PTH03000W TI | Alldatasheet
Document overview
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Technical content
Features
- Up to 6-A Output Current
- 3.3 V Input Voltage
- Wide-Output Voltage Adjust (0.9 V to 2.5 V)
- Efficiencies up to 95 %
- 115 W/in³ Power Density
- On/Off Inhibit
- Under-Voltage Lockout PTH03000W —3.3-V Input 6-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module Rset = Required to set the output voltage to a value higher than 0.9 V (see spec. table for values) Cin = Required 100 µF capacitor Cout = Optional 100 µF capacitor
- Output Current Limit
- Over-Temperature Protection
- Operating Temp: –40 to +85 °C
- Surface Mount Package
- Safety Agency Approvals (Pending): UL 1950, CSA 22.2 950, EN60950 & VDE VIN Inhibit GND GND VOUT R SET 1 %, 0.1 W (Required) C OUT 100 µF Electrolytic (Optional) C IN 100 µF (Required) PTH03000W (Top View)
Description
The PTH03000 series of non-isolated power modules are small in size and high on performance. Using double-sided sur- face mount construction and synchronous rectification technology, these regulators deliver up to 6 A of output current while occupying a PCB area of about half the size of a standard postage stamp. They are an ideal choice for applications where space, performance and cost are impor- tant design constraints. The series operates from an input voltage of 3.3 V to provide step-down power conversion to any output voltage over the range, 0.9 V to 2.5 V. The out- put voltage of the PTH03000W is set within this range using a single resistor. Operating features include an on/off inhibit, output voltage adjust (trim), an output current limit, and over-temperature protection. Target applications include telecom, industrial, and general purpose circuits, including low-power dual-voltage systems that use a DSP, microprocessor, or ASIC. Package options include both through- hole and surface mount configurations. Pin Configuration Pin Function
1 GND
3 Inhibit *
- Denotes negative logic: Open = Output On Ground = Output Off NOMINAL SIZE = 0.75 in x 0.5 in (19,05 mm x 12,7 mm) SL TS200C – MAY 2003 – REVISED DECEMBER 2003
For technical support and further information visit http://power.ti.com Pin Descriptions Vin: The positive input voltage power node to the mod- ule, which is referenced to common GND. Vout: The regulated positive power output with respect to the GND node. GND: This is the common ground connection for the ‘Vin’ and ‘Vout’ power connections. It is also the 0 VDC reference for the ‘Inhibit’ and ‘V o Adjust’ control inputs. Inhibit: The Inhibit pin is an open-collector/drain negative logic input that is ref erenced to GND. Applying a low- level ground signal to this input disables the module’s output and turns off the output voltage. When the Inhibit control is active, the input current drawn by the regulator is significantly reduced. If the Inhibit pin is left open- circuit, the module will produce an output whenever a valid input source is applied. Vo Adjust: A 0.1 W 1 % resistor must be directly connected between this pin and the GND pin to set the output voltage to a value higher than 0.9 V. The temperature stability of the resistor should be 100 ppm/°C (or better). The set point range for the output voltage is from 0.9 V to 2.5 V. The resistor required for a given output voltage may be calculated from the following formula. If left open circuit, the output voltage will default to its lowest value. For further information on output voltage adjustment, consult the related application note. Rset = 10 kΩ · 0.891 V – 4.99 kΩ Vout – 0.9 V The specification table gives the preferred resistor values for a number of standard output voltages.
Ordering Information
Code Description Pkg Ref. (2) AH Horiz. T/H (EUS) AS SMD, Standard (3) (EUT) Output Voltage (PTH03000/G72xx) Code V oltage W 0.9 V – 2.5 V (Adjust) Notes: (1) Add “T” to end of part number for tape and reel on SMD packages only. (2) Reference the applicable package reference drawing for the dimensions and PC board layout (3) “Standard” option specifies 63/37, Sn/Pb pin solder material. PTH03000W —3.3-V Input 6-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module SL TS200C – MAY 2003 – REVISED DECEMBER 2003
For technical support and further information visit http://power.ti.com Environmental & Absolute Maximum Ratings Characteristics Symbols Conditions Min Typ Max Units Operating Temperature Range T a Over Vin Range –40 (i) — +85°C Solder Reflow Temperature T reflow Surface temperature of module body or pins 235 (ii) °C Storage Temperature T s — –40 — +125°C Over Temperature Protection OTP IC junction temperature — 150 — °C Mechanical Shock Per Mil-STD-883D, Method 2002.3 — 500 — G’s 1 msec, ½ sine, mounted Mechanical Vibration Mil-STD-883D, Method 2007.2 — 20 — G’s 20-2000 Hz Weight — — 2 — grams Flammability — Meets UL 94V-O Notes: (i) During reflow of SMD package version do not elevate peak temperature of the module, pins or internal components above the st ated maximum. PTH03000W —3.3-V Input 6-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module SL TS200C– MA Y 2003 – REVISED DECEMBER 2003 Electrical Specifications Unless otherwise stated, T a =25 °C, Vin =3.3 V, Vo =2 V, Cin =100 µF, Cout =0 µF, and Io =Iomax PTH03000W Characteristics Symbols Conditions Min Typ Max Units Output Current I o 0.9 V ≤ Vo ≤ 2.5 V, T a =60 °C, 200 LFM airflow 0 — 6 (1) ATa =25 °C, natural convection 0 — 6 (1) Input Voltage Range V in Over Io range 3 — 3.6 V Set-Point Voltage Tolerance V o tol — — ±2 (2) %Vo Temperature Variation ∆Regtemp –40 °C <Ta < +85 °C — ±0.5 — %V o Line Regulation ∆Regline Over Vin range — ±5— mV Load Regulation ∆Regload Over Io range — ±5— mV Total Output Variation ∆Regtot Includes set-point, line, load, — — ±3 (2) %Vo–40 °C ≤ Ta ≤ +85 °C Efficiency η Io =4 A R SET = 576 Ω Vo = 2.5 V — 93 — RSET = 3.09 kΩ Vo = 2.0 V — 91 — RSET = 4.87 kΩ Vo = 1.8 V — 90 — %RSET = 9.76 kΩ Vo = 1.5 V — 88 — RSET = 24.3 kΩ Vo = 1.2 V — 86 — RSET = 82.5 kΩ Vo = 1.0 V — 84 — Vo Ripple (pk-pk) V r 20 MHz bandwidth — 20 — mVpp Transient Response 1 A/µs load step, 50 to 100 % I omax, Vo =1.8 V, Cout =100 µF ttr Recovery time — 70 — µSec ∆Vtr Vo over/undershoot — 100 — mV Current Limit I lim ∆Vo = –50 mV — 13 — A Under-Voltage Lockout UVLO V in increasing — 2.953 VVin decreasing 2.6 2.8 — Inhibit Control (pin 3) R eferenced to GND Input High Voltage V IH Vin –0.5— Open (3) V Input Low Voltage VIL –0.2 — 0.8 Input Low Current IIL Pin 3 to GND — –10 — µA Standby Input Current I in inh pins 1 & 3 connected — 1 — mA Switching Frequency ƒ s Over Vin and Io ranges — 700 — kHz External Input Capacitance C in 100 (4) ——µ F External Output Capacitance C out Capacitance value non-ceramic 0 100 (5) 1,000 (6) µFceramic 0 — 300 Equiv. series resistance (non-ceramic) 4 (7) ——m Ω Reliability MTBF Per Bellcore TR-332 2 8——1 0 6 Hrs50 % stress, Ta =40 °C, ground benign Notes: (1) See SOA curves or consult factory for appropriate derating. (2) The set-point voltage tolerance is affected by the tolerance and stability ofR SET. The stated limit is unconditionally met if R SET has a tolerance of 1 % with 100 ppm/°C or better temperature stability. (3) The Inhibit control (pin 3) has an internal pull-up to Vin, and if left open-circuit the module will operate when input powe r is applied. A small low- leakage (<100 nA) MOSFET is recommended to control this input. See application notes for more information. (4) The regulator requires a minimum of 100 µF input capacitor with a minimum 300 mArms ripple current rating. For further infor mation, consult the related application note on Capacitor Recommendations. (5) An external output capacitor is not required for basic operation. Adding 100 µF of distributed capacitance at the load will improve the transient response. (6) This is the calculated maximum. The minimum ESR limitation will often result in a lower value. Consult the application notes for further guidance. (7) This is the typical ESR for all the electrolytic (non-ceramic) output capacitance. Use 7 m Ω as the minimum when using max-ESR values to calculate.
For technical support and further information visit http://power.ti.com Note A: Characteristic data has been developed from actual products tested at 25°C. This data is considered typical data for the Converter. Note B: SOA curves represent the conditions at which internal components are at or below the manufacturer’s maximum operating temperatures. Derating limits apply to modules soldered directly to a 4 in. × 4 in. double-sided PCB with 1 oz. copper. Typical Characteristics Characteristic Data; Vin =3.3V (See Note A) Efficiency vs Output Current Power Dissipation vs Output Current 100 0123456 Iout - Amps Efficiency - % 2.5 V 2.0 V 1.8 V 1.5V 1.2V 1.0 V VOUT 0123456 Iout (A ) Ripple - mV 1.0 V 1.2 V 1.5 V 1.8 V 2.0 V 2.5 V VOUT 0.4 0.8 1.2 1.6 0123456 Iout (A ) Pd - Watts Ripple vs Output Current Safe Operating Area; Vin =3.3 V (See Note B) All Output Voltages 0123456 Iout (A ) Ambient Temperature (°C) 100LFM Nat Conv Airflow PTH03000W —3.3-V Input 6-A, 3.3-V Input Non-Isolated Wide-Output Adjust Power Module SL TS200C – MAY 2003 – REVISED DECEMBER 2003
For technical support and further information visit http://power.ti.com Capacitor Recommendations for the PTH03000W, Wide-Output Adjust Power Modules Input Capacitor The recommended input capacitor(s) is determined by the 100 µF minimum capacitance and 300 mArms mini- mum ripple current rating. Ripple current, less than 300 m Ω equivalent series resis- tance (ESR), and temperature are the major considerations when selecting input capacitors. Unlike polymer tantalum, regular tantalum capacitors have a recommended mini- mum voltage rating of 2 × (maximum DC voltage + AC ripple). This is standard practice to ensure reliability. For improved ripple reduction on the input bus, ceramic capacitors [2] may used to complement electrolytic types and achieve the mini mum required capacitance. Output Capacitors (Optional) For applications with load transients (sudden changes in load current), regulator response will benefit from an external output capacitance. The recommended output capacitance of 100 µF will allow the module to meet its transient response specification (see product data sheet). For most applications, a high quality computer-grade aluminum electrolytic capacitor is adequate. These capaci- tors provide decoupling over the frequency range, 2 kHz to 150 kHz, and are suitable for ambient temperatures above 0 °C. For operation below 0 °C tantalum, ceramic or Os-Con type capacitors are recommended. When using one or more non-ceramic capacitors, the calculated equiva- lent ESR should be no lower than 4 m Ω (7 mΩ using the manufacturer’s maximum ESR for a single capacitor). A list of preferred low-ESR type capacitors are identified in Table 1-1. Ceramic Capacitors Above 150 kHz the performance of aluminum electrolytic capacitors becomes less effective. To fur ther improve the reflected input ripple current [2] or the output transient response, multilayer ceramic capacitors can also be added. Ceramic capacitors have very low ESR and their resonant frequency is higher than the bandwidth of the regulator. When used on the output their combined ESR is not critical as long as the total value of ceramic capacitance does not exceed 300 µF. Also, to prevent the formation of local resonances, do not place more than five identical ce- ramic capacitors in parallel with values of 10 µF or greater. Tantalum Capacitors Tantalum type capacitors can be used at both the input and output, and are recommended for applications where the ambient operating temperature can be less than 0 °C. The AVX TPS, Sprague 593D/594/595 and Kemet T495/ T510 capacitor series are suggested over many other tantalum types due to their higher rated surge, power dissipation, and ripple curr ent capability. As a caution many general purpose tantalum capacitors have consid- erably higher ESR, reduced power dissipation and lower ripple current capability. These capacitors are also less reliable as they have lower power dissipation and surge current ratings. Tantalum capacitors that do not have a stated ESR or surge current rating are not recommended for power applications. When specifying Os-Con and polymer tantalum capacitors for the output, the minimum ESR limit will be encoun- tered well before the maximum capacitance value is reached. Capacitor Table Table 1-1 identifies the characteristics of capacitors from a number of vendors with acceptable ESR and ripple current (rms) ratings. The recommended number of capacitors required at both the input and output buses is identified for each capacitor type. This is not an extensive capacitor list. Capacitors from other vendors are available with comparable specifications. Those listed are for guidance. The RMS ripple current rating and ESR (at 100 kHz) are critical parameters necessary to insure both optimum regulator performance and long capacitor life. Designing for Very Fast Load Transients The transient response of the DC/DC converter has been characterized using a load transient with a di/dt of 1 A/µs. The typical voltage deviation for this load transient is given in the data sheet specification table using the optional value of output capacitance. As the di/dt of a transient is increased, the response of a converter’s regu- lation circuit ultimately depends on its output capacitor decoupling network. This is an inherent limitation with any DC/DC converter once the speed of the transient exceeds its bandwidth capability. If the target application specifies a higher di/dt or lower voltage deviation, the requirement can only be met with additional output capacitor decoupling. In these cases special attention must be paid to the type, value and ESR of the capacitors selected. If the transient performance requirements exceed that specified in the data sheet, the selection of output ca- pacitors becomes more important. For further guidance consult the separate application note, “ Selecting Output Capacitors for PTH Products in High-Performance Applica- tions.” PTH03000W
Application Notes continued For technical support and further information visit http://power.ti.com PTH03000W Table 1-1: Input/Output Capacitors [1] A total capacitance of 94 µF is acceptable based on the combined ripple current rating. [2] A ceramic capacitor may be used to complement electrolytic types at the input to further reduce high-frequency ripple curren t. /epyT,rodneVroticapaC )elytS(seireS scitsiretcarahCroticapaCy titnauQ gnikroW egatloV) Fµ(eulaV )RSE(.xaM zHk001ta elppiR.xaM C°58ta )smrI(tnerruC eziSlacisyhP )mm( tupnI suB tuptuO suB rebmuNrodneV cinosanaP )DMS(munimulA,CF )DMS(munimulA-yloP,AW V52 V01 Fµ001 Fµ021 003.0 Ω 530.0 Ω Am054 Am0082 8× 01 3.8 × 9.6 P101E1CFVEE P121A1AWFEE munimulA,cinosanaP )laidaR(CF )DMS(KF V61 V61 022F µ 033F µ 051.0 Ω 061.0 Ω Am555 Am006 01 × 2.01 8× 2.01 122C1CFUEE P133C1KFVEE noC–imehCdetinU )laidaR(noc-sO,SF )DMS(mulA-yloP,AXP )DMS(munimulA,ZVM )laidaR(.mulA-yloP,SP V01 V01 V61 V01 Fµ001 021F µ 022F µ Fµ001 040.0 Ω 720.0 Ω 071.0 Ω 420.0 Ω Am0012 Am0342 Am054 Am0244 3.6 × 8.9 8× 7.6 8× 01 8× 5.11 M001SF01 PT08HM121CV01AXP PT01HM122CV52ZVM 11HM072SP01 munimulA,nocihciN )DMS(munimulA,GW )laidaR(,MP )DMS(mulatnaT,55F V53 V52 V01 001F µ Fµ051 001F µ 051.0 Ω 061.0 Ω 550.0 Ω Am076 Am064 Am0002 01 × 01 01 × 5.11 7.7 × 3.4 SG1RNM101V1GWU HPM151E1MPU NM701A155F oynaS )DMS(noc-sO,PVS )laidaR(noc-sO,PS )DMS(remyloPpacsoP,EPT V01 V61 V01 021F µ Fµ001 µ022F 040.0 Ω 520.0 Ω 520.0 Ω Am0052> Am0082> Am0042> 7×8 3.6 × 8.9 3.7 × 7.5 M021PVS01 M001SPS61 LM022EPT01 ,XVAm ulatnaT SPT) DMS(V 01 V01 Fµ001 Fµ022 01.00 Ω 001.0 Ω Am0901> Am4141> L3.7 × W3.4 × H1.4 0010R010M701DSPT 0010R010M722VSPT temeK )DMS(mulA-yloP,025T )DMS(mulatnaT,594T )DMS(.mulA-yloP-007A V01 V01 V3.6 Fµ001 Fµ001 001F µ 080.0 Ω 001.0 Ω 810.0 Ω Am0021 Am0011> Am0092 L3.7 × W7.5 × H0.4 SA010M701D025T SA010M701X594T TA600M701D007A eugarpS-yahsiV )DMS(mulatnaT,D495 ,D595m ulatnaT) DMS( )laidaR(noc-sO,AS49 V01 V01 V01 Fµ051 Fµ021 Fµ001 090.0 Ω 041.0 Ω Ω030.0 Am0011 Am0001> Am0762 L3.7 × W0.6 × H1.4 8× 5.01 T2C0100X751D495 T2D0100X721D595 PBE0100X701AS49 )DMS(R5XcimareC,temeKV 61 V3.6 200.0 Ω 200.0 Ω —e sac0121 mm5223 ]1[ CAP4M601C0121C CAP9K674C0121C cimareC,ataruMR 5X) DMS(V 3.6 V3.6 V61 V61 001 200.0 Ω —e sac0121 mm5223 2 ]1[ 1 ]2[ M701J06RE23MRG M674J06RE23MRG K622C16RE23MRG K601C16RD23MRG cimareC,KDTR 5X) DMS(V 3.6 V3.6 V61 V61 001 200.0 Ω —e sac0121 mm5223 2 ]1[ 1 ]2[ TM701J0R5X5223C TM674J0R5X5223C TM622C1R5X5223C TM601C1R5X5223C
For technical support and further information visit http://power.ti.com PTH03000W Adjusting the Output Voltage of the PTH03000W Wide-Output Adjust Power Modules The Vo Adjust control (pin 4) sets the output voltage of the PTH03000Wproduct. The adjustment range is from 0.9 V to 2.5 V. The adjustment method requires the addition of a single external resistor, R set, that must be connected directly between the Vo Adjust and GND pins 1. Table 2-1 gives the preferred value of the external resistor for a number of standard voltages, along with the actual output voltage that this resistance value provides. For other output voltages the value of the required resistor can either be calculated using the following formula, or simply selected from the range of values given in Table 2-2. Figure 2-1 shows the placement of the required resistor. Rset = 10 kΩ · 0.891 V – 4.99 kΩ Vout – 0.9 V Figure 2-1; Vo Adjust Resistor Placement Notes: 1. Use a 0.1 W resistor. The tolerance should be 1 %, with a temperature stability of 100 ppm/°C (or better). Place the resistor as close to the regulator as possible. Connect the resistor directly between pins 4 and 1 using dedicated PCB traces. 2. Never connect capacitors from V o Adjust to either GND or Vout. Any capacitance added to the Vo Adjust pin will affect the stability of the regulator.
0.900 Open
0.92535 1 k Ω 0.950 173 k Ω 0.975114 k Ω 1.000 84.1 k Ω 1.02566.3 k Ω 1.050 54.4 k Ω 1.07545 .9 k Ω 1.100 39.6 k Ω 1.12534.6 k Ω 1.150 30.7 k Ω 1.17527.4 k Ω 1.200 24.7 k Ω 1.22522.4 k Ω 1.250 20.5 k Ω 1.27518.8 k Ω 1.300 17.3 k Ω 1.32516.0 k Ω 1.350 14.8 k Ω 1.37513.8 k Ω 1.400 12.8 k Ω 1.42512.0 k Ω 1.450 11.2 k Ω 1.47510.5 k Ω Vout (Standard) R set (Pref’d Value) V out (Actual) 2.5 V 576 Ω 2.501V 2 V 3.09 k Ω 2.003 V 1.8 V 4.87 k Ω 1.804 V 1.5 V 9.76 k Ω 1.504 V 1.2 V 24.3 k Ω 1.204 V 1 V 82.5 k Ω 1.002 V 0.9 V Open 0.9 V Table 2-1; Preferred Values of R set for Standard Output Voltages Table 2-2; Output Voltage Set-Point Resistor Values Va Req’dR set Va Req’dR set 1.50 9.86 k Ω 1.55 8.72 k Ω 1.60 7.74 k Ω 1.656.89 k Ω 1.70 6.15 k Ω 1.755 .49 k Ω 1.80 4.91 k Ω 1.854.39 k Ω 1.90 3.92 k Ω 1.953.5 0 k Ω 2.00 3.11 k Ω 2.052.76 k Ω 2.10 2.44 k Ω 2.152.14 k Ω 2.20 1.86 k Ω 2.251.61 k Ω 2.30 1.37 k Ω 2.351.15 k Ω 2.40 950 Ω 2.4575 8 Ω 2.50 579 Ω PTH03000W VIN C IN 100µF (Required) + C OUT 100µF (Optional) Inhibit GND GND VOUT R SET
0.1 W, 1 %
For technical support and further information visit http://power.ti.com Output On/Off Inhibit For applications requiring output voltage on/off control, the PTH03000W & PTH05000W power modules in- corporate an output on/off Inhibit control (pin 3). The inhibit feature can be used wherever there is a require- ment for the output voltage from the regulator to be turned off. The power module functions normally when the Inhibit pin is left open-circuit, providing a regulated output whenever a valid source voltage is connected to V in with respect to GND. Figure 3-2 shows the typical application of the inhibit function. Note the discrete transistor (Q 1). The Inhibit control has its own internal pull-up to Vin potential. An open-collector or open-drain device is recommended to control this input. Turning Q1 on applies a low voltage to the Inhibit control pin and disables the output of the module. If Q 1 is then turned off, the module will execute a soft-start power-up sequence. A regulated output voltage is produced within 20 msec. Figure 3-3 shows the typical rise in the out- put voltage, following the turn-off of Q 1. The turn off of Q1 corresponds to the fall in the waveform, Q 1 Vgs. The waveforms were measured with a 5-A resistive load. Figure 3-2 Figure 3-3 Power-Up Characteristics When configured per their standard application, the PTH03000 and PTH05000 series of power modules will produce a regulated output voltage following the appli- cation of a valid input source voltage. During power up, internal soft-start circuitry slows the rate that the output voltage rises, thereby limiting the amount of in-rush current that can be drawn from the input source. The soft-start circuitry introduces a short time delay (typi- cally 10 ms) into the power-up characteristic. This is from the point that a valid input source is recognized. Figure 3-1 shows the power-up waveforms for a PTH05000W (5-V input), with the output voltage set point adjusted for a 2-V output. The waveforms were measured with a 5-A resistive load. The initial rise in input current when the input voltage first starts to rise is the charge current drawn by the input capacitors. Figure 3-1 Current Limit Protection The PTHxx000W modules protect against load faults with a continuous current limit characteristic. Under a load fault condition the output current cannot exceed the current limit value. Attempting to draw current that exceeds the current limit value causes the output voltage to be progressively reduced. Current is continuously supplied to the fault until it is removed. Upon removal of the fault, the output voltage will promptly recover. Thermal Shutdown Thermal shutdown protects the module’s internal circuitry against excessively high temperatures. A rise in tempera- ture may be the result of a drop in airflow, a high ambient temperature, or a sustained current limit condition. If the junction temperature of the internal components exceed 150 °C, the module will shutdown. This reduces the output voltage to zero. The module will start up automatically, by initiating a soft-start power up when the sensed temperature decreases 10 °C below the thermal shutdown trip point. PTH03000 & PTH05000 Series PTH05000W VIN =5 V 3C IN 330 µF (Required) + C OUT 100 µF (Optional) Inhibit GND VO =2 V 4k87 L O A D GND Q 1 BSS138 Vo (1 V/Div) Q1 Vgs (10 V/Div) HORIZ SCALE: 5 ms/Div Vin (2 V/Div) Vo (1 V/Div) Iin (2 A/Div) HORIZ SCALE: 5 ms/Div
www.ti.com 2-Jun-2025 PACKAGING INFORMATION Orderable part number Status (1) Material type (2) Package | Pins Package qty | Carrier RoHS (3) Lead finish/ Ball material (4) MSL rating/ Peak reflow (5) Op temp (°C) Part marking (6) PTH03000WAD Active Production Through-Hole Module (EUS) | 5 56 | TIW TRAY In-Work SN N/A for Pkg Type - PTH03000WAD.B Active Production Through-Hole Module (EUS) | 5 56 | TIW TRAY In-Work SN N/A for Pkg Type -40 to 85 PTH03000WAH Active Production Through-Hole Module (EUS) | 5 56 | TIW TRAY In-Work SN N/A for Pkg Type -40 to 85 PTH03000WAH.B Active Production Through-Hole Module (EUS) | 5 56 | TIW TRAY In-Work SN N/A for Pkg Type -40 to 85 PTH03000WAS Active Production Surface Mount Module (EUT) | 5 49 | TIW TRAY No SNPB Level-1-235C-UNLIM/ Level-3-260C-168HRS -40 to 85 PTH03000WAS.B Active Production Surface Mount Module (EUT) | 5 49 | TIW TRAY No SNPB Level-1-235C-UNLIM/ Level-3-260C-168HRS -40 to 85 PTH03000WAST Active Production Surface Mount Module (EUT) | 5 250 | SMALL T&R No SNPB Level-1-235C-UNLIM/ Level-3-260C-168HRS PTH03000WAST.B Active Production Surface Mount Module (EUT) | 5 250 | SMALL T&R No SNPB Level-1-235C-UNLIM/ Level-3-260C-168HRS -40 to 85 PTH03000WAZ Active Production Surface Mount Module (EUT) | 5 49 | TIW TRAY Exempt SNAGCU Level-3-260C-168 HR -40 to 85 PTH03000WAZ.B Active Production Surface Mount Module (EUT) | 5 49 | TIW TRAY Exempt SNAGCU Level-3-260C-168 HR -40 to 85 PTH03000WAZT Active Production Surface Mount Module (EUT) | 5 250 | SMALL T&R Exempt SNAGCU Level-3-260C-168 HR -40 to 85 PTH03000WAZT.B Active Production Surface Mount Module (EUT) | 5 250 | SMALL T&R Exempt SNAGCU Level-3-260C-168 HR -40 to 85 (1) Status: For more details on status, see our product life cycle. (2) Material type: When designated, preproduction parts are prototypes/experimental devices, and are not yet approved or released for full production. Testing and final process, including without limitation quality assurance, reliability performance testing, and/or process qualification, may not yet be complete, and this item is subject to further changes or possible discontinuation. If available for ordering, purchases will be subject to an additional waiver at checkout, and are intended for early internal evaluation purposes only. These items are sold without warranties of any kind. (3) RoHS values: Yes, No, RoHS Exempt. See the TI RoHS Statement for additional information and value definition. Addendum-Page 1
www.ti.com 2-Jun-2025 (4) Lead finish/Ball material: Parts may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead finish/Ball material values may wrap to two lines if the finish value exceeds the maximum column width. (5) MSL rating/Peak reflow: The moisture sensitivity level ratings and peak solder (reflow) temperatures. In the event that a part has multiple moisture sensitivity ratings, only the lowest level per JEDEC standards is shown. Refer to the shipping label for the actual reflow temperature that will be used to mount the part to the printed circuit board. (6) Part marking: There may be an additional marking, which relates to the logo, the lot trace code information, or the environmental category of the part. Multiple part markings will be inside parentheses. Only one part marking contained in parentheses and separated by a "~" will appear on a part. If a line is indented then it is a continuation of the previous line and the two combined represent the entire part marking for that device. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. Addendum-Page 2
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