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ATLS100MA103S Datasheet(PDF) 4 Page - Analog Technologies, Inc.

Part # ATLS100MA103S
Description  Low Noise Constant Current Laser Controller
PDF  12 Pages
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Manufacturer  ANALOGTECHNOLOGIES [Analog Technologies, Inc.]
Direct Link  https://www.analogtechnologies.com/
Logo ANALOGTECHNOLOGIES - Analog Technologies, Inc.

ATLS100MA103S Datasheet(HTML) 4 Page - Analog Technologies, Inc.

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1161 Ringwood Ct, #110, San Jose, CA 95131, U. S. A. Tel.: (408) 748-9100, Fax: (408) 770-9187
www.analogtechnologies.com
Copyrights 2000-2022, Analog Technologies, Inc. All Rights Reserved. Updated on 1/17/2022
Email: staff@analogti.com/sales@analogti.com
4
Analog Technologies
ATLS100MA103
Low Noise Constant Current Laser Controller
be placed between the VPS and the LPGD pins. Make sure
that the resistor is not too small that the pull down resistor
will not be able to pull the pin low enough when the
controller loop is not good. When choosing not to use an
LED for indicating the working status, leave the LPGD pin
unconnected.
The LPGD pin can also be connected to a digital input pin
of a micro-controller, when software/firmware is utilized in
the system.
Setting the Output Current
Figure 5. VLIO & IOUT
Figure 5 shows the relationship between VLIO and the output
current. When VLIO is 0.1V, the laser driver starts to output
the current, 4mA. The condition is VLDA>1.2V.
The output current limit is set by adjusting W1, which sets
input voltages of LILM, pin 4. The output current will be:
IOUT (mA) = 110 (mA)
× VLILM (V)/2.5 (V).
LILM should never be left float. Otherwise, the output
current limit may be set to too high a value that the laser
might be damaged.
The output current is set by adjusting W2, which sets input
voltages of LIS, pin 5. The output current will be:
IOUT (mA) = 100 (mA)
× VLIS (V)/2.5 (V).
When no modulation is needed, it is suggested to use an RC
low-pass-filter, the R1 and C1 in Figure 4.1, to lower the
AC noise from the voltage reference source. The time
constant of this filter can be between a few to 10’s of
seconds. The bigger the time cost, the lower the output noise,
but the longer time will be needed to wait the output current
to go up.
Both of LILM and LIS, only LIS, can be configured by using a
DAC, to replace the W1 and W2 in Figure 4.1. Make sure that
the DAC has output low noise, or, if no modulation is needed,
an RC low pass filter by be inserted between the DAC and the
LIS pin, similar as shown in Figure 4.1.
The LIS allows modulating the output current by a large signal
of up to 1MHz in bandwidth. That is, when using a sine wave
signal to modulate the LIS pin, the output current response
curve will be attenuated by 3dB, or 0.71 times the full response
magnitude in current. When using an ideal square-wave to
modulate the output current at the LIS pin, the rise and fall
time of the output current will be about 170nS (Large signal).
When the modulation signal is a square-wave and low output
noise is require, the low-pass-filter can still be used for
lowering the output noise. Figure 7 shows such a circuit. The
resistor R1 can be between 10k and 1M, depending on the error
voltage caused by the switch leakage current. The LILM pin
can be set by a POT as shown in Figure 4 or connect to 2.5VR.
It is recommended not to set the LIS pin to 0V, but keep
it >0.05V at all the time. The reason is that the laser diode
usually has a junction voltage of 2.5V, when setting the LIS
pin voltage to 0V, the output voltage will warble between 0V
and 2.5V, cause some oscillation slightly.
The LIO can still be used to monitor the output current when
the LIS is modulated. The bandwidth of the LIO signal
is >10MHz, more than enough for monitoring output current
modulated by the LIS signal.
VLDA
(V)
VVPS (V)
VLDAMAX
VLDAMIN
Normal
Operation
Region
IMAX = 100mA
3.3
5
0.35
4.6
2.6
Figure 6. VVPS & ILDA



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