- P-channel FET Similar to n-channel FET, p-channel FET is constucted using a bar of P-type material into which a pair of N-type regions are diffused. Fig-2 mentions circuit symbol of p-channel FET. Following are the features of P-channel Junction FET (JFET).
- P-Channel MOSFET on the 12V (VCC) Side of the Load. Let's say you want to turn ON and OFF a 12V DC motor using an Arduino and a P-Channel MOSFET. The most intuitive way to archive this goal is to wire the MOSFET on the VCC side of the load (the motor in this case).
- P-channel, MOSFETs manufactured by Vishay, a global leader for semiconductors and passive electronic components.
- MOSFETs come in two polarities, P channel and N channel, where “P” stands for positive and “N” stands for negative.
P-channel MOSFET (metal-oxide-semiconductor field-effect transistor) Disambiguation page providing links to topics that could be referred to by the same search term This disambiguation page lists articles associated with the title PFET.
A P-Channel MOSFET is a type of MOSFET in which the channel of the MOSFET is composed of a majority of holes as current carriers. When the MOSFET is activated and is on, the majority of the current flowing are holes moving through the channels.
Mac brave lip liner. This is in contrast to the other type of MOSFET, which are N-Channel MOSFETs, in which the majority ofcurrent carriers are electrons.
Before, we go over the construction of P-Channel MOSFETs, we must go over the 2 types that exist. There are 2 types of P-Channel MOSFETs, enhancement-type MOSFETs and depletion-type MOSFETs.
A depletion-type MOSFET is normally on (maximum current flows from source to drain) when no differencein voltage exists between the gate and source terminals. However, if a voltage is applied to its gate lead, the drain-source channel becomes more resistive, until the gate voltage is so high, the transistor completely shuts off. An enhancement-type MOSFET is the opposite. It is normally off when the gate-source voltage is 0V(VGS=0). However, if a voltage is applied to its gate lead, the drain-source channel becomesless resistive.
In this article, we will go over how both P-Channel enhancement-type and depletion-type MOSFETs are constructed and operate.
How P-Channel MOSFETs Are Constructed Internally
An P-Channel MOSFET is made up of a P channel, which is a channel composed of a majority of hole current carriers. The gate terminals are made up of N-type material.
Depending on the voltage quantity and type (negative or positive)determines how the transistor operates and whether it turns on or off.
How a P-Channel Enhancement-type MOSFET Works
How to Turn on a P-Channel Enhancement Type MOSFET
To turn on a P-Channel Enhancement-type MOSFET, apply a positive voltage VS to the source of the MOSFET and apply a negative voltage to the gate terminal of the MOSFET (the gate must be sufficiently more negative than the threshold voltage across the drain-source region(VG
So with a sufficient positive voltage, VS, to the source and load, and sufficient negative voltage applied to the gate, the P-Channel Enhancement-type MOSFET is fully functional and is in the active 'ON' mode of operation.
How to Turn Off a P-Channel Enhancement Type MOSFET
To turn off a P-channel enhancement type MOSFET, there are 2 steps you can take. You can either cut off the bias positive voltage, VS, that powers the source. Or you can turn off the negative voltagegoing to the gate of the transistor.
How a P-Channel Depletion-type MOSFET Works
How to Turn on a P-Channel Depletion Type MOSFET
To turn on a P-Channel Depletion-Type MOSFET, for maximum operation, the gate voltage feeding the gate terminal should be 0V. With the gate voltage being 0V, the drain current is at is largest value and the transistor is in the active 'ON'region of conduction.
P Channel Mosfet Transistor
So, again, to turn on a P channel depletion-type MOSFET, positive voltage is applied to the source of the p-channel MOSFET. So we power the source terminal of the MOSFET with VS, a positive voltage supply. With a sufficient positive voltage, VS, and no voltage (0V) applied to the base, the P-channel Depletion-type MOSFET is in maximum operation and has the largest current.
How to Turn Off a P-Channel Depletion Type MOSFET
To turn off a P-channel MOSFET, there are 2 steps you can take. You can either cut off the bias positivevoltage, VDD, that powers the drain. Or you can apply a negative voltage to the gate. When a negativevoltage is applied to the gate, the current is reduced. As the gate voltage, VG, becomes more negative, the current lessens until cutoff, which is when then MOSFET is in the 'OFF' condition. This stops a large source-drain current.
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So ,again, as negative voltage is applied to the gate terminal of the P channel depletion-type MOSFET, the MOSFET conducts less and less current across the source-drain terminal. When the gate voltage reaches a certain negative voltage threshold, it shuts the transistor off. Negative voltage shuts the transistor off. This is for a depletion-type P-channel MOSFET.
MOSFET transistors are used for both switching and amplifying applications. MOSFETs are perhaps the most popular transistors used today. Their high input impedance makes them draw very little input current, they are easy to make, can be made very small, and consume very little power.
Related Resources
How to Build a P-Channel MOSFET Switch Circuit
N-Channel MOSFET Basics
N Channel JFET Basics
P Channel JFET Basics
Types of Transistors
A MOSFET (Metal Oxide-Semiconductor Field Effect Transistor) is a semiconductor device that can be used as a solid state switch. These are useful for controlling loads that draw more current, or require higher voltage, than a GPIO pin can supply. In their off state, MOSFETs are non-conducting, while in their on state, they have an extremely low resistance - often measured in milliohms. MOSFETs can only be used to switch DC loads.
MOSFETs have three pins, Source, Drain, and Gate. The source is connected to ground (or the positive voltage, in a p-channel MOSFET), the drain is connected to the load, and the gate is connected to a GPIO pin on the Espruino. The voltage on the gate determines whether current can flow from the drain to the load - no current flows to or from the gate (unlike a bipolar junction transistor) - this means that if the gate is allowed to float, the FET may turn on, or off, in response to ambient electrical fields, or very tiny currents. As demonstration, one can wire up a MOSFET normally, except connecting nothing to the gate pin, and then touch the gate while holding either ground or a positive voltage - even through your body’s resistance, you can turn the FET on and off! To ensure that a MOSFET remains off even if the pin is not connected (ex, after Espruino is reset), a pull-down resistor can be placed between gate and source.
MOSFETs only switch current flowing in one direction; they have a diode between source and drain in the other direction (in other words, if the drain (on an N-channel device) falls below the voltage on the source, current will flow from the source to the drain). This diode, the 'body diode' is a consequence of the manufacturing process. This is not to be confused with the diode sometimes placed between the drain and the power supply for the load - this is separate, and should be included when driving an inductive load.
Except where noted, this section assumes use of an N-channel enhancement mode MOSFET.
N-channel vs P-channel
In an N-channel MOSFET, the source is connected to ground, the drain to the load, and the FET will turn on when a positive voltage is applied to the gate. N-channel MOSFETs are easier to work with, and are the most commonly used type. They are also easier to manufacture, and thus are available for lower prices with higher performance than p-channel MOSFETs.
In a P-channel MOSFET, the source is connected to a positive voltage, and the FET will turn on when the voltage on the gate is below the source voltage by a certain amount (Vgs < 0). This means that if you want to use a P-channel mosfet to switch voltages higher than 5V, you'll need another transistor (of some sort) to turn it on and off.
Selection of MOSFETs
Gate-to-Source voltage (Vgs)
One of the most important specs is the voltage required to turn the FET completely on. This is not the threshold voltage - that's the voltage at which it first starts to turn on. Since the Espruino can only output 3.3v, for the simplest connection, we need a part that provides good performance with a 3.3v gate drive. Unfortunately, there are not many MOSFETs available in convenient through-hole packages that will work with a 3.3v gate drive. The IRF3708PBF is a good choice in the large TO-220 package - it's current handling capacity is sufficient for almost any purpose, even at 3.3v on the gate. For lower current, the 5LN01SP-AC from On Semiconductor is an option; it comes in a TO-92 package, and can handle up to 100mA.
In the datasheet for a MOSFET, a graph will typically be included showing on-state properties at various gate voltages. The key specification here will typically be given as a graph of the drain current (Id) vs drain-source voltage (Vds - this is the voltage drop across the MOSFET), with several lines for different gate voltages. For the example of the IRF3708PBF, this graph is Figure 1. Notice how at an Id of 10 amps, the voltage drop (Vds) is barely above 0.1v with a 3.3v gate drive, and one can barely tell the lines for 3.3v and higher voltages apart.
P Channel Fet Basics
There is a very wide variety of low-voltage MOSFETs available in surface mount packages with excellent specs, often at very low prices. The popular SOT-23 package can be soldered onto the Espruino's SMD prototyping area as shown in the pictures below, or used with one of many low-cost breakout boards available from eBay and many electronics hobby vendors.
Continuous Current
Make sure that the continuous current rating of the part is sufficient for the load - many parts have both a peak current and continuous current rating, and naturally, the former is often the headline spec.
Drain-Source Voltage (Vds)
Unity html5. This is the maximum voltage that the MOSFET can switch.
Maximum Gate-Source Voltage (Vgs)
This is the maximum voltage that can be applied on the gate. This is particularly relevant in the case of a p-channel MOSFET switching a fairly high voltage, when you pull the voltage down with another transistor or FET to turn it on.
Pinouts
These show the pinout of typical TO-220 and SOT-23 MOSFETs. However, ALWAYS consult the datasheet before connecting anything, in case you find yourself using a wierdo part.
Connection
N-Channel:
An Espruino being used to switch a 100W load using an IRF3708. Note the 10k resistor between gate and source. The load is a 100W 660nm LED array, pulling ~3.8A (per specs) at 22v (more like 85W) - it is outside the picture (it's rather bright).
This shows two N-channel MOSFETs on the surface mount prototyping area on an Espruino, one in SOT-23 (right) and the other in SOIC-8 (left). Note that the traces between the SMD pads and the pins on the Espruino are fairly thin, so this should not be used for currents much over an amp.
P-Channel:
This shows an N-channel MOSFET being used to turn on a P-channel MOSFET - this configuration is useful when you need to switch the high side of a circuit powered by something above 5 volts - this example assumes the Espruino's VBat is the power source.
Schematics
These schematics show a few common configurations for MOSFETs as they would be used with the Espruino. The exact values of the resistors are not essential; a higher value resistor will work fine (and may be desirable where power usage is of particular concern). As can be seen below, using a P-channel MOSFET to switch voltages above 5v involves a more complicated circuit. This is not the case when using an N-channel MOSFET to switch high voltages; since the source is grounded, the gate doesn't need to go up to the voltage being switched, like it does on a P-channel MOSFET, where the source is the positive voltage.
MOSFETs vs Relays
- MOSFETs consume essentially no power, while relays use a significant amount of power when turned on.
- MOSFETs can be driven with PWM. Relays can't.
- MOSFETs require a shared ground (or supply for p-channel), while relays completely isolate the circuit being driven.
- MOSFETs can only switch DC loads, while relays, being isolated, can switch AC as well.
MOSFETs vs Bipolar Junction Transistors
- MOSFETs are controlled by voltage, not current. There is negligible gate current, whereas a BJT has a non-negligible base current.
- MOSFETs often have a lower voltage drop in their on state.
- MOSFETs will turn themselves on if the gate is allowed to float, BJTs require current to flow, so they will not.
- MOSFETs are often more expensive, and were historically more vulnerable to static damage.
Enhancement vs Depletion mode
The majority of MOSFETs used are so-called enhancement mode devices, and the above writeup has assumed use of an enhancement mode MOSFET. Again, in an enhancement mode MOSFET, when the gate is at the same voltage as the source (Vgs=0), the MOSFET does not conduct.
In a depletion mode MOSFET, when Vgs = 0, the MOSFET is on, and a voltage must be applied to the gate in order to stop conduction. The supplied voltage is the opposite of what would turn on an enhancement mode MOSFET - so for an N-channel enhancement mode MOSFET, a negative voltage must be applied to turn it off.
Buying
P Channel Fet Operation
- eBay (common parts only)