MT41K256M8DA-125K DDR3L Complete Specs & Performance

2 July 2026 177

This 2Gbit DDR3L SDRAM (256M x 8 organization) operates from a 1.35V nominal supply and supports an 800 MHz I/O clock (1600 MT/s effective), making it a premier low-voltage option for embedded and mobile systems. Designers prioritize this class for its balance of power efficiency and high-density performance in compact footprints.

Parameter Specification Performance Impact
Density / Org 2Gb / 256M x 8 Optimized for single-rank memory channels
Voltage (VDD) 1.35V (Nominal) Reduces dynamic power vs 1.5V standard
Data Rate 1600 MT/s Peak bandwidth of 1.6 GB/s per device
Package FBGA 78-ball Small footprint for high-density PCB routing
MT41K256M8DA VCC/GND DQ[0:7] DQS/CK ADDR/CMD

Background: What MT41K256M8DA-125K DDR3L Is and Where It Fits

The MT41K256M8DA-125K is a 2Gbit DDR3L SDRAM organized as 256M x 8. This organization directly dictates row/column addressing and bank count per die, requiring designers to carefully map address bits in the memory controller. Running at 1.35V reduces dynamic power compared to 1.5V parts, offering a linear current reduction tied to V² scaling, which improves battery life and thermal headroom.

Specs Deep-Dive: Electrical, Timing & Package Details

Electrical & package specs

Key electrical parameters include VDD/VDDQ range and I/O standards. The FBGA78 package ball map influences routing pitch and via planning. Designers should use datasheet standby/active current estimates as a baseline for power budgeting and ensure high-quality decoupling near supply pins.

Timing & organization

The "-125K" speed grade maps to specific tCK and timing tables. By translating CAS latency (tCL), tRCD, and tRP cycles into nanoseconds, engineers can configure the PHY and verify margins during signal integrity training.

Performance Characteristics & Benchmarking

Throughput & latency considerations

With a 1600 MT/s effective data rate on an 8-bit bus, the theoretical peak bandwidth is 1600 MB/s per device. Real-world performance depends on controller interleave and the number of ranks used in the system architecture.

Power & thermal behavior

DDR3L exhibits distinct dynamic vs. standby profiles. Systems should be validated using STREAM-like kernels to measure sustained bandwidth and observed latency under realistic traffic patterns, targeting the 1.6 GB/s peak per chip.

Integration & Design Checklist

  • PCB Layout: Follow matched trace-length groups for DQ/DQS per byte lane. Maintain 50Ω single-ended impedance and minimize stubs.
  • PHY Settings: Program tCL, tRCD, and tRP values according to the speed grade. Execute the JEDEC initialization sequence (Power-stable -> Reset -> MRS writes).
  • Validation: Use stress patterns (walking ones/zeros) and capture ECC error counters to assess reliability at temperature extremes.

Common Questions

What are the key specs of MT41K256M8DA-125K?

This is a 2Gb DDR3L device with a 256M x 8 organization. It operates at a nominal 1.35V and supports data rates up to 1600 MT/s (800 MHz clock).

How to calculate DDR3L bandwidth for MT41K256M8DA-125K?

Use the formula: Bandwidth (MB/s) = MT/s × width(bits) / 8. For this device: 1600 MT/s × 8 bits / 8 = 1600 MB/s. Total system bandwidth scales with the number of devices in parallel.

What PCB layout rules apply to DDR3L FBGA78 packages?

Essential rules include grouping signals by byte lane, matching DQ/DQS lengths, using controlled 50Ω impedance, and placing decoupling capacitors as close to the BGA balls as possible to minimize inductance.

Is MT41K256M8DA-125K backward compatible with 1.5V DDR3?

Yes. JEDEC DDR3L (1.35V) devices like the MT41K256M8DA are designed to be functionally compatible with 1.5V DDR3 systems, allowing for flexible component sourcing across different hardware revisions.