| поискавой системы для электроныых деталей |
|
AT25DF512C датащи(PDF) 18 Page - Dialog Semiconductor |
|
|
|||||||||||||||||||||||||||||
AT25DF512C датащи(HTML) 18 Page - Dialog Semiconductor |
|
18 / 43 page ![]() 17 AT25DF512C DS-25DF512C–030E–2/2017 10.2 Read OTP Security Register The OTP Security Register can be sequentially read in a similar fashion to the Read Array operation up to the maximum clock frequency specified by fCLK. To read the OTP Security Register, the CS pin must first be asserted and the opcode of 77h must be clocked into the device. After the opcode has been clocked in, the three address bytes must be clocked in to specify the starting address location of the first byte to read within the OTP Security Register. Following the three address bytes, two dummy bytes must be clocked into the device before data can be output. After the three address bytes and the dummy bytes have been clocked in, additional clock cycles will result in OTP Security Register data being output on the SO pin. When the last byte (00007Fh) of the OTP Security Register has been read, the device will continue reading back at the beginning of the register (000000h). No delays will be incurred when wrapping around from the end of the register to the beginning of the register. Deasserting the CS pin will terminate the read operation and put the SO pin into a high-impedance state. The CS pin can be deasserted at any time and does not require that a full byte of data be read. Figure 10-2. Read OTP Security Register 11. Status Register Commands 11.1 Read Status Register The Status Register can be read to determine the device’s ready/busy status, as well as the status of many other functions such as Hardware Locking and Block Protection. The Status Register can be read at any time, including during an internally self-timed program or erase operation.The Status Register consists of two bytes. To read the Status Register, the CS pin must first be asserted and the opcode of 05h must be clocked into the device. After the opcode has been clocked in, the device will begin outputting Status Register data on the SO pin during every subsequent clock cycle. After the last bit (bit 0) of Status Register Byte 1 has been clocked out, the first bit (bit 7) of Status Register Byte 2 will be clocked out. After the last bit (bit 0) of Status Register Byte 2 has been clocked out, the sequence will repeat itself, starting again with bit 7 of Status Register Byte 1, as long as the CS pin remains asserted and the clock pin is being pulsed. The data in the Status Register is constantly being updated, so each repeating sequence will output new data. Deasserting the CS pin will terminate the Read Status Register operation and put the SO pin into a high-impedance state. The CS pin can be deasserted at any time and does not require that a full byte of data be read. SCK CS SI SO MSB MSB 23 1 0 01110111 67 5 410 11 9 812 33 36 35 34 31 32 29 30 OPCODE AAAA AAA A AX X X MSB MSB DDDDDDD D D D ADDRESS BITS A23-A0 MSB XXXXX X DON'T CARE DATA BYTE 1 HIGH-IMPEDANCE |
|
ссылки URL |
| Вашему бизинису помогли Аллдатащит? [ DONATE ] |
Что такое Аллдатащит | реклама | контакт | Конфиденциальность | Ссылка на техническое описание | обмен ссыками | поиск по производителю All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |