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Technical content
Features
- +2.7V to +9V Operation
- 150 μA Typical Supply Current at 5V Supply
- ≤1 μA Typical Standby (Off) Current
- Charge Pump for High-Side Low-Voltage
Applications
- Internal Zener Diode Gate-to-Ground MOSFET Protection
- Operates in Low- and High-Side Configurations
- TTL Compatible Input
- ESD Protected
- Battery Conservation
- Power Bus Switching
- Solenoid and Motion Control
- Lamp Control Package Type General Description The MIC5018 high-side MOSFET driver is designed to switch an N-channel enhancement-type MOSFET from a TTL compatible control signal in high- or low-side switch applications. This driver features the tiny 4-lead SOT-143 package. The MIC5018 is powered from a +2.7V to +9V supply and features extremely low off-state supply current. An internal charge pump drives the gate output higher than the driver supply voltage and can sustain the gate voltage indefinitely. An internal Zener diode limits the gate-to-source voltage to a safe level for standard N-channel MOSFETs. In high-side configurations, the source voltage of the MOSFET approaches the supply voltage when switched on. To keep the MOSFET turned on, the MIC5018’s output drives the MOSFET gate voltage higher than the supply voltage. In a typical high-side configuration, the driver is powered from the load supply voltage. Under some conditions, the MIC5018 and MOSFET can switch a load voltage that is slightly higher than the driver supply voltage. In a low-side configuration, the driver can control a MOSFET that switches any voltage up to the rating of the MOSFET. The gate output voltage is higher than the typical 3.3V or 5V logic supply and can fully enhance a standard MOSFET. The MIC5018 is available in the SOT-143 package and is rated for –40°C to +85°C ambient temperature range. SOT-143 (M4) Early production identification: MH10 MIC5018 High-Side MOSFET Driver
DS20006631A-page 2 2021 Microchip Technology Inc. and its subsidiaries Typical Application Circuits Low-Voltage High-Side Power Switch Low-Side Power Switch
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 3 MIC5018 Functional Block Diagram High-Side Driver Configuration
DS20006631A-page 4 2021 Microchip Technology Inc. and its subsidiaries
1.0 ELECTRICAL CHARACTERISTICS
Absolute Maximum Ratings † † Notice: Stresses above those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. This is a stress rating only and functional operation of the device at those or any other conditions above those indicated in the operational sections of this specification is not intended. Exposure to maximum rating conditions for extended periods may affect device reliability. DC CHARACTERISTICS Electrical Specifications: Typical values at TA = 25°C. Unless otherwise noted, minimum and maximum values indicate performance at –40°C ≤ TA ≤ +85°C, with +2.7V ≤ Vs ≤ +9V. Parts production tested at 25°C. Parameter Symbol Min. Typ. Max. Units Conditions (Note 1) Supply Current ISUPPLY — 0.01 1 μA VSUPPLY = 3.3V, VCTL = 0V — 70 140 VSUPPLY = 3.3V, VCTL = 3.3V — 0 1 VSUPPLY = 5, VCTL = 0V — 150 300 VSUPPLY = 5, VCTL = 5V Control Input Voltage VCTL 0 — 0.8 V 2.7V ≤ VSUPPLY ≤ 9V, VCTL for logic 0 input 2.0 — VSUP- PLY V 2.7V ≤ VSUPPLY ≤ 5V, VCTL for logic 1 input 2.4 — VSUP- PLY V 5V ≤ VSUPPLY ≤ 9, VCTL for logic 1 input Control Input Current ICTL — 0.01 1 μA 2.7V ≤ V SUPPLY ≤ 9V Control Input Capacitance — — 5 — pF Note 1 Zener Diode Output Clamp — 13 16 19 V V SUPPLY = 9V Gate Output Voltage VG 6.3 7.1 — V V SUPPLY = 2.7V 7.1 8.2 — V V SUPPLY = 3.0V 11.4 13.4 — V V SUPPLY = 4.5V Gate Output Current IG — 9.5 — μA VSUPPLY = 5V, VOUT = 10V (Note 2) Gate Turn-On Time — — 0.75 1.5 ms VSUPPLY = 4.5V, CL = 1000 pF (Note 3) — — 2.1 4.2 ms VSUPPLY = 4.5V, CL = 3000 pF (Note 3) Gate Turn-Off Time — — 10 20 μs VSUPPLY = 4.5V, CL = 1000 pF (Note 4) — — 30 60 μs VSUPPLY = 4.5V, CL = 3000 pF (Note 4) Note 1: Guaranteed by design. 2: Resistive load selected for VOUT = 10V. 3: Turn-on time is the time required for gate voltage to rise to 4V greater than the supply voltage. This rep- resents a typical MOSFET gate threshold voltage. 4: Turn-off time is the time required for the gate voltage to fall to 4V above the supply voltage. This rep- resents a typical MOSFET gate threshold voltage.
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 5 MIC5018 FIGURE 1-1: Test Circuit. TEMPERATURE SPECIFICATIONS (Note 1) Parameters Sym. Min. Typ. Max. Units Conditions Temperature Ranges Ambient Temperature Range TA –40 — +85 °C — Lead Temperature — — — +300 °C Soldering, 10 seconds Package Thermal Resistance Thermal Resistance, SOT-143 θJA — +220 — °C/W — θJA — +130 — °C/W — Note 1: The maximum allowable power dissipation is a function of ambient temperature, the maximum allowable junction temperature and the thermal resistance from junction to air (i.e., TA, TJ, JA). Exceeding the maximum allowable power dissipation will cause the device operating junction temperature to exceed the maximum rating. Sustained junction temperatures above that maximum can impact device reliability.
DS20006631A-page 6 2021 Microchip Technology Inc. and its subsidiaries
2.0 TYPICAL PERFORMANCE CURVES (Note 1)
FIGURE 2-1: Supply Current vs. Supply Voltage. FIGURE 2-2: Full Turn-On Time vs. Load Capacitance. FIGURE 2-3: Full Turn-Off Time vs. Load Capacitance. FIGURE 2-4: Gate Output Voltage vs. Supply Voltage. FIGURE 2-5: Gate Output Current vs. Output Voltage. FIGURE 2-6: Gate Output Current vs. Output Voltage. Note: The graphs and tables provided following this note are a statistical summary based on a limited number of samples and are provided for informational purposes only. The performance characteristics listed herein are not tested or guaranteed. In some graphs or tables, the data presented may be outside the specified operating range (e.g., outside specified power supply range) and therefore outside the warranted range. Note 2 Note 3
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 7 MIC5018
2.1 Typical Performance Curve Notes
1: TA = 25°C, VSUPPLY = 5V unless noted. 2: Full turn-on time is the time between V CTL rising to 2.5V and the V G rising to 90% of its steady on-state value. 3: Full turn-off time is the time between V CTL falling to 0.5V and the V G falling to 10% of its steady on-state value.
DS20006631A-page 8 2021 Microchip Technology Inc. and its subsidiaries
3.0 PIN DESCRIPTIONS
The descriptions of the pins are listed in Table 3-1.
3.1 Functional Description
Refer to the “Functional Block Diagram”. The MIC5018 is a noninverting device. Applying a logic high signal to CTL (control input) produces gate drive output. The G (gate) output is used to turn on an external N-channel MOSFET.
3.1.1 SUPPLY
VS (supply) is rated for +2.7V to +9V. An external capacitor is recommended to decouple noise.
3.1.2 CONTROL
CTL (control) is a TTL compatible input. CTL must be forced high or low by an external signal. A floating input may cause unpredictable operation. A high input turns on Q2, which sinks the output of current source I1, making the input of the first inverter low. The inverter output becomes high enabling the charge pump.
3.1.3 CHARGE PUMP
The charge pump is enabled when CTL is logic high. The charge pump consists of an oscillator and voltage quadrupler (4×). Output voltage is limited to 16V by a Zener diode. The charge pump output voltage will be approximately: EQUATION 3-1: The oscillator operates from approximately 70 kHz to approximately 100 kHz depending upon the supply voltage and temperature.
3.1.4 GATE OUTPUT
The charge pump output is connected directly to the G (gate) output. The charge pump is active only when CTL is high. When CTL is low, Q3 is turned on by the second inverter and discharges the gate of the external MOSFET to force it off. If CTL is high, and the voltage applied to VS drops to zero, the gate output will be floating (unpredictable).
3.1.5 ESD PROTECTION
D1 and D2 clamp positive and negative ESD voltages. R1 isolates the gate of Q2 from sudden changes on the CTL input. Q1 turns on if the emitter (CTL input) is forced below ground to provide additional input protection. Zener D3 also clamps ESD voltages for the gate (G) output. TABLE 3-1: PIN FUNCTION TABLE Pin Number 5-Lead SOT-143 Pin Name Description 1 GND Ground: Power return. 2 VS Supply (Input): +2.7V to +9V supply. 3 G Gate (Output): Gate connection to external MOSFET. 4 CTL Control (Input): TTL compatible on/off control input. Logic high drives the gate output above the supply voltage. Logic low forces the gate output near ground. VG 4 VSUPPLY 2.8V–= But not exceeding 16V.
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 9 MIC5018
4.0 APPLICATION INFORMATION
4.1 Supply Bypass
A capacitor from VS to GND is recommended to control switching and supply transients. Load current and supply lead length are some of the factors that affect capacitor size requirements. A 4.7 μF or 10 μF aluminum electrolytic or tantalum capacitor is suitable for many applications. The low ESR (equivalent series resistance) of tantalum capacitors makes them especially effective, but also makes them susceptible to uncontrolled inrush current from low impedance voltage sources (such as NiCd batteries or automatic test equipment). Avoid instantaneously applying voltage, capable of high peak current, directly to or near tantalum capacitors without additional current limiting. Normal power supply turn-on (slow rise time) or printed circuit trace resistance is usually adequate for normal product usage.
4.2 MOSFET Selection
The MIC5018 is designed to drive N-channel enhancement type MOSFETs. The gate output (G) of the MIC5018 provides a voltage, referenced to ground, that is greater than the supply voltage. Refer to Figure 2-4. The supply voltage and the MOSFET drain-to-source voltage drop determine the gate-to-source voltage. EQUATION 4-1: FIGURE 4-1: Voltages The performance of the MOSFET is determined by the gate-to-source voltage. Choose the type of MOSFET according to the calculated gate-to-source voltage.
4.3 Standard MOSFET
Standard MOSFETs are fully enhanced with a gate-to-source voltage of about 10V. Their absolute maximum gate-to-source voltage is ±20V. With a 5V supply, the MIC5018 produces a gate output of approximately 15V. Figure 4-2 shows how the remaining voltages conform. The actual drain-to-source voltage drop across an IRFZ24 is less than 0.1V with a 1A load and 10V enhancement. Higher current increases the drain-to-source voltage drop, increasing the gate-to-source voltage. FIGURE 4-2: Using a Standard MOFSET. The MIC5018 has an internal Zener diode that limits the gate-to-ground voltage to approximately 16V. Lower supply voltages, such as 3.3V, produce lower gate output voltages which will not fully enhance standard MOSFETs. This significantly reduces the maximum current that can be switched. Always refer to the MOSFET data sheet to predict the MOSFET’s performance in specific applications. VGS VG VSUPPLY VDS– –= Where: VGS = gate-to-source voltage (enhancement) VG = gate voltage (from graph) VSUPPLY = supply voltage VDS = drain-to-source voltage (approx. 0V at low current, or when fully enhanced)
DS20006631A-page 10 2021 Microchip Technology Inc. and its subsidiaries
4.4 Logic-Level MOSFET
Logic-level N-channel MOSFETs are fully enhanced with a gate-to-source voltage of approximately 5V and generally have an absolute maximum gate-to-source voltage of ±10V. FIGURE 4-3: Using a Logic-Level MOSFET. Refer to Figure 4-3 for an example showing nominal voltages. The maximum gate-to-source voltage rating of a logic-level MOSFET can be exceeded if a higher supply voltage is used. An external Zener diode can clamp the gate-to-source voltage as shown in Figure 4-4. The Zener voltage, plus its tolerance, must not exceed the absolute maximum gate voltage of the MOSFET. FIGURE 4-4: Gate-to-Source Protection. A gate-to-source Zener may also be required when the maximum gate-to-source voltage could be exceeded due to normal part-to-part variation in gate output voltage. Other conditions can momentarily increase the gate-to-source voltage, such as turning on a capacitive load or shorting a load.
4.5 Inductive Loads
Inductive loads include relays, and solenoids. Long leads may also have enough inductance to cause adverse effects in some circuits. FIGURE 4-5: Switching an Inductive Load. Switching off an inductive load in a high-side application momentarily forces the MOSFET source negative (as the inductor opposes changes to current). This voltage spike can be very large and can exceed a MOSFET’s gate-to-source and drain-to-source ratings. A Schottky diode across the inductive load provides a discharge current path to minimize the voltage spike. The peak current rating of the diode should be greater than the load current. In a low-side application, switching off an inductive load will momentarily force the MOSFET drain higher than the supply voltage. The same precaution applies.
4.6 Split Power Supply
Refer to Figure 4-6. The MIC5018 can be used to control a 12V load by separating the driver supply from the load supply. FIGURE 4-6: 12V High-Side Switch. A logic-level MOSFET is required. The MOSFET’s maximum current is limited slightly because the gate is not fully enhanced. To predict the MOSFET’s performance for any pair of supply voltages, calculate the gate-to-source voltage and refer to the MOSFET data sheet.
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 11 MIC5018 EQUATION 4-2: VG is determined from the driver supply voltage using Figure 2-4.
4.7 Low-Side Switch Configuration
The low-side configuration makes it possible to switch a voltage much higher than the MIC5018’s maximum supply voltage. FIGURE 4-7: Low-Side Switch Configuration. The maximum switched voltage is limited only by the MOSFET’s maximum drain-to-source ratings. VGS VG VLDSUPPLY VDS– –=
DS20006631A-page 12 2021 Microchip Technology Inc. and its subsidiaries
5.0 PACKAGING INFORMATION
5.1 Package Marking Information
4-Lead SOT-143* (front) Example NNN 723 4-Lead SOT-143* (back) Legend: XX...X Product code or customer-specific information Y Year code (last digit of calendar year) YY Year code (last 2 digits of calendar year) WW Week code (week of January 1 is week ‘01’) NNN Alphanumeric traceability code Pb-free JEDEC ® designator for Matte Tin (Sn) * This package is Pb-free. The Pb-free JEDEC designator ( ) can be found on the outer packaging for this package.
- , ▲, ▼ Pin one index is identified by a dot, delta up, or delta down (triangle mark). Note: In the event the full Microchip part number cannot be marked on one line, it will be carried over to the next line, thus limiting the number of available characters for customer-specific information. Package may or may not include the corporate logo. Underbar (_) and/or Overbar (‾) symbol may not be to scale.
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 13 MIC5018 4-Lead SOT-143 Package Outline and Recommended Land Pattern /g23/g16/g47/g72/g68/g71/g3/g51/g79/g68/g86/g87/g76/g70/g3/g54/g80/g68/g79/g79/g3/g50/g88/g87/g79/g76/g81/g72/g3/g55/g85/g68/g81/g86/g76/g86/g87/g82/g85/g3/g11/g53/g38/g12/g3/g62/g54/g50/g55/g16/g20/g23/g22/g64 /g49/g82/g87/g72/g29/g41/g82/g85/g3/g87/g75/g72/g3/g80/g82/g86/g87/g3/g70/g88/g85/g85/g72/g81/g87/g3/g83/g68/g70/g78/g68/g74/g72/g3/g71/g85/g68/g90/g76/g81/g74/g86/g15/g3/g83/g79/g72/g68/g86/g72/g3/g86/g72/g72/g3/g87/g75/g72/g3/g48/g76/g70/g85/g82/g70/g75/g76/g83/g3/g51/g68/g70/g78/g68/g74/g76/g81/g74/g3/g54/g83/g72/g70/g76/g73/g76/g70/g68/g87/g76/g82/g81/g3/g79/g82/g70/g68/g87/g72/g71/g3/g68/g87/g3 /g75/g87/g87/g83/g29/g18/g18/g90/g90/g90/g17/g80/g76/g70/g85/g82/g70/g75/g76/g83/g17/g70/g82/g80/g18/g83/g68/g70/g78/g68/g74/g76/g81/g74
DS20006631A-page 14 2021 Microchip Technology Inc. and its subsidiaries /g23/g16/g47/g72/g68/g71/g3/g51/g79/g68/g86/g87/g76/g70/g3/g54/g80/g68/g79/g79/g3/g50/g88/g87/g79/g76/g81/g72/g3/g55/g85/g68/g81/g86/g76/g86/g87/g82/g85/g3/g11/g53/g38/g12/g3/g62/g54/g50/g55/g16/g20/g23/g22/g64 /g49/g82/g87/g72/g86/g29 /g20/g17 /g134/g3/g54/g76/g74/g81/g76/g73/g76/g70/g68/g81/g87/g3/g38/g75/g68/g85/g68/g70/g87/g72/g85/g76/g86/g87/g76/g70/g17 /g21/g17 /g39/g76/g80/g72/g81/g86/g76/g82/g81/g86/g3/g39/g3/g68/g81/g71/g3/g40/g20/g3/g71/g82/g3/g81/g82/g87/g3/g76/g81/g70/g79/g88/g71/g72/g3/g80/g82/g79/g71/g3/g73/g79/g68/g86/g75/g3/g82/g85/g3/g83/g85/g82/g87/g85/g88/g86/g76/g82/g81/g86/g17/g3/g48/g82/g79/g71/g3/g73/g79/g68/g86/g75/g3/g82/g85/g3/g83/g85/g82/g87/g85/g88/g86/g76/g82/g81/g86/g3/g86/g75/g68/g79/g79/g3/g81/g82/g87/g3/g72/g91/g70/g72/g72/g71/g3/g19/g17/g21/g24/g3/g80/g80/g3/g83/g72/g85/g3/g86/g76/g71/g72/g17 /g22/g17 /g39/g76/g80/g72/g81/g86/g76/g82/g81/g76/g81/g74/g3/g68/g81/g71/g3/g87/g82/g79/g72/g85/g68/g81/g70/g76/g81/g74/g3/g83/g72/g85/g3/g36/g54/g48/g40/g3/g60/g20/g23/g17/g24/g48/g17 /g37/g54/g38/g29/g37/g68/g86/g76/g70/g3/g39/g76/g80/g72/g81/g86/g76/g82/g81/g17/g3/g55/g75/g72/g82/g85/g72/g87/g76/g70/g68/g79/g79/g92/g3/g72/g91/g68/g70/g87/g3/g89/g68/g79/g88/g72/g3/g86/g75/g82/g90/g81/g3/g90/g76/g87/g75/g82/g88/g87/g3/g87/g82/g79/g72/g85/g68/g81/g70/g72/g86/g17 /g53/g40/g41/g29 /g53/g72/g73/g72/g85/g72/g81/g70/g72/g3/g39/g76/g80/g72/g81/g86/g76/g82/g81/g15/g3/g88/g86/g88/g68/g79/g79/g92/g3/g90/g76/g87/g75/g82/g88/g87/g3/g87/g82/g79/g72/g85/g68/g81/g70/g72/g15/g3/g73/g82/g85/g3/g76/g81/g73/g82/g85/g80/g68/g87/g76/g82/g81/g3/g83/g88/g85/g83/g82/g86/g72/g86/g3/g82/g81/g79/g92/g17 /g49/g82/g87/g72/g29/g41/g82/g85/g3/g87/g75/g72/g3/g80/g82/g86/g87/g3/g70/g88/g85/g85/g72/g81/g87/g3/g83/g68/g70/g78/g68/g74/g72/g3/g71/g85/g68/g90/g76/g81/g74/g86/g15/g3/g83/g79/g72/g68/g86/g72/g3/g86/g72/g72/g3/g87/g75/g72/g3/g48/g76/g70/g85/g82/g70/g75/g76/g83/g3/g51/g68/g70/g78/g68/g74/g76/g81/g74/g3/g54/g83/g72/g70/g76/g73/g76/g70/g68/g87/g76/g82/g81/g3/g79/g82/g70/g68/g87/g72/g71/g3/g68/g87/g3 /g75/g87/g87/g83/g29/g18/g18/g90/g90/g90/g17/g80/g76/g70/g85/g82/g70/g75/g76/g83/g17/g70/g82/g80/g18/g83/g68/g70/g78/g68/g74/g76/g81/g74 /g56/g81/g76/g87/g86/g48/g44/g47/g47/g44/g48/g40/g55/g40/g53/g54 /g39/g76/g80/g72/g81/g86/g76/g82/g81/g3/g47/g76/g80/g76/g87/g86 /g48/g44/g49 /g49/g50/g48 /g48/g36/g59 /g49/g88/g80/g69/g72/g85/g3/g82/g73/g3/g51/g76/g81/g86/g49 /g23 /g51/g76/g87/g70/g75 /g72 /g20/g17/g28/g21/g3/g37/g54/g38 /g47/g72/g68/g71/g3/g20/g3/g50/g73/g73/g86/g72/g87/g72/g20 /g19/g17/g21/g19/g3/g37/g54/g38 /g50/g89/g72/g85/g68/g79/g79/g3/g43/g72/g76/g74/g75/g87/g36 /g19/g17/g27/g19/g177 /g20/g17/g21/g21 /g48/g82/g79/g71/g72/g71/g3/g51/g68/g70/g78/g68/g74/g72/g3/g55/g75/g76/g70/g78/g81/g72/g86/g86/g36/g21 /g19/g17/g26/g24 /g19/g17/g28/g19 /g20/g17/g19/g26 /g54/g87/g68/g81/g71/g82/g73/g73/g3/g3/g134/g36/g20 /g19/g17/g19/g20/g177 /g19/g17/g20/g24 /g50/g89/g72/g85/g68/g79/g79/g3/g58/g76/g71/g87/g75/g40 /g21/g17/g20/g19/g177 /g21/g17/g25/g23 /g48/g82/g79/g71/g72/g71/g3/g51/g68/g70/g78/g68/g74/g72/g3/g58/g76/g71/g87/g75/g40/g20 /g20/g17/g21/g19 /g20/g17/g22/g19 /g20/g17/g23/g19 /g50/g89/g72/g85/g68/g79/g79/g3/g47/g72/g81/g74/g87/g75/g39 /g21/g17/g25/g26 /g21/g17/g28/g19 /g22/g17/g19/g24 /g41/g82/g82/g87/g3/g47/g72/g81/g74/g87/g75/g47 /g19/g17/g20/g22 /g19/g17/g24/g19 /g19/g17/g25/g19 /g41/g82/g82/g87/g83/g85/g76/g81/g87/g47/g20 /g19/g17/g24/g23/g3/g53/g40/g41 /g41/g82/g82/g87/g3/g36/g81/g74/g79/g72/g73 /g19/g131 /g177 /g27/g131 /g47/g72/g68/g71/g3/g55/g75/g76/g70/g78/g81/g72/g86/g86/g70 /g19/g17/g19/g27/g177 /g19/g17/g21/g19 /g47/g72/g68/g71/g3/g20/g3/g58/g76/g71/g87/g75/g69/g20 /g19/g17/g26/g25/g177 /g19/g17/g28/g23 /g47/g72/g68/g71/g86/g3/g21/g15/g3/g22/g3/g9/g3/g23/g3/g58/g76/g71/g87/g75/g69 /g19/g17/g22/g19/g177 /g19/g17/g24/g23 D e e/2 N E A 3X b c LL1 φ /g48/g76/g70/g85/g82/g70/g75/g76/g83/g55/g72/g70/g75/g81/g82/g79/g82/g74/g92/g39/g85/g68/g90/g76/g81/g74/g38/g19/g23/g16/g19/g22/g20/g37
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 15 MIC5018 APPENDIX A: REVISION HISTORY Revision A (December 2021)
- Converted Micrel document MIC5018 to Micro- chip data sheet DS20006631A.
- Minor text changes throughout.
DS20006631A-page 16 2021 Microchip Technology Inc. and its subsidiaries NOTES:
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 17 MIC5018 PRODUCT IDENTIFICATION SYSTEM To order or obtain information, e.g., on pricing or delivery, contact your local Microchip representative or sales office. Examples: a) MIC5018YM4-TR: MIC5018, –40°C to +85°C Temp. Range, 4-Lead SOT-143, 3000/Reel. Device: MIC5018: 150mA Low Voltage μCap Linear Regulator Junction Temperature Range: Y = –40°C to +85°C Package: M4 = 4-Lead SOT-143 Media Type: -TR = 3000/Reel PART No. X XX -XX Device Junction Temp. Range Package Media Type Note 1: Tape and Reel identifier only appears in the catalog part number description. This identifier is used for ordering purposes and is not printed on the device package. Check with your Microchip Sales Office for package availability with the Tape and Reel option.
DS20006631A-page 18 2021 Microchip Technology Inc. and its subsidiaries NOTES:
2021 Microchip Technology Inc. and its subsidiaries DS20006631A-page 19 Information contained in this publication is provided for the sole purpose of designing with and using Microchip products. Infor- mation regarding device applications and the like is provided only for your convenience and may be superseded by updates. It is your responsibility to ensure that your application meets with your specifications. THIS INFORMATION IS PROVIDED BY MICROCHIP "AS IS". MICROCHIP MAKES NO REPRESENTATIONS OR WAR - RANTIES OF ANY KIND WHETHER EXPRESS OR IMPLIED, WRITTEN OR ORAL, STATUTORY OR OTHERWISE, RELATED TO THE INFORMATION INCLUDING BUT NOT LIMITED TO ANY IMPLIED WARRANTIES OF NON- INFRINGEMENT, MERCHANTABILITY, AND FITNESS FOR A PARTICULAR PURPOSE OR WARRANTIES RELATED TO ITS CONDITION, QUALITY, OR PERFORMANCE. IN NO EVENT WILL MICROCHIP BE LIABLE FOR ANY INDI- RECT, SPECIAL, PUNITIVE, INCIDENTAL OR CONSEQUEN- TIAL LOSS, DAMAGE, COST OR EXPENSE OF ANY KIND WHATSOEVER RELATED TO THE INFORMATION OR ITS USE, HOWEVER CAUSED, EVEN IF MICROCHIP HAS BEEN ADVISED OF THE POSSIBILITY OR THE DAMAGES ARE FORESEEABLE. TO THE FULLEST EXTENT ALLOWED BY LAW, MICROCHIP'S TOTAL LIABILITY ON ALL CLAIMS IN ANY WAY RELATED TO THE INFORMATION OR ITS USE WILL NOT EXCEED THE AMOUNT OF FEES, IF ANY , THAT YOU HAVE PAID DIRECTLY TO MICROCHIP FOR THE INFORMATION. Use of Microchip devices in life sup- port and/or safety applications is entirely at the buyer's risk, and the buyer agrees to defend, indemnify and hold harmless Microchip from any and all damages, claims, suits, or expenses resulting from such use. No licenses are conveyed, implicitly or otherwise, under any Microchip intellectual property rights unless otherwise stated. Trademarks The Microchip name and logo, the Microchip logo, Adaptec, AnyRate, AVR, AVR logo, AVR Freaks, BesTime, BitCloud, chipKIT, chipKIT logo, CryptoMemory, CryptoRF, dsPIC, FlashFlex, flexPWR, HELDO, IGLOO, JukeBlox, KeeLoq, Kleer, LANCheck, LinkMD, maXStylus, maXTouch, MediaLB, megaAVR, Microsemi, Microsemi logo, MOST, MOST logo, MPLAB, OptoLyzer, PackeTime, PIC, picoPower, PICSTART, PIC32 logo, PolarFire, Prochip Designer, QTouch, SAM-BA, SenGenuity, SpyNIC, SST, SST Logo, SuperFlash, Symmetricom, SyncServer, Tachyon, TimeSource, tinyAVR, UNI/O, Vectron, and XMEGA are registered trademarks of Microchip Technology Incorporated in the U.S.A. and other countries. AgileSwitch, APT, ClockWorks, The Embedded Control Solutions Company, EtherSynch, FlashTec, Hyper Speed Control, HyperLight Load, IntelliMOS, Libero, motorBench, mTouch, Powermite 3, Precision Edge, ProASIC, ProASIC Plus, ProASIC Plus logo, Quiet- Wire, SmartFusion, SyncWorld, Temux, TimeCesium, TimeHub, TimePictra, TimeProvider, WinPath, and ZL are registered trademarks of Microchip Technology Incorporated in the U.S.A. Adjacent Key Suppression, AKS, Analog-for-the-Digital Age, Any Capacitor, AnyIn, AnyOut, Augmented Switching, BlueSky, BodyCom, CodeGuard, CryptoAuthentication, CryptoAutomotive, CryptoCompanion, CryptoController, dsPICDEM, dsPICDEM.net, Dynamic Average Matching, DAM, ECAN, Espresso T1S, EtherGREEN, IdealBridge, In-Circuit Serial Programming, ICSP, INICnet, Intelligent Paralleling, Inter-Chip Connectivity, JitterBlocker, maxCrypto, maxView, memBrain, Mindi, MiWi, MPASM, MPF, MPLAB Certified logo, MPLIB, MPLINK, MultiTRAK, NetDetach, Omniscient Code Generation, PICDEM, PICDEM.net, PICkit, PICtail, PowerSmart, PureSilicon, QMatrix, REAL ICE, Ripple Blocker, RTAX, RTG4, SAM-ICE, Serial Quad I/O, simpleMAP , SimpliPHY , SmartBuffer, SMART-I.S., storClad, SQI, SuperSwitcher, SuperSwitcher II, Switchtec, SynchroPHY , Total Endurance, TSHARC, USBCheck, VariSense, VectorBlox, VeriPHY , ViewSpan, WiperLock, XpressConnect, and ZENA are trademarks of Microchip Technology Incorporated in the U.S.A. and other countries. SQTP is a service mark of Microchip Technology Incorporated in the U.S.A. The Adaptec logo, Frequency on Demand, Silicon Storage Technology, and Symmcom are registered trademarks of Microchip Technology Inc. in other countries. GestIC is a registered trademark of Microchip Technology Germany II GmbH & Co. KG, a subsidiary of Microchip Technology Inc., in other countries. All other trademarks mentioned herein are property of their respective companies. © 2021, Microchip Technology Incorporated, All Rights Reserved. ISBN:978-1-5224-9539-0 Note the following details of the code protection feature on Microchip devices:
- Microchip products meet the specifications contained in their particular Microchip Data Sheet.
- Microchip believes that its family of products is secure when used in the intended manner and under normal conditions.
- There are dishonest and possibly illegal methods being used in attempts to breach the code protection features of the Microchip devices. We believe that these methods require using the Microchip products in a manner outside the operating specifications contained in Microchip's Data Sheets. Attempts to breach these code protection features, most likely, cannot be accomplished without violating Microchip's intellectual property rights.
- Microchip is willing to work with any customer who is concerned about the integrity of its code.
- Neither Microchip nor any other semiconductor manufacturer can guarantee the security of its code. Code protection does not mean that we are guaranteeing the product is "unbreakable." Code protection is constantly evolving. We at Microchip are committed to continuously improving the code protection features of our products. Attempts to break Microchip's code protection feature may be a violation of the Digital Millennium Copyright Act. If such acts allow unauthorized access to your software or other copyrighted work, you may have a right to sue for relief under that Act. For information regarding Microchip’s Quality Management Systems, please visit www.microchip.com/quality.
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