
Allicdata Part #: | MT47H256M4B7-37E:ATR-ND |
Manufacturer Part#: |
MT47H256M4B7-37E:A TR |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Micron Technology Inc. |
Short Description: | IC DRAM 1G PARALLEL 92FBGA |
More Detail: | SDRAM - DDR2 Memory IC 1Gb (256M x 4) Parallel 267... |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Write Cycle Time - Word, Page: | 15ns |
Base Part Number: | MT47H256M4 |
Supplier Device Package: | 92-FBGA (11x19) |
Package / Case: | 92-VFBGA |
Mounting Type: | Surface Mount |
Operating Temperature: | 0°C ~ 85°C (TC) |
Voltage - Supply: | 1.7 V ~ 1.9 V |
Memory Interface: | Parallel |
Access Time: | 400ps |
Series: | -- |
Clock Frequency: | 267MHz |
Memory Size: | 1Gb (256M x 4) |
Technology: | SDRAM - DDR2 |
Memory Format: | DRAM |
Memory Type: | Volatile |
Part Status: | Discontinued at Digi-Key |
Packaging: | Tape & Reel (TR) |
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The MT47H256M4B7-37E:A TR is a memory device that is mainly used to store data, and is often found in the storage solution of various technologies, especially those related to computers. It is a type of double-data-rate three synchronous dynamic random access memory (DDR3 SDRAM). It is similar to other types of memory, such as synchronous dynamic random access memory (SDRAM) and double-data-rate two synchronous dynamic random access memory (DDR2 SDRAM).
The MT47H256M4B7-37E:A TR is designed to deliver high performance and reliability. It features high speed data transfer rates of up to 1333MHz, allowing for faster data input and output. Additionally, it features an advanced error-correction mechanism that helps to reduce system downtime. The MT47H256M4B7-37E:A TR also has an integrated thermal sensor that allows for improved thermal management and power savings. Furthermore, its self-refresh mode can help conserve power as it allows for better memory retention.
The MT47H256M4B7-37E:A TR has a number of applications in various fields. It is widely used for high-performance computing, gaming, and server applications. It is also suitable for embedded systems, such as routers, switches, and industrial automation. In addition, it can be used in graphics applications, including graphics cards and other graphics-intensive solutions. Similarly, it is also used in digital video systems, providing reliable storage, high bandwidth, and efficient data processing.
The MT47H256M4B7-37E:A TR works by storing binary data in the form of bit positions in each memory cell. The memory cells are organized in an array of rows and columns, with each cell storing a single bit. When a memory request is sent, the row address and column address associated with the request are decoded and decoded before the data is read. The address is also used to locate the row or column associated with the request, where the data is stored. The memory is then read from the rows and columns and sent to the requesting device.
The MT47H256M4B7-37E:A TR also supports a variety of error correction codes (ECCs). These are used to detect and correct errors caused by data transmission and other sources. ECCs are implemented to detect and correct errors without sacrificing performance, ensuring data integrity and reliability. They can also detect and correct multiple bit errors in a single memory cycle.
The MT47H256M4B7-37E:A TR also supports standard data transfer interface (DTD) protocols such as Double-Data-Rate Two (DDR2), and Double-Data-Rate Three (DDR3). This allows for data transfer at much higher speeds, making it possible to build high performance systems with maximum memory bandwidth. Additionally, it supports low-power states, allowing for energy savings when the system does not require full memory bandwidth.
In summary, the MT47H256M4B7-37E:A TR is a high-performance memory device designed for a variety of applications. It features high speed data transfer rates, an advanced error correction mechanism, and an integrated thermal sensor. It is widely used in industries such as computing, gaming, and industrial automation. Furthermore, it supports a wide range of data transfer interfaces, allowing for high bandwidth data transfer. Finally, it also has support for low-power states, helping to conserve power when the system does not need full memory bandwidth.
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