

NXP USA Inc. MFOE1101
Manufacturer No:
MFOE1101
Tiny WHSLManufacturer:
Utmel No:
1786-MFOE1101
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MFOE1101 datasheet pdf and Integrated Circuits (ICs) product details from NXP USA Inc. stock available at Utmel
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- TypeParameter
- Surface Mount
having leads that are designed to be soldered on the side of a circuit board that the body of the component is mounted on.
NO - Mounting Feature
a process by which the operating system makes files and directories on a storage device (such as hard drive, CD-ROM, or network share) available for users to access via the computer's file system.
THROUGH HOLE MOUNT - Manufacturer Part NumberMFOE1101
- Rohs CodeNo
- Part Life Cycle CodeObsolete
- Ihs ManufacturerMOTOROLA INC
- Risk Rank5.88
- Operating Temperature-Max125 °C
- Operating Temperature-Min-55 °C
- Supply Voltage-Max2.2 V
- Supply Voltage-Nom2 V
- Supply Voltage-Min1.8 V
- JESD-609 Code
The "JESD-609 Code" in electronic components refers to a standardized marking code that indicates the lead-free solder composition and finish of electronic components for compliance with environmental regulations.
e0 - Terminal Finish
Terminal Finish refers to the surface treatment applied to the terminals or leads of electronic components to enhance their performance and longevity. It can improve solderability, corrosion resistance, and overall reliability of the connection in electronic assemblies. Common finishes include nickel, gold, and tin, each possessing distinct properties suitable for various applications. The choice of terminal finish can significantly impact the durability and effectiveness of electronic devices.
Tin/Lead (Sn/Pb) - Reach Compliance Code
Reach Compliance Code refers to a designation indicating that electronic components meet the requirements set by the Registration, Evaluation, Authorization, and Restriction of Chemicals (REACH) regulation in the European Union. It signifies that the manufacturer has assessed and managed the chemical substances within the components to ensure safety and environmental protection. This code is vital for compliance with regulations aimed at minimizing risks associated with hazardous substances in electronic products.
unknown - Fall Time-Max
Fall Time-Max is a parameter used to describe the time it takes for a signal to transition from a high level to a low level in electronic components such as transistors, diodes, and integrated circuits. It is typically measured in nanoseconds or microseconds and is an important characteristic that affects the overall performance of the component. A shorter fall time indicates faster switching speeds and can be crucial in applications where high-speed signal processing is required. Designers often consider the fall time-max specification when selecting components for circuits that require precise timing and fast response times.
16 ns - Number of Channels1
- Data Rate
Data Rate is defined as the amount of data transmitted during a specified time period over a network. It is the speed at which data is transferred from one device to another or between a peripheral device and the computer. It is generally measured in Mega bits per second(Mbps) or Mega bytes per second(MBps).
30 Mbps - Rise Time
In electronics, when describing a voltage or current step function, rise time is the time taken by a signal to change from a specified low value to a specified high value.
15 ns - Fiber Optic Device Type
Fiber Optic Device Type refers to the specific type or category of electronic components that are designed to transmit or receive data using fiber optic technology. Fiber optic devices are used to convert electrical signals into light signals for transmission over optical fibers, which offer high-speed data transfer and long-distance communication capabilities. Common types of fiber optic devices include transceivers, connectors, amplifiers, splitters, and switches, each serving a specific function in a fiber optic network. Understanding the fiber optic device type is crucial for selecting the appropriate components for building or maintaining fiber optic communication systems.
LED EMITTER - Operating Wavelength-Nom
The parameter "Operating Wavelength-Nom" in electronic components refers to the nominal or average wavelength at which the component is designed to operate optimally. This parameter is particularly important in components used in optical systems, such as lasers, photodetectors, and optical filters. The operating wavelength is a key characteristic that determines the performance and compatibility of the component within a specific optical system or network. It is crucial for ensuring that the component can effectively transmit, receive, or manipulate light signals at the desired wavelength range. Manufacturers typically specify the operating wavelength range or nominal wavelength to help users select the appropriate components for their optical applications.
850 nm - Supply Current
Supply current refers to the input current to an LDO regulator at no load, which flows inside the IC in order to operate. The power consumption of an LDO regulator can be calculated as. (Input Voltage) x (Consumption current of IC itself) + (Input Voltage - Output Voltage) x (Load current)
100 mA - Transmission Type
Transmission Type in electronic components refers to the method by which signals are conveyed from one point to another within a circuit or system. It can encompass various modalities such as analog, digital, or varying forms of modulation used to transmit information. Different transmission types can also indicate whether the transmission is unidirectional or bidirectional, impacting how information flows through the system. Selection of transmission type is crucial for optimizing performance, speed, and reliability in communication systems.
ANALOG/DIGITAL - Spectral Width
Spectral width in electronic components refers to the range of frequencies over which the component can effectively operate or respond. It is a measure of the bandwidth or frequency range within which the component can function optimally without significant loss or distortion. A wider spectral width indicates that the component can handle a broader range of frequencies, making it more versatile in various applications. Spectral width is an important parameter to consider when designing or selecting electronic components for specific tasks, as it directly impacts the component's performance and compatibility with different signal frequencies.
50 nm