Determine the necessary mass, volume, or concentration for preparing a solution.
for sensitive chromatographic and analytical workflows requiring minimal baseline interference.
Store at 2-8°C,Protected from light Ships Wet ice Check lot-specific COA for exact specifications.
SDS, COA, datasheet, and spec sheet available for download. Lot-specific COA accessible via lot number lookup.
Cited in 0 peer-reviewed publications across chromatography, organic synthesis, and cross-coupling reactions.
Nitrite is widely present in water bodies and soil, serving not only as an important intermediate product of organic nitrogen decomposition but also potentially originating from pollution. Excessive intake by humans can induce digestive system cancers.
Detection Principle
Under acidic conditions, nitrite reacts with sulfanilic acid to form a diazo compound, which then couples with N-(1-naphthyl)ethylenediamine to produce a purple-red azo compound with a characteristic absorption peak at 540 nm.
Applicable Samples: Water samples, Soil samples
Note: Before formal testing, it is recommended to perform a preliminary experiment with 2-3 samples expected to show significant differences.
Reagents, consumables and Equipments not provided
Microplate reader or visible spectrophotometer (capable of measuring absorbance at 540 nm)
96-well plate or micro-volume glass cuvette, Adjustable pipettes and tips
Ice maker, Centrifuge, 2 mm sieve
Deionized water
Procedure
1. Reagent Preparation
| Reagent Name | Preparation | Notes |
| Reagent Ⅰ | Ready-to-use. Equilibrate to room temperature before use. | Store at 4°C. |
| Reagent Ⅱ | Ready-to-use. Equilibrate to room temperature before use. | Store at 4°C protected from light. |
| Reagent Ⅲ | Ready-to-use. Equilibrate to room temperature before use. | Store at 4°C protected from light. |
Note: Reagent Ⅲ and the Standard are somewhat toxic. It is recommended to perform the experiment in a fume hood.
2. Standard Curve Setup
Dilute the 1 mmol/mL Standard to 10 µmol/mL using Reagent Ⅰ. Then, dilute the 10 µmol/mL standard as shown in the table below to obtain 100, 50, 25, 12.5, 6.25, 3.125, and 1.5625 nmol/mL standards.
| Tube | Standard Volume | Reagent Ⅰ Volume (µL) | Standard Concentration (nmol/mL) |
| Std.1 | 10µL of 10 μmol/mL Standard | 990 | 100 |
| Std.2 | 100µL of Std.1 (100 nmol/mL) | 100 | 50 |
| Std.3 | 100µL of Std.2 (50 nmol/mL) | 100 | 25 |
| Std.4 | 100µL of Std.3 (25 nmol/mL) | 100 | 12.5 |
| Std.5 | 100µL of Std.4 (12.5 nmol/mL) | 100 | 6.25 |
| Std.6 | 100µL of Std.5 (6.25 nmol/mL) | 100 | 3.125 |
| Std.7 | 100µL of Std.6 (3.125 nmol/mL) | 100 | 1.5625 |
Note: A standard curve must be prepared for each experiment. Diluted standard solutions are unstable and must be used within 4 hours.
3. Sample Preparation
3.1 Soil Sample: Take an appropriate amount of soil sample, remove impurities such as stones and twigs, and sieve through a 2 mm mesh. Precisely weigh 0.5 g, add 1 mL of Reagent Ⅰ, shake at room temperature for 1 hour, centrifuge at 8,000 g, 25°C for 15 minutes. Collect the supernatant for testing.
3.2 Water Sample: Test directly. If turbid, centrifuge first before measurement.
4. Experimental Steps
4.1 Preheat the microplate reader or visible spectrophotometer for 30 minutes and set the wavelength to 540 nm. Zero the visible spectrophotometer with deionized water.
4.2 Operation Table (perform in a 96-well plate or micro-volume glass cuvette):
| Reagent (µL) | Blank Well | Standard Well | Test Well |
| Reagent Ⅰ | 70 | 0 | 0 |
| Standard | 0 | 70 | 0 |
| Sample | 0 | 0 | 70 |
| Reagent Ⅱ | 65 | 65 | 65 |
| Reagent Ⅲ | 65 | 65 | 65 |
4.3 Mix rapidly, incubate at 25°C for 15 minutes. Measure the absorbance at 540 nm, recorded as ABlank, AStandard, ATest. Calculate ΔATest = ATest - ABlank and ΔAStandard = AStandard - ABlank.
*Note: The blank and standard wells only need to be measured once. It is recommended to perform a preliminary experiment with 2-3 samples showing expected large differences before formal testing. If ΔA<sub>Test</sub> is less than 0.001, appropriately increase the sample amount. If ΔA<sub>Test</sub> is greater than 2.0, further dilute the sample with Reagent Ⅰ and multiply the result by the dilution factor, or reduce the amount of sample used for extraction.*
5. Calculation of Results
Note: We provide two formula sets: the derived calculation formulas and the simplified formulas. They are completely equivalent. The simplified formulas are recommended as the final calculation formulas.
5.1 Plotting the Standard Curve
Plot the standard curve with the standard concentration as the y-axis and ΔA<sub>Standard</sub> as the x-axis. Substitute ΔA<sub>Test</sub> into the standard curve equation to obtain y (nmol/mL).
5.2 Calculation of Nitrite Content in Samples
(1) Soil Sample
NO₂⁻ (nmol/g) = y × VSample × VTotal ÷ VSample ÷ W × n = 2y × n
(2) Water Sample
NO₂⁻ (nmol/mL) = y × n = y × n
Parameter Description:
VSample: Sample volume, 0.07 mL;
W: Sample mass, 0.5 g;
VTotal: Volume of Reagent Ⅰ added, 1 mL;
n: Dilution factor of the sample.
6. Example Results
6.1 Typical Standard Curve
y = 89.365x - 0.918, R² = 0.999

Figure 1: NO₂⁻ Standard Curve
6.2 Experimental Example
Figure 2: NO₂⁻ content in soil determined by the kit
Notes
This product is for scientific research use only and is not intended for clinical diagnosis. For your safety and health, please wear a lab coat and disposable gloves during operation.
| N1508208 | Component | 96T | Storage |
| N1508208A | Reagent Ⅰ | 70 mL×2 | 2-8℃ |
| N1508208B | Reagent Ⅱ | 10 mL | 2-8℃. Store in the dark. |
| N1508208C | Reagent Ⅲ | 10 mL | 2-8℃. Store in the dark. |
| N1508208D | Standard | 500 μL | 2-8℃ |
Comprehensive hazard, handling, storage, and regulatory compliance document.
Download SDS →Lot-specific quality data. Enter your lot number to retrieve the exact COA.
Look up COA →Full quality attributes and acceptance criteria for this grade.
View spec sheet →Find and download the COA for your product by matching the lot number on the packaging.
| Lot Number | Certificate Type | Date | Item |
|---|---|---|---|
| Certificate of Analysis | Mar 03, 2026 | N1508208 |