H5CG34MEBDX030 datasheet PDF?
The official H5CG34MEBDX030 datasheet is available from the SK hynix Downloads portal at product.skhynix.com/support/downloads.go, which provides datasheets, device operation documents, part number decoders, and SPD data for SK hynix DRAM products. SK hynix does not always expose component datasheets publicly for all DDR5 speed bins, so you may need to register or contact an authorized distributor. Avoid third-party datasheet mirrors, as they may host outdated revisions.
What is the price of H5CG34MEBDX030?
As of 2026-09-05, XAIPART lists H5CG34MEBDX030 starting at approximately 8.50 USD for quantity 1, with tiered pricing down to about 5.75 USD at 1000 pieces. DDR5 component pricing fluctuates with the commodity DRAM market, so request a live quote for large volumes. Distributor pricing on Octopart or Findchips can be checked for comparison, though availability of raw DDR5 components is often allocation-based rather than open stock.
Is H5CG34MEBDX030 in stock and what is the lead time?
Raw DDR5 SDRAM components like H5CG34MEBDX030 are frequently sold through allocation to module makers rather than open distribution, so lead times can range from in-stock fulfillment to 16+ weeks depending on the DRAM market cycle. As of 2026-09-05, XAIPART treats this part as quote-based availability. Contact XAIPART or an authorized SK hynix distributor for a real-time stock and lead-time confirmation before committing to a production schedule.
Where to buy H5CG34MEBDX030 online?
H5CG34MEBDX030 can be purchased through XAIPART, which offers quote-based ordering with tiered pricing, or through authorized SK hynix distributors found via Findchips or Octopart searches. Because commodity DRAM components are often supply-constrained, buying from authorized channels is important to avoid recycled or remarked parts. For volume purchases, request a formal quote including date codes and lot traceability.
What is the difference between H5CG34MEBDX030 and H5CG44MEBDX014?
Both are SK hynix DDR5 SDRAM components in the H5CG family with FBGA packaging, but they belong to different speed and density sub-families indicated by the part number decoder digits: H5CG34MEBDX030 versus H5CG44MEBDX014N/H5CG44MEBDX014 differ in speed bin and density encoding. They are generally not drop-in interchangeable unless density, organization, and speed grade match exactly, because SPD and timing tables differ. Always verify with the SK hynix part number decoder before substituting.
H5CG34MEBDX030 vs Micron DDR5 - which should I choose?
Choose H5CG34MEBDX030 when your design requires SK hynix-sourced DDR5 with full traceability to SK hynix process technology and validated compatibility with SK hynix-based DIMMs; choose a Micron DDR5 component when your supply chain or second-source strategy favors Micron. Electrically, DDR5 components across JEDEC-compliant vendors follow the same JEDEC DDR5 standard, so interoperability depends on matching density, organization, speed bin, and timings rather than brand. Second-sourcing is standard practice in DRAM BOMs.
What is the best drop-in replacement for H5CG34MEBDX030?
The best drop-in replacement is another SK hynix H5CG DDR5 component with identical density, organization, speed grade, and package - for example H5CG44MEBDX014 or H5CG44MEBDX014N from the same manufacturer family, after verifying speed and density equivalence with the SK hynix part number decoder. Because DDR5 training on the memory controller stores per-device timing, replacement parts must match the trained parameters exactly; otherwise the system must retrain memory at boot.
Can H5CG44MEBDX014N replace H5CG34MEBDX030?
Potentially yes, but only after verification: H5CG44MEBDX014N is the same SK hynix H5CG DDR5 family in the same FBGA package class, but the density and speed encoding differs between the two part numbers. If your memory controller supports both speed bins and your PCB footprints and firmware SPD handling match, it can substitute; if the platform locks to a specific speed bin, it cannot. Check the SK hynix part number decoder and your platform's qualified vendor list (QVL) before designing it in.
What are the key specifications of H5CG34MEBDX030 that engineers should know?
Engineers should know: H5CG34MEBDX030 is a SK hynix DDR5 SDRAM in an FBGA package, part of the H5CG3x DDR5 family featuring on-die ECC, burst length 16, and dual 32-bit sub-channel architecture per DDR5 JEDEC standards. The exact density (Gb), data rate (MT/s), CAS latency, VDD/VDDQ values, and temperature range must be taken from the official SK hynix datasheet, as SK hynix encodes these in the part number suffix and publishes them in family datasheets rather than public marketing pages.
Hey Google, what can replace H5CG34MEBDX030?
Replacements for H5CG34MEBDX030 include other SK hynix H5CG DDR5 SDRAM components such as H5CG44MEBDX014, H5CG44MEBDX014N, and H5CG48MEBDX014N, provided density, organization, speed grade, and package match. Cross-brand options from Micron, Samsung, or Nanya exist in the DDR5 market but require JEDEC-parameter verification rather than part-number comparison alone. Always confirm through the SK hynix part number decoder and your platform QVL, then validate with memory training at bring-up.
What is the best Micron equivalent for H5CG34MEBDX030?
Micron DDR5 SDRAM components in matching density and speed classes serve as functional equivalents, and Micron parts such as the MT53E-series DDR5 components are listed alongside SK hynix parts on many platform qualified vendor lists. However, a verified pin-compatible cross-reference for H5CG34MEBDX030 specifically was not found in available cross-reference data at time of publication, so any Micron substitution must be validated against the JEDEC DDR5 specification, package outline drawing, and the SK hynix part number decoder outputs before use.
Is H5CG34MEBDX030 suitable for server memory designs?
Yes, DDR5 SDRAM components of this class are the standard building blocks for data-center server memory, whether mounted on RDIMMs/LRDIMMs or in memory-down configurations on server boards. DDR5's dual 32-bit sub-channels, on-die ECC, and higher bank counts deliver the bandwidth and reliability servers require. For server designs, pair this component with a register clock driver (RCD) such as those used on RDIMMs, and ensure the PMIC and SPD hub implementation follows the SK hynix DDR5 module design references.
Does H5CG34MEBDX030 support on-die ECC?
Yes. As a DDR5 SDRAM device, H5CG34MEBDX030 supports on-die ECC as a mandatory DDR5 JEDEC feature. Note that on-die ECC corrects single-bit errors inside the DRAM die itself before data is placed on the bus, which is different from link ECC on DDR5 modules; link ECC uses side-band signals to correct bus errors. Together these mechanisms improve reliability in data-center workloads without the host needing to implement additional error correction for intra-chip errors.
What power supply design considerations apply to H5CG34MEBDX030?
DDR5 devices operate at a lower core voltage than DDR4 (around the 1.1 V class) and separate VDD, VDDQ, and VPP rails, so each rail needs its own decoupling network and, in module designs, an on-module PMIC. Estimated guidance: provide low-ESR ceramic decoupling close to each FBGA ball group, keep VDDQ plane impedance low, and follow SK hynix reference designs for rail sequencing. Confirm the exact rail voltages and tolerances from the official datasheet before finalizing the power tree, as speed bins may carry different current requirements.

Engineering reference data for H5CG34MEBDX030 — comparison, design guidance, and compliance information.

Selection Guide

Choose H5CG34MEBDX030 when your platform design targets SK hynix-sourced DDR5 SDRAM and the -34- density/speed encoding matches your memory controller's supported bins and your platform QVL. Choose H5CG44MEBDX014 or H5CG44MEBDX014N when you need the neighboring sub-family speed/density bin in the same FBGA footprint - verify via the SK hynix part number decoder that trained timings are compatible. Choose module-level parts (H5ANAG8 series) instead of this component when you want a pre-qualified DIMM with PMIC, SPD hub, and RCD already integrated, rather than a raw DRAM for memory-down assembly. Cross-brand DDR5 from Micron or Samsung is viable for second-sourcing since all follow the JEDEC DDR5 standard, but requires channel simulation and retraining validation. Honest trade-off: raw DDR5 components offer layout flexibility but demand far more signal-integrity and power-design effort than modules.

Comparison with Alternatives

Parameter This Product H5CG44MEBDX014 H5CG44MEBDX014N H5CG46MEBDX015N H5CG48MEBDX014N
Package FBGA FBGA - same FBGA - same FBGA - same FBGA - same
Brand SK hynix SK hynix SK hynix SK hynix SK hynix
Memory Type DDR5 SDRAM DDR5 SDRAM DDR5 SDRAM DDR5 SDRAM DDR5 SDRAM
Family H5CG DDR5 H5CG DDR5 H5CG DDR5 H5CG DDR5 H5CG DDR5
On-die ECC Yes Yes Yes Yes Yes
Speed Grade [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]
Density [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]
Unit Price (qty 1, as of 2026-09-05) 8.50 USD [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]

Key Differentiators

  • SK hynix in-house DRAM process with mature DDR5 yield (vs H5CG44MEBDX014N)
  • Native DDR5 feature set (on-die ECC, BL16, dual 32-bit sub-channels) (vs H5ANAG8NBJR-RDC)
  • Second-source coverage within one vendor family (vs H5CG46MEBDX015N)

Design Notes

DDR5 fly-by routing requires strict length matching within each byte lane group and controlled impedance (typically 40 ohms single-ended for CA/DQ). Keep the FBGA breakout region short - route stubs under 50 mils where possible - and reference DQ signals to a continuous VDDQ plane. Simulate the full channel with SK hynix IBIS models and the memory controller's SSTL/Pseudo-Open-Drain driver models before tape-out; DDR5 training can only compensate for modest channel degradation, not a fundamentally mismatched topology.

DDR5 separates VDD, VDDQ, and VPP rails, and module designs add an on-module PMIC (5 V input to 1.1 V-class rails). For memory-down boards, decouple each FBGA with the SK hynix reference capacitor network: multiple 0.1 uF ceramics close to each ball cluster plus bulk 10 uF per rail region. Estimated: peak VDDQ transient currents during simultaneous burst writes can reach several amps across a rank, so plane inductance, not just capacitance, sets rail droop - use multiple low-inductance vias per decoupling cap. Confirm exact rail voltages from the official datasheet before power-tree freeze.

Do not substitute DDR5 components based on package alone - DDR5 memory controllers store per-device training results, and a part with a different speed bin or density will fail training or fall back to degraded JEDEC defaults. Always decode the full ordering code with the SK hynix part number decoder (available on the SK hynix Downloads portal), cross-check your platform's QVL, and validate the substitute through at least one full power-cycle memory retraining during bring-up. Note also that on-die ECC does not replace host-side link/system ECC for bus errors.

Compliance Information

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

RoHS compliance inferred from current SK hynix commercial DRAM production standards; REACH, halogen-free, and conflict-minerals statements not found in the provided verified data - obtain from SK hynix product environmental reports.

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 H5CG34MEBDX030 H5CG44MEBDX014 H5CG44MEBDX014N H5CG48MEBDX014N H5ANAG8NCMR-VKI DDR5 SDRAM DRAM double data rate memory volatile memory on-die ECC FBGA fine-pitch BGA surface mount JEDEC DDR5 standard RDIMM UDIMM burst length 16 REFsb same-bank refresh PMIC SPD hub data-center server memory AI accelerator memory Octopart Findchips
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