Datasheets
OPA170AQDBVRQ1 by: Texas Instruments

Automotive-grade, single, 36-V, 1.2-MHz, low-power operational amplifier 5-SOT-23 -40 to 125

Part Details for OPA170AQDBVRQ1 by Texas Instruments

Results Overview of OPA170AQDBVRQ1 by Texas Instruments

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Applications Consumer Electronics Education and Research Internet of Things (IoT) Audio and Video Systems Computing and Data Storage Aerospace and Defense Healthcare Telecommunications Entertainment and Gaming Automotive

OPA170AQDBVRQ1 Information

OPA170AQDBVRQ1 by Texas Instruments is an Operational Amplifier.
Operational Amplifiers are under the broader part category of Amplifier Circuits.

Amplifier circuits use external power to increase the amplitude of an input signal. They can be used to perform linear amplifications or logarithmic functions. Read more about Amplifier Circuits on our Amplifier Circuits part category page.

Price & Stock for OPA170AQDBVRQ1

Part # Distributor Description Stock Price Buy
DISTI # OPA170AQDBVRQ1
TME IC: operational amplifier, 1.2MHz, Ch: 1, SOT23-5, reel,tape Min Qty: 1 0
  • 1 $1.4100
  • 5 $1.2700
  • 25 $1.1200
  • 100 $1.0100
  • 500 $0.9400
  • 3,000 $0.8700
$0.8700 / $1.4100 RFQ
LCSC Single channel 8pA 0.4V/us 1.2MHz SOT-23-5 Operational Amplifier ROHS 100
  • 1 $1.5162
  • 10 $1.2577
  • 30 $1.1154
  • 100 $0.9547
  • 500 $0.8843
  • 1,000 $0.8507
$0.8507 / $1.5162 Buy Now

Part Details for OPA170AQDBVRQ1

OPA170AQDBVRQ1 CAD Models

OPA170AQDBVRQ1 Part Data Attributes

OPA170AQDBVRQ1 Texas Instruments
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OPA170AQDBVRQ1 Texas Instruments Automotive-grade, single, 36-V, 1.2-MHz, low-power operational amplifier 5-SOT-23 -40 to 125
Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Active
Ihs Manufacturer TEXAS INSTRUMENTS INC
Package Description SOT-23, 5 PIN
Reach Compliance Code compliant
ECCN Code EAR99
Samacsys Manufacturer Texas Instruments
Amplifier Type OPERATIONAL AMPLIFIER
Average Bias Current-Max (IIB) 0.0035 µA
Bias Current-Max (IIB) @25C 0.000015 µA
Common-mode Reject Ratio-Nom 120 dB
Input Offset Voltage-Max 1800 µV
JESD-30 Code R-PDSO-G5
JESD-609 Code e4
Length 2.9 mm
Moisture Sensitivity Level 3
Neg Supply Voltage Limit-Max -20 V
Neg Supply Voltage-Nom (Vsup) -2 V
Number of Functions 1
Number of Terminals 5
Operating Temperature-Max 125 °C
Operating Temperature-Min -40 °C
Package Body Material PLASTIC/EPOXY
Package Code LSSOP
Package Shape RECTANGULAR
Package Style SMALL OUTLINE, LOW PROFILE, SHRINK PITCH
Peak Reflow Temperature (Cel) 260
Screening Level AEC-Q100
Seated Height-Max 1.45 mm
Slew Rate-Nom 0.4 V/us
Supply Voltage Limit-Max 20 V
Supply Voltage-Nom (Vsup) 2 V
Surface Mount YES
Temperature Grade AUTOMOTIVE
Terminal Finish Nickel/Palladium/Gold (Ni/Pd/Au)
Terminal Form GULL WING
Terminal Pitch 0.95 mm
Terminal Position DUAL
Time@Peak Reflow Temperature-Max (s) 30
Unity Gain BW-Nom 1200
Width 1.6 mm

OPA170AQDBVRQ1 Related Parts

OPA170AQDBVRQ1 Frequently Asked Questions (FAQ)

  • The maximum power dissipation of the OPA170AQDBVRQ1 is 670mW, which is calculated based on the maximum junction temperature (TJ) of 150°C and the thermal resistance (θJA) of 125°C/W.

  • To ensure stability, it's essential to follow proper PCB layout practices, minimize parasitic capacitance, and use a compensation capacitor (if necessary) as recommended in the datasheet. Additionally, consider using a phase margin analyzer tool to verify stability.

  • For optimal performance, keep the input and output traces short and symmetrical, avoid crossing signal traces, and use a solid ground plane. Also, place decoupling capacitors close to the op-amp's power pins and use a low-ESR capacitor for the bypass capacitor.

  • The OPA170AQDBVRQ1 is specified to operate from -40°C to 125°C. However, the device's performance may degrade at higher temperatures. Consult the datasheet for temperature-related specifications and consider using thermal management techniques if operating in high-temperature environments.

  • To minimize EMI, use a shielded enclosure, keep the op-amp and surrounding components away from high-frequency sources, and use EMI filters or shielding on the input and output lines. Additionally, consider using a common-mode choke or ferrite beads to reduce EMI.

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