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Sensor

technology Maturity 11-13

A sensor helps machines feel.

Light sensor.png
Light sensor.png
It sees things like light or heat. It can feel a touch, too. This helps tools work well. It makes our world better. Can you find a sensor?
Infrared Transceiver Circuit.jpg
Infrared Transceiver Circuit.jpg

38 words

A sensor is a tool that feels things.

Light sensor.png
Light sensor.png
It picks up a signal from the world. Then, it turns that signal into electricity. This helps a computer understand what is happening.

Some sensors feel a touch. You might use them on an elevator button. Other sensors can feel light. These can make a lamp grow bright.

Infrared Transceiver Circuit.jpg
Infrared Transceiver Circuit.jpg

Sensors are very small. Some are so tiny you cannot see them. These small tools work very fast. They can also be used only one time. This helps keep things clean and safe. Sensors help many machines work every day.

101 words

A sensor is a device that feels changes in the world. It takes a signal, like heat or light, and turns it into electricity. This electrical signal lets a computer know what is happening.

Light sensor.png
Light sensor.png

Sensors help many machines work. Some sensors feel a touch. You might use these on an elevator button. Other sensors feel light. These can make a lamp grow bright.

Infrared Transceiver Circuit.jpg
Infrared Transceiver Circuit.jpg

Some sensors are very small. We call these microsensors. They are made using a way called MEMS technology. These tiny tools work very fast. They are also very sensitive. Sensitivity means how much the signal changes when the world changes. For example, a thermometer shows how much the heat changes.

There are also chemical sensors. These tools find what is in a liquid or a gas. They use two steps. First, they find a specific chemical. This is called recognition. Next, they turn that find into a signal. This second step is called transduction.

LiDAR Scanner and Back Camera of iPad Pro 2020 - 3.jpg
LiDAR Scanner and Back Camera of iPad Pro 2020 - 3.jpg

Some special sensors are called biosensors. These use parts of living things, like cells or proteins, to work.

181 words

A sensor is a device that notices changes in its environment. It receives a stimulus, which is a specific signal or condition. The sensor then converts this stimulus into an electrical signal. This signal is sent to other electronics, like a computer processor. Sensors are used in many everyday objects. You might touch a sensitive button in an elevator. You might also use a lamp that changes brightness when you touch its base.

Light sensor.png
Light sensor.png

Sensors work by measuring physical or chemical properties. For example, an optical sensor can measure how light bends. A vibrational sensor can check how thick a fluid is. Some sensors even monitor the pH of a liquid. Sensitivity is a key part of how a sensor works. Sensitivity shows how much the output changes when the input changes. If a thermometer moves 1 cm for every 1 degree change, that is its sensitivity.

Infrared Transceiver Circuit.jpg
Infrared Transceiver Circuit.jpg

Scientists have developed many different kinds of sensors over time. One important type is the MOSFET sensor. These were first invented at Bell Labs between 1955 and 1960. Many different versions were made later to measure many things. For instance, Piet Bergveld invented the ISFET in 1970. This sensor is used in medicine to find things in blood. Other researchers like P.F. Cox patented the ADFET in 1974. These inventions helped sensors become very useful in modern life.

Technology has allowed sensors to become very small. We call these tiny devices microsensors. They are made using a method called MEMS technology. Microsensors are often faster and more sensitive than larger ones. There is also a high demand for disposable sensors. These are used for short-term monitoring because they are cheap and easy to use. They help us get information without needing to recalibrate them.

LiDAR Scanner and Back Camera of iPad Pro 2020 - 3.jpg
LiDAR Scanner and Back Camera of iPad Pro 2020 - 3.jpg

Sensors are also used to capture images in digital cameras. Willard Boyle and George E. Smith developed the CCD in 1969. They found that electric charges could be stored on tiny capacitors. This helped create the first digital video cameras for television. Later, Tsutomu Nakamura developed the MOS active-pixel sensor in 1985. Eric Fossum and his team then developed the CMOS sensor in the early 1990s. These technologies are the reason we have modern digital imaging today.

373 words

A sensor is a device that receives and responds to a specific signal or stimulus. This stimulus is a property or condition that the sensor detects and then converts into an electrical signal. In a broad sense, a sensor is a module or subsystem that notices changes in its environment. It then sends this information to other electronics, such as a computer processor. Sensors are essential to modern life, appearing in everything from touch-sensitive elevator buttons to lamps that dim when you touch their base.

Light sensor.png
Light sensor.png

To understand how a sensor works, we must look at its sensitivity and its transfer function. Sensitivity describes how much the sensor's output changes when the input quantity changes. For example, if a mercury thermometer moves 1 cm for every 1 °C change in temperature, its sensitivity is 1 cm/°C. Most sensors use a linear transfer function, meaning the relationship between input and output follows a straight line. The sensitivity is essentially the slope of this line. To convert an electrical output, like voltage, back into a measurement like Kelvin, you must divide the output by this slope. Often, an offset is also added or subtracted to ensure the reading is correct. For instance, if a 0 V output represents -40 °C, you must add -40 to the result.

Chemical sensors are a specialized type of sensor that provide information about the chemical composition of a liquid or gas. These devices function through two main steps: recognition and transduction. In the recognition step, molecules of a specific substance, called an analyte, interact with receptor molecules on the sensor. This interaction causes a change in a physical parameter. In the transduction step, an integrated transducer reports this change by generating an output signal. If the recognition material is biological, such as a cell or a protein, the device is called a biosensor. Scientists also use biomimetic materials, like aptamers, to mimic biological functions in these sensors.

While sensors aim to be perfect, they often experience deviations that limit their accuracy. A sensor has a full scale range, which defines the maximum and minimum values it can measure. If the input exceeds these limits, the output signal will reach a plateau. Other errors include sensitivity error, where the slope of the transfer function is incorrect, and offset error, where the signal differs by a constant value. Nonlinearity occurs when the transfer function deviates from a straight line. There are also dynamic errors caused by rapid changes in the measured property over time. Long-term drift can happen over months or years due to physical changes in the sensor itself. Finally, noise represents random deviations in the signal that vary over time.

Technological progress has allowed sensors to move from large machines to microscopic scales. Using MEMS technology, which stands for microelectromechanical systems, engineers can manufacture microsensors in bulk. These microsensors are often much faster and more sensitive than macroscopic versions. There is also a growing demand for disposable sensors. These are used for short-term monitoring or single-shot measurements because they are inexpensive and simple to use. Using disposable sensors allows for data collection without the need for recalibration or the risk of contamination.

One of the most important histories in sensing involves MOSFET sensors. The MOSFET was invented at Bell Labs between 1955 and 1960. Since then, many specialized versions have been developed. In 1970, Johannessen introduced the open-gate field-effect transistor (OGFET), and Piet Bergveld invented the ion-sensitive field-effect transistor (ISFET). The ISFET is widely used in medicine for detecting DNA, glucose, and pH levels. Other developments include the adsorption FET (ADFET) in 1974 and various gas and pressure sensors by the mid-1980s. By the early 2000s, even more advanced versions like the DNA field-effect transistor (DNAFET) were developed.

Sensors are also the foundation of modern digital imaging. In 1969, Willard Boyle and George E. Smith developed the charge-coupled device (CCD). They discovered that electric charges could be stored on tiny MOS capacitors and moved along a row. This breakthrough allowed for the creation of the first digital video cameras for television. Later, Tsutomu Nakamura developed the MOS active-pixel sensor (APS) in 1985. This was followed by the development of the CMOS active-pixel sensor by Eric Fossum and his team in the early 1990s. These technologies allow our modern cameras to capture high-quality images.

Infrared Transceiver Circuit.jpg
Infrared Transceiver Circuit.jpg
LiDAR Scanner and Back Camera of iPad Pro 2020 - 3.jpg
LiDAR Scanner and Back Camera of iPad Pro 2020 - 3.jpg

722 words
🖼️ Images & Media (3)
File:Light sensor.png
Light sensor.png
File:Infrared Transceiver Circuit.jpg
Infrared Transceiver Circuit.jpg
File:LiDAR_Scanner_and_Back_Camera_of_iPad_Pro_2020_-_3.jpg
LiDAR_Scanner_and_Back_Camera_of_iPad_Pro_...
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