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Charge-coupled device

technology Maturity 7-9

A tiny chip takes pictures.

CCD charge transfer animation.gif
CCD charge transfer animation.gif
It catches light to make a photo. This helps cameras work well. It is used in big science tools. We use it to see things. Do you like taking photos?
Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg

44 words

A tiny chip helps cameras take pictures.

CCD charge transfer animation.gif
CCD charge transfer animation.gif
It has many small parts. These parts catch light. The light turns into a tiny charge.
CCD SONY ICX493AQA sensor side.jpg
CCD SONY ICX493AQA sensor side.jpg
Then, the parts pass the charge along. They move it from one to the next. This makes a full picture.
Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg
Scientists use these chips for great work. They help us see things clearly. It is like a tiny eye for a machine.

75 words

A charge-coupled device, or CCD, is a special chip.

CCD charge transfer animation.gif
CCD charge transfer animation.gif
It helps digital cameras take high-quality pictures. The chip is made of many tiny parts. These parts are called capacitors.
CCD SONY ICX493AQA sensor side.jpg
CCD SONY ICX493AQA sensor side.jpg

Here is how the chip works. First, light shines on the chip. The light hits the capacitors. This light turns into tiny electric charges. Each charge is a small group of electrons. The amount of charge depends on the light. More light makes more charge.

Next, the chip must read the image. An outside circuit tells the capacitors what to do. The capacitors pass their charges to their neighbors. They move the charge along in a row. This is like a line of people passing buckets of water.

CCD charge transfer animation.gif
CCD charge transfer animation.gif
The last capacitor sends its charge to an amplifier. This part turns the charge into a voltage. A computer then turns those voltages into a digital picture.

Two scientists, George Smith and Willard Boyle, invented this idea. They won the Nobel Prize in Physics in 2009.

Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg
Their work changed how we see the world.

185 words

A charge-coupled device, or CCD, is a very special kind of integrated circuit.

CCD charge transfer animation.gif
CCD charge transfer animation.gif
It is a chip used to capture digital images. This technology is vital for professional, medical, and scientific work. In these fields, people need very high-quality image data. While many consumer cameras now use CMOS sensors, CCDs were the leaders for a long time. They are built using an array of linked capacitors. These tiny parts work together to turn light into information.
CCD SONY ICX493AQA sensor side.jpg
CCD SONY ICX493AQA sensor side.jpg

To understand how it works, we must look at the steps of light capture. First, light travels through a lens and hits the sensor. The sensor has a photoactive region made of silicon. When photons, which are tiny particles of light, hit the capacitors, they create electron charges. Each capacitor collects a charge that is proportional to the light intensity at that spot.

CCD charge transfer animation.gif
CCD charge transfer animation.gif
Next, an external circuit tells the capacitors to move. Each capacitor transfers its charge to its neighbor in a row. This acts like a shift register. The last capacitor in the row dumps its charge into an amplifier. This turns the charge into a voltage that a computer can read.

The history of the CCD began at Bell Labs in the late 1960s. Two scientists named Willard Boyle and George E. Smith were researching technology for memory. They realized an electric charge could be stored on a tiny MOS capacitor. In 1969, they invented the charge-coupled device. They even called them "Charge 'Bubble' Devices" in their notebooks.

Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg
In April 1970, Gil Amelio, Michael Francis Tompsett, and George Smith showed the first experimental device. It used a row of metal squares on a silicon surface. This was the very first time the CCD was used as an image sensor.

Many important developments followed this discovery. In 1974, Fairchild Semiconductor created a device with 100 x 100 pixels. Peter Dillon later invented the first color CCD sensor by adding a color filter. In 1975, Steven Sasson used a CCD to invent the first digital still camera. Sony also played a huge role by mass-producing CCDs for camcorders.

ArgusCCD.jpg
ArgusCCD.jpg
In 1980, researchers at NEC invented the pinned photodiode to stop shutter lag. This helped make CCDs much better for consumer video cameras. Even satellites, like the KH-11 KENNEN launched in 1976, used this technology.

Today, we can see the impact of this invention everywhere. The CCD concept was so important that Boyle and Smith won the Nobel Prize in Physics in 2009.

Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg
Michael Tompsett also received many awards for his work on these imaging devices. You can think of a CCD like a digital eye. It catches light and moves it along a path to create a picture. Just as your eyes send signals to your brain, the CCD sends voltages to a computer. This process allows us to see the world through digital screens and cameras.

513 words

A charge-coupled device, or CCD, is a specialized integrated circuit used for digital imaging. It consists of an array of linked, or coupled, capacitors. These tiny components work together to capture light and convert it into electrical signals. While many modern consumer devices now use CMOS sensors, CCDs remain vital for professional, medical, and scientific applications. In these fields, researchers and doctors require extremely high-quality image data.

CCD SONY ICX493AQA sensor side.jpg
CCD SONY ICX493AQA sensor side.jpg

The mechanism of a CCD relies on a process called charge transfer. The sensor contains a photoactive region, which is usually an epitaxial layer of silicon. When light enters the device through a lens, photons strike the capacitors in this region. This interaction converts the light into electron charges at the semiconductor-oxide interface. Each capacitor accumulates a charge that is proportional to the intensity of the light at that specific location.

CCD charge transfer animation.gif
CCD charge transfer animation.gif

Once the light exposure is complete, the device must read the data. An external control circuit manages the transfer of these charges. The capacitors act like a shift register, where each capacitor transfers its electric charge to its immediate neighbor. This happens in a specific sequence. The last capacitor in the array eventually dumps its charge into a charge amplifier. This amplifier converts the electrical charge into a voltage.

In a digital system, these voltages are sampled and digitized for storage in memory. In analog systems, such as older video cameras, the signal is processed as a continuous wave. There are different types of CCD architectures used for different tasks. For example, a one-dimensional array is used in line-scan cameras to capture a single slice of an image. In contrast, a two-dimensional array is used in video and still cameras to capture a full scene.

IECCD55-20.jpg
IECCD55-20.jpg

The history of the CCD began at Bell Labs during the late 1960s. Scientists Willard Boyle and George E. Smith were originally researching MOS technology for semiconductor bubble memory. They discovered that an electric charge could serve as an analog to a magnetic bubble. They realized they could store these charges on tiny MOS capacitors. In 1969, they invented the charge-coupled device, which they initially called "Charge 'Bubble' Devices."

Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg

Experimental progress happened very quickly after their discovery. In April 1970, Gil Amelio, Michael Francis Tompsett, and George Smith demonstrated the first experimental CCD image sensor. This device used a depleted MOS structure as a photodetector. By 1974, Fairchild Semiconductor had developed a 2D device with 100 x 100 pixels. In 1975, Steven Sasson used a CCD to invent the first digital still camera.

Technical improvements helped CCDs move from labs to the real world. Early sensors suffered from shutter lag, which was solved by the invention of the pinned photodiode (PPD) in 1980. This structure, developed at NEC, allowed signal carriers to transfer more efficiently with low noise. Another advancement was the interline transfer CCD, which helped reduce image smear. These innovations allowed CCDs to be used in advanced technology, such as the KH-11 KENNEN reconnaissance satellite launched in 1976.

Vertical smear.jpg
Vertical smear.jpg

The impact of this technology is recognized by the highest scientific honors. Willard Boyle and George E. Smith were awarded the Nobel Prize in Physics in 2009. Michael Tompsett also received the National Medal of Technology and Innovation for his work on CCD imagers. Today, the CCD serves as a fundamental bridge between the physical world of light and the digital world of data. It remains a cornerstone of how we observe the universe through technology.

603 words
🖼️ Images & Media (14)
File:Delta-Doped Charged Coupled Devices (CCD) for Ultra-Violet and Visible Detection.jpg
Delta-Doped Charged Coupled Devices (CCD)...
File:Nobel Prize 2009-Press Conference KVA-19.jpg
Nobel Prize 2009-Press Conference KVA-19.jpg
File:CCD charge transfer animation.gif
CCD charge transfer animation.gif
File:CCD_SONY_ICX493AQA_sensor_side.jpg
CCD_SONY_ICX493AQA_sensor_side.jpg
File:ArgusCCD.jpg
ArgusCCD.jpg
File:CCD line sensor.JPG
CCD line sensor.JPG
File:IECCD55-20.jpg
IECCD55-20.jpg
File:Propellor with rolling-shutter artifact.jpg
Propellor with rolling-shutter artifact.jpg
File:EMCCD2 color en.svg
EMCCD2 color en.svg
File:Output vs input electrons.png
Output vs input electrons.png
File:SDSSFaceplate.gif
SDSSFaceplate.gif
File:Bayer pattern on sensor.svg
Bayer pattern on sensor.svg

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