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Micron MTFDKCC3T2TFS-1BC1ZABYYR 3.2TB PCI Express NVMe 4.0 x4 TLC SSD
- Capacity: 3.2TB
- Interface: PCI Express NVMe 4.0 x4
- Form Factor: Likely M.2 2280 (common for NVMe)
- NAND Type: TLC (Triple-Level Cell)
- Designed for high-throughput applications
- Offers enhanced performance and responsiveness
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Typically 1-2 handling + 3-7 transit days
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For government, enterprise, data center, and small business customers.
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Product Overview
The Micron MTFDKCC3T2TFS-1BC1ZABYYR is a high-performance 3.2TB NVMe SSD designed for demanding enterprise workloads. It leverages the PCIe Gen4 x4 interface for significantly faster data transfer speeds compared to previous generations.
Technical Information
| Capacity | 3.2TB |
| Interface | PCI Express NVMe 4.0 x4 |
Additional Specifications
| NAND Type | TLC |
Product Description
This 3.2TB NVMe SSD from Micron, identified by SKU MTFDKCC3T2TFS-1BC1ZABYYR, is engineered to meet the rigorous demands of modern data centers and high-performance computing environments. Its adherence to the NVMe 4.0 specification, coupled with a PCIe x4 interface, unlocks sequential read and write speeds that far surpass traditional SATA SSDs and even earlier NVMe generations. This makes it an ideal solution for applications requiring rapid data access, such as large database operations, video editing, scientific simulations, and AI/ML workloads. The use of TLC NAND flash memory strikes a balance between performance, endurance, and cost-effectiveness, making it suitable for a wide range of enterprise applications. The drive's architecture is optimized for low latency and high IOPS (Input/Output Operations Per Second), ensuring that applications remain responsive even under heavy load. Its robust design is built for reliability and consistent performance in 24/7 operating conditions. As a component designed for integration into servers and workstations, the MTFDKCC3T2TFS-1BC1ZABYYR provides a significant upgrade path for systems seeking to maximize storage performance. Its NVMe interface allows for direct communication with the CPU, bypassing bottlenecks associated with older storage protocols. This translates to faster boot times, quicker application loading, and overall improved system efficiency for users and businesses relying on high-speed data processing.



