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LPC2388 Datasheet (PDF) - NXP Semiconductors

LPC2388 Datasheet PDF - NXP Semiconductors
Part # LPC2388
Download  LPC2388 Download
File Size   378.97 Kbytes
Page   74 Pages
Manufacturer  NXP [NXP Semiconductors]
Direct Link  http://www.nxp.com
Logo NXP - NXP Semiconductors
Description Single-chip 16-bit/32-bit micro; 512 kB flash with ISP/IAP, Ethernet, USB 2.0 device/host/OTG, CAN, and 10-bit ADC/DAC

LPC2388 Datasheet (PDF)

Go To PDF Page Download Datasheet
LPC2388 Datasheet PDF - NXP Semiconductors

Part # LPC2388
Download  LPC2388 Click to download

File Size   378.97 Kbytes
Page   74 Pages
Manufacturer  NXP [NXP Semiconductors]
Direct Link  http://www.nxp.com
Logo NXP - NXP Semiconductors
Description Single-chip 16-bit/32-bit micro; 512 kB flash with ISP/IAP, Ethernet, USB 2.0 device/host/OTG, CAN, and 10-bit ADC/DAC

LPC2388 Datasheet (HTML) - NXP Semiconductors


LPC2388 Product details

General description
The LPC2388 microcontroller is based on a 16-bit/32-bit ARM7TDMI-S CPU with
real-time emulation that combines the microcontroller with 512 kB of embedded
high-speed flash memory. A 128-bit wide memory interface and a unique accelerator
architecture enable 32-bit code execution at the maximum clock rate. For critical
performance in interrupt service routines and DSP algorithms, this increases performance
up to 30 % over Thumb mode. For critical code size applications, the alternative 16-bit
Thumb mode reduces code by more than 30 % with minimal performance penalty.
The LPC2388 is ideal for multi-purpose serial communication applications. It incorporates
a 10/100 Ethernet Media Access Controller (MAC), USB device/host/OTG with 4 kB of
endpoint RAM, four UARTs, two CAN channels, an SPI interface, two Synchronous Serial
Ports (SSP), three I2C-bus interfaces, an I2S-bus interface, and an External Memory
Controller (EMC). This blend of serial communications interfaces combined with an
on-chip 4 MHz internal oscillator, SRAM of 64 kB, 16 kB SRAM for Ethernet, 16 kB SRAM
for USB and general purpose use, together with 2 kB battery powered SRAM make this
device very well suited for communication gateways and protocol converters. Various
32-bit timers, an improved 10-bit ADC, 10-bit DAC, PWM unit, a CAN control unit, and up
to 104 fast GPIO lines with up to 50 edge and up to four level sensitive external interrupt
pins make these microcontrollers particularly suitable for industrial control and medical
systems.

Features and benefits
 ARM7TDMI-S processor, running at up to 72 MHz.
 Up to 512 kB on-chip flash program memory with In-System Programming (ISP) and
In-Application Programming (IAP) capabilities. Flash program memory is on the ARM
local bus for high performance CPU access.
 64 kB of SRAM on the ARM local bus for high performance CPU access.
 16 kB SRAM for Ethernet interface. Can also be used as general purpose SRAM.
 16 kB SRAM for general purpose DMA use also accessible by the USB.
 Dual Advanced High-performance Bus (AHB) system that provides for simultaneous
Ethernet DMA, USB DMA, and program execution from on-chip flash with no
contention between those functions. A bus bridge allows the Ethernet DMA to access
the other AHB subsystem.
 EMC provides support for static devices such as flash and SRAM as well as off-chip
memory mapped peripherals.
 Advanced Vectored Interrupt Controller (VIC), supporting up to 32 vectored interrupts.
 General Purpose DMA controller (GPDMA) on AHB that can be used with the SSP
serial interfaces, the I2S-bus port, and the Secure Digital/MultiMediaCard (SD/MMC)
card port, as well as for memory-to-memory transfers.
 Serial Interfaces:
 Ethernet MAC with associated DMA controller. These functions reside on an
independent AHB.
 USB 2.0 device/host/OTG with on-chip PHY and associated DMA controller.
 Four UARTs with fractional baud rate generation, one with modem control I/O, one
with IrDA support, all with FIFO.
 CAN controller with two channels.
 SPI controller.
 Two SSP controllers, with FIFO and multi-protocol capabilities. One is an alternate
for the SPI port, sharing its interrupt and pins. These can be used with the GPDMA
controller.
 Three I2C-bus interfaces (one with open-drain and two with standard port pins).
 I2S (Inter-IC Sound) interface for digital audio input or output. It can be used with
the GPDMA.
 Other peripherals:
 SD/MMC memory card interface.
 104 General purpose I/O pins with configurable pull-up/down resistors.
 10-bit ADC with input multiplexing among 8 pins.
 10-bit DAC.
 Four general purpose timers/counters with 8 capture inputs and 10 compare
outputs. Each timer block has an external count input.
 One PWM/timer block with support for three-phase motor control. The PWM has
two external count inputs.
 Real-Time Clock (RTC) with separate power pin, clock source can be the RTC
oscillator or the APB clock.
 2 kB SRAM powered from the RTC power pin, allowing data to be stored when the
rest of the chip is powered off.
 WatchDog Timer (WDT). The WDT can be clocked from the internal RC oscillator,
the RTC oscillator, or the APB clock.
 Standard ARM test/debug interface for compatibility with existing tools.
 Emulation trace module supports real-time trace.
 Single 3.3 V power supply (3.0 V to 3.6 V).
 Four reduced power modes: Idle, Sleep, Power-down and Deep power-down.
 Four external interrupt inputs configurable as edge/level sensitive. All pins on Port 0
and Port 2 can be used as edge sensitive interrupt sources.
 Processor wake-up from Power-down mode via any interrupt able to operate during
Power-down mode (includes external interrupts, RTC interrupt, USB activity, Ethernet
wake-up interrupt).
 Two independent power domains allow fine tuning of power consumption based on
needed features.
 Each peripheral has its own clock divider for further power saving.
 Brownout detect with separate thresholds for interrupt and forced reset.
 On-chip power-on reset.
 On-chip crystal oscillator with an operating range of 1 MHz to 25 MHz.
 4 MHz internal RC oscillator trimmed to 1 % accuracy that can optionally be used as
the system clock. When used as the CPU clock, does not allow CAN and USB to run.
 On-chip PLL allows CPU operation up to the maximum CPU rate without the need for
a high frequency crystal. May be run from the main oscillator, the internal RC oscillator,
or the RTC oscillator.
 Boundary scan for simplified board testing.
 Versatile pin function selections allow more possibilities for using on-chip peripheral
functions.




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About NXP Semiconductors


NXP Semiconductors is a publicly traded multinational company that designs, develops, and manufactures a wide range of semiconductors and integrated circuits for various applications, including automotive, industrial, communications, and consumer markets.

The company was founded in 2006 and is headquartered in Eindhoven, Netherlands.

NXP offers a broad portfolio of products, including microcontrollers, microprocessors, secure authentication ICs, power management ICs, RF and microwave components, and sensor solutions, among others.

The company's products are designed to be energy efficient, secure, and reliable, and are used in a variety of applications, including automotive systems, industrial automation and control, smart homes and buildings, and connected devices.

NXP is dedicated to innovation and customer satisfaction, and is committed to providing its customers with the best semiconductor solutions to meet their needs.

*This information is for general informational purposes only, we will not be liable for any loss or damage caused by the above information.




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