ams OSRAM Ambient Light Sensor 850 nm ODFN 6
- N° de stock RS:
- 232-9762
- Référence fabricant:
- TSL25911FN
- Fabricant:
- ams OSRAM
Actuellement indisponible
Nous ne savons pas si cet article sera de nouveau disponible. RS a l'intention de le retirer de son assortiment sous peu.
- N° de stock RS:
- 232-9762
- Référence fabricant:
- TSL25911FN
- Fabricant:
- ams OSRAM
Spécifications
Documentation technique
Législations et de normes
Détails du produit
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Sélectionner tout | Attribut | Valeur |
|---|---|---|
| Marque | ams OSRAM | |
| Product Type | Ambient Light Sensor | |
| Typical Rise Time | 300ns | |
| Mount Type | Surface | |
| Typical Fall Time | 300ns | |
| Package Type | ODFN | |
| Maximum Wavelength Detected | 850nm | |
| Minimum Supply Voltage | 2.7V | |
| Application | Commercial | |
| Maximum Supply Voltage | 3.6V | |
| Minimum Operating Temperature | -40°C | |
| Output Signal Type | I2C | |
| Number of Pins | 6 | |
| Height | 650μm | |
| Length | 2mm | |
| Series | TSL | |
| Width | 2.4mm | |
| Standards/Approvals | No | |
| Maximum Operating Temperature | 85°C | |
| Automotive Standard | No | |
| Sélectionner tout | ||
|---|---|---|
Marque ams OSRAM | ||
Product Type Ambient Light Sensor | ||
Typical Rise Time 300ns | ||
Mount Type Surface | ||
Typical Fall Time 300ns | ||
Package Type ODFN | ||
Maximum Wavelength Detected 850nm | ||
Minimum Supply Voltage 2.7V | ||
Application Commercial | ||
Maximum Supply Voltage 3.6V | ||
Minimum Operating Temperature -40°C | ||
Output Signal Type I2C | ||
Number of Pins 6 | ||
Height 650μm | ||
Length 2mm | ||
Series TSL | ||
Width 2.4mm | ||
Standards/Approvals No | ||
Maximum Operating Temperature 85°C | ||
Automotive Standard No | ||
The ams TSL2591 series is a very high sensitivity light-to-digital converter that transforms light intensity into a digital signal output capable of direct I2C interface. The device combines one broadband photodiode and one infrared-responding photodiode on a single CMOS integrated circuit. Two integrating ADCs convert the photodiode currents into a digital output that represents the irradiance measured on each channel. This digital output can be input to a microprocessor where illuminance in lux is derived using an empirical formula to approximate the human eye response. It supports a traditional level style interrupt that remains asserted until the firmware clears it.
Design flexibility for dark glass and placement
Enables operation in IR light environments
Enables dark room to sunlight operation
Reduces microprocessor interrupt overhead
Improves lux accuracy across various light sources
Liens connexes
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