If your OBD-II scanner displays P0139, your vehicle’s Engine Control Module (ECM) or Powertrain Control Module (PCM) has detected that the Bank 1 Sensor 2 oxygen (O2) sensor is responding slower than the manufacturer allows.
The generic OBD-II definition for P0139 is:
O2 Sensor Circuit Slow Response (Bank 1 Sensor 2)
Bank 1 Sensor 2 is the downstream oxygen sensor located after the catalytic converter on the engine bank containing cylinder number one.
Unlike Bank 1 Sensor 1, which rapidly adjusts fuel delivery, Bank 1 Sensor 2 primarily monitors:
- Catalytic converter efficiency
- Oxygen storage capacity
- Exhaust emissions
- OBD-II catalyst readiness
- Overall emissions-system performance
When the PCM determines that the downstream oxygen sensor changes voltage too slowly, it stores P0139 and usually illuminates the Check Engine Light.
Although an aging oxygen sensor is the most common cause, slow response can also result from:
- Exhaust leaks
- Sensor contamination
- Damaged wiring
- Heater circuit faults
- Catalytic converter problems
- Connector corrosion
- Poor electrical connections
Just because the sensor is slow doesn’t necessarily mean it’s lazy. Sometimes the wiring, heater circuit, or exhaust system is making it look that way.
What Does the P0139 Code Mean?
The downstream oxygen sensor measures the amount of oxygen remaining in the exhaust gases after they pass through the catalytic converter.
Unlike the upstream sensor, which constantly switches between rich and lean conditions, the downstream sensor normally changes voltage more gradually because the catalytic converter smooths oxygen fluctuations.
With P0139, the PCM has determined that the downstream oxygen sensor does respond, but not quickly enough.
Instead of reacting within the expected time, the sensor lags behind changes occurring in the exhaust stream.
Possible reasons include:
- Aging oxygen sensor
- Weak sensing element
- Heater circuit problems
- Sensor contamination
- Wiring resistance
- Poor electrical connections
- Exhaust system issues
P0139 identifies a slow-response condition, not a complete sensor failure.
Where Is Bank 1 Sensor 2 Located?
Bank 1 Sensor 2 is always located after the catalytic converter.
Depending on vehicle design, it may be installed in the:
- Catalytic converter outlet
- Intermediate exhaust pipe
- Front exhaust section
- Exhaust tunnel beneath the vehicle
On inline engines:
Bank 1 is the only engine bank.
On V-style engines:
Bank 1 is the side containing cylinder number one.
Sensor 2 always identifies the downstream oxygen sensor mounted behind the catalytic converter.
Bank 1 Sensor 1 vs. Bank 1 Sensor 2
These sensors perform completely different functions.
Bank 1 Sensor 1
Located before the catalytic converter.
Responsible for:
- Fuel control
- Air-fuel ratio adjustments
- Short-Term Fuel Trim
- Long-Term Fuel Trim
- Closed-loop operation
Bank 1 Sensor 2
Located after the catalytic converter.
Responsible for:
- Catalyst efficiency monitoring
- Oxygen storage evaluation
- Emissions verification
- Catalyst readiness monitoring
While the upstream sensor actively manages combustion, the downstream sensor confirms that the catalytic converter is cleaning up the results.
How the Downstream Oxygen Sensor Works
Most downstream oxygen sensors are zirconia narrowband sensors.
The sensing element compares:
- Oxygen in the exhaust gases
- Oxygen in outside air
The difference generates a voltage signal.
Typical voltage range:
- Lean: approximately 0.1–0.2 volts
- Rich: approximately 0.8–0.9 volts
Because exhaust gases have already passed through the catalytic converter, the downstream sensor should change voltage smoothly and gradually rather than rapidly.
What Does “Slow Response” Mean?
A slow-response oxygen sensor still works—but not quickly enough.
The PCM expects the downstream sensor to react within a calibrated amount of time as exhaust conditions change.
Instead, the sensor may:
- Lag behind changes
- Respond sluggishly
- Take too long to increase voltage
- Take too long to decrease voltage
- Remain stable longer than expected
As oxygen sensors age, their internal ceramic sensing elements become less responsive, making P0139 increasingly common on higher-mileage vehicles.
How the PCM Detects P0139
The PCM monitors Bank 1 Sensor 2 during specific operating conditions.
Typical monitoring requirements include:
- Closed-loop operation
- Normal engine temperature
- Proper heater operation
- Stable engine load
- Valid upstream oxygen sensor data
- Active catalyst monitor
The PCM measures how long the downstream sensor takes to respond to changing exhaust conditions.
If the response exceeds the manufacturer’s calibrated limit, P0139 is stored.
Some vehicles require multiple failed drive cycles before illuminating the Check Engine Light.
Why the Downstream Oxygen Sensor Matters
Although Bank 1 Sensor 2 does not directly adjust fuel injector pulse width, it plays an essential role in emissions monitoring.
The PCM uses it to verify:
- Catalytic converter efficiency
- Oxygen storage capacity
- Catalyst monitor completion
- Emissions-system performance
- OBD-II readiness
Without an accurate downstream oxygen sensor, the PCM cannot reliably evaluate converter performance.
Can an Aging Oxygen Sensor Cause P0139?
Absolutely.
As oxygen sensors accumulate mileage, the sensing element gradually becomes less responsive.
Common reasons include:
- Carbon deposits
- Oil contamination
- Silicone contamination
- Coolant contamination
- Heat cycling
- Natural wear
Many original oxygen sensors begin slowing noticeably after 100,000 to 150,000 miles, although operating conditions greatly affect lifespan.
Can a Catalytic Converter Cause P0139?
Yes.
Although P0139 primarily identifies a slow downstream oxygen sensor, catalytic converter problems may contribute.
Possible converter-related causes include:
- Reduced oxygen storage
- Internal restriction
- Overheating
- Physical damage
Catalytic converter failures more commonly trigger P0420, but the converter should still be evaluated during diagnosis.
P0139 Quick Facts
| Item | Information |
|---|---|
| DTC | P0139 |
| Generic Definition | O2 Sensor Circuit Slow Response (Bank 1 Sensor 2) |
| System | Fuel & Emissions |
| Sensor Location | Downstream (After Catalytic Converter) |
| Severity | Low to Moderate |
| Safe to Drive? | Usually Yes |
| Common Symptoms | Check Engine Light, emissions failure, catalyst monitor problems |
| Common Causes | Aging oxygen sensor, contamination, wiring damage, heater circuit faults |
| Typical Repair Cost | $100–900+ |
| Related Codes | P0136, P0137, P0138, P0140, P0141, P0420 |
Common Vehicles That Experience P0139
Because P0139 is a generic OBD-II diagnostic trouble code, it may occur on nearly every gasoline-powered vehicle built since 1996.
Common manufacturers include:
- Chevrolet
- GMC
- Buick
- Cadillac
- Ford
- Lincoln
- Toyota
- Lexus
- Honda
- Acura
- Nissan
- Infiniti
- Hyundai
- Kia
- Mazda
- Subaru
- Volkswagen
- Audi
- BMW
- MINI
- Mercedes-Benz
- Chrysler
- Dodge
- Jeep
- Ram
Vehicles with higher mileage are particularly susceptible because downstream oxygen sensors naturally become slower with age.
What Does P0139 Really Mean?
The wording of P0139 often leads drivers to assume the downstream oxygen sensor has completely failed.
The code does not automatically mean:
- The oxygen sensor is dead.
- The catalytic converter is defective.
- The engine is running rich.
- The engine is running lean.
- The PCM has failed.
Instead, it means the PCM has determined that Bank 1 Sensor 2 is reacting too slowly to normal exhaust changes.
The problem may involve:
- The oxygen sensor
- Wiring
- Connector
- Heater circuit
- Exhaust system
- Catalytic converter
Think of P0139 as the PCM saying:
“The downstream oxygen sensor is still talking to me—it just isn’t keeping up with the conversation anymore.”
Next Section
Part 1B covers:
- Common scan-tool patterns
- Symptoms
- Catalyst monitor behavior
- Drivability concerns
- Severity
- Can you drive with P0139?
- Related OBD-II codes
- The 30 most common causes of P0139 before moving into the complete diagnostic and repair procedures in Part 2.
Common P0139 Scan Tool Patterns
Monitoring live scan-tool data is one of the most effective ways to diagnose P0139.
Unlike the upstream oxygen sensor, Bank 1 Sensor 2 should not switch rapidly. Because it monitors exhaust gases after they pass through the catalytic converter, its voltage changes should be slow, smooth, and stable.
With P0139, the problem is not that the sensor has stopped working—it is that the sensor is responding slower than the PCM expects.
Pattern 1: Slow Voltage Changes
The most common scan-tool pattern is a downstream oxygen sensor that eventually changes voltage but does so much more slowly than normal.
Instead of responding within seconds, the sensor may:
- Hesitate before changing voltage
- Transition slowly
- Remain fixed longer than expected
- Lag behind changing engine conditions
Possible causes include:
- Aging oxygen sensor
- Weak sensing element
- Sensor contamination
- Heater circuit problems
This is the classic scan-tool pattern associated with P0139.
Pattern 2: Delayed Rich-to-Lean Response
Momentarily creating a lean condition should cause the downstream oxygen sensor voltage to decrease.
A healthy sensor should:
- Respond smoothly
- Gradually decrease voltage
- Stabilize within manufacturer specifications
A slow sensor may:
- Take several seconds longer
- Hesitate before responding
- Continue displaying the previous voltage
Delayed voltage transitions are a defining characteristic of P0139.
Pattern 3: Delayed Lean-to-Rich Response
Momentarily enriching the air-fuel mixture should cause Bank 1 Sensor 2 voltage to increase.
A healthy sensor gradually rises toward:
- 0.8–0.9 volts
A slow sensor may:
- Increase voltage very slowly
- Pause before reacting
- Never reach normal peak voltage quickly enough
This commonly indicates an aging oxygen sensor.
Pattern 4: Downstream Sensor Lags Behind Upstream Sensor
Monitor:
- Bank 1 Sensor 1
- Bank 1 Sensor 2
Normal operation:
- Sensor 1 responds quickly.
- Sensor 2 responds gradually.
With P0139:
- Sensor 1 changes normally.
- Sensor 2 reacts noticeably later than expected.
The downstream sensor appears to “follow” the upstream sensor but with excessive delay.
Pattern 5: Slow Response After Warm-Up
Some vehicles operate normally immediately after startup.
As the engine reaches operating temperature:
- Sensor response slows
- Voltage transitions become delayed
- P0139 eventually sets
Possible causes include:
- Aging oxygen sensor
- Weak heater circuit
- Internal sensor deterioration
Pattern 6: Catalyst Monitor Incomplete
Many scan tools display:
- Catalyst Monitor: Incomplete
- Oxygen Sensor Monitor: Failed
- Rear Oxygen Sensor Monitor: Incomplete
Because the downstream sensor cannot respond quickly enough, the PCM may suspend catalyst monitoring.
Common Symptoms of P0139
Most vehicles continue to drive normally because the downstream oxygen sensor does not directly control fuel delivery.
Common symptoms include:
- Check Engine Light
- Failed emissions inspection
- Catalyst monitor incomplete
- Increased emissions
- Slight reduction in fuel economy
- Occasional hesitation
- Additional oxygen sensor codes
- No noticeable drivability problems
Many drivers notice only the illuminated Check Engine Light.
Check Engine Light
The Check Engine Light is almost always the first symptom.
Most manufacturers require:
- Multiple failed drive cycles
- Closed-loop operation
- Confirmed slow-response measurements
before storing P0139.
Failed Emissions Inspection
P0139 frequently prevents successful emissions testing because:
- The malfunction indicator lamp is illuminated.
- Catalyst readiness may remain incomplete.
- The PCM cannot accurately evaluate catalytic converter efficiency.
A perfectly smooth-running engine can still fail an emissions inspection because one sensor is taking its time.
Catalyst Monitor Problems
Bank 1 Sensor 2 is critical for catalyst monitoring.
When response time becomes excessive:
- Catalyst Monitor may fail.
- Readiness monitors remain incomplete.
- Emissions testing may not be possible.
Slight Reduction in Fuel Economy
Although the downstream oxygen sensor does not directly manage fuel delivery, some vehicles use its information for adaptive fuel strategies.
Drivers may notice:
- Slightly lower MPG
- Small increases in fuel consumption
- Minor efficiency loss
Fuel economy changes are generally modest compared to upstream oxygen sensor faults.
Mild Hesitation
Some vehicles may exhibit:
- Mild hesitation
- Slight throttle delay
- Occasional rough idle
These symptoms usually indicate another engine issue contributing to the slow sensor response.
Is P0139 Serious?
P0139 is generally considered a low-to-moderate severity diagnostic trouble code.
Most vehicles remain fully drivable.
However, delaying repairs may result in:
- Failed emissions testing
- Increased emissions
- Incomplete catalyst monitoring
- Reduced ability to detect catalytic converter problems
- Additional oxygen sensor codes
Prompt diagnosis is recommended to maintain proper emissions system performance.
Can You Drive With P0139?
Usually yes.
Driving is generally safe if:
- The engine runs smoothly.
- No flashing Check Engine Light is present.
- No severe misfires occur.
- Vehicle performance remains acceptable.
Repairs should be scheduled soon if:
- P0420 also appears.
- Fuel economy worsens.
- Additional oxygen sensor codes develop.
- Emissions testing is required.
P0139 vs Related Trouble Codes
Understanding related downstream oxygen sensor codes helps narrow the diagnosis.
P0136
O2 Sensor Circuit Malfunction (Bank 1 Sensor 2)
General circuit fault.
P0137
O2 Sensor Circuit Low Voltage (Bank 1 Sensor 2)
Voltage remains too low.
P0138
O2 Sensor Circuit High Voltage (Bank 1 Sensor 2)
Voltage remains too high.
P0139
O2 Sensor Circuit Slow Response (Bank 1 Sensor 2)
Sensor reacts too slowly to exhaust changes.
P0140
O2 Sensor Circuit No Activity Detected (Bank 1 Sensor 2)
No usable sensor activity.
P0141
O2 Sensor Heater Circuit Malfunction (Bank 1 Sensor 2)
Heater circuit failure.
P0420
Catalyst System Efficiency Below Threshold (Bank 1)
Catalytic converter efficiency problem.
30 Common Causes of P0139
The most common causes include:
- Aging Bank 1 Sensor 2 oxygen sensor
- Sensor contamination
- Carbon buildup
- Oil contamination
- Coolant contamination
- Silicone contamination
- Weak heater circuit
- Failed heater element
- Blown heater fuse
- Damaged heater wiring
- Corroded connector terminals
- Loose electrical connector
- High circuit resistance
- Heat-damaged wiring
- Exhaust leaks
- Catalytic converter deterioration
- Restricted catalytic converter
- Poor sensor ground
- Damaged wiring harness
- Water intrusion into connector
- Road debris damage
- Incorrect aftermarket oxygen sensor
- Previous poor wiring repairs
- Rich engine operation
- Lean engine operation
- Faulty Mass Air Flow (MAF) sensor
- Fuel delivery problems
- PCM calibration issue
- Damaged PCM connector
- PCM failure (rare)
Final Thoughts
The P0139 O2 Sensor Circuit Slow Response (Bank 1 Sensor 2) code indicates the PCM has determined that the downstream oxygen sensor is reacting too slowly to changes in exhaust oxygen levels.
Although an aging oxygen sensor is the most common cause, contamination, heater circuit faults, damaged wiring, connector corrosion, exhaust leaks, catalytic converter problems, and electrical faults can all produce the same slow-response condition.
Proper diagnosis should determine whether the problem originates in:
- The oxygen sensor
- The heater circuit
- The wiring harness
- The connector
- The catalytic converter
- The exhaust system
The next section of this guide covers:
- Complete diagnostic procedures
- Live-data analysis
- Oxygen sensor response testing
- Heater circuit diagnostics
- Wiring inspection
- Catalytic converter evaluation
- Repair procedures
- Repair costs
- Manufacturer-specific troubleshooting
Following a structured diagnostic process prevents unnecessary parts replacement while restoring proper catalyst monitoring and emissions system performance.
Related Pro Street Diagnostic Guides
- P0136 – O2 Sensor Circuit Malfunction (Bank 1 Sensor 2)
- P0137 – O2 Sensor Circuit Low Voltage (Bank 1 Sensor 2)
- P0138 – O2 Sensor Circuit High Voltage (Bank 1 Sensor 2)
- P0140 – O2 Sensor Circuit No Activity Detected (Bank 1 Sensor 2)
- P0141 – O2 Sensor Heater Circuit Malfunction (Bank 1 Sensor 2)
- P0420 – Catalyst System Efficiency Below Threshold (Bank 1)
Continue to Part 2 for complete diagnostic procedures, repair methods, repair costs, manufacturer-specific information, and frequently asked questions.
How to Diagnose the P0139 Code
Diagnosing P0139 requires determining why the Bank 1 Sensor 2 oxygen sensor is responding more slowly than the PCM expects.
Unlike the upstream oxygen sensor, which directly controls fuel delivery, the downstream oxygen sensor is primarily responsible for monitoring catalytic converter efficiency and verifying proper emissions system operation.
Although an aging downstream oxygen sensor is the most common cause of P0139, slow response may also result from:
- Heater circuit problems
- Exhaust leaks
- Sensor contamination
- Damaged wiring
- Connector corrosion
- Catalytic converter deterioration
- High circuit resistance
- PCM calibration issues
Replacing the oxygen sensor without confirming the actual cause may solve the problem—or simply become an expensive guessing game.
Safety Precautions
Before beginning diagnosis:
- Park the vehicle on level ground.
- Set the parking brake.
- Allow the exhaust system to cool completely.
- Wear safety glasses.
- Use insulated gloves when working around hot exhaust components.
- Disconnect the battery before repairing electrical wiring.
The downstream oxygen sensor operates in an environment that routinely exceeds 900°F (480°C).
Tools Required
Professional diagnosis may require:
- Professional scan tool
- Live-data capability
- Graphing scan tool
- Digital multimeter
- Oscilloscope (recommended)
- Oxygen sensor socket
- Smoke machine
- Infrared thermometer
- Back-probe leads
- Wiring diagrams
- Factory service information
- Basic hand tools
An oscilloscope provides the most accurate method of measuring oxygen sensor response time.
Step 1 – Verify the Code
Connect a professional scan tool.
Record:
- Stored DTCs
- Pending DTCs
- Permanent DTCs
- Freeze-frame data
Monitor:
- Bank 1 Sensor 2 voltage
- Bank 1 Sensor 1 voltage
- STFT
- LTFT
- Engine Coolant Temperature
- Engine Load
- Fuel System Status
Do not clear any codes until freeze-frame information has been recorded.
Step 2 – Check for Related Trouble Codes
P0139 frequently appears with:
- P0136
- P0137
- P0138
- P0140
- P0141
- P0420
- P0171
- P0172
Multiple DTCs often point toward the root cause.
| Code Combination | Likely Diagnosis |
|---|---|
| P0139 only | Aging downstream oxygen sensor |
| P0139 + P0141 | Heater circuit fault |
| P0139 + P0420 | Catalytic converter efficiency problem |
| P0139 + P0136 | General downstream sensor circuit fault |
| P0139 + P0171/P0172 | Fuel mixture affecting sensor response |
Step 3 – Verify Closed-Loop Operation
Allow the engine to reach normal operating temperature.
Monitor:
- Fuel System Status
The PCM should transition from:
Open Loop
to
Closed Loop
If closed-loop operation never begins, inspect:
- Upstream oxygen sensor
- Engine Coolant Temperature sensor
- Thermostat
- PCM calibration
Downstream oxygen sensor response testing should always be performed during closed-loop operation.
Step 4 – Monitor Bank 1 Sensor 2 Live Data
Observe downstream oxygen sensor voltage.
A healthy Bank 1 Sensor 2 should:
- Respond smoothly
- Change gradually
- Remain relatively stable
- Follow exhaust changes within manufacturer specifications
Watch for:
- Delayed voltage changes
- Slow transitions
- Extended voltage plateaus
- Hesitation before responding
These are classic indicators of P0139.
Step 5 – Compare Upstream and Downstream Sensors
Monitor:
- Bank 1 Sensor 1
- Bank 1 Sensor 2
Normal operation:
- Sensor 1 switches rapidly.
- Sensor 2 responds much more slowly.
With P0139:
- Sensor 1 operates normally.
- Sensor 2 eventually responds, but much later than expected.
This comparison helps isolate the fault to the downstream sensor rather than the fuel control system.
Step 6 – Perform Rich and Lean Response Tests
Momentarily create:
- A rich condition
- A lean condition
A healthy downstream sensor should gradually respond in both directions.
Watch for:
- Delayed voltage increase
- Delayed voltage decrease
- Sluggish transitions
- Failure to stabilize
Slow bidirectional response strongly suggests sensor deterioration or heater problems.
Step 7 – Analyze Fuel Trim Data
Monitor:
- Short-Term Fuel Trim (STFT)
- Long-Term Fuel Trim (LTFT)
Abnormal fuel trims may indicate:
- Vacuum leaks
- Rich operation
- Lean operation
- Fuel delivery problems
Fuel trim analysis helps determine whether slow sensor response is caused by engine operation or by the sensor itself.
Step 8 – Inspect the Oxygen Sensor
Inspect Bank 1 Sensor 2 for:
- Carbon buildup
- Oil contamination
- Coolant contamination
- Silicone contamination
- Physical damage
- Impact damage
Contaminants can significantly slow sensor response without causing a complete failure.
Step 9 – Inspect the Electrical Connector
Disconnect the connector.
Inspect for:
- Corrosion
- Bent terminals
- Loose pins
- Water intrusion
- Broken locking tabs
- Heat damage
Even slight connector resistance can noticeably slow oxygen sensor signal transmission.
Step 10 – Test the Signal Circuit
Using a digital multimeter:
Back-probe the signal wire.
Inspect for:
- High resistance
- Open circuits
- Intermittent signal loss
- Poor continuity
- Wiring damage
Excessive circuit resistance can delay sensor voltage changes enough to trigger P0139.
Step 11 – Verify Sensor Ground
Perform voltage-drop testing.
Inspect:
- Sensor ground
- Engine ground
- Chassis ground
- PCM ground
Poor grounds often produce unstable or sluggish oxygen sensor signals.
Step 12 – Test the Heater Circuit
The downstream oxygen sensor contains an internal heater.
Inspect:
- Heater power
- Heater ground
- Heater resistance
- Heater fuse
- Heater relay
A weak heater slows sensor warm-up and reduces response speed during normal operation.
Step 13 – Inspect the Exhaust System
Inspect the exhaust system around Bank 1 Sensor 2.
Check for:
- Exhaust leaks
- Cracked pipes
- Loose flanges
- Damaged gaskets
- Weld failures
Exhaust leaks introduce fresh oxygen that can alter sensor response characteristics.
Step 14 – Evaluate Catalytic Converter Performance
Compare upstream and downstream oxygen sensor activity.
A healthy catalytic converter should:
- Smooth oxygen fluctuations
- Produce stable downstream voltage
- Prevent rapid downstream switching
If converter efficiency is reduced, the downstream sensor may respond abnormally slowly.
Step 15 – Inspect the Wiring Harness
Inspect the complete harness between:
- Bank 1 Sensor 2
- PCM
Look for:
- Melted insulation
- Chafed wiring
- Rodent damage
- Previous repairs
- Contact with exhaust components
Heat-related wiring damage remains one of the most common causes of downstream oxygen sensor circuit issues.
Step 16 – Review Technical Service Bulletins
Before replacing expensive components:
Review manufacturer Technical Service Bulletins.
Look for updates involving:
- Oxygen sensor diagnostics
- Catalyst monitor calibration
- Heater control strategy
- PCM software
- False P0139 detection
Some manufacturers have released software updates that improve oxygen sensor diagnostics.
Step 17 – Compare Bank 2 Sensor 2 (If Equipped)
On V-engine applications:
Compare:
- Bank 1 Sensor 2
- Bank 2 Sensor 2
If Bank 2 responds normally while Bank 1 is noticeably slower, the fault is likely isolated to Bank 1 Sensor 2 or its circuit.
Step 18 – Review Freeze-Frame Data
Compare current live data with recorded freeze-frame information.
Review:
- Engine RPM
- Engine Load
- Vehicle Speed
- Coolant Temperature
- Oxygen sensor voltage
- Fuel trims
Freeze-frame data often identifies the operating conditions that caused the PCM to detect slow sensor response.
Step 19 – Confirm Sensor Switching Time
Using a graphing scan tool or oscilloscope:
Measure how long the downstream oxygen sensor takes to:
- Respond to enrichment
- Respond to lean conditions
- Stabilize after voltage changes
Response times that exceed manufacturer specifications confirm the slow-response condition.
Step 20 – Confirm the Diagnosis
Before replacing any components, verify:
- Oxygen sensor response speed
- Signal circuit integrity
- Heater operation
- Ground quality
- Wiring condition
- Connector integrity
- Exhaust system condition
- Catalytic converter efficiency
A thorough diagnosis prevents unnecessary replacement of oxygen sensors, catalytic converters, and PCM components.
Next Section
Part 2B covers:
- Downstream oxygen sensor replacement
- Wiring repairs
- Heater circuit repairs
- Exhaust leak repairs
- Catalytic converter evaluation
- Repair costs
- Manufacturer-specific troubleshooting
- Common diagnostic mistakes
- Frequently asked questions
- Final repair verification
Step 21 – Replace the Downstream Oxygen Sensor (If Required)
Replace Bank 1 Sensor 2 only after confirming that the downstream oxygen sensor has become sluggish or that testing verifies an internal sensor failure.
General replacement procedure:
- Allow the exhaust system to cool completely.
- Disconnect the negative battery cable if recommended by the manufacturer.
- Disconnect the downstream oxygen sensor electrical connector.
- Remove the sensor using an oxygen sensor socket.
- Inspect the sensor threads and mounting bung.
- Install a quality OEM or OEM-equivalent replacement sensor.
- Tighten the sensor to the manufacturer’s specified torque.
- Reconnect the electrical connector.
- Clear all stored diagnostic trouble codes.
- Verify proper sensor response using a professional scan tool.
OEM oxygen sensors typically provide the fastest and most accurate response times for catalyst monitoring.
Step 22 – Repair the Signal Circuit
High electrical resistance can slow oxygen sensor response enough to trigger P0139.
Inspect the signal circuit for:
- High resistance
- Open wiring
- Damaged insulation
- Melted harnesses
- Rodent damage
- Previous poor-quality repairs
Repair using:
- Automotive-grade wire
- Weatherproof connectors
- Adhesive-lined heat shrink
- Proper harness routing away from the exhaust
Even minor wiring damage can significantly delay downstream oxygen sensor response.
Step 23 – Repair Connector Problems
Disconnect the Bank 1 Sensor 2 connector.
Inspect for:
- Green corrosion
- Loose terminals
- Bent pins
- Water intrusion
- Heat damage
- Broken locking tabs
Poor electrical connections increase circuit resistance and commonly contribute to slow-response codes.
Replace damaged connectors rather than attempting temporary repairs.
Step 24 – Repair the Heater Circuit
A weak heater circuit is one of the most overlooked causes of P0139.
Inspect:
- Heater power supply
- Heater ground
- Heater resistance
- Oxygen sensor fuse
- Heater relay
A heater that cannot maintain proper sensor temperature slows voltage response and may trigger both P0139 and P0141.
Step 25 – Repair Exhaust Leaks
Inspect the exhaust system around Bank 1 Sensor 2.
Repair:
- Cracked exhaust pipes
- Loose flanges
- Damaged gaskets
- Broken welds
- Exhaust leaks near the catalytic converter
Fresh outside air entering the exhaust stream can delay downstream oxygen sensor response and interfere with catalyst monitoring.
Step 26 – Clean Up Engine Contamination
Slow oxygen sensors are often contaminated rather than electrically damaged.
Inspect for evidence of:
- Oil consumption
- Coolant leaks
- Silicone contamination
- Fuel additives
- Excessive carbon deposits
Correct the source of contamination before installing a replacement sensor to avoid repeated failures.
Step 27 – Repair Ground Circuit Problems
Poor electrical grounds can slow sensor response.
Perform voltage-drop testing.
Inspect:
- Engine grounds
- Chassis grounds
- PCM grounds
- Oxygen sensor ground circuit
Repair loose, corroded, or damaged ground connections before replacing expensive components.
Step 28 – Inspect the Catalytic Converter
Although P0139 is primarily a downstream oxygen sensor code, catalytic converter problems can contribute to slow sensor response.
Inspect for:
- Physical damage
- Internal restriction
- Overheating
- Melted substrate
- Rattling catalyst
- External discoloration
If P0420 is also present, perform catalyst efficiency testing before replacing the converter.
Step 29 – Update PCM Software
Before replacing major components, review manufacturer Technical Service Bulletins (TSBs).
Manufacturers occasionally release software updates affecting:
- Oxygen sensor diagnostics
- Catalyst monitor logic
- Heater control
- Emissions monitoring
- False P0139 detection
Always verify the PCM has the latest available calibration.
Step 30 – Consider PCM Failure
PCM failure is extremely rare.
Only suspect the PCM after confirming:
- Oxygen sensor response
- Signal circuit integrity
- Heater circuit operation
- Wiring condition
- Connector integrity
- Ground quality
- Exhaust system integrity
- Catalytic converter performance
- PCM software updates
PCM replacement should always be considered the final diagnostic step.
How to Fix P0139
The correct repair depends entirely on diagnostic results.
Common repairs include:
- Replacing Bank 1 Sensor 2 oxygen sensor
- Repairing damaged wiring
- Replacing corroded connectors
- Repairing the heater circuit
- Repairing exhaust leaks
- Eliminating oil or coolant contamination
- Repairing ground circuits
- Updating PCM software
- Replacing the catalytic converter (only if testing confirms failure)
- Replacing the PCM (rare)
Verifying the Repair
After completing repairs:
- Clear all diagnostic trouble codes.
- Start the engine.
- Allow the engine to reach operating temperature.
- Verify closed-loop operation.
- Monitor Bank 1 Sensor 2 response time.
- Compare upstream and downstream sensor activity.
- Perform multiple rich-to-lean and lean-to-rich response tests.
- Complete a full road test.
- Verify all readiness monitors complete successfully.
- Confirm no pending or permanent DTCs remain.
A successful repair restores proper downstream oxygen sensor response speed and accurate catalyst monitoring.
Typical Repair Costs
| Repair | Typical Cost |
|---|---|
| Professional diagnosis | $100–250 |
| Bank 1 Sensor 2 replacement | $175–450 |
| Wiring repair | $150–500 |
| Connector replacement | $100–350 |
| Heater circuit repair | $150–500 |
| Exhaust leak repair | $150–800 |
| Ground circuit repair | $100–300 |
| PCM software update | $100–300 |
| Catalytic converter replacement | $900–2,800+ |
| PCM replacement | $1,000–3,000+ |
Repair costs vary depending on vehicle make, labor rates, and parts availability.
Common Diagnostic Mistakes
Avoid these common mistakes:
- Replacing the downstream oxygen sensor without measuring response time
- Confusing Bank 1 Sensor 2 with Bank 1 Sensor 1
- Ignoring heater circuit problems
- Overlooking contaminated sensors
- Skipping exhaust leak inspection
- Ignoring connector corrosion
- Replacing the catalytic converter without proper testing
- Clearing codes before recording freeze-frame data
- Skipping PCM software updates
- Replacing the PCM before eliminating simpler faults
Many P0139 repairs involve correcting heater, wiring, or contamination issues rather than replacing the sensor itself.
Manufacturer-Specific Notes
General Motors
Inspect:
- Downstream oxygen sensor response time
- Heater circuit
- Wiring near the transmission tunnel
- Exhaust leaks behind the catalytic converter
Heat-damaged wiring is common on older GM platforms.
Ford
Verify:
- Downstream sensor response
- Heater voltage
- Catalyst monitor completion
- Exhaust flange integrity
EcoBoost engines should also be inspected for exhaust leaks around turbocharger components.
Toyota / Lexus
Inspect:
- Downstream oxygen sensor
- Air-Fuel Ratio (A/F) sensor
- Heater circuit
- Connector condition
Toyota applications generally achieve the best results using OEM oxygen sensors.
Honda / Acura
Inspect:
- Downstream sensor wiring
- Heater operation
- Exhaust pipe connections
- Ground circuits
Some aftermarket sensors may respond slower than OEM units and trigger P0139.
Nissan / Infiniti
Compare:
- Upstream and downstream sensor response
- Fuel trims
- MAF sensor readings
- Connector integrity
High-mileage Nissan vehicles commonly develop slower downstream oxygen sensors due to age.
Hyundai / Kia
Inspect:
- Heater fuse
- Connector condition
- Wiring beneath the vehicle
- Exhaust system integrity
Road salt and moisture frequently accelerate connector corrosion.
Volkswagen / Audi
Verify:
- Rear oxygen sensor response
- Heater activation
- Catalyst monitor
- Exhaust integrity
Turbocharged engines require careful inspection of the catalytic converter and post-catalyst sensor.
BMW / MINI
Use factory diagnostic software to monitor:
- Lambda sensor response
- Heater operation
- Catalyst efficiency
- Readiness monitors
Manufacturer-specific test routines provide the most accurate diagnosis.
Chrysler / Dodge / Jeep / Ram
Inspect:
- Downstream oxygen sensor harness
- Heater circuit
- Exhaust system
- Connector quality
Heat and vibration commonly damage rear oxygen sensor wiring on high-mileage vehicles.
Frequently Asked Questions
What usually fixes P0139?
The most common repairs include replacing an aging downstream oxygen sensor, repairing damaged wiring, fixing heater circuit faults, replacing corroded connectors, repairing exhaust leaks, or correcting contamination that slows sensor response.
Can I drive with P0139?
Yes. Most vehicles remain drivable, but emissions may increase, catalyst monitoring may stop functioning correctly, and the vehicle may fail an emissions inspection.
Does P0139 always mean the oxygen sensor is bad?
No. Wiring resistance, heater circuit failures, exhaust leaks, connector corrosion, contamination, and catalytic converter problems can all slow oxygen sensor response without the sensor itself being defective.
Can an exhaust leak cause P0139?
Yes. Exhaust leaks near the downstream oxygen sensor can delay voltage changes and interfere with catalyst monitoring, causing the PCM to detect a slow-response condition.
Can contamination cause P0139?
Absolutely. Oil, coolant, silicone, and heavy carbon deposits can coat the sensing element and dramatically reduce oxygen sensor response speed.
Can a catalytic converter cause P0139?
Sometimes. Although P0139 primarily identifies a slow downstream oxygen sensor, catalytic converter deterioration can affect downstream oxygen storage characteristics and contribute to slow response. Converter failures more commonly trigger P0420.
Final Thoughts
The P0139 O2 Sensor Circuit Slow Response (Bank 1 Sensor 2) code indicates the PCM has determined that the downstream oxygen sensor is responding too slowly to changing exhaust conditions. While sensor aging is the most common cause, heater circuit faults, contamination, wiring resistance, connector corrosion, exhaust leaks, and catalytic converter issues can all produce the same condition.
A complete diagnosis should always verify:
- Downstream oxygen sensor response speed
- Signal circuit integrity
- Heater circuit performance
- Wiring condition
- Connector quality
- Ground integrity
- Exhaust system condition
- Catalytic converter efficiency
- PCM software level
Following a systematic diagnostic process restores accurate catalyst monitoring, prevents unnecessary parts replacement, improves emissions compliance, and ensures the vehicle’s OBD-II readiness monitors complete successfully.











