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| intro_cmos [2026/08/11 09:41] – [Potential well] xhoana.likmeta.ext | intro_cmos [2026/09/22 14:18] (current) – [Front side illmunation (FSI) and Bask side illumination (BI)] antoine | ||
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| - | **2 main technologies: | + | ==== 2 main technologies: |
| - | N-Well: | + | **//N-Well |
| - | * is based on P-type silicon | + | NMOS sits on the P-substrate |
| - | * N-type impurities diffused in → forms N-well | + | PMOS sits inside the N-well |
| - | * PMOS transistor built inside the N-well | + | Every terminal : Body, Source, Gate, Drain - is labeled |
| - | * NMOS transistor built directly on the P-substrate | + | NMOS + PMOS together form one CMOS pair |
| - | * Most widely used in industry — simpler, well-understood | + | |
| - | <figure center |N-Well | + | <figure center |N-Well |
| - | {{::{{:image4.png?400| https:// | + | {{{{:nwellfinishedstructure.png?400|}} |
| - | < | + | < |
| </ | </ | ||
| - | P-Well: | + | **//P-Well |
| - | * Base wafer: | + | PMOS (p+) sits on the N-substrate |
| - | * P-type impurities diffused in → forms P-well | + | NMOS (n+) sits inside the P-well |
| - | * NMOS transistor built inside the P-well | + | Metal on top connects source, drain, and gate |
| - | * PMOS transistor built directly | + | Mirror |
| - | * Exact mirror image of the N-well | + | |
| - | <figure center | P-Well | + | <figure center |P-Well |
| - | {{:{{:image5.png?400| https:// | + | {{{:pwellfinishedstructure.png?400|}} |
| - | < | + | < |
| </ | </ | ||
| - | |||
| - | |||
| - | |||
| Line 126: | Line 121: | ||
| < | < | ||
| </ | </ | ||
| - | ==== Passive pixel sensor (PPS)==== | + | ==== Passive pixel sensor (PPS)=== |
| - | + | //Passive Pixel Sensor (PPS)// is a basic CMOS image sensor pixel architecture. Is an early type of digital image sensor. Each pixel uses a photodiode and a single transistor switch to transfer charges without in-pixel amplification. | |
| - | **Passive Pixel Sensor (PPS)** is a basic CMOS image sensor pixel architecture. Is an early type of digital image sensor. Each pixel uses a photodiode and a single transistor switch to transfer charges without in-pixel amplification. | + | |
| ==== Active pixel sensor (APS) ==== | ==== Active pixel sensor (APS) ==== | ||
| - | **Active Pixel Sensor (APS):** Each pixel includes active components, typically an amplifier, enabling local charge-to-voltage conversion and multiplexed readout | + | //Active Pixel Sensor (APS)//:Each pixel includes active components, typically an amplifier, enabling local charge-to-voltage conversion and multiplexed readout |
| - | **3T-APS: | + | //3T-APS//: pixel normally contains a photodiode and three transistors: |
| It operates through three phases | It operates through three phases | ||
| 1. Reset transistor | 1. Reset transistor | ||
| Line 139: | Line 133: | ||
| 4. Photodiode as the light-sensitive element | 4. Photodiode as the light-sensitive element | ||
| - | **4T-APS** adds a transfer gate and uses a pinned (buried) photodiode instead of a basic p-n junction photodiode. | + | //4T-APS// adds a transfer gate and uses a pinned (buried) photodiode instead of a basic p-n junction photodiode. |
| adds one extra transistor compared with 3T APS: | adds one extra transistor compared with 3T APS: | ||
| 1. Reset transistor | 1. Reset transistor | ||
| Line 154: | Line 148: | ||
| </ | </ | ||
| ==== Digital pixel sensor (DPS) ==== | ==== Digital pixel sensor (DPS) ==== | ||
| - | + | //Digital Pixel Sensor (DPS)// is a CMOS pixel architecture in which analog-to-digital conversion is performed at the pixel level. | |
| - | Digital Pixel Sensor (DPS) is a CMOS pixel architecture in which analog-to-digital conversion is performed at the pixel level. | + | |
| Each pixel contains a dedicated analog-to-digital converter controlled by reset and select signals. Instead of sending an analog voltage to column circuitry for later conversion, each pixel outputs a digital signal. | Each pixel contains a dedicated analog-to-digital converter controlled by reset and select signals. Instead of sending an analog voltage to column circuitry for later conversion, each pixel outputs a digital signal. | ||
| ===== Types of illumination ===== | ===== Types of illumination ===== | ||
| - | ==== Front side illmunation (FSI) and Bask side illumination (BI) ==== | + | ==== Front side illmunation (FSI) and Back side illumination (BI) ==== |
| More for early sensors [(Advances_on_CMOS)] | More for early sensors [(Advances_on_CMOS)] | ||
| Since its invention in 1993, CMOS image technology has evolved. The first architectures were front-illuminated, | Since its invention in 1993, CMOS image technology has evolved. The first architectures were front-illuminated, | ||
| Line 180: | Line 173: | ||
| //In the most common **Bayer pattern**, the filters are arranged as (RGGB) | //In the most common **Bayer pattern**, the filters are arranged as (RGGB) | ||
| - | and red channels, as shown in figure 4. | + | and red channels. |
| <figure center |color_pattern> | <figure center |color_pattern> | ||
| Line 189: | Line 182: | ||
| <figure center | RGB CFA layouts> | <figure center | RGB CFA layouts> | ||
| - | {{ :: | + | {{ :: |
| - | < | + | < |
| </ | </ | ||