AND8326/D. PCB Design Guidelines for Dual Power Supply Voltage Translators



Similar documents
AND8336. Design Examples of On Board Dual Supply Voltage Logic Translators. Prepared by: Jim Lepkowski ON Semiconductor.

NUP4106. Low Capacitance Surface Mount TVS for High-Speed Data Interfaces SO 8 LOW CAPACITANCE VOLTAGE SUPPRESSOR 500 WATTS PEAK POWER 3.

AND8229/D. An Introduction to Transient Voltage Suppression Devices APPLICATION NOTE

ESD9X3.3ST5G Series, SZESD9X3.3ST5G Series. Transient Voltage Suppressors Micro Packaged Diodes for ESD Protection

LC03-6R2G. Low Capacitance Surface Mount TVS for High-Speed Data Interfaces. SO-8 LOW CAPACITANCE VOLTAGE SUPPRESSOR 2 kw PEAK POWER 6 VOLTS

2N6056. NPN Darlington Silicon Power Transistor DARLINGTON 8 AMPERE SILICON POWER TRANSISTOR 80 VOLTS, 100 WATTS

CM1213A-04SO, SZCM1213A-04SO 4-Channel Low Capacitance ESD Protection Array

ESD Line Ultra-Large Bandwidth ESD Protection

AND9015. A Solution for Peak EMI Reduction with Spread Spectrum Clock Generators APPLICATION NOTE. Prepared by: Apps Team, BIDC ON Semiconductor

NUP2105L, SZNUP2105L. Dual Line CAN Bus Protector SOT 23 DUAL BIDIRECTIONAL VOLTAGE SUPPRESSOR 350 W PEAK POWER

AND8008/D. Solid State Control Solutions for Three Phase 1 HP Motor APPLICATION NOTE

2N2222A. Small Signal Switching Transistor. NPN Silicon. MIL PRF 19500/255 Qualified Available as JAN, JANTX, and JANTXV.

AND8132/D. Performance Improvements to the NCP1012 Evaluation Board APPLICATION NOTE

Vdc. Vdc. Adc. W W/ C T J, T stg 65 to C

NUD4011. Low Current LED Driver

1.5SMC6.8AT3G Series, SZ1.5SMC6.8AT3G Series Watt Peak Power Zener Transient Voltage Suppressors. Unidirectional*

CS V/250 ma, 5.0 V/100 ma Micropower Low Dropout Regulator with ENABLE

MC14008B. 4-Bit Full Adder

2N4401. General Purpose Transistors. NPN Silicon. Pb Free Packages are Available* Features MAXIMUM RATINGS THERMAL CHARACTERISTICS

1N59xxBRNG Series. 3 W DO-41 Surmetic 30 Zener Voltage Regulators

2N4921G, 2N4922G, 2N4923G. Medium-Power Plastic NPN Silicon Transistors 1.0 AMPERE GENERAL PURPOSE POWER TRANSISTORS VOLTS, 30 WATTS

LM A, Adjustable Output, Positive Voltage Regulator THREE TERMINAL ADJUSTABLE POSITIVE VOLTAGE REGULATOR

NTMS4920NR2G. Power MOSFET 30 V, 17 A, N Channel, SO 8 Features

P2N2222ARL1G. Amplifier Transistors. NPN Silicon. These are Pb Free Devices* Features.

3EZ6.2D5 Series. 3 Watt DO-41 Surmetic 30 Zener Voltage Regulators

MPS2222, MPS2222A. NPN Silicon. Pb Free Packages are Available* Features MAXIMUM RATINGS MARKING DIAGRAMS THERMAL CHARACTERISTICS

AND8365/D. 125 kbps with AMIS-4168x APPLICATION NOTE

CM2009. VGA Port Companion Circuit

NSI45060JDT4G. Adjustable Constant Current Regulator & LED Driver. 45 V, ma 15%, 2.7 W Package

NLSX Bit 24 Mb/s Dual-Supply Level Translator

AND9190/D. Vertical Timing Optimization for Interline CCD Image Sensors APPLICATION NOTE

Prepared by: Paul Lee ON Semiconductor

MCR08B, MCR08M. Sensitive Gate Silicon Controlled Rectifiers. Reverse Blocking Thyristors. SCRs 0.8 AMPERES RMS 200 thru 600 VOLTS

BC327, BC327-16, BC327-25, BC Amplifier Transistors. PNP Silicon. These are Pb Free Devices* Features MAXIMUM RATINGS

NCP1090GEVB, NCP1094GEVB. Power-over-Ethernet PD Interface Evaluation Board User's Manual EVAL BOARD USER S MANUAL.

TIP140, TIP141, TIP142, (NPN); TIP145, TIP146, TIP147, (PNP) Darlington Complementary Silicon Power Transistors

1SMB59xxBT3G Series, SZ1SMB59xxT3G Series. 3 Watt Plastic Surface Mount Zener Voltage Regulators

AND8433/D. Using ON Semiconductor Constant Current Regulator (CCR) Devices in AC Applications APPLICATION NOTE

2N5460, 2N5461, 2N5462. JFET Amplifier. P Channel Depletion. Pb Free Packages are Available* Features. MAXIMUM RATINGS

CAT4101TV. 1 A Constant-Current LED Driver with PWM Dimming

NUD4001, NSVD4001. High Current LED Driver

2N3903, 2N3904. General Purpose Transistors. NPN Silicon. Features Pb Free Package May be Available. The G Suffix Denotes a Pb Free Lead Finish

MMSZxxxT1G Series, SZMMSZxxxT1G Series. Zener Voltage Regulators. 500 mw SOD 123 Surface Mount

2N3906. General Purpose Transistors. PNP Silicon. Pb Free Packages are Available* Features MAXIMUM RATINGS

2N6387, 2N6388. Plastic Medium-Power Silicon Transistors DARLINGTON NPN SILICON POWER TRANSISTORS 8 AND 10 AMPERES 65 WATTS, VOLTS

1SMA5.0AT3G Series, SZ1SMA5.0AT3G Series. 400 Watt Peak Power Zener Transient Voltage Suppressors. Unidirectional

2N3903, 2N3904. General Purpose Transistors. NPN Silicon. Pb Free Packages are Available* Features. MAXIMUM RATINGS

BC546B, BC547A, B, C, BC548B, C. Amplifier Transistors. NPN Silicon. Pb Free Packages are Available* Features. MAXIMUM RATINGS

MMBZ52xxBLT1G Series, SZMMBZ52xxBLT3G. Zener Voltage Regulators. 225 mw SOT 23 Surface Mount

MPSA92, MPSA93. High Voltage Transistors. PNP Silicon. Pb Free Packages are Available* Features. MAXIMUM RATINGS MARKING DIAGRAM

BC337, BC337-25, BC Amplifier Transistors. NPN Silicon. These are Pb Free Devices. Features MAXIMUM RATINGS

C106 Series. Sensitive Gate Silicon Controlled Rectifiers

MMBF4391LT1G, SMMBF4391LT1G, MMBF4392LT1G, MMBF4393LT1G. JFET Switching Transistors. N Channel

AND8480/D. CrM Buck LED Driver Evaluation Board APPLICATION NOTE

BC546B, BC547A, B, C, BC548B, C. Amplifier Transistors. NPN Silicon. Pb Free Package is Available* Features. MAXIMUM RATINGS

DN05034/D. Enhanced PWM LED Dimming DESIGN NOTE

NS3L V, 8-Channel, 2:1 Gigabit Ethernet LAN Switch with LED Switch

120 V AC, Low Cost, Dimmable, Linear, Parallel to Series LED Driving Circuit

TIP41, TIP41A, TIP41B, TIP41C (NPN); TIP42, TIP42A, TIP42B, TIP42C (PNP) Complementary Silicon Plastic Power Transistors

MBR2045CT SCHOTTKY BARRIER RECTIFIER 20 AMPERES 45 VOLTS

Device Application Topology Efficiency Input Power Power Factor THD NSIC2030JB, NSIC2050JB R4 Q2 Q1 R9

NLSX Bit 20 Mb/s Dual-Supply Level Translator

LB1836M. Specifications. Monolithic Digital IC Low-Saturation Bidirectional Motor Driver for Low-Voltage Drive. Absolute Maximum Ratings at Ta = 25 C

LOW POWER SCHOTTKY. GUARANTEED OPERATING RANGES ORDERING INFORMATION

1N4001, 1N4002, 1N4003, 1N4004, 1N4005, 1N4006, 1N4007. Axial Lead Standard Recovery Rectifiers

AND8147/D. An Innovative Approach to Achieving Single Stage PFC and Step-Down Conversion for Distributive Systems APPLICATION NOTE

MC10SX1190. Fibre Channel Coaxial Cable Driver and Loop Resiliency Circuit

AND9035/D. BELASIGNA 250 and 300 for Low-Bandwidth Applications APPLICATION NOTE

Spread Spectrum Clock Generator

MARKING DIAGRAMS LOGIC DIAGRAM PDIP 16 P SUFFIX CASE 648 DIP PIN ASSIGNMENT ORDERING INFORMATION CDIP 16 L SUFFIX CASE 620

CS3341, CS3351, CS387. Alternator Voltage Regulator Darlington Driver

How To Fit A 2Mm Exposed Pad To A Dfn Package

1N5820, 1N5821, 1N5822. Axial Lead Rectifiers SCHOTTKY BARRIER RECTIFIERS 3.0 AMPERES 20, 30, 40 VOLTS

LOW POWER SCHOTTKY. GUARANTEED OPERATING RANGES ORDERING INFORMATION PLASTIC N SUFFIX CASE 648 SOIC D SUFFIX CASE 751B

MC14001B Series. B Suffix Series CMOS Gates MC14001B, MC14011B, MC14023B, MC14025B, MC14071B, MC14073B, MC14081B, MC14082B

AMIS High-Speed 3.3 V Digital Interface CAN Transceiver

LOW POWER NARROWBAND FM IF

AND8360. AMIS Multiple CAN Bus Network APPLICATION NOTE

BSP52T1 MEDIUM POWER NPN SILICON SURFACE MOUNT DARLINGTON TRANSISTOR

SN74LS74AMEL. Dual D Type Positive Edge Triggered Flip Flop LOW POWER SCHOTTKY

Flexible Active Shutter Control Interface using the MC1323x

MC14175B/D. Quad Type D Flip-Flop

P D Operating Junction Temperature T J 200 C Storage Temperature Range T stg 65 to +150 C

MC74AC138, MC74ACT of-8 Decoder/Demultiplexer

Using the High Input Voltage Charger for Single Cell Li-Ion Batteries (KIT34671EPEVBE)

STF USB Filter with ESD Protection

AND8328/D. 700 ma LED Power Supply Using Monolithic Controller and Off-Line Current Boosted (Tapped Inductor) Buck Converter

NCT65. Remote Trip Point Temperature Sensor with Overtemperature Shutdown

NLSX Bit 20 Mb/s Dual-Supply Level Translator

Hardware Configurations for the i.mx Family USB Modules

MC13783 Buck and Boost Inductor Sizing

PD Storage Temperature Range Tstg 65 to +150 C Junction Temperature TJ 200 C

Grounding Demystified

LEDs offer a more energy efficient and no radiated heat, no Ultra Violet light solution to replace some halogen lamp applications.

SN54/74LS682 SN54/74LS684 8-BIT MAGNITUDE COMPARATORS SN54/74LS688 8-BIT MAGNITUDE COMPARATORS FAST AND LS TTL DATA 5-603

CAT4109, CAV Channel Constant-Current RGB LED Driver with Individual PWM Dimming

LC898300XA. Functions Automatic adjustment to the individual resonance frequency Automatic brake function Initial drive frequency adjustment function

CAT V High Current Boost White LED Driver

MC34063A, MC33063A, NCV33063A. 1.5 A, Step Up/Down/ Inverting Switching Regulators

MCR100 Series. Sensitive Gate Silicon Controlled Rectifiers. Reverse Blocking Thyristors. SCRs 0.8 A RMS 100 thru 600 V

Transcription:

PCB Design Guidelines for Dual Power Supply Voltage Translators Jim Lepkowski ON Semiconductor Introduction The design of the PCB is an important factor in maximizing the performance of a dual power supply voltage translator. The PCB design guidelines presented in this document offer the following benefits: Effective power supply decoupling is provided by placing ceramic capacitors next to the IC with minimum length connection traces Short PCB traces and ground planes reduce RF susceptibility and radiated emissions Robust ESD and EMI protection is achieved by placing Transient Voltage Suppressors (TVS) diodes next to the I/O connector Decoupling Capacitors Decoupling capacitors increase the noise immunity level of a translator by reducing the supply voltage droop. The capacitors filter and bypass noise signals on the power supply voltage lines to ground. These transients are due to the high peak, but short duration switching transients that can cause problems such as glitches on the output voltage signals. Figure 1 provides an example of the recommended locations of the V L and V CC decoupling capacitors. Ceramic capacitors with a magnitude of 0.01 F to 0.1 F are a good choice because they are inexpensive, small and have excellent high frequency attenuation specifications. Ground and power planes are one option commonly used to provide short, low impedance trace connections. Minimizing the Loop Area Figure 2 shows that the translator's I/O 1 and I/O 2 traces form a loop with the ground trace. The loop area functions as an antenna that allows high frequency noise to enter (susceptibility) and leave (emissions) the PCB. Furthermore, RF susceptibility and emissions are proportional to the size of the loop and the frequency or bandwidth of the signals. The bandwidth of a digital signal is produced by the fast rise and fall times and can be approximated as f BW 1 / ( t Rise ) 1/ ( t Fall ). Figure 1. Effective Power Supply Decoupling is Provided by Locating the Capacitors as Close as Possible to the V L and V CC Power Pins while Providing a Low Impedance Ground Connection Semiconductor Components Industries, LLC, 2008 April, 2008 - Rev. 0 1 Publication Order Number: AND8326/D

Figure 2. Long PCB Traces Increase RF Susceptibility and Emissions RF susceptibility and radiated emissions can be reduced by minimizing the loop area formed by high speed data and ground lines. The first step is to shorten the translator's I/O-to-connector trace lengths. Next, incorporating a ground plane in the PCB design will reduce the loop area. Loop problems can also be minimized by slowing the edge rate of the signals; however, this approach typically is not an option because translator's have a relatively modest output current specification. Figure 3 shows a layout that can be used to reduce the translator's RF susceptibility and emissions. Figure 3. Short PCB Traces and Ground Planes Decrease RF Susceptibility and Emissions. 2

TVS Diode Protection Devices Why are TVS devices required? TVS devices typically are not required for internal PCB translations; however, they should be used for external module-to-module applications. Translators that are connected to I/O connectors are exposed to potential harmful ESD and EMI surge voltages. The power supply and data cables plugged into the I/O connector are common entry points for conducted and coupled transient surge voltages. Also, the parasitic cable capacitances and inductances provide a path for the power line surge voltages to be coupled into the data lines. Voltage translators typically have a much higher ESD rating then a conventional logic IC; however, their immunity level for other surge pulses is not specified. In contrast, TVS diodes have a higher ESD rating and are specified for longer duration, higher energy surge pulses. The surge ability of a TVS device is proportional to die size and it is not practical to incorporate large protection devices inside an IC. The translator's small protection devices can reliably withstand only a limited number of low energy, short duration surge events such as ESD. In contrast, external TVS devices have a relatively large die size and are designed to withstand very high ESD levels and repetitive long duration transient surge voltages. TVS PCB Layout Guidelines Only a few design layout rules are needed to for TVS diodes to increase the translator's ability to suppress surge voltages. Figure 4 provides a graphical representation of the layout recommendations. The PCB design guidelines include: Locate the TVS devices close to the I/O connector Connect the surge protection circuits to chassis or power ground Select surface mount TVS devices Figure 4. Locating the TVS Devices Close to the I/O Connector Ensures that a Surge Voltage Entering the PCB will be Clamped by the Protection Circuit Before the Pulse can be Coupled into Adjacent Traces Location TVS devices should be located close to the connector with short, low impedance connection traces. If the TVS diode and internal IC protection circuits have a similar turn-on voltage, the impedance of their PCB traces will be the key factor that determines where the surge energy will be dissipated. The close proximity of the TVS devices to the connector results in a trace impedance that is less than the translator-to-i/o connector trace. This ensures that the surge current will be dissipated by the external TVS devices rather than by the translator's internal protection circuit. Ground Options The TVS devices should shunt the surge voltage to chassis ground rather than signal ground. Shunting the surge voltage directly to the translator's signal ground can cause ground bounce. PCBs that have a single ground can minimize the TVS device's ground connection impedance by using stub traces that are relatively short and wide. Package Selection A small TVS device usually has better EMI characteristics than a device housed in a larger leaded package. The inductance of a TVS diode is proportional to its size; thus, a small SMT package reduces the magnitude of the voltage spike that is produced by the V = L I/ t inductance term. In addition, inductance degrades the high frequency attenuation characteristics of the TVS device. 3

TVS Diode Selection Guidelines Diode arrays and Avalanche TVS diodes provide a simple, low cost solution to protect the translator's I/O pins. A TVS device can also be used on the power line associated with the I/O connector; however, the decoupling capacitor typically is adequate. Additional details on TVS diodes are provided in references [1] and [2]. Diode Array Protection Circuit Figure 5. A Diode Array Protection Circuit Clamps a Negative and Positive Surge Pulse to -0.7 and V CC + 0.7 V, Respectively Figure 5 provides an example of a diode array protection circuit. Diodes arrays steer the surge current into the ground and power supply planes to dissipate the energy of the transient voltage pulse. The main advantage of the array is that the capacitance of a switching diode is low and will not distort a high speed digital signal. Diode arrays, such as the NUP1301, with a capacitance of less than 1 pf are readily available. The main disadvantage of the diode array circuit is that a potential for back drive can exist. Backdrive occurs when a path exists for current to flow through the diode array via a data line. The data line connecting the two modules can unintentionally provide power to ICs that are connected to the power rail if the voltage at the I/O connector is greater than V CC. This condition can cause power-up problems and anomalies such as the illumination of indicator lights on an unpowered PCB. Avalanche TVS Diode Protection Circuits Avalanche TVS diodes do not have a backdrive problem because they clamp the surge voltage to ground and do not have a path to V CC. Figure 6 provides an example of a uni-directional avalanche circuit, while Figure 7 shows a bi-directional circuit. In most applications, either uni- or bi-directional TVS devices can be used to protect the translator. In general, a bi-directional Avalanche diode will have a lower capacitance than a uni-directional device, but a larger capacitance than a diode array. 4

Figure 6. A Uni-Directional Avalanche TVS Protection Circuit Clamps a Negative and Positive Surge Voltage to -0.7 V and + V BR, Respectively, where V BR is Equal to the Diode's Breakdown Voltage Designers often incorrectly believe that the negative symmetrical clamping voltage of a bi-directional TVS device violates the Maximum Rating Table of a translator. Most translators have a specified minimum value equal to -0.5 V. The datasheet rating is not violated because the voltage at the power and I/O pins is specified for DC steady-state value and is not applicable for a transient pulse with a duration that is usually less than 1 s. Figure 7. A Bi-Directional Avalanche TVS Protection Circuit Clamps a Negative and Positive Surge Voltage to -V BR and +V BR, Respectively 5

Summary Figure 8 provides a graphical representation of the recommended PCB layout guidelines for a dual supply voltage translator. A multi-layer PCB provides a simple method to incorporate power and ground planes into the layout design. Typically, signal traces are located on the top and bottom layers, while the power and ground planes are located on separate internal layers. The key PCB design guidelines include: Locate the decoupling capacitors as close as possible to the power pins Provide ground and power planes to minimize the PCB trace lengths Use short I/O traces and ground planes decrease RF susceptibility and radiated emissions Locate Avalanche TVS diodes next to the I/O connector to enhance the translator's ESD and EMI immunity Figure 8. The PCB Layout of the I/O Traces, Decoupling Capacitors and TVS Diodes are Important Factors that Maximize the Performance of a Voltage Translator Bibliography 1. Lepkowski, J., AND8231 - Circuit Configuration Options for TVS Diodes, ON Semiconductor, 2005. 2. -, AND8232 - PCB Design Guidelines that Maximize the Performance of TVS Diodes, ON Semiconductor, 2005. 6

Appendix I: ON Dual Power Supply Voltage Translators Uni-Directional Translator Autosense Bi-Directional Translator (Push-Pull Output) Autosense Bi-Directional Translator (Open Drain Output) Block Diagram Attributes High Data Rate Low Power Consumption High Data Rate Low Power Consumption Flexible PCB Design High Output Drive Low Power Consumption Flexible PCB Design Trade-Offs Fixed Input & Output Pins Modest Output Current Modest Bandwidth Applications SPI GPIO SPI GPIO I 2 C, SMBus, PMBus GPIO SDIO Cards 1-Wire Bus ON Semiconductor Products (I/O Channels / Package) NLSV1T34 (1-bit, ULLGA6) NLSV1T240 / 244 (1-bit, UDFN6) NLSV2T240 / 244 (2-bit, UDFN8) NLSV4T240 / 244 (4-bit, UQFN12) NLSV4T3234 (4-bit, CSP11) NLSV8T240 / 244 (8-bit, UDFN20) NLSX3012 (2-bit, UDFN8) NLSX3014 (4-bit, UQFN12) NLSX3013 (8-bit, CSP20) NLSX3018 (8-bit, UDFN20) NLSX3373 (2-bit, UDFN8) NLSX3378 (4-bit, CSP12) I 2 C is a registered trademark of NXP Semiconductor. 1-Wire is a registered trademark of Dallas Semiconductor Corp. ON Semiconductor and are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. Typical parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including Typicals must be validated for each customer application by customer's technical experts. SCILLC does not convey any license under its patent rights nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or death may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim alleges that SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer. This literature is subject to all applicable copyright laws and is not for resale in any manner. PUBLICATION ORDERING INFORMATION LITERATURE FULFILLMENT: Literature Distribution Center for ON Semiconductor P.O. Box 5163, Denver, Colorado 80217 USA Phone: 303-675-2175 or 800-344-3860 Toll Free USA/Canada Fax: 303-675-2176 or 800-344-3867 Toll Free USA/Canada Email: orderlit@onsemi.com N. American Technical Support: 800-282-9855 Toll Free USA/Canada Europe, Middle East and Africa Technical Support: Phone: 421 33 790 2910 Japan Customer Focus Center Phone: 81-3-5773-3850 7 ON Semiconductor Website: www.onsemi.com Order Literature: http://www.onsemi.com/orderlit For additional information, please contact your local Sales Representative AND8326/D