
Safe Checkout
Secure Payments
Fast Delivery
Order Today
Free Shipping
Across the US
Easy Returns
Hassle-Free
Samsung MZ-7KM960NE 960GB 6Gb/s SATA Multi-Level Cell 2.5-inch SSD
- 960GB Storage Capacity
- 2.5-inch Form Factor
- SATA III (6Gb/s) Interface
- MLC NAND Flash Memory
- Designed for desktops and laptops
- Improved system performance
- Energy-efficient operation
Free U.S. Ground Shipping
Typically 1-2 handling + 3-7 transit days
Purchase orders accepted
For government, enterprise, data center, and small business customers.
Bulk Purchase Inquiry
Volume pricing and availability
Product Overview
The Samsung MZ-7KM960NE is a 960GB 2.5-inch SATA SSD featuring Multi-Level Cell (MLC) NAND flash. It connects via the SATA 6Gb/s interface, providing a reliable and fast storage solution for various computing needs.
Technical Information
| Capacity | 960GB |
| Interface | SATA III (6Gb/s) |
| Form Factor | 2.5-inch |
Additional Specifications
| NAND Type | MLC |
| Part Number Suffix | NE |
| DRAM Cache | Yes (Typically) |
Product Description
Samsung's MZ-7KM960NE is a 960GB solid-state drive engineered to deliver enhanced performance and reliability for a wide range of computing applications. Utilizing the ubiquitous 2.5-inch form factor and the SATA III 6Gb/s interface, this SSD offers broad compatibility with most modern and legacy systems, serving as an excellent upgrade from traditional hard drives. The drive is built with Multi-Level Cell (MLC) NAND flash memory. MLC NAND provides a strong balance between capacity, speed, and endurance, making it a versatile choice for both consumer and professional environments. The 'NE' designation typically indicates a specific revision or market segment for this particular model. By replacing a mechanical hard drive with the MZ-7KM960NE, users can expect dramatically reduced boot times, faster application loading, and quicker file transfers. The inherent advantages of SSD technology, such as silent operation, lower power consumption, and superior shock resistance due to the absence of moving parts, further contribute to a more efficient and robust computing experience.



