Automotive, AEC-Q103, XENSIV™ Series, Microphones

Results:
3
Manufacturer
Series
Frequency Range
Size / Dimension
Height (Max)
Sensitivity
S/N Ratio
Output Type
Voltage - Rated
Current - Supply
Voltage Range
Impedance
Shape
Termination
Direction
Ratings
Type
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Results remaining3
Applied Filters:
Automotive, AEC-Q103, XENSIV™
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ImageProduct DetailPriceAvailabilityECAD ModelVoltage - RatedShapeTerminationImpedanceRatingsHeight (Max)Size / DimensionSeriesTypeOutput TypeDirectionFrequency RangeSensitivityS/N RatioVoltage RangeCurrent - SupplyPort Location
IM67D130AXTSA2
IC MEMS DGTL XENSIV LLGA-5
1+
$2.2817
5+
$2.1549
10+
$2.0282
Quantity
694 Available
Can ship immediately
Ships from: HK
PCB Symbol, Footprint & 3D Model
-
Rectangular
Solder Pads
-
-
0.051" (1.30mm)
0.157" L x 0.118" W (4.00mm x 3.00mm)
Automotive, AEC-Q103, XENSIV™
MEMS (Silicon)
Digital, PDM
Noise Cancelling
20 kHz ~ 20 kHz
-36dB ±1dB @ 94dB SPL
67dB
1.62 V ~ 3.6 V
980 µA
Bottom
IM67D130AXTSA1
MIC MEMS DIGITAL PDM NC -36DB
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
-
Rectangular
Solder Pads
-
-
-
-
Automotive, AEC-Q103, XENSIV™
MEMS (Silicon)
Digital, PDM
Noise Cancelling
-
-36dB
67dB
1.62 V ~ 3.6 V
980 µA
Bottom
IM68A130AXTMA1
AEC-Q103 QUALIFIED HIGH PERFORMA
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Quantity
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PCB Symbol, Footprint & 3D Model
2.6 V
Rectangular
Solder Pads
400 Ohms
-
0.038" (0.98mm)
0.132" L x 0.098" W (3.35mm x 2.50mm)
Automotive, AEC-Q103, XENSIV™
MEMS (Silicon)
Analog
Noise Cancelling
10 Hz ~ 17 kHz
-38dB
68dB
2.4 V ~ 3.6 V
135 µA
Bottom

Microphones

Microphones are electronic devices that convert sound waves into electrical signals. This conversion allows for various applications, including storing, transmitting, and rebroadcasting audio. Microphones come in a wide range of designs to suit different needs. There are large boom-style microphones, commonly used in professional recording studios and broadcasting settings, known for their high-quality audio capture. On the other hand, there are smaller and more popular MEMS (MicroElectroMechanical System) microphones, often found in consumer electronics like smartphones and wearable devices due to their compact size and efficiency. These microphones are differentiated by several factors. Impedance refers to the electrical resistance of the microphone's output signal and impacts its compatibility with different audio systems. Voltage rating determines the maximum voltage that can be applied to the microphone without causing damage. Sensitivity refers to the microphone's ability to capture sound accurately and is usually measured in decibels per Pascal (dB/Pa). The frequency range indicates the range of frequencies the microphone can effectively capture, ensuring accurate reproduction of different audio sources. Port location refers to the placement of the microphone's input or output ports, which can affect its suitability for specific applications. Overall size and mounting type play a role in determining the microphone's physical form, making it suitable for different setups and installations. Additionally, microphones offer various output interfaces to connect with audio systems. Analog output interfaces provide a continuous electrical signal that corresponds to the captured sound. I2S (Inter-IC Sound), PDM (Pulse-Density Modulation), and TDM (Time-Division Multiplexing) are digital output interfaces that allow for efficient transmission of audio data between microphones and other devices. By considering these factors, individuals and professionals can choose the right microphone to meet their specific requirements, ensuring optimal sound capture and quality in various applications.