Logic - Translators, Level Shifters

Image Part Number Description / PDF Quantity Rfq
MAX3378EEUD+T

MAX3378EEUD+T

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 14TSSOP

5562

MAX13055EETI+

MAX13055EETI+

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 28TQFN

773190

MAX9372EUA+T

MAX9372EUA+T

Maxim Integrated

IC TRNSLTR UNIDIRECTIONAL 8UMAX

7500

MAX13042EETD+T

MAX13042EETD+T

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 14TDFM

0

MAX3012EUP+T

MAX3012EUP+T

Maxim Integrated

IC TRNSLTR UNIDIR 20TSSOP

0

MAX13042EEBC+T

MAX13042EEBC+T

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 12UCSP

12500

MAX13030EETE+

MAX13030EETE+

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 16TQFN

246

MAX3390EEUD+

MAX3390EEUD+

Maxim Integrated

IC TRNSLTR UNIDIR 14TSSOP

3684032

MAX3390EEUD+T

MAX3390EEUD+T

Maxim Integrated

IC TRNSLTR UNIDIR 14TSSOP

3558

MAX13032EETE+T

MAX13032EETE+T

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 16TQFN

5000

MAX9371ESA+

MAX9371ESA+

Maxim Integrated

IC TRNSLTR UNIDIRECTIONAL 8SOIC

14610400

MAX9376EUB+T

MAX9376EUB+T

Maxim Integrated

IC TRNSLTR UNIDIRECTIONAL 10UMAX

0

MAX13014EKA+T

MAX13014EKA+T

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL SOT23-8

50000

MAX3395EETC+T

MAX3395EETC+T

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 12TQFN

145

MAX3001EAUP+

MAX3001EAUP+

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 20TSSOP

281628

MAX3395EETC+

MAX3395EETC+

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 12TQFN

1520

MAX3393EEUD+

MAX3393EEUD+

Maxim Integrated

IC TRNSLTR UNIDIR 14TSSOP

3746432

MAX3002EUP+

MAX3002EUP+

Maxim Integrated

IC TRNSLTR BIDIRECTIONAL 20TSSOP

100

MAX6621AUB+

MAX6621AUB+

Maxim Integrated

IC TRNSLTR UNIDIRECTIONAL 10UMAX

1791800

MAX9376EUB+

MAX9376EUB+

Maxim Integrated

IC TRNSLTR UNIDIRECTIONAL 10UMAX

621150

Logic - Translators, Level Shifters

1. Overview

Logic translators and level shifters are semiconductor devices that enable signal compatibility between circuits operating at different voltage levels. These ICs ensure reliable data transmission by converting logic signals from one voltage domain to another, maintaining signal integrity in mixed-voltage systems. Their importance has grown with the proliferation of low-voltage CMOS technologies and multi-rail power architectures in modern electronics.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Single-direction translatorsUnidirectional voltage conversion with isolationSPI interface between 3.3V FPGA and 1.8V sensors
Bi-directional translatorsAutomatic direction detection, dual-voltage I/OI2C bus bridging between 5V microcontroller and 2.5V EEPROM
Multi-channel level shiftersParallel conversion of multiple signals (4-32 channels)Memory interface between SoC and DDR4 SDRAM modules
Direction-controlled translatorsExternal control pin for signal direction selectionUART level conversion in industrial communication modules

3. Structure and Composition

Typical devices feature a monolithic CMOS structure with dual power supply inputs (VCCA and VCCB). Physical components include:

  • Dual-supply MOSFET pairs for voltage translation
  • Integrated clamp circuits for ESD protection
  • Direction control logic (for bidirectional types)
  • Channel-specific enable/disable circuitry

Common package types: TSSOP (14-48 pins), QFN (20-64 pins), WLCSP (1.5 1.5mm ultra-compact).

4. Key Technical Specifications

ParameterSignificance
Voltage range (1.2V-5.5V)Determines compatibility with different logic families
Conversion rate (100Mbps-1.2Gbps)Limits maximum operating frequency
Channel count (1-32)Impacts system integration density
Propagation delay (2-20ns)Affects timing critical applications
Quiescent current (1-100 A)Power efficiency in battery-powered systems

5. Application Areas

Key industries include:

  • Telecommunications: 5G baseband processors interfacing with RF front-ends
  • Industrial automation: PLC modules connecting 24V sensors to 3.3V MCUs
  • Consumer electronics: Smartphone PMIC to application processor communication
  • Automotive systems: CAN-FD transceiver voltage adaptation
  • IoT devices: Sensor hub interfacing between different voltage rail components

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
TI (Texas Instruments)TXB01088-channel, 1.2-3.6V to 1.65-5.5V translation, auto-direction detection
NXP SemiconductorsLTC28503.3/5V dual supply, 15kV ESD protection, RS485/UART interface
ON SemiconductorNXU4084-channel, 0.9-5.5V range, sub-1ns propagation delay
STMicroelectronicsL6470Stepper motor driver with integrated level shifting for industrial automation

7. Selection Guidelines

Key considerations:

  • Match supply voltage ranges with source/target systems
  • Ensure conversion rate meets timing requirements
  • Choose appropriate channel density to minimize PCB area
  • For bidirectional buses, select devices with automatic direction sensing
  • Consider thermal performance for high-current applications
  • Evaluate ESD protection levels for industrial environments

8. Industry Trends

Development directions include:

  • Voltage scaling down to 0.8V core operation
  • Integration with signal conditioning functions
  • Increased adoption of capacitive isolation technology
  • Advanced packaging (3D TSV, fan-out WLP)
  • Protocol-aware smart translation (I3C, PCIe 6.0)
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