DS1861B+ Maxim Integrated Products, DS1861B+ Datasheet

IC LASR CTRLR 1CHAN 5.5V 16CSBGA

DS1861B+

Manufacturer Part Number
DS1861B+
Description
IC LASR CTRLR 1CHAN 5.5V 16CSBGA
Manufacturer
Maxim Integrated Products
Type
Laser Diode Controller (Fiber Optic)r
Datasheet

Specifications of DS1861B+

Number Of Channels
1
Voltage - Supply
2.85 V ~ 5.5 V
Current - Supply
5mA
Operating Temperature
-40°C ~ 95°C
Package / Case
16-CSBGA
Mounting Type
Surface Mount
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
The DS1861 is a laser-driver control IC designed to
reduce the production cost of fiber optics circuits by
eliminating multiple temperature tests. It works with
nearly all laser-driver ICs to provide automatic power
control (APC) and automatic extinction ratio control
(AERC), which improves the performance of the system
over temperature and aging. It also has built-in monitor-
ing capability to provide early fault detection, which can
be configured to latch the IC into a shutdown condition.
Settings programmed into the DS1861 are stored in
password-protected EEPROM memory, which write-
protects calibration data. Programming is accom-
plished through an I
also be used to read diagnostic information.
Rev 0; 5/05
Pin Configuration appears at end of data sheet.
For pricing, delivery, and ordering information, please contact Maxim/Dallas Direct! at
1-888-629-4642, or visit Maxim’s website at www.maxim-ic.com.
Optical Transceivers
Optical Transponders
30kΩ
Full Laser Control with Fault Management
4.7kΩ
V
2
CC
C-compatible interface, which can
4.7kΩ
General Description
4.7kΩ
TX-D
N.C.
GND
SCL
SDA
TX-F
N.C.
A2
A1
A0
Applications
______________________________________________ Maxim Integrated Products
DS1861
MODSET
BIASSET
BMD
V
CC
I
I
I
BIASSET
MODSET
BMD
V
CC
♦ Automatic Power Control (APC)
♦ Automatic Extinction Ratio Control (AERC)
♦ Works in AC-Coupled Laser Systems
♦ Configurable Latched Automatic Shutdown with
♦ Programmable Fast Alarm Conditions
♦ I
♦ Operates Over Wide Supply-Voltage Range
♦ Nonvolatile Memory for Device Settings
♦ Small, 14-Pin TSSOP Package
♦ -40°C to +95°C Operating Temperature Range
+Denotes lead free.
DS1861E
DS1861E+
Across Temperature and Laser Aging
Tx-Fault and Tx-Disable
Devices on the Same Serial Bus
2
C-Compatible Serial Interface Allows Up to Eight
BIAS
MOD
PART
1nF
LASER DRIVER
MAX3736
Typical Operating Circuit
-40°C to +95°C
-40°C to +95°C
TEMP RANGE
BIAS
OUT
Ordering Information
14 TSSOP (173 mils)
14 TSSOP (173 mils)
V
PIN-PACKAGE
CC
Features
1

Related parts for DS1861B+

DS1861B+ Summary of contents

Page 1

... MOD MODSET TX-D I MODSET N.C. N. BMD A0 I BMD 1nF GND ______________________________________________ Maxim Integrated Products Features Ordering Information TEMP RANGE PIN-PACKAGE -40°C to +95°C 14 TSSOP (173 mils) -40°C to +95°C 14 TSSOP (173 mils) Typical Operating Circuit V CC MAX3736 LASER DRIVER OUT BIAS ...

Page 2

Full Laser Control with Fault Management ABSOLUTE MAXIMUM RATINGS Voltage Range SDA, and SCL CC Pins Relative to Ground.....................................-0.5V to +6.0V Voltage Range Tx-Fault, Tx-Disable BIASSET, MODSET, ...

Page 3

Full Laser Control with Fault Management ANALOG OUTPUT CHARACTERISTICS (V = +2.85V to 5.5V -40°C to +95°C PARAMETER SYMBOL BIASSET Current Range I BIASSET BIASSET Shutdown Current MODSET Current Range I MODSET MODSET Shutdown Current APC ...

Page 4

Full Laser Control with Fault Management FAST ALARMS AND V CC MONITOR CHARACTERISTICS (V = +2.85V to 5.5V -40°C to +95°C PARAMETER SYMBOL High Bias Alarm LSB High Bias Alarm Threshold Accuracy LTXP Alarm Threshold Multiplier ...

Page 5

Full Laser Control with Fault Management ELECTRICAL CHARACTERISTICS (continued +2.85V to 5.5V -40°C to +95°C, timing referenced PARAMETER SYMBOL Data Setup Time t Start Setup Time SDA and ...

Page 6

Full Laser Control with Fault Management NONVOLATILE MEMORY CHARACTERISTICS (V = +2.85V to 5.5V 0°C to +70°C PARAMETER SYMBOL Writes Note 1: All voltages are referenced to ground. Currents into the IC are positive, out of ...

Page 7

Full Laser Control with Fault Management V > POA t POAR TX-D TX-F t INIT:B I BIASSET I MODSET Figure 1. Power-Up Timing with TX-D Not Asserted (Including Hotplug) V > POA TX-D TX-F I BIASSET ...

Page 8

Full Laser Control with Fault Management TX BIASSET OFF I MODSET t OFF *TX-F WILL ASSERT IF THE HTXP ALARM IS TRIGGERED WHILE THE BIAS CURRENTS ARE DISABLED. THE LTXP ALARM IS MASKED WHILE TX-D IS ...

Page 9

Full Laser Control with Fault Management OCCURENCE OF FAULT TX-D TX-F I BIASSET I MODSET Figure 5. Successful Recovery from Transmitter Safety Fault Condition OCCURENCE OF FAULT TX-D TX-F I BIASSET I MODSET Figure 6. Unsuccessful Recovery from Transmitter Safety ...

Page 10

Full Laser Control with Fault Management (V = +5.0V +25°C, unless otherwise noted SUPPLY CURRENT vs. SUPPLY VOLTAGE 6.9 DPOL = +85°C A DPOL = +25°C A DPOL = 0, ...

Page 11

Full Laser Control with Fault Management PIN NAME Serial Data Input/Output SDA logic levels. 2 SCL Serial Clock Input. I Transmit Fault Output. Open-collector output that indicates an alarm condition has occurred. A pullup 3 TX-F resistor is ...

Page 12

Full Laser Control with Fault Management V CC USER EEPROM (8 BYTES SDA 2 I C-COMPATIBLE INTERFACE SCL WITH SETTINGS PASSWORD A PROTECTION TX-D TX-F GND Detailed Description Automatic Power Control The DS1861 ...

Page 13

Full Laser Control with Fault Management Reading the BIASSET and MODSET The I and I currents are generated by BIASSET MODSET embedded 18-bit and 12-bit DACs, respectively, and their output currents can be read when the DS1861 has been halted ...

Page 14

Full Laser Control with Fault Management I DIST 1 f ERU TIME Figure 9. BMD Disturbance Current MOD 2 AVERAGE POWER MOD I I APC TH CURRENT (mA) Figure 10. Laser Diode Bias ...

Page 15

Full Laser Control with Fault Management Figure 11 shows the extinction ratios (expressed in decibels function of N for several A Note the actual extinction ratio value is determined by the ratio addition to N. ...

Page 16

Full Laser Control with Fault Management 144 INVALID ER 128 SETTINGS SHADED 112 INVALID REGISTER SETTING (DECIMAL) Figure 12. Setting N Using the ER Register LTXP ALARM LTXP ENABLE HTXP ...

Page 17

Full Laser Control with Fault Management 2 communicate over the I C bus and for the analog cir- cuitry to function properly. The first monitoring level, the power-on digital voltage (V ), inhibits the part’s I POD functionality when V ...

Page 18

Full Laser Control with Fault Management WORD 0 BASE ROW ADDR NAME BYTE 0/8 BYTE 1/9 Password 78h Status SRAM Entry B0h APC Config User EE User EE HTXP B8h Fast Comp Threshold Threshold C0h Password Reserved Reserved I BIASSET ...

Page 19

Full Laser Control with Fault Management Detailed Register Description Conventions Name of Row • Name of Byte...<Write Access><Volatility><Power- Up/Factory Default Value> 0. Name of bit 0.....Bit 0 Description 1. Name of bit 1.....Bit 1 Description Bit names.....Bit ...

Page 20

Full Laser Control with Fault Management < > +   RSEL =   < > RSEL  The default setting 1Ch corresponds ...

Page 21

Full Laser Control with Fault Management The following terminology is commonly used to 2 describe I C data transfers. Master Device: The master device controls the slave devices on the bus. The master device generates SCL clock pulses, and start ...

Page 22

Full Laser Control with Fault Management Byte Write: A byte write consists of 8 bits of informa- tion transferred from the master to the slave (most sig- nificant bit first) plus a 1-bit acknowledgement from the slave to the master. ...

Page 23

Full Laser Control with Fault Management can result in a whole row being worn out over time by writing a single byte repeatedly. Writing a row one byte at a time will wear out the EEPROM eight times faster than ...

Page 24

Full Laser Control with Fault Management Applications Information Calibrating APC and Extinction Ratio Before calibrating, the APC register should be set to a low value to ensure the laser’s maximum power level is not exceeded before the power level is ...

Page 25

... Maxim cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licenses are implied. Maxim reserves the right to change the circuitry and specifications without notice at any time. Maxim Integrated Products, 120 San Gabriel Drive, Sunnyvale, CA 94086 408-737-7600 ____________________ 25 © 2005 Maxim Integrated Products is a registered trademark of Dallas Semiconductor Corporation ...

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