Features

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Features

Description

Note: H=High Voltage Level; L=Low Voltage Level EX S YA YB YC YD Function H X Hi-Z Hi-Z Hi-Z Hi-Z Disable L L IA0 IB0 IC0 ID0 S=0 L H IA1 IB1 IC1 ID1 S=1 Notes: 1. No purposely added lead. Fully EU Directive 2002/95/EC (RoHS), 2011/65/EU (RoHS 2) & 2015/863/EU (RoHS 3) compliant . 2. See https://www.diodes.com/quality/lead-free/ for more information about Diodes Incorporated’s definitions of Halogen - and Antimony-free, "Green" and Lead-free. 3. Halogen- and Antimony-free "Green” products are defined as those which contain <900ppm bromine, <900ppm chlorine (<1500 ppm total Br + Cl) and <1000ppm antimony compounds.

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 2 © Diodes Incorporated PI3CH480 Pin Configuration TSSOP/QSOP Top View UQFN3x3-16 Top View Pin Description TSSOP/QSOP Pin# UQFN Pin# Pin Name Description 1 15 S Select Inputs 2, 3, 5, 6, 11, 10, 14, 13 16, 1, 3, 4, 9, 8, 12, 11 IA0, IA1, IB0, IB1, IC0, IC1, ID0, ID1 Data Inputs 4, 7, 9, 12 2, 5, 7, 10 YA, YB, YC, YD Data Outputs 8 6 GND Ground 15 13 1111111 EN Enable 16 14 VCC Power — Center Pad GND —

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 3 © Diodes Incorporated PI3CH480 Maximum Ratings 3.3V Supply (Over Operating Range, TA = -40°C ~ +85°C, VCC = 3.3V ± 10%, unless otherwise noted) Symbol Description Test Conditions(1) Min Typ(2) Max Unit VIH Control Input HIGH Voltage Guaranteed Logic HIGH Level 2.0 — — V VIL Control Input LOW Voltage Guaranteed Logic LOW Level -0.5 — 0.8 V VIK Clamp Diode Voltage VCC = Min., IIN = -18mA — -1.3 -1.8 V IIH Input HIGH Current VCC = Max., VIN = VCC — — ±1 μA IIL Input Low Current VCC = Max., VIN = GND — — ±1 μA IOZH High-Impedance Current(3) 0 ≤ Y, In ≤ VCC — — ±1 μA RON Switch On-Resistance(4) VCC = Min., VIN = 0.0V ION = -48mA or -64mA — 4 6 Ω VCC = Min., VIN = 3.6V ION = -15mA — 5 8 Notes: 1. For maximum or minimum conditions, use appropriate value specified under Electrical Characteristics for the applicable device type. 2. Typical values are at VCC = 3.3V, TA = 25°C ambient and maximum loading. 3. Not more than one output should be shorted at one time. Duration of the test should not exceed one second. 4. Measured by the voltage drop between Y and In pin at indicated current through the switch. ON resistance is determined by the lower of the voltages on the two (Y, In) pins. 2.5V Supply (Over Operating Range, TA = -40°C ~ +85°C, VCC = 2.5V ± 10%, unless otherwise noted) Symbol Description Test Conditions(1) Min Typ(2) Max Unit VIH Control Input HIGH Voltage Guaranteed Logic HIGH Level 1.8 — VCC+0.3 V VIL Control Input LOW Voltage Guaranteed Logic LOW Level -0.3 — 0.8 V VIK Clamp Diode Voltage VCC = Max., IIN = -6mA — -0.7 -1.8 V IIH Input HIGH Current VCC = Max., VIN = VCC — — ±1 μA IIL Input Low Current VCC = Max., VIN = GND — — ±1 μA IOZH High-Impedance Current(3) 0 ≤ Y, In ≤ VCC — — ±1 μA RON Switch On-Resistance(4) VCC = Min., VIN = 0.0V ION = -48mA — 4 8 Ω VCC = Min., VIN = 2.25V ION = -15mA — 7 14 Notes: 1. For maximum or minimum conditions, use appropriate value specified under Electrical Characteristics for the applicable device type. 2. Typical values are at VCC = 2.5V, TA = 25°C ambient and maximum loading. 3. Not more than one output should be shorted at one time. Duration of the test should not exceed one second. 4. Measured by the voltage drop between Y and In pin at indicated current through the switch. ON resistance is determined by the lower of the voltages on the two (Y, In) pins. Note: Stresses greater than those listed under MAXIMUM RATINGS may cause permanent damage to the device. This is a stress rating only and functional operation of the device at these or any other conditions above those indicated in the operational sections of this specification is not implied. Exposure to absolute maximum rating conditions for extended periods may affect reliability.

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 4 © Diodes Incorporated PI3CH480 1.8V Supply (Over Operating Range, TA = -40°C ~ +85°C, VCC = 1.8V ±10%, unless otherwise noted) Symbol Description Test Conditions(1) Min Typ(2) Max Unit VIH Control Input HIGH Voltage Guaranteed Logic HIGH Level 1.2 — VCC+0.3 V VIL Control Input LOW Voltage Guaranteed Logic LOW Level -0.3 — 0.6 V VIK Clamp Diode Voltage VCC = Max., IIN = -18mA — -0.7 -1.8 V IIH Input HIGH Current VCC = Max., VIN = VCC — — ±1 μA IIL Input Low Current VCC = Max., VIN = GND — — ±1 μA IOZH High-Impedance Current(3) 0 ≤ Y, In ≤ VCC — — ±1 μA RON Switch On-Resistance(4) VCC = Min., VIN = 0.0V ION = -48mA — 4 8 Ω VCC = Min., VIN = 1.6V ION = -15mA — 10 25 Notes: 1. For maximum or minimum conditions, use appropriate value specified under Electrical Characteristics for the applicable device type. 2. Typical values are at VCC = 1.8V, TA = 25°C ambient and maximum loading. 3. Not more than one output should be shorted at one time. Duration of the test should not exceed one second. 4. Measured by the voltage drop between Y and In pin at indicated current through the switch. ON resistance is determined by the lower of the voltages on the two (Y, In) pins. Capacitance (TA = 25°C, f = 1MHz) Symbol(1) Description Test Conditions Typ. Max. Unit CIN Input Capacitance VIN = 0V 1.6 2.5 pF COFF(IN) In Capacitance, Switch Off 3.2 4.5 COFF(Y) Y Capacitance, Switch Off 4.9 6.5 CON Y/In Capacitance, Switch On 8.4 10 Note: 1. These parameters are determined by device characterization but are not production tested Power Supply Characteristics Symbol Description Test Conditions(1) Min Typ Max Unit ICC Quiescent Power Supply Current VCC = 3.6V, VIN = GND or VCC — 0.2 0.5 mA VCC = 2.5V, VIN = GND or VCC — 0.25 0.6 mA VCC = 1.8V, VIN = GND or VCC — 0.8 1.5 mA Note: 1. For maximum or minimum conditions, use appropriate value specified under Electrical Characteristics for the applicable device. Dynamic Electrical Characteristics (Over Operating Range, TA = -40°C ~ +85°C, VCC = 3.3V ± 10%) Symbol Description Test Conditions Min Typ Max Unit XTALK Crosstalk See Test Diagram — -60 — dB OIRR Off-Isolation See Test Diagram — -60 — BW -3dB Bandwidth See Test Diagram 200 500 — MHz

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 5 © Diodes Incorporated PI3CH480 Switch Characteristics Over 3.3V Operating Range Symbol Description Test Conditions(1) Min Typ Max Unit tPLH, tPHL Propagation Delay(2, 3) Y to In, In to Y See Test Diagram — — 0.3 ns tPZH, tPZL Enable Time S or EN to Y or In See Test Diagram 1.5 — 9.0 tPHZ, tPLZ Disable Time S or EN to Y or In See Test Diagram 1.5 — 9.0 Note: 1. See test circuit and waveforms. 2. This parameter is guaranteed but not tested on propagation delays. 3. The switch contributes no propagation delay other than the RC delay of the on-resistance of the switch and the load capacitance. The time constant for the switch alone is of the order of 0.30ns for 10pF load. Because this time constant is much smaller than the rise/fall times of typical driving signals, it adds very little propagation delay to the system. Propagation delay of the switch when used in a system is determined by the driving circuit on the driving side of the switch and its interaction with the load on the driven side. Over 2.5V Operating Range Symbol Description Test Conditions(1) Min Typ Max Unit tPLH, tPHL Propagation Delay(2, 3) Y to In, In to Y See Test Diagram — — 0.3 ns tPZH, tPZL Enable Time S or EN to Y or In See Test Diagram 1.5 — 15.0 tPHZ, tPLZ Disable Time S or EN to Y or In See Test Diagram 1.5 — 12.0 Note: 1. See test circuit and waveforms. 2. This parameter is guaranteed but not tested on propagation delays. 3. The switch contributes no propagation delay other than the RC delay of the on-resistance of the switch and the load capacitance. The time constant for the switch alone is of the order of 0.30ns for 10pF load. Because this time constant is much smaller than the rise/fall times of typical driving signals, it adds very little propagation delay to the system. Propagation delay of the switch when used in a system is determined by the driving circuit on the driving side of the switch and its interaction with the load on the driven side. Over 1.8V Operating Range Symbol Description Test Conditions(1) Min Typ Max Unit tPLH, tPHL Propagation Delay(2, 3) Y to In, In to Y See Test Diagram — — 0.3 ns tPZH, tPZL Enable Time S or EN to Y or In See Test Diagram 1.5 — 25.0 tPHZ, tPLZ Disable Time S or EN to Y or In See Test Diagram 1.5 — 12.0 Notes: 1. See test circuit and waveforms. 2. This parameter is guaranteed but not tested on propagation delays. 3. The switch contributes no propagation delay other than the RC delay of the on-resistance of the switch and the load capacitance. The time constant for the switch alone is of the order of 0.30ns for 10pF load. Because this time constant is much smaller than the rise/fall times of typical driving signals, it adds very little propagation delay to the system. Propagation delay of the switch when used in a system is determined by the driving circuit on the driving side of the switch and its interaction with the load on the driven side.

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 6 © Diodes Incorporated PI3CH480 Test Circuit for Electrical Characteristics Notes: 1. CL = Load capacitance: includes jig and probe capacitance. 2. RT = Termination resistance: should be equal to ZOUT of the pulse generator. 3. All input impulses are supplied by generators having the following characteristics: PRR ≤ 10 MHz, ZO = 50Ω, tR ≤ 2.5ns, tF ≤ 2.5ns. 4. The outputs are measured one at a time with one transition per measurement. Switch Positions Test Switch tPLZ, tPZL 6.0V tPHZ, tPZH GND Prop Delay Open Test Circuit for Dynamic Electrical Characteristics HP4195A HP11667A VCC R1 T1 50Ω 10pF D.U.T

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 7 © Diodes Incorporated PI3CH480 Switching Waveforms Voltage Waveforms Enable and Disable Times Pulse Skew - tSK(p) Applications Information Logic Inputs Hot Insertion

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 8 © Diodes Incorporated PI3CH480 Part Marking L Package Q Package Top mark is not available at this time. To obtain advanced information regarding the top mark, please contact your local sales representative. Rail-to-Rail is a registered trademark of Nippon Motorola, Ltd.

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 9 © Diodes Incorporated PI3CH480 Mechanical Information 16-TSSOP (L)

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 10 © Diodes Incorporated PI3CH480 16- QSOP (Q)

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 11 © Diodes Incorporated PI3CH480 16-UQFN (ZHD)

Ordering Information

Part Numbers Package Code Package Description PI3CH480LEX L 16-Pin, 173mil Wide (TSSOP) PI3CH480QEX Q 16-Pin, 150mil Wide (QSOP) PI3CH480ZHDEX ZHD 16-Pin, 3x3 (UQFN) Notes: 1. No purposely added lead. Fully EU Directive 2002/95/EC (RoHS), 2011/65/EU (RoHS 2) & 2015/863/EU (RoHS 3) compliant. 2. See https://www.diodes.com/quality/lead-free/ for more information about Diodes Incorporated’s definitions of Halogen- and Antimony-free, "Green" and Lead free. 3. Halogen- and Antimony-free "Green” products are defined as those which contain <900ppm bromine, <900ppm chlorine (<1500ppm total Br + Cl) and <1000ppm antimony compounds. 4. E = Pb-free and Green 5. X suffix = Tape/Reel

PI3CH480 www.diodes.com December 2021 Document Number DS40329 Rev 5-2 12 © Diodes Incorporated PI3CH480 IMPORTANT NOTICE 1. DIODES INCORPORATED AND ITS SUBSIDIARIES (“DIODES”) MAKE NO WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, WITH REGARDS TO ANY INFORMATION CONTAINED IN THIS DOCUMENT, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NON-INFRINGEMENT OF THIRD PARTY INTELLECTUAL PROPERTY RIGHTS (AND THEIR EQUIVALENTS UNDER THE LAWS OF ANY JURISDICTION). 2. The Information contained herein is for informational purpose only and is provided only to illustrate the operation of Diodes products described herein and application examples. Diodes does not assume any liability arising out of the application or use of this document or any product described herein. This document is intended for skilled and technically train ed engineering customers and users who design with Diodes products. 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