# Picric Acid Test for Reducing Sugars – Principle, Procedure, Result and Uses

&gt; Picric Acid Test is a qualitative chemical test used for the detection of reducing sugars in a given sample. It detects sugars which can act as reducing...

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Author: Sourav Pan
Last updated: August 19, 2026

![Picric Acid Test for Reducing Sugars – Principle, Procedure, Result and Uses](https://biologynotesonline.com/wp-content/uploads/2022/05/Picric-Acid-Test-for-Glucose.jpg)

Picric Acid Test is a qualitative chemical test used for the detection of reducing sugars in a given sample. It detects sugars which can act as reducing agents under alkaline condition.

The test is based on the reducing property of these sugars. In alkaline medium, the reducing sugar reacts with yellow picric acid (2,4,6-trinitrophenol). During this reaction, picric acid is reduced to the red coloured picramic acid. The reaction is therefore accompanied by a distinct change in colour.

Formation of red or mahogany-red colour is considered as a positive result. It indicates the presence of reducing sugar in the tested sample. Thus, the picric acid → picramic acid reaction forms the basic principle of this test.

## What is Picric Acid Test?

Picric Acid Test is a chemical test used for the detection of reducing sugars in a given sample. It is generally used as a qualitative test in [carbohydrate analysis](https://biologynotesonline.com/carbohydrates/), where the presence of reducing carbohydrate is detected by colour reaction.

The reagent used in this test is picric acid, chemically known as 2,4,6-trinitrophenol. Under alkaline condition and on heating, reducing sugars reduce the yellow picric acid and a red coloured picramic acid is formed.

A red to mahogany-red colour is considered as positive Picric Acid Test. It indicates that reducing sugar is present in the tested carbohydrate sample. The picric acid reaction has also been used in colorimetric estimation of reducing sugars.

## Objectives of Picric Acid Test

- To detect the presence of reducing sugars in a given carbohydrate sample. The Picric Acid Test is specifically described for determination of reducing carbohydrates.

- To identify the reducing property of carbohydrates by their reaction with picric acid under alkaline condition. Reducing sugars reduce yellow picric acid to the red coloured reaction product.

- To differentiate reducing carbohydrates from non-reducing carbohydrates on the basis of the colour reaction.

- To use the picric acid reduction reaction for qualitative analysis of reducing sugars. The same reaction has also been used for colorimetric estimation of reducing sugars in carbohydrate analysis.

## Principle of Picric Acid Test

Picric Acid Test is based on the reducing property of reducing sugars. These sugars show reducing activity when heated under alkaline condition. In this reaction, yellow picric acid (2,4,6-trinitrophenol) acts as the accepting reagent and it is reduced by the sugar.

The reducing sugar is oxidized during this process while picric acid undergoes reduction. A red coloured reduction product is then formed. This produces the characteristic colour of the test. The change of yellow colour to red or mahogany-red colour is considered as a positive result for reducing sugar.

Role of Sodium Carbonate-

Sodium carbonate (Na₂CO₃) is used to provide the alkaline medium required for the Picric Acid Test. The reducing action of sugars takes place more readily under this condition. In alkaline medium, the sugar can form reactive enediol forms which show reducing property.

Heating of the sample with picric acid in this alkaline condition allows the reduction reaction to take place. Thus, sodium carbonate mainly provides the suitable alkaline condition required for the colour development.

### Formation of Picramic Acid/Colored Reduction Products

During this process, yellow picric acid is reduced by the reducing sugar. Reduction of a nitro group of picric acid results in the formation of picramic acid (2-amino-4,6-dinitrophenol) and related coloured reduction products. These products are red to deep mahogany-red in colour.

The reaction can be represented as follows-

Picric acid (yellow) + Reducing sugar → Picramic acid/colored reduction products (red or mahogany-red)

Therefore, formation of the red or mahogany-red colour indicates the presence of reducing sugar in the sample.

![Diagram showing Principle of Picric Acid Test](https://biologynotesonline.com/wp-content/uploads/2026/03/Principle-of-Picric-Acid-Test-1024x765.jpeg)Diagram showing Principle of Picric Acid Test

### Why Does Fructose Give a Positive Test?

Fructose is a [ketose sugar](https://biologynotesonline.com/seliwanoffs-test-principle-procedure-result/). However, it also gives a positive Picric Acid Test. In alkaline condition, fructose undergoes enolization and forms an enediol intermediate.

This intermediate can be converted into aldose forms which have reducing activity. These forms reduce picric acid during heating. Therefore, fructose also develops the red or mahogany-red colour and gives a positive test.

## Reaction of Picric Acid Test

In Picric Acid Test, the reducing sugar reacts with yellow picric acid in alkaline condition on heating. Sodium carbonate provides the alkaline medium for the reaction. During this process, reducing sugar is oxidized while picric acid is reduced.

The reduced product formed is picramic acid (2-amino-4,6-dinitrophenol). It is red to deep mahogany-red in colour. The reduction involves conversion of a nitro group (–NO₂) of picric acid into an amino group (–NH₂). Thus, yellow colour of picric acid changes to red or mahogany-red during a positive reaction.

The reaction is as follows-

Reducing sugar + Picric acid (yellow)
↓ Alkaline medium + Heat
Oxidized sugar products + Picramic acid (red/mahogany-red)

The picric acid reduction reaction has been used for detection as well as colorimetric determination of reducing sugars.

![Diagram showing Reaction of Picric Acid Test](https://biologynotesonline.com/wp-content/uploads/2026/03/Reaction-of-Picric-Acid-Test-1024x768.png)Diagram showing Reaction of Picric Acid Test

## Requirements for Picric Acid Test

The following are the requirements for Picric Acid Test-

- Test solution containing the carbohydrate sample.

- Saturated picric acid solution.

- 10% sodium carbonate (Na₂CO₃) solution for providing alkaline condition.

- Test tubes.

- Pipette or dropper for transferring the solutions.

- Boiling water bath for heating the reaction mixture.

- Test tube holder or test tube rack.

- Distilled water for preparation or dilution of the required solutions.

## Procedure of Picric Acid Test

The following are the steps of Picric Acid Test-

![](https://biologynotesonline.com/wp-content/uploads/2026/03/Procedure-of-Picric-Acid-Test-765x1024.jpeg)

- Take a clean and dry test tube and label it properly for the test sample.

- Add 1 ml of the test solution into the test tube with the help of a pipette. The sample should contain the carbohydrate to be tested.

- Add 1 ml of saturated picric acid solution to the test solution. Mix the contents of the tube properly.

- Now add 0.5 ml of 10% sodium carbonate (Na₂CO₃) solution into the same test tube. Sodium carbonate makes the reaction mixture alkaline.

- Mix the contents carefully so that the test solution and reagents are mixed properly. The solution at this stage contains yellow coloured picric acid.

- Place the test tube in a boiling water bath and heat the reaction mixture. During heating, reducing sugar present in the sample reacts with picric acid under alkaline condition.

- In this process, the reducing sugar reduces picric acid and coloured reduction products are formed. The yellow colour gradually changes depending upon the reducing activity of the sample.

- Remove the test tube from the water bath after sufficient colour has developed and allow it to cool slightly.

- Observe the final colour of the reaction mixture. Formation of red or mahogany-red colour is considered as a positive Picric Acid Test.

- If the characteristic red or mahogany-red colour is not formed, the test is considered negative for detectable reducing sugar under the test condition.

## Observation and Result of Picric Acid Test

The observation of Picric Acid Test is based on the colour developed after heating the test sample with picric acid under alkaline condition. Reducing sugars react with picric acid and produce the characteristic coloured reaction.

![Diagram showing Observation and Result of Picric Acid Test](https://biologynotesonline.com/wp-content/uploads/2026/03/Observation-and-Result-of-Picric-Acid-Test-1024x765.jpeg)Diagram showing Observation and Result of Picric Acid Test

### Positive Picric Acid Test

Observation- Development of red or mahogany-red colour in the reaction mixture is observed. The colour is produced due to reduction of picric acid by the reducing sugar.

Result- The test is considered positive. It indicates the presence of reducing sugar in the given sample.

### Negative Picric Acid Test

Observation- No characteristic red or mahogany-red colour is developed. The positive colour reaction is absent.

Result- The Picric Acid Test is considered negative. It indicates that detectable reducing sugar is absent in the tested sample under the test conditions.

![Result of Picric Acid Test ](https://biologynotesonline.com/wp-content/uploads/2024/05/image-30.png)Result of Picric Acid Test | Image Source: https://www.biosciencenotes.com/wp-content/uploads/2018/11/picric1.png.jpg

## Picric Acid Test Results for Different Sugars

Different sugars give different results in Picric Acid Test depending upon their reducing property. Glucose, fructose, galactose, maltose and lactose are reducing sugars, while sucrose is a non-reducing sugar. The following are the results-

SugarType of SugarReducing PropertyPicric Acid TestObservationResultGlucoseMonosaccharide, aldoseReducing sugarPositiveRed to mahogany-red colour developsReducing sugar is presentFructoseMonosaccharide, ketoseReducing sugar under alkaline conditionPositiveRed to mahogany-red colour developsReducing sugar is presentGalactoseMonosaccharide, aldoseReducing sugarPositiveRed to mahogany-red colour developsReducing sugar is presentMaltoseDisaccharideReducing sugarPositiveRed to mahogany-red colour developsReducing sugar is presentLactoseDisaccharideReducing sugarPositiveRed to mahogany-red colour developsReducing sugar is presentSucroseDisaccharideNon-reducing sugarNegativeCharacteristic red or mahogany-red colour is not developedReducing sugar is not detectedHydrolyzed sucroseGlucose + fructose mixtureReducingPositiveRed to mahogany-red colour developsReducing sugars are formed after hydrolysis

Picric acid reacts with reducing sugars and is reduced to the red coloured picramic acid. Thus, sugars having reducing activity give the characteristic positive colour.

The picric acid test for glucose is positive because glucose is a reducing aldose. Picric acid test for fructose is also positive. Fructose is a ketose, but under alkaline condition it can undergo interconversion through enediol forms and shows reducing activity.

The maltose picric acid test and lactose picric acid test are positive because both are [reducing disaccharides](https://biologynotesonline.com/disaccharides/). They contain a free reducing end which can take part in the reaction. Picric acid test for sucrose, on the other hand, is negative before hydrolysis because sucrose is non-reducing. After hydrolysis, glucose and fructose are formed and the reaction becomes positive.

![Diagram showing Picric Acid Test Results for Different Sugars](https://biologynotesonline.com/wp-content/uploads/2026/03/Picric-Acid-Test-Results-for-Different-Sugars-1024x683.png)Diagram showing Picric Acid Test Results for Different Sugars

## Why Do Reducing Sugars Give the Picric Acid Test?

Reducing sugars are the carbohydrates that can act as reducing agents in a chemical reaction. The major reason for this reducing nature is the presence of a free [anomeric carbon](https://biologynotesonline.com/mutarotation/). It is also called reducing end of the sugar. When present in solution, the cyclic and open-chain forms remain in equilibrium and a small amount of the carbonyl form is continuously produced. This form is responsible for the reducing activity.

In aldoses such as [glucose and galactose](https://biologynotesonline.com/monosaccharides/), opening of the ring gives an aldehyde group. The aldehyde group can be oxidized. During Picric Acid Test under alkaline condition, this oxidation is accompanied by reduction of picric acid, producing the characteristic coloured reaction. Thus, sugars having an available reducing end give positive test.

The case of fructose is different. It is a ketose and the open-chain molecule contains ketone group instead of aldehyde. However in alkaline medium, fructose undergoes enolization and an enediol intermediate is formed, which can rearrange into aldose forms. These forms now show reducing activity. Therefore fructose also reduces picric acid and gives the positive reaction even though it is a ketose sugar.

Sucrose, on the other hand, does not behave in the same manner. The glycosidic linkage of sucrose involves anomeric carbon of glucose as well as the anomeric carbon of fructose, so both of these positions are already occupied in the bond. There is no free reducing end. The usual ring opening for formation of a free carbonyl group therefore cannot take place and sucrose is a non-reducing sugar.

After hydrolysis, sucrose is broken down into [glucose and fructose](https://biologynotesonline.com/rapid-furfural-test-for-glucose-and-fructose/). Both are reducing sugars. Hence, hydrolyzed sucrose gives positive Picric Acid Test while unhydrolyzed sucrose normally does not.

## Factors Affecting the Picric Acid Test

The reaction of Picric Acid Test depends on different conditions. Amount of reducing sugar, reagent concentration and heating are some of them. The major factors are-

- Concentration of reducing sugar– The amount of reducing sugar present in the sample affects colour development. Higher amount of sugar reduces more picric acid within the working range of the test. At very low concentration, only a weak red colour may be obtained.

- Concentration of picric acid– Proper amount of picric acid is required for the reaction. The concentration of this reagent changes the final colour obtained. In glucose estimation, picric acid is generally kept in excess so that maximum and constant colour can develop.

- Alkaline condition– The test is carried out in alkaline medium, which is generally produced by sodium carbonate (Na₂CO₃). Proper alkalinity is required for reduction of picric acid. When the alkaline condition is low, colour development may also be poor. Excess alkalinity can affect the developed colour.

- Heating temperature– Heating helps the reaction between reducing sugar and alkaline picric acid. A boiling water bath is commonly used for this purpose. If heating is low or not uniform, the reaction becomes slower and less colour may be formed.

- Heating time– The time of heating also affects the test result. Colour continues to develop during heating. Therefore, the samples are generally heated for a fixed period so that similar reaction conditions are maintained.

- Proportion of reagents– The amount of test solution, picric acid and sodium carbonate should be maintained in proper proportion. Change in their quantity can change the alkaline condition as well as the amount of reagent available for reaction. Fixed reagent volumes are therefore used during the test.

- Interfering substances– The alkaline picrate reaction is not completely specific only for reducing sugars. Some other substances present in a complex sample can also react or interfere with the colour formed. Due to this, the composition of the sample can sometimes affect the test result.

## Limitations of Picric Acid Test

The Picric Acid Test has some limitations. The following are the important limitations-

- Low specificity– The test is not specific only for reducing sugars. Other reducing substances may also interfere with the colour reaction.

- Cannot identify individual sugars– Different reducing sugars can give similar positive colour. Therefore, the test cannot [differentiate glucose, fructose, lactose or maltose](https://biologynotesonline.com/osazone-test-principle-procedure/).

- Non-reducing sugars are not detected directly– Sugars such as sucrose usually give negative test before hydrolysis.

- Reaction conditions affect the result– Heating, alkalinity and reagent concentration should be maintained properly. Change in these conditions can change the colour development.

- Mainly a qualitative test– The red or mahogany-red colour indicates reducing sugar, but exact amount cannot be obtained by simple visual observation.

- Interference from sample components– Some substances present in complex samples may also react with alkaline picrate and affect the result.

- Picric acid requires careful handling– Picric acid is a hazardous chemical, particularly when dry. Proper storage and handling are required.

## Advantages of Picric Acid Test

The Picric Acid Test has some advantages for detection of reducing sugars. It gives a visible colour reaction and the same reaction can also be used for colorimetric estimation. The following are the advantages-

- Simple method– The procedure is simple and requires only picric acid, sodium carbonate, test solution and heating.

- Clear colour reaction– Reduction of yellow picric acid produces red coloured picramic acid. The colour change can be observed easily in a positive test.

- Detects different reducing sugars– The reaction is not limited only to glucose. Other reducing sugars can also react with alkaline picrate.

- No special instrument for qualitative test– The positive reaction can be detected from the developed colour. Thus, ordinary laboratory glassware and heating are sufficient for the qualitative test.

- Can be used for quantitative estimation– The picric acid reduction reaction has also been used in colorimetric determination of reducing sugars.

- Useful with different biological samples– Picric acid methods have been used for estimation of sugars in plant materials, blood and dairy samples.

## Applications of Picric Acid Test

The Picric Acid Test has been used for different works related to carbohydrate analysis. Some of the important applications are-

- Detection of reducing sugars– It is used for detecting reducing sugars in a given carbohydrate sample by the colour reaction of alkaline picric acid.

- [Estimation of reducing sugars](https://biologynotesonline.com/nelson-somogyi-method/)– The developed colour can be measured colorimetrically. Thus, reducing sugar present in a sample can also be estimated under controlled conditions.

- Analysis of plant carbohydrates– Picric acid reduction method has been used for estimation of reducing sugars and sucrose in plant materials.

- Estimation of starch– After suitable hydrolysis, the method has also been applied for determination of starch and other reserve polysaccharides in plants.

- Determination of lactose– The picric acid colorimetric method has been used for estimation of lactose in milk and milk products.

- [Blood sugar estimation](https://biologynotesonline.com/folin-wu-method/)– Picric acid method was historically used for estimation of sugar in blood. It was one of the earlier colorimetric methods used for this purpose.

- Urine sugar estimation– The reaction was also used historically for determination of sugar in urine, before more specific methods became available.

## Precautions and Safety

Some of the important precautions and safety measures of Picric Acid Test are-

- Picric acid should be kept wet– Dry picric acid is hazardous and can become sensitive to heat, friction and shock. It should never be allowed to dry during storage.

- Dry crystals should not be handled– If crystals are present around the bottle cap or the reagent has dried, the container should not be opened or disturbed. It requires handling by trained safety personnel.

- Contact with metals should be avoided– Picric acid can form metal picrates with metals such as copper, lead, iron and zinc. These salts can be more sensitive than picric acid itself.

- Protective equipment should be used– Laboratory coat, suitable gloves and safety goggles should be worn while performing the test. Direct contact of picric acid with skin and eyes should be avoided.

- Heating should be done carefully– The reaction mixture is heated using the required water bath. Direct flame and unnecessary heating should be avoided while working with picric acid.

- Reagents should be measured properly– Picric acid and sodium carbonate should be added in the required quantity. Splashing of the alkaline reaction mixture should be avoided.

- Clean glassware should be used– Test tubes and pipettes should be clean so that other reducing substances do not interfere with the colour reaction.

- Waste should be handled properly– Picric acid containing solutions should be collected as chemical waste and disposed according to laboratory hazardous-waste procedures. Containers and contaminated materials should not be allowed to dry.

## Picric Acid Test and Jaffé Test – Are They the Same?

Picric Acid Test and Jaffé Test are related reactions, but they are not considered the same test in routine laboratory use. Both use picric acid in alkaline medium, which is the major reason for confusion between these two tests.

In Picric Acid Test for reducing sugars, the reducing sugar reacts with alkaline picric acid on heating. Yellow picric acid is reduced and a deep red or mahogany-red coloured product is formed. This reaction has been used for detection and estimation of reducing carbohydrates.

The Jaffé Test, on the other hand, is mainly used for determination of creatinine. Creatinine reacts with alkaline picrate and an orange coloured reaction product is produced. This reaction is commonly used for estimation of creatinine in serum and urine.

There is some overlap between them. The Jaffé colour reaction has also been adapted for determination of lactose, and other reducing sugars were found to give picric acid reaction. Thus, both are based on alkaline picrate chemistry, but their usual analyte, purpose and interpretation are different.

FeaturePicric Acid TestJaffé TestMain analyteReducing sugarsCreatinineReagentPicric acid + alkaliAlkaline picrateMain colourRed/mahogany-redOrangeMain useCarbohydrate analysisCreatinine estimationSame test?No. Related chemistry onlyNo. Related chemistry only

## Picric Acid Test vs Fehling's Test

FeaturePicric Acid TestFehling's TestPurposeUsed for detection of reducing sugarsUsed for detection of reducing sugarsMain reagentPicric acid (2,4,6-trinitrophenol)Fehling's solution A and Fehling's solution BImportant chemicalsPicric acid and sodium carbonateCopper(II) sulfate, sodium potassium tartrate and sodium hydroxideMediumAlkaline mediumStrong alkaline mediumPrincipleReducing sugar reduces yellow picric acid on heatingReducing sugar reduces Cu²⁺ ions to Cu⁺ ionsReduced productPicramic acid/coloured reduction productsCuprous oxide (Cu₂O)Initial colourYellowDeep bluePositive resultRed or mahogany-red colour developsBrick-red precipitate is formedNature of reactionMainly colour developmentPrecipitate formationGlucosePositivePositiveFructosePositivePositiveLactosePositivePositiveMaltosePositivePositiveSucroseNegative before hydrolysisNegative before hydrolysisHeatingHeating is requiredHeating is requiredReagent preparationComparatively simple reagent systemFehling's A and B are prepared separately and mixed before useMain useQualitative detection and also colorimetric estimation of reducing sugarsMainly qualitative detection of reducing sugarsMajor differenceReduction of picric acid gives red coloured productsReduction of copper salt gives brick-red Cu₂O precipitateSafety pointPicric acid needs careful handling, especially in dry conditionStrong alkali in Fehling's reagent can cause irritation and burns

## Picric Acid Test vs Benedict's Test

FeaturePicric Acid TestBenedict's TestPurposeUsed for detection of reducing sugarsUsed for detection of reducing sugarsMain reagentPicric acid (2,4,6-trinitrophenol)Copper(II) sulfate, sodium citrate and sodium carbonateMediumAlkaline medium, generally provided by sodium carbonateAlkaline medium provided by sodium carbonatePrincipleReducing sugar reduces yellow picric acid during heatingReducing sugar reduces Cu²⁺ ions to Cu⁺ during heatingReduced productPicramic acid/coloured reduction productsCuprous oxide (Cu₂O) precipitateInitial colourYellowBluePositive resultRed or mahogany-red colour developsGreen, yellow, orange to brick-red precipitate may developNature of positive reactionMainly colour developmentColour change with precipitate formationGlucosePositivePositiveFructosePositivePositiveLactosePositivePositiveMaltosePositivePositiveSucroseNegative before hydrolysisNegative before hydrolysisHeatingHeating in a water bath is requiredHeating is requiredQuantitative usePicric acid reaction has also been used for colorimetric estimationColour change can give a rough semi-quantitative indicationSpecificityNot specific for an individual reducing sugarAlso cannot identify the particular reducing sugarMajor differenceReduction of picric acid produces red coloured productsReduction of copper ions produces coloured Cu₂O precipitateSafetyPicric acid requires careful handling, particularly it should not be allowed to dryBenedict's reagent is comparatively easier to handle in routine laboratory work

## Summary of Picric Acid Test

FeaturePicric Acid TestTest typeQualitative test for reducing sugarsReagentPicric acid (2,4,6-trinitrophenol)Alkaline reagentSodium carbonate (Na₂CO₃)PrincipleReducing sugars reduce picric acid in alkaline condition on heatingInitial colourYellowReduced productPicramic acid/coloured reduction productsPositive resultRed or mahogany-red colourPositive test indicatesPresence of reducing sugarNegative resultNo characteristic red or mahogany-red colourGlucosePositiveFructosePositiveLactosePositiveMaltosePositiveSucroseNegative before hydrolysisMain useDetection of reducing sugars in carbohydrate sampleOther useColorimetric estimation of reducing sugars under controlled conditionsImportant factorProper alkalinity, heating time and reagent concentrationMajor limitationIt cannot identify the individual reducing sugarSafety pointPicric acid should not be allowed to dry

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