pH and Indicators
3. Universal Indicator
Learning outcomes
- I can use universal indicator to estimate pH.
- I can interpret universal indicator color charts.
- I can determine whether a substance is acidic, neutral, or basic.
- I can compare the pH of different substances.
- I can use indicators safely in laboratory investigations.
What Is Universal Indicator?
Universal indicator is a mixture of several different indicators that changes colour across a wide range of pH values.
Instead of simply telling us whether a solution is acidic or alkaline, universal indicator allows us to estimate its pH.
The colour produced by the indicator is compared with a standard pH colour chart.
Universal indicator is commonly available as:
- indicator solution
- indicator paper
- pH paper
The Universal Indicator Scale
The familiar pH scale commonly runs from approximately 0 to 14 for introductory chemistry.
A typical universal indicator colour pattern is approximately:
pH 0–2 → red
pH 3–4 → orange
pH 5–6 → yellow
pH 7 → green
pH 8–10 → blue to blue-green
pH 11–14 → dark blue to purple
Exact colours vary somewhat between indicator formulations, so the colour chart supplied with the indicator should always be used.
Acidic, Neutral, and Alkaline
At about room temperature:
pH below 7 → acidic
pH 7 → neutral
pH above 7 → alkaline
The terms basic and alkaline are often used similarly when discussing aqueous solutions, although an alkali is specifically a water-soluble base.
Universal indicator provides a visual way to classify a solution into one of these categories.
How Universal Indicator Works
Indicators are substances whose molecular forms have different colours depending on the chemical conditions of the solution.
Universal indicator contains several indicators with different pH transition ranges.
Combining them produces a sequence of colours across a broad pH range.
Therefore:
solution + universal indicator → colour change → compare with chart → estimate pH
Using Universal Indicator Solution
A simple investigation might follow these steps:
1. Place a small sample of the solution in a clean test tube or well plate.
2. Add a small amount of universal indicator.
3. Mix carefully if necessary.
4. Observe the colour.
5. Compare the colour with the manufacturer's universal indicator chart.
6. Record the estimated pH.
7. Classify the solution as acidic, neutral, or alkaline.
Using Universal Indicator Paper
Universal indicator paper provides another method.
A small amount of solution can be tested according to the instructions supplied with the paper.
The resulting colour is compared with the colour chart.
Indicator paper can be convenient because:
- only a small sample is required
- results are rapid
- there is less liquid indicator to handle
- many samples can be compared quickly
Reading the Colour Chart
Suppose a solution produces a red colour.
Comparing it with the chart suggests:
low pH
Therefore:
acidic
Suppose another solution produces green.
This suggests:
approximately pH 7
Therefore:
neutral
Suppose another produces purple.
This suggests:
high pH
Therefore:
strongly alkaline solution
Example 1: Orange Indicator
A solution turns universal indicator orange.
What can we conclude?
Orange typically corresponds to an acidic pH, often around pH 3–4 depending on the indicator chart.
Therefore:
the solution is acidic.
We should not claim an exact pH without comparing the colour with the specific chart being used.
Example 2: Green Indicator
A solution turns universal indicator green.
The chart indicates pH 7.
Therefore:
estimated pH = 7
and the solution is:
neutral at about room temperature
Pure water is a familiar example of a neutral substance under standard classroom conditions.
Example 3: Purple Indicator
A solution turns universal indicator purple.
This indicates a high pH.
Therefore, the solution is:
alkaline
and likely toward the strongly alkaline region of the scale.
Comparing Different Solutions
Universal indicator can be used to compare several solutions.
Imagine these results:
Solution A → red
Solution B → yellow
Solution C → green
Solution D → blue
Solution E → purple
From most acidic to most alkaline:
A → B → C → D → E
Solution A has the lowest pH.
Solution C is approximately neutral.
Solution E has the highest pH.
Comparing pH Numerically
Suppose:
A = pH 2
B = pH 5
C = pH 7
D = pH 9
E = pH 13
We can classify them:
A → acidic
B → acidic
C → neutral
D → alkaline
E → alkaline
We can also say:
A is more acidic than B.
E is more alkaline than D.
The pH Scale Is Logarithmic
The pH scale is not a simple linear scale.
A difference of one pH unit corresponds approximately to a tenfold difference in hydrogen ion concentration.
For example:
pH 3 compared with pH 4
→ approximately 10 times greater H⁺ concentration
pH 2 compared with pH 5
→ difference of 3 pH units
→ 10³ = 1000 times greater H⁺ concentration
Universal indicator does not directly show this mathematical relationship, but the pH value estimated from the colour represents this logarithmic scale.
Everyday Substances
Many familiar substances can be investigated using indicators.
Typical examples include:
Lemon juice
Usually acidic
Vinegar
Acidic
Soft drinks
Usually acidic
Pure water
Approximately neutral
Baking soda solution
Mildly alkaline
Soap solution
Usually alkaline
Actual pH values vary with concentration and product formulation.
Investigating Household Substances
A class investigation could compare:
- lemon juice
- vinegar
- water
- salt solution
- baking soda solution
- soap solution
Students could record:
Substance
Indicator colour
Estimated pH
Acidic, neutral, or alkaline
The substances could then be arranged from:
lowest pH → highest pH
Universal Indicator vs Litmus
Litmus is another common acid-base indicator.
However, litmus provides less information.
Blue litmus
turns red in acidic conditions.
Red litmus
turns blue in alkaline conditions.
Universal indicator provides a much wider colour range.
Therefore:
litmus → identifies acid or alkali
universal indicator → estimates pH across a broad range
Universal Indicator vs pH Meter
A pH meter provides a numerical pH measurement.
Universal indicator provides an estimate based on colour.
Universal indicator advantages:
- inexpensive
- simple
- rapid
- visually clear
- useful for approximate comparisons
Limitations:
- colour matching is subjective
- difficult to distinguish some nearby pH values
- coloured or cloudy samples can interfere
- lighting conditions affect colour perception
- generally less precise than a calibrated pH meter
Why Universal Indicator Gives an Estimate
Suppose an indicator colour appears somewhere between the chart colours for pH 5 and pH 6.
Different observers might interpret the colour slightly differently.
One student might record:
pH 5
Another might record:
pH 6
The most scientifically appropriate conclusion may be:
estimated pH ≈ 5–6
Universal indicator should not normally be treated as if it provides extremely precise measurements.
Coloured Solutions Can Be Difficult
Suppose the original solution is dark red.
After adding universal indicator, the original colour may interfere with the indicator colour.
This can make the pH difficult to estimate.
Similarly, cloudy solutions can make colour comparison difficult.
In these situations, a pH meter may provide a better method.
Lighting Matters
Colour should ideally be compared under good, consistent lighting.
Poor lighting can cause:
- blue to appear darker
- green to be confused with blue-green
- orange to be confused with red
Using a white background can make comparison easier.
Designing a Fair Investigation
Suppose you want to compare the pH of several drinks.
A good investigation should use:
- similar sample volumes
- clean containers
- the same universal indicator
- the same amount of indicator
- the same colour chart
- similar lighting conditions
Only the substance being tested should intentionally change.
This improves the reliability of the comparison.
Avoiding Contamination
Contamination can produce incorrect results.
Imagine testing an acidic solution and then using the same unwashed dropper to test water.
Small amounts of acid could enter the water sample.
The water might then appear acidic even though the original sample was neutral.
To prevent this:
- use clean equipment
- use separate droppers when appropriate
- rinse reusable equipment properly
- never return unused chemicals to stock bottles unless instructed
Laboratory Safety
Universal indicator investigations are usually straightforward, but the substances being tested may not be harmless.
Important laboratory rules include:
- wear appropriate eye protection
- follow teacher or laboratory instructions
- use small quantities
- keep chemicals away from eyes and skin
- do not taste laboratory chemicals
- do not deliberately smell chemicals directly
- use clean equipment
- label samples clearly
- clean spills using the correct laboratory procedure
- wash hands after practical work
The hazard depends mainly on the substance being tested, not simply on the indicator.
Strong Acids and Alkalis
Solutions at extreme pH values may be hazardous.
Strongly acidic or strongly alkaline solutions can sometimes be corrosive.
Therefore, a colour such as deep red or purple should not be interpreted as:
"safe because it is only an indicator experiment."
Always treat laboratory chemicals according to their hazard information and instructions.
Never Taste a Substance to Determine pH
Some everyday acids taste sour, but taste must never be used as a laboratory test.
Likewise, laboratory chemicals should never be tasted.
Universal indicator provides a much safer method of investigating acid-base conditions.
Example 4: Unknown Solutions
Three unknown solutions produce:
X → yellow
Y → purple
Z → green
Interpret the results.
X:
acidic
Y:
alkaline
Z:
approximately neutral
Order from lowest pH to highest pH:
X → Z → Y
Example 5: Comparing Two Acids
Solution A gives an orange colour corresponding to pH 3.
Solution B gives a yellow colour corresponding to pH 5.
Which is more acidic?
Solution A
Which has the greater H⁺ concentration?
Solution A
The difference is two pH units, so Solution A has approximately:
100 times the H⁺ concentration
of Solution B.
Example 6: Comparing Two Alkalis
Solution C has pH 9.
Solution D has pH 12.
Which is more alkaline?
Solution D
Which has the higher pH?
Solution D
Universal indicator should produce a colour farther toward the high-pH end of its chart for Solution D.
Testing Neutralization
Universal indicator can also be used to observe a neutralization process.
Imagine starting with dilute hydrochloric acid.
The universal indicator might show:
red/orange
Sodium hydroxide is gradually added.
The colour may move through:
yellow → green → blue → purple
depending on how much alkali is added.
When the solution becomes green around pH 7 in a strong acid–strong base classroom example, it is approximately neutral.
Adding excess alkali causes the pH to rise above 7.
Why the Colour Changes
Initially, the acid contains a relatively high concentration of H⁺ ions.
When an alkali is added, OH⁻ ions react with H⁺ ions:
H⁺ + OH⁻ → H₂O
As H⁺ concentration decreases:
pH increases
The universal indicator responds to this changing chemical environment by changing colour.
Environmental Testing
Indicators can be used for simple investigations of environmental samples such as:
- rainwater
- pond water
- soil extracts
- aquarium water
However, more precise environmental studies often use calibrated electronic pH probes.
Universal indicator is especially useful for rapid approximate comparisons.
Soil Testing
Soil pH affects nutrient availability and plant growth.
A soil sample can be mixed with an appropriate solution using a suitable laboratory method, and the liquid portion can then be tested for pH.
The result can help determine whether the soil is:
- acidic
- approximately neutral
- alkaline
Different plants prefer different pH ranges.
Water Quality
pH is one important measurement in water-quality investigations.
Large changes in pH can affect:
- aquatic organisms
- chemical reactions
- metal solubility
- nutrient availability
Universal indicator can provide a quick estimate, although environmental monitoring usually requires more precise equipment.
Food and Drink Investigations
Universal indicator can demonstrate that many drinks are acidic.
Examples may include:
- fruit juice
- soft drinks
- sports drinks
- vinegar
Students can compare samples and arrange them by pH.
This connects acid-base chemistry to everyday substances.
Choosing the Best pH Method
Use litmus when:
you only need to know whether something is acidic or alkaline.
Use universal indicator when:
you need an approximate pH.
Use a pH meter when:
you need a more precise numerical measurement.
Choosing appropriate equipment is part of good experimental design.
Evaluating Results
Suppose a student reports:
"The solution has a pH of exactly 4.000 because the universal indicator looked orange."
This conclusion is too precise.
Universal indicator cannot normally justify that level of precision.
A better statement is:
"The colour matched approximately pH 4 on the universal indicator chart."
This correctly reflects the limitations of the method.
Improving Reliability
A universal indicator investigation can be improved by:
- repeating tests
- using clean equipment
- using the same indicator formulation
- using consistent sample volumes
- comparing colours against a white background
- using consistent lighting
- having more than one person compare the colour
- using a pH meter when greater precision is required
Good science requires both measurements and evaluation of how reliable those measurements are.
Common Mistakes
Mistake 1: Saying red means alkaline
Red normally indicates acidic conditions.
Mistake 2: Saying purple means acidic
Purple normally indicates strongly alkaline conditions.
Mistake 3: Saying green always means "safe"
Green indicates approximately neutral pH. It tells us nothing about whether the substance is toxic or otherwise hazardous.
Mistake 4: Assuming universal indicator gives an exact pH
It gives an estimate based on colour.
Mistake 5: Calling every base an alkali
An alkali is specifically a water-soluble base.
Mistake 6: Assuming pH is linear
A change of one pH unit represents approximately a tenfold change in H⁺ concentration.
Mistake 7: Using contaminated equipment
Contamination can change the pH and produce an incorrect colour.
Mistake 8: Using colour alone without the chart
Different indicator formulations may have somewhat different colours. Use the supplied chart.
Mistake 9: Tasting a substance to determine whether it is acidic
Never taste laboratory chemicals.
Mistake 10: Assuming neutral means harmless
A substance can have approximately neutral pH and still be hazardous for other reasons.
Did You Know?
Universal indicator is actually a mixture of indicators rather than one single indicator.
Individual indicators usually change colour over relatively narrow pH ranges.
By combining several indicators, chemists created a system capable of producing a broad sequence of colours across much of the pH scale.
This makes universal indicator particularly useful for teaching and rapid laboratory testing.
Key Terms
- Universal indicator: Mixture of indicators that produces different colours across a broad pH range.
- Indicator: Substance that changes colour depending on chemical conditions such as pH.
- pH: Measure related to hydrogen ion activity/concentration in a solution.
- Acidic: Having a pH below 7 under typical room-temperature classroom conditions.
- Neutral: Approximately pH 7 at room temperature.
- Alkaline: Having a pH above 7 under typical room-temperature classroom conditions.
- Base: Substance capable of neutralizing an acid.
- Alkali: Water-soluble base that produces OH⁻ ions in solution.
- pH paper: Paper containing indicators used to estimate pH.
- pH meter: Electronic instrument used to measure pH more precisely.
- Neutralization: Reaction between an acid and a base.
- Contamination: Unwanted introduction of another substance into a sample.
Universal Indicator Quick Guide
Red
→ very acidic
→ low pH
Orange
→ acidic
Yellow
→ weakly acidic
Green
→ approximately neutral
→ around pH 7
Blue
→ alkaline
Purple
→ strongly alkaline
→ high pH
Always compare the observed colour with the specific chart supplied with the indicator.
Key Takeaways
- Universal indicator is used to estimate the pH of a solution.
- It contains a mixture of different indicators.
- Different pH values produce different colours.
- Red, orange, and yellow generally indicate acidic conditions.
- Green generally indicates approximately neutral conditions.
- Blue and purple generally indicate alkaline conditions.
- At about room temperature, solutions below pH 7 are acidic.
- A solution around pH 7 is neutral.
- Solutions above pH 7 are alkaline.
- The colour should be compared with the chart supplied with the indicator.
- Universal indicator gives an approximate pH rather than a highly precise measurement.
- A pH meter is more suitable when precise measurements are required.
- Universal indicator can be used to compare the pH of different substances.
- Indicator investigations can be used with household, environmental, and laboratory samples.
- Coloured or cloudy solutions can make indicator results difficult to interpret.
- Clean equipment is important because contamination can alter results.
- Appropriate eye protection and laboratory procedures should be followed.
- Laboratory chemicals should never be tasted.
- Neutral pH does not automatically mean a substance is safe.
- The pH scale is logarithmic.
- A useful experimental sequence is:
test the sample → observe the colour → compare with the chart → estimate pH → classify as acidic, neutral, or alkaline → compare with other samples → evaluate the reliability of the result.