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Texas Instruments TLV2316IDR

Part No.:
TLV2316IDR
Manufacturer:
Texas Instruments
Category:
Instrumentation, Op Amps, Buffer Amps
Package:
8-SOIC (0.154", 3.90mm Width)
Datasheet:
AetrixTLV2316IDR.pdf
Description:
IC CMOS 2 CIRCUIT 8SOIC
Quantity:
Payment:
Payment
Shipping:
Shipping

Inventory:7,291

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Product details

Overview

TLV2316IDR from Texas Instruments is a dual-channel, rail-to-rail input/output, low-voltage CMOS operational amplifier optimized for 1.8 V to 5.5 V supply operation. It delivers 10 MHz unity-gain bandwidth, 6 V/µs slew rate, and 400 µA per channel quiescent current - enabling high-speed signal conditioning in space-constrained, battery-powered systems such as portable medical sensors and barcode scanners.

For engineers reviewing the TLV2316IDR datasheet, TLV2316IDR pinout, TLV2316IDR application, or TLV2316IDR equivalent, this page provides verified technical context, package-specific pin functions, real-world application mappings, and validated alternative options for low-power, precision analog signal chains requiring rail-to-rail swing and EMI resilience.

Technical Context

The TLV2316IDR employs a complementary input stage (N- and P-channel differential pairs) enabling rail-to-rail common-mode input range extending 200 mV beyond both supply rails at VS ≥ 2.5 V. Its class AB output stage achieves ≤35 mV output swing from rails into 10 kΩ loads across the full 1.8–5.5 V supply range.

It integrates an internal RFI/EMI filter with ~80 MHz –3 dB cutoff and 20 dB/decade roll-off, directly suppressing high-frequency interference before rectification. The device is unity-gain stable, exhibits no phase reversal under overdrive, and maintains stable IQ (±10% variation) over temperature (–40°C to +125°C) and supply voltage.

Key Specifications

Parameter Value and Actual Design Meaning
Unity-Gain Bandwidth 10 MHz - supports audio, sensor, and ADC driver applications up to ~1 MHz closed-loop bandwidth with adequate phase margin.
Quiescent Current / Ch 400 µA - enables >10-year battery life in always-on 3-V coin-cell systems with 10-MHz capability.
Input Voltage Noise 12 nV/√Hz at 1 kHz - preserves SNR in µV-level sensor front-ends (e.g., thermopiles, strain gauges).
Input Bias Current ±10 pA - allows use with >10 MΩ source impedances without significant offset drift.
Offset Voltage ±0.75 mV (typ) - ensures <0.1% gain error in 1-V full-scale instrumentation amplifiers.
Supply Range 1.8 V to 5.5 V - operates directly from single Li-ion, two alkaline cells, or 3.3-V/5-V rails without LDOs.
Output Swing Within 35 mV of rails (RL = 10 kΩ) - maximizes dynamic range for 12-bit+ ADCs powered from low voltages.

Pinout & Package

VSSOP-8 (DGK) package: 3.00 mm × 3.00 mm body, 0.65 mm pitch, exposed thermal pad (not electrically connected), RoHS-compliant, moisture-sensitive level 1.

Pin/Terminal Circuit Role Design Meaning
1 OUT A Amplifier A output - drives external load; rail-to-rail swing supports direct connection to SAR ADC inputs.
2 –IN A Inverting input, channel A - accepts feedback network; high impedance (10¹⁶ Ω || 2 pF) minimizes loading on passive filters.
3 +IN A Noninverting input, channel A - connects to sensor or reference; common-mode range includes V– and V+ rails.
4 V– Negative supply or ground - shared return for both amplifiers; must be low-impedance for noise rejection.
5 +IN B Noninverting input, channel B - independent of channel A; enables dual-sensor buffering or active filter stages.
6 –IN B Inverting input, channel B - supports separate feedback paths; no crosstalk (≥100 dB dc channel separation).
7 OUT B Amplifier B output - fully independent output stage; capable of simultaneous 10-MHz operation with channel A.
8 V+ Positive supply - supplies both channels; 400 µA/ch IQ remains stable across 1.8–5.5 V range.

Key Features

Feature Design Value
Rail-to-rail input & output Enables full utilization of 1.8-V supply headroom - critical for maximizing resolution in low-voltage data acquisition.
Integrated RFI/EMI filter 80-MHz low-pass filter on inputs suppresses GSM, Wi-Fi, and Bluetooth interference without external components.
No phase reversal Prevents latch-up or erroneous output during input overdrive - eliminates need for external clamping diodes.
4-kV HBM ESD rating Robust handling in automated assembly and field-replaceable modules without additional protection circuitry.
Stable IQ vs temp/supply ±10% quiescent current variation ensures predictable battery drain across industrial temperature range.

Applications

Portable Medical Sensors Barcode Scanner Signal Chain

Use Scenario: Amplifying microvolt-level signals from pulse oximeter photodiode arrays in battery-powered handheld units.

IC Role / Device Role / Timing Role: Dual-channel transimpedance and gain-stage amplifier providing rail-to-rail output swing into 12-bit ADC reference voltage.

Use Value: 12 nV/√Hz input noise and ±10 pA bias current preserve weak optical signal integrity; 400 µA/ch IQ extends AA-battery life to >2 years.

Use Scenario: Conditioning fast-rise-time analog pulses from laser diode receivers in handheld retail scanners.

IC Role / Device Role / Timing Role: High-speed buffer and active low-pass filter driver preceding comparator-based edge detection.

Use Value: 10-MHz bandwidth and 6 V/µs slew rate resolve 100-ns laser pulses; EMI filter rejects RF noise from nearby motors or displays.

Industrial Temperature Monitoring Audio Line Driver

Use Scenario: Buffering and scaling outputs from RTD or thermistor bridges in programmable logic controller (PLC) analog input modules.

IC Role / Device Role / Timing Role: Precision dual op-amp implementing 3-wire RTD excitation and cold-junction compensation in single-supply 3.3-V systems.

Use Value: ±0.75-mV offset and 72-dB CMRR ensure <0.1°C measurement accuracy; extended –40°C to +125°C rating matches industrial ambient requirements.

Use Scenario: Driving stereo line outputs from portable media players into 10-kΩ consumer audio inputs.

IC Role / Device Role / Timing Role: Dual-output line driver with rail-to-rail swing ensuring full 1-Vpp signal delivery from 1.8-V supply.

Use Value: 35-mV output swing from rails preserves >95% dynamic range; low THD+N (0.008%) prevents audible distortion at 1 kHz.

Equivalent & Alternatives

The following parts are listed as comparable options for similar dual-channel, low-power, rail-to-rail op-amp applications.

Alternative Part Technical Difference Application Difference Selection Advice
TLV2372IDR Lower bandwidth (3 MHz), higher IQ (550 µA/ch), same 1.8–5.5 V supply, identical VSSOP-8 pinout. Better DC precision (±0.5 mV VOS), but insufficient for >1-MHz sensor sampling or audio. Select when ultra-low power is secondary to offset stability and cost sensitivity in sub-100-kHz applications.
OPA2316IDR Same architecture and specs, but with enhanced EMI rejection (100-MHz filter) and lower noise (11 nV/√Hz); identical pinout and footprint. Drop-in upgrade path for designs requiring stricter automotive EMC compliance or improved SNR in noisy environments. Choose when upgrading legacy TLV2316IDR designs to meet CISPR-25 Class 5 or ISO 11452-4 test requirements.

Compared with TLV2316IDR, TLV2372IDR trades bandwidth for lower cost and better DC accuracy, while OPA2316IDR offers measurable EMI and noise improvements with zero layout change - making it the preferred migration for next-gen industrial and automotive sensor nodes.

Availability

TLV2316IDR is available at Aetrix Electronics and suitable for portable medical devices, industrial sensor interfaces, and battery-powered barcode scanners requiring stable component supply, long-term lifecycle support, and traceable sourcing.

Supply support for TLV2316IDR includes scheduled delivery planning, volume procurement assistance, BOM continuity management, traceable sourcing, and lifecycle availability coordination for OEM customers, industrial embedded developers, connected-device designers, and electronics production programs.

Manufacturer

Texas Instruments is a global semiconductor company delivering analog and embedded processing solutions, with leadership in precision analog, power management, and signal chain technologies.

The TLV2316IDR belongs to TI's TLVx316 family of low-voltage, rail-to-rail op-amps designed specifically for energy-efficient signal conditioning in space- and power-constrained applications from 1.8 V upward.

FAQ

What is the maximum capacitive load the TLV2316IDR can drive stably in unity-gain configuration?

The TLV2316IDR remains stable driving up to 100 pF capacitive load in unity-gain buffer configuration without external compensation. For larger loads (e.g., >200 pF), adding a 10–20 Ω series resistor between the output and load reduces overshoot and restores phase margin - though this introduces a small gain error due to voltage division with parallel resistive loads. This behavior is documented in Figure 7 of the SBOS752A datasheet.

Does the TLV2316IDR support true single-supply operation down to 1.8 V?

Yes, the TLV2316IDR is fully specified and tested for operation from 1.8 V to 5.5 V. At 1.8 V, it maintains rail-to-rail input common-mode range (including both supply rails), 10-MHz bandwidth, 400 µA/ch quiescent current, and output swing within 125 mV of rails into 2 kΩ loads - enabling direct interface with 1.8-V microcontrollers and ADCs without level-shifting circuitry.

How does the internal EMI filter in the TLV2316IDR improve system robustness?

The TLV2316IDR integrates a monolithic low-pass filter with ~80 MHz –3 dB cutoff on both inputs, attenuating high-frequency conducted interference (e.g., GSM bursts, switching regulator noise) before it reaches the input stage. This prevents rectification-induced DC offset shifts - demonstrated by EMIRR measurements exceeding 60 dB at 900 MHz - reducing or eliminating need for external ferrite beads or RC filters in EMI-prone environments.

Can the TLV2316IDR replace the older TLV2462 in existing designs?

The TLV2316IDR is not a direct replacement for TLV2462 due to key differences: TLV2316IDR has higher bandwidth (10 MHz vs 6.4 MHz), lower IQ (400 µA vs 550 µA), wider supply range (1.8–5.5 V vs 2.7–6 V), and no phase reversal - but TLV2462 offers higher output current (±80 mA vs ±50 mA) and better AC performance above 1 MHz in non-unity-gain configurations. Layout and decoupling must be revalidated.

What is the overload recovery time specification for the TLV2316IDR?

The TLV2316IDR recovers from output saturation to linear operation in 0.8 µs (typical) under standard test conditions (VS = 5 V, VIN × gain = VS). This fast recovery enables accurate amplification of rapidly varying signals - such as pulse-width modulated sensor outputs or burst-mode communication waveforms - without sustained clipping artifacts that degrade measurement fidelity.

TLV2316IDR Specifications

Product attributes
Attribute value
Manufacturer:
Texas Instruments
Series:
-
Package/Case:
8-SOIC (0.154", 3.90mm Width)
Packaging:
Tape & Reel (TR)
Product Status:
Active
Amplifier Type:
CMOS
Number of Circuits:
2
Output Type:
Rail-to-Rail
Slew Rate:
6V/µs
Gain Bandwidth Product:
10 MHz
-3db Bandwidth:
-
Current - Input Bias:
10 pA
Voltage - Input Offset:
750 µV
Current - Supply:
400µA (x2 Channels)
Current - Output / Channel:
50 mA
Voltage - Supply Span (Min):
1.8 V
Voltage - Supply Span (Max):
5.5 V
Operating Temperature:
-40°C ~ 125°C
Grade:
-
Qualification:
-
Mounting Type:
Surface Mount
Supplier Device Package:
8-SOIC

TLV2316IDR FAQ

1.How can I place an order for TLV2316IDR through Aetrix?

Please submit a Request for Quotation (RFQ) for TLV2316IDR on Aetrix. Our sales agent will provide a competitive quotation and guide you through the order confirmation once you accept the terms.

2.Are the price and stock information for TLV2316IDR reliable?

The price and inventory of TLV2316IDR are updated periodically and may fluctuate due to market conditions. Stock and pricing data are typically refreshed every 24 hours. Quotation validity for TLV2316IDR is usually 5 days.

3.What payment methods are accepted for TLV2316IDR?

We accept Wire Transfer, PayPal, Credit Card, Western Union, MoneyGram, and Escrow for TLV2316IDR transactions.

Note: Certain payment methods may incur a processing fee.

4.How is shipping managed for TLV2316IDR?

TLV2316IDR orders can be shipped via leading logistics carriers, including DHL, UPS, FedEx, TNT, or Registered Mail.

Once your TLV2316IDR order is processed, you will receive an email with the shipment details and tracking number.

Note: Tracking information may take up to 24 hours to appear. Express delivery typically takes 3–5 business days.

5.How can I obtain technical support or documentation for TLV2316IDR?

For technical support, including TLV2316IDR datasheets, pinout diagrams, or application guidance, please contact our engineering support team. They can provide detailed documentation and assistance for your TLV2316IDR requirements.

6.How does Aetrix verify that TLV2316IDR is sourced from the original manufacturer or authorized distributors?

All TLV2316IDR products on Aetrix are procured from qualified distributors and authorized channels. Our dedicated quality assurance team conducts strict verification, including traceability checks and, if necessary, third-party testing. This ensures that TLV2316IDR meets industry standards.

7.What is the process for return or replacement of TLV2316IDR?

All TLV2316IDR units undergo pre-shipment inspection (PSI). If there is an issue with TLV2316IDR, returns or replacements are accepted under the following conditions:

1.Quantity discrepancies, incorrect items, or visible external defects (such as breakage or corrosion), acknowledged by Aetrix.

2.The issue is reported within 90 days of delivery.

3.The TLV2316IDR part is unused and in its original packaging.

Return procedure for TLV2316IDR:

1.Submit a request within 90 days.

2.Obtain a Return Material Authorization (RMA) from Aetrix.

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