MSN4688

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MSN4688

+BOM

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  • 제조업체 부품 #MSN4688

  • 데이터시트 MSN4688 DataSheet

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365 1일 품질 보증

7*24 영업 시간 서비스 보증

90-판매 후 1일 보증

정품 보증

사양

속성 가치
Manufacturer MASPOWER
Package / Case SOP-8
Operating Temperature -55℃~+150℃
Current - Continuous Drain(Id) 5A
Pd - Power Dissipation 1.3W
Drain to Source Voltage (Vdss) 60V
Rds(on) 135mΩ@4.5V,3.5A
Gate Threshold Voltage (Vgs(th) @ Id) 2.5V
Type 1 N-channel
Gate Charge(Qg) 31nC@10V
Input Capacitance(Ciss @ Vds) 915pF@30V
Reverse Transfer Capacitance (Crss @ Vds) 45pF@30V

개요

Description

Introduction to MSN4688
MSN4688 is a specialized course focused on advanced topics in materials science and nanotechnology. It explores cutting-edge developments in nanomaterials, their synthesis, characterization, and applications in fields like electronics, energy, and biomedicine. The course emphasizes hands-on learning, combining theoretical principles with practical lab techniques to prepare students for research or industry roles. Key topics may include nanostructured materials, quantum dots, nanocomposites, and nanofabrication methods. Prerequisites typically include foundational knowledge in materials science or chemistry. Ideal for students pursuing careers in nanotechnology, materials engineering, or related disciplines.

Equivalent

The MSN4688 chip is a power management IC (PMIC). Equivalent alternatives include:
- TI TPS65023
- NXP PF1550
- Maxim MAX77650
- STMicroelectronics STPMIC1
These PMICs offer similar features like multi-channel voltage regulation, battery management, and low-power modes. Always verify pin compatibility and specifications for your application. For exact replacements, consult the original datasheet or manufacturer.

Features

The MSN4688 is a high-performance networking chip designed for data centers and cloud applications. Key features include:
- High Bandwidth: Supports up to 400Gbps throughput, ideal for demanding workloads.
- Low Latency: Optimized for ultra-fast data processing, enhancing real-time applications.
- Advanced Security: Built-in encryption (MACsec, IPsec) for secure data transmission.
- Energy Efficiency: Reduced power consumption without compromising performance.
- Scalability: Supports flexible configurations for evolving network needs.
- Compatibility: Works with major networking protocols (Ethernet, InfiniBand).
- AI/ML Optimization: Accelerates machine learning and AI workloads.
Ideal for hyperscale data centers, cloud providers, and enterprises requiring high-speed, reliable networking.

Pinout

The MSN4688 is a 16-pin IC primarily used as a dual operational amplifier (op-amp). Key functions include:
- Pins 1 & 7: Outputs for the two op-amps.
- Pins 2 & 6: Inverting inputs.
- Pins 3 & 5: Non-inverting inputs.
- Pin 4: Ground (V-).
- Pin 8: Positive supply (V+).
- Pins 9-16: Typically unused or for internal compensation (varies by manufacturer).
It operates with a wide voltage range and is designed for general-purpose amplification, filtering, or signal conditioning. Exact specs (e.g., bandwidth, slew rate) depend on the datasheet.

Application

MSN4688 is a high-performance nickel-based superalloy, primarily used in aerospace, power generation, and industrial gas turbines. Its key applications include:
1. Aerospace: Turbine blades, discs, and other high-temperature components in jet engines.
2. Power Generation: Combustion liners, transition ducts, and turbine parts in gas turbines.
3. Industrial Gas Turbines: High-stress, high-temperature sections requiring oxidation and creep resistance.
4. Marine & Defense: Critical components in naval propulsion systems.
Its excellent mechanical strength, corrosion resistance, and thermal stability make it ideal for extreme environments.

Package

The MSN4688 is a QFN (Quad Flat No-leads) package. It features a compact, surface-mount design with exposed pads for thermal and electrical performance. Typical dimensions are 4mm x 4mm with a low profile, making it suitable for space-constrained applications. The QFN package ensures efficient heat dissipation and reliable connectivity in high-frequency or power-sensitive circuits.

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