3.3V Step-Up/Step-Down Voltage Regulator S9V11E2F3

Pololu item #: 5712
Brand: Pololu supply outlook
Status: Active and Preferred 
RoHS 3 compliant

Price break Unit price (US$)
1 4.95
5 4.55
25 4.19
100 3.85


backorders allowed

Output voltage Typical max output current1 Input voltage range Low-voltage cutoff Size
3.3 V 1.5 A 2 V – 16 V
(3 V startup)
0.43″ × 0.65″ × 0.16″

Note 1: For input voltages close to the output, after startup. Startup current is limited to approximately 700 mA until output voltage reaches the nominal voltage. After startup, the actual achievable maximum continuous current is a function of input and output voltage and is limited by thermal dissipation. See the output current graphs on the product page for more information.

Alternatives available with variations in these parameter(s): output type low-voltage cutoff Select variant…

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Overview

The S9V11x family of efficient switching regulators (also called switched-mode power supplies (SMPS) or DC-to-DC converters) use a buck-boost topology to convert both higher and lower input voltages to a regulated output voltage. They take input voltages from 2 V to 16 V and increase or decrease them as necessary, offering a typical efficiencies of 85% to 95% and a typical continuous output currents over 1.5 A for input voltages close to or greater than the output voltage. (Note: The minimum start-up voltage is 3 V, but the regulator will operate down to 2 V after startup.)

The flexibility in input voltage offered by this family of regulators is especially well-suited for battery-powered applications in which the battery voltage begins above the regulated voltage and drops below as the battery discharges. Without the typical restriction on the battery voltage staying above the required voltage throughout its life, new battery packs and form factors can be considered.

These regulators have short-circuit protection, and thermal shutdown prevents damage from overheating. The boards do not have built-in protection against reverse voltage, but reverse-voltage protection modules are available for adding that functionality. Note that the startup current is limited to approximately 700 mA until the output voltage reaches the nominal voltage; after startup, the available current is a function of the input voltage (see the maximum continuous output current graph below).

The different members of this family offer different output voltage options, from fixed voltages (some with selectable alternatives) to adjustable voltages that can be set anywhere between 2.5 V and 9 V. Some versions also have an adjustable low-voltage cutoff that can be set anywhere in the 2 V to 16 V output voltage range and used to prevent your battery from over-discharging. This is particularly useful for battery chemistries that can be damaged when over-discharged, including Li-ion and LiPo. The chart below lists all the regulators in the S9V11x family along with the key features of each version:

Regulator Output voltage Typical max
continuous
output
current*
Low-voltage
cutoff
Input voltage
range
Size Price
#5712 S9V11E2F3 3.3 V 1.5 A 2 V – 16 V
(3 V startup)
0.43″ × 0.65″ ×
0.16″
$4.95
#5713 S9V11E2F5 5 V 1.7 A $4.95
#5714 S9V11E2F6 6 V 1.7 A $4.95
#5715 S9V11E2F7 7.5 V 1.7 A $4.95
#5716 S9V11E2F9 9 V 1.7 A $4.95
#5719 S9V11E2A 2.5 V – 9 V (adjustable) 1.7 A $5.49
#2836 S9V11F5 5 V 1.5 A 0.30″ × 0.45″ ×
0.17″
$6.95
#2872 S9V11F3S5 3.3 V (5 V selectable) 1.5 A 0.50″ × 0.60″ ×
0.17″
$5.95
#2873 S9V11F3S5C3 3.3 V (5 V selectable) 1.5 A 3 V (fixed) $5.95
#2869 S9V11MA 2.5 V – 9 V (precison-
adjustable 12-turn pot)
1.7 A 0.50″ × 0.60″ ×
0.25″
$9.95
#2870 S9V11F5S6CMA 5 V (6 V selectable) 1.7 A adjustable $9.95
#2871 S9V11F3S5CMA 3.3 V (5 V selectable) 1.5 A adjustable $9.95
#2868 S9V11MACMA 2.5 V – 9 V (precison-
adjustable 12-turn pot)
1.7 A adjustable $13.95
*For input voltages close to the output, after startup. Startup current is limited to approximately 700 mA until output voltage reaches the nominal voltage. After startup, the actual achievable maximum continuous current is a function of input and output voltage and is limited by thermal dissipation. See the output current graphs on the product pages for more information.

The different versions of the S9V11E2Fx regulators all look very similar, so the bottom silkscreen includes a blank space where you can add your own distinguishing marks or labels.

We manufacture these boards in-house at our Las Vegas facility, so we can make these regulators with customized components to better meet the needs of your project, such as by customizing the output voltage between 2.5V and 9V or adding a low-voltage cutoff threshold. If you are interested in customization, please contact us for a quote.

Details for item #5712

This item is the S9V11E2F3, which outputs a fixed 3.3 V.

3.3V Step-Up/Step-Down Voltage Regulator S9V11E2F3.

3.3V Step-Up/Step-Down Voltage Regulator S9V11E2F3.

Step-Up/Step-Down Voltage Regulator S9V11E2x, bottom view.

Features

  • Input voltage: 2 V to 16 V (note: this regulator requires 3 V to start, but it can operate down to 2 V after startup)
  • Fixed 3.3 V output with +5/-3% accuracy
  • Max continuous output current when input voltage ≥ output voltage: 1.5 A (note: startup current is limited to 700 mA until output voltage reaches the nominal voltage; see the maximum continuous output current graph below for current capabilities across the full input voltage range)
  • Low quiescent current: < 0.2 mA for most of the operating range (see the quiescent current graph below)
  • Soft-start feature limits inrush current and gradually ramps output voltage
  • Integrated over-temperature and short-circuit protection
  • Power-saving feature maintains high efficiency at low currents
  • Compact size: 0.43″ × 0.65″ × 0.16″ (10.9 × 16.5 × 4.0 mm)

Using the Regulator

Connections

The S9V11E2x step-up/step-down regulator has four main connections: the output voltage (VOUT), ground (GND), the input voltage (VIN), and an enable input (EN).

The input voltage, VIN, should be between 3 V and 16 V when the regulator is first powered. After the regulator is running, it can continue operating down to 2 V. Lower inputs can shut down the voltage regulator; higher inputs can destroy the regulator, so you should ensure that noise on your input is not excessive, and you should be wary of destructive LC spikes (see the LC voltage spike section below for more information).

VOUT is the regulated output voltage. The regulator’s soft-start feature gradually ramps up the VOUT voltage on start-up to limit in-rush current draw.

The regulator, which is enabled by default, can be put into a low-power sleep state by reducing the voltage on the EN below 0.7 V, and it can be brought out of this state again by increasing the voltage on EN past 0.8 V. The quiescent current draw in this sleep mode is dominated by the current in the 100 kΩ pull-up resistor from EN to VIN, which is approximately 10 µA per volt on VIN (e.g. approximately 30 µA with 3 V in). The tight tolerance of the enable input allows a precise low-VIN cutoff to be set, such as with the output of an external voltage divider powered by VIN, which is useful for battery powered applications where draining the battery below a particular voltage threshold could permanently damage it.

The four connections are labeled on the back side of the PCB and are arranged with a 0.1″ spacing along the edge of the board for compatibility with solderless breadboards, connectors, and other prototyping arrangements that use a 0.1″ grid. You can solder wires or 0.1″ header pins directly to the board. Note: header pins are not included with this product, but 1×4 straight male headers and 1×4 right-angle male headers are available separately.

S9V11E2x step-up/step-down voltage regulators, soldered with straight and right-angle headers (not included), on a breadboard.

Typical efficiency

The efficiency of a voltage regulator, defined as (Power out)/(Power in), is an important measure of its performance, especially when battery life or heat are concerns.

Maximum continuous output current

The maximum achievable output current of the regulator varies with the input voltage but also depends on other factors, including the ambient temperature, air flow, and heat sinking. The graph below shows maximum output currents that the regulators in the S9V11x family can deliver continuously at room temperature in still air and without additional heat sinking (note: this graph does not apply to the smaller S9V11F5, which has lower output current capabilities due to its more compact PCB; see the graphs on its product page for more information).

Note that the startup current is limited to approximately 700 mA, and currents in excess of this are only available after the output has finished rising to 5 V. Large capacitive loads will generally not pose a problem because they will gradually charge up even with the current limit active, so while they may increase the time it takes the regulator to start up, the regulator should still eventually get to 5 V. A purely resistive load, however, could prevent the regulator from ever reaching 5 V. For example, if you put a 5 Ω resistor between VOUT and GND and then apply power to the regulator, the output voltage will never rise past 3.5 V, the voltage at which the current draw reaches the 700 mA limit. As such, this regulator is intended for applications like robotics, where any large loads are controllable and can be applied only after the regulator has finished starting up.

During normal operation, this product can get hot enough to burn you. Take care when handling this product or other components connected to it.

Quiescent current

The quiescent current is the current the regulator uses just to power itself, and the graph below shows this as a function of the input voltage. The module’s EN input can be driven low to put the board into a low-power state where it typically draws 10 µA per volt on VIN.

LC voltage spikes

When connecting voltage to electronic circuits, the initial rush of current can cause voltage spikes that are much higher than the input voltage. If these spikes exceed the regulator’s maximum voltage (16 V), the regulator can be destroyed. In our tests with typical power leads (~30″ test clips), we observed spikes approaching 16 V at input voltages approaching 9 V. Power supplies or leads with high inductance will make these spikes worse. An electrolytic capacitor (33 μF is a good starting point) can be added close to the regulator between VIN and GND to help suppress these spikes.

More information about LC spikes can be found in our application note, Understanding Destructive LC Voltage Spikes.

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