PMC

 

Pm25LV512/010

 

 

 

 

ABSOLUTE MAXIMUM RATINGS (1)

 

 

 

 

 

Temperature Under Bias

-65oC to +125oC

Storage Temperature

-65oC to +125oC

Surface Mount Lead Soldering Temperature

Standard Package

240oC 3 Seconds

Lead-free Package

260oC 3 Seconds

 

Input Voltage with Respect to Ground on All Pins (2)

-0.5

V to VCC + 0.5 V

All Output Voltage with Respect to Ground

-0.5

V to VCC + 0.5 V

 

 

 

 

(2)

 

-0.5

V to +6.0 V

VCC

Notes:

1.Stresses under those listed in “Absolute Maximum Ratings” may cause permanent damage to the device. This is a stress rating only. The functional operation of the device or any other conditions under those indicated in the operational sections of this specification is not implied. Exposure to absolute maximum rating condition for extended periods may affected device reliability.

2.Maximum DC voltage on input or I/O pins are VCC + 0.5 V. During voltage transitioning period, input or I/O pins may overshoot to VCC + 2.0 V for a period of time up to 20 ns. Minimum DC voltage on input or I/O pins are -0.5 V. During voltage transitioning period, input or I/O pins may undershoot GND to -2.0 V for a period of time up to 20 ns.

DC AND AC OPERATING RANGE

Part Number

Operating Temperature

Pm25LV512/010

0o C to 85o C

Vcc Power Supply

2.7 V - 3.6 V

Programmable Microelectronics Corp.

12

Issue Date: February, 2004, Rev: 1.4

Page 12
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PMC-Sierra Pm25LV010 manual Absolute Maximum Ratings, DC and AC Operating Range, Part Number, Pm25LV512/010

Pm25LV512, Pm25LV010 specifications

PMC-Sierra is renowned for its high-performance semiconductor solutions, and the PM25LV010 and PM25LV512 are standout products in their lineup of serial NOR flash memory devices. These memory chips are specifically designed for a range of applications that include networking, storage, and consumer electronics, providing reliable performance and efficient data storage.

The PM25LV010 offers 1 megabit of storage capacity, while the PM25LV512 provides 512 kilobits. Both devices feature a simple serial interface that allows for quick and easy connections to various microcontrollers and digital signal processors. This makes them particularly attractive for systems that require fast access to stored data and simplified design architecture.

One of the primary features of the PM25LV010 and PM25LV512 is their high-speed read capability. With access times as low as 45 nanoseconds, these chips enable rapid data retrieval, ensuring that systems can operate effectively without bottlenecks caused by slow memory access. This is particularly crucial in applications where real-time data processing is essential, such as in communications systems or digital signal processing.

In terms of technology, both devices utilize advanced CMOS manufacturing processes that enhance their reliability and performance. They offer flexibility in programming and erasing, with full chip erase functionality and the ability to program data on a page basis. This allows for efficient updates to the stored information without the need to erase large sections of memory.

Power efficiency is another critical aspect of the PM25LV010 and PM25LV512. These devices consume very little power during both active and standby modes, making them suitable for battery-operated devices and energy-sensitive applications. Their low power consumption ensures extended operation time, which is a significant advantage in portable consumer electronics.

Additionally, both chips are designed with robust security features that aid in protecting sensitive data from unauthorized access. They support a variety of locking and protection mechanisms, ensuring that critical information remains confidential.

In summary, the PMC-Sierra PM25LV010 and PM25LV512 serial NOR flash memory devices merge high-speed performance, low power consumption, and advanced security, making them excellent choices for diverse applications in the modern digital landscape. Their design and technology cater to the growing demand for efficient, reliable, and secure memory solutions in today's rapidly evolving electronic ecosystems.