LPV7215MG/NOPB >
LPV7215MG/NOPB
Texas Instruments
IC COMPARATOR 1 GEN PUR SC70-5
1475 Pcs New Original In Stock
Comparator General Purpose CMOS, Push-Pull SC-70-5
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LPV7215MG/NOPB Texas Instruments
5.0 / 5.0 - (502 Ratings)

LPV7215MG/NOPB

Product Overview

1365041

DiGi Electronics Part Number

LPV7215MG/NOPB-DG

Manufacturer

Texas Instruments
LPV7215MG/NOPB

Description

IC COMPARATOR 1 GEN PUR SC70-5

Inventory

1475 Pcs New Original In Stock
Comparator General Purpose CMOS, Push-Pull SC-70-5
Quantity
Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 1 0.6406 0.6406
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LPV7215MG/NOPB Technical Specifications

Category Linear, Comparators

Manufacturer Texas Instruments

Packaging Cut Tape (CT) & Digi-Reel®

Series -

Product Status Active

Type General Purpose

Number of Elements 1

Output Type CMOS, Push-Pull

Voltage - Supply, Single/Dual (±) 1.8V ~ 5.5V

Voltage - Input Offset (Max) 3mV @ 5V

Current - Input Bias (Max) 0.4pA @ 5V

Current - Output (Typ) 19mA @ 5V

Current - Quiescent (Max) 750nA

CMRR, PSRR (Typ) 98dB CMRR, 82dB PSRR

Propagation Delay (Max) 30µs

Hysteresis -

Operating Temperature -40°C ~ 85°C

Package / Case 5-TSSOP, SC-70-5, SOT-353

Mounting Type Surface Mount

Supplier Device Package SC-70-5

Base Product Number LPV7215

Datasheet & Documents

HTML Datasheet

LPV7215MG/NOPB-DG

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 1 (Unlimited)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8542.39.0001

Additional Information

Other Names
LPV7215MG/NOPBDKR
LPV7215MG/NOPBCT
NATNSCLPV7215MG/NOPB
LPV7215MGNOPB
*LPV7215MG/NOPB
-LPV7215MG-NDR
2156-LPV7215MG/NOPB-TI
LPV7215MG/NOPBTR
Standard Package
1,000

Alternative Parts

View Details
PART NUMBER
MANUFACTURER
QUANTITY AVAILABLE
DiGi PART NUMBER
UNIT PRICE
SUBSTITUTE TYPE
LPV7215MGX/NOPB
Texas Instruments
2228
LPV7215MGX/NOPB-DG
0.0069
Parametric Equivalent
TS3011ICT
STMicroelectronics
16138
TS3011ICT-DG
0.0111
MFR Recommended
TS3021ICT
STMicroelectronics
6508
TS3021ICT-DG
0.0085
MFR Recommended
LPV7215MG
Texas Instruments
2438
LPV7215MG-DG
0.0064
Direct

Reviews

5.0/5.0-(Show up to 5 Ratings)
Joyfu***urney
de desembre 02, 2025
5.0
Their extensive product diversity helps me find exactly what I need for my projects.
Hap***eet
de desembre 02, 2025
5.0
I’m always satisfied with their consistently good products and clear pricing.
Clou***lker
de desembre 02, 2025
5.0
Secure packaging kept everything intact, no worries about damage.
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Frequently Asked Questions (FAQ)

Can the LPV7215MG/NOPB be used in low-power sensor applications with supply voltage below 2V, and how does its performance compare to the TS3011ICT in this range?

Yes, the LPV7215MG/NOPB operates down to 1.8V, making it suitable for low-voltage sensor circuits where battery life is critical. Unlike the TS3011ICT, which has a minimum supply of 2.0V, the LPV7215MG/NOPB can maintain reliable operation under 2V, improving design flexibility in energy-constrained systems. Additionally, the LPV7215MG/NOPB offers lower input bias current (0.4pA vs. 20pA) and higher CMRR (98dB vs. 75dB), reducing errors in high-impedance sensing. However, designers must ensure signal slew rates are sufficient due to its 30µs propagation delay, which may limit use in fast-response applications.

What are the risks of replacing a legacy LM393 with the LPV7215MG/NOPB in an existing 5V industrial system?

While the LPV7215MG/NOPB is pin-compatible with the LM393 in SC-70-5 footprint, key differences pose integration risks. The LPV7215MG/NOPB has push-pull CMOS output instead of open-drain, so it cannot be directly wired-OR with other comparators without external circuit changes. Also, its higher input sensitivity and near-zero input bias current (0.4pA) make it more susceptible to noise or leakage on PCB traces. For successful replacement, ensure pull-up resistors are removed, guard rings are used around input traces, and supply filtering is improved to handle the LPV7215MG/NOPB’s lower quiescent current (750nA).

How does the input offset voltage of the LPV7215MG/NOPB impact precision in a resistive bridge measurement circuit at room temperature?

The LPV7215MG/NOPB specifies a maximum input offset voltage of 3mV at 5V supply, which can introduce significant error in low-differential bridge applications (e.g., strain gauges or load cells). For example, in a 3mV/V bridge with 5V excitation, a 3mV offset equals a full-scale error equivalent. To mitigate this, designers should implement auto-zeroing via microcontroller-controlled switching or select an instrumentation amplifier stage before the LPV7215MG/NOPB for offset cancellation. Alternatively, consider factory trimming or software calibration in the system.

Is the LPV7215MG/NOPB suitable for high-noise industrial environments, and what layout practices minimize false triggering?

The LPV7215MG/NOPB’s high CMRR (98dB) and PSRR (82dB) help reject common-mode and supply noise, but its lack of built-in hysteresis increases susceptibility to ringing or EMI in electrically noisy settings. To prevent false triggering, always add external hysteresis using positive feedback resistors. Keep input traces short and guarded, use ground planes under the device, bypass VDD with a 100nF ceramic capacitor within 5mm of the supply pin, and route high-speed signal lines away from comparator inputs. These steps are critical when operating near switching power supplies or digital noise sources.

What are the thermal and reliability considerations when using the LPV7215MG/NOPB in automotive under-hood applications at 85°C?

The LPV7215MG/NOPB is rated for operation up to 85°C ambient, which meets some automotive environments but may be insufficient for under-hood applications where localized temperatures can exceed 100°C. At 85°C, the device remains within spec, but long-term reliability depends on PCB thermal management. Use thermal vias under the package ground pad if available, avoid placing near heat sources, and verify performance over life with extended temperature cycling. The device’s MSL-1 rating and RoHS3 compliance support long-term manufacturability and resistance to thermal stress during assembly, but designers should monitor output load conditions—driving heavy capacitive loads (>100pF) increases propagation delay and dynamic current, potentially affecting timing margins in high-temp operation.

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