Absorbance 

  Absorbance measurement is an old technique that is the most widely used spectroscopy for studying liquids and gases, because of its simplicity, nondestructive, accuracy. Absorbance measurement can identify material fingerprint or the concentration of a molecule in solution. Absorbance measurements work equally well for gases and liquids to analyze consumer products as well as industrial application.

  The most classic introductory chemistry lab experiment of absorbance measurement is a solution in a cuvette, measured in transmission with a dual-beam spectrometer. Modular spectroscopy becomes much more flexible for choosing the wavelength range and resolution needed, moving between sampling optics at quick and easy measurement in the lab or field. Optosky provides a wide range of spectrometers, light sources, and accessories to assist you to create a flexible system to measure solutions and concentrations. The measurement can be performed without altering the sample and can accurately quantify absorbance to no more than 0.001 absorbance units.

  It's assumed that absorbance measurement is based on scattering is zero, suppose all light not transmitted to the detector is absorbed by the sample, i.e., Transmittance + Absorbance = 1.  It's true for the ideal condition of an infinitely dilute solution of infinitely small particles in a transparent solvent. or it is also true for a wider range of absorbing substances, solvents, and concentrations. Absorbance occurs when the light transmitted encounter the molecule matches frequency vibrations or molecule transitions in energy level. How absorbance is determined by the cross section of the molecule for a particular energy level transition. The chance of absorption depends on both the path length and concentration of the solution, which has been quantified in the Beer’s Law.

What Is Beer-Lambert Law?

       Beer-Lambert Law states that the absorbance of a solution will depend on the concentration of the absorbing molecules and the optical length traveled by light through the solution. At high concentrations, the molecules are closer to each other and begin to interact with each other. This interaction will change several properties of the molecule, and thus will change the attenuation. Beers' Law


  A=kpc

  where

  A is Absorbance

  K is molar attenuation coefficient

  b is the optical length traveled by light

  c is the amount concentration


  How much light is absorbed can be deducted by light transmitted through the sample. Provided the sample has very low scattering, almost all of the light not absorbed will be transmitted. The transmission will decrease with increasing optical length or concentration.

  Applications:

  Environmental: Water quality monitoring, CEMS monitoring

  Kinetics: concentration changes monitoring during a reaction

  QA/QC: concentration changes monitoring during manufacturing

  Chemical reaction monitoring

  .....


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Double Beam UV-Vis Spectrophotometer
Full-Spectrum Absorbance Analyzer
0.00″W x 0.00″D x 0.00″H
UV1600
DescriptionThe UV1600 is the latest portable full-spectrum absorbance analyzer (rapid visible spectr..
$0.00
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In-situ, Multi-parameter Water Quality Measurement Instrument
Advantage: Online measurement: less than 10s minimum reading time, real-time warning of abrupt ..
$0.00
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Micro-spectrophotometer
Micro-spectrophotometer
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NanoBio 210
DescriptionNanoBio 210 is a full-wavelength (190~850nm) ultra-micro-volume spectrophotometer develop..
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Microvolume Spectrophotometer
Nanobio 300 Microvolume Spectrophotometer
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Nanobio 300
DescriptionThe NanoBio 300 is an advanced Microvolume Spectrophotometer developed by Optosky. Coveri..
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Nanobio spectrophotomoter
Nanobio spectrophotomoter
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Nanobio 200
Description:NanoBio 200 is a full wavelength (190-1000nm) ultra microvolume UV-Vis spectrophotometer..
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Microvolume Spectrophotometer
Nanobio500 Microvolume Spectrophotometer
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NanoBio 500
DescriptionNanoBio 500 is a versatile microvolume spectrophotometer (190 ~ 850 nm) from Optosky, int..
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UV-Vis spectrophotometer
UV-Vis spectrophotometer
21.00″W x 29.00″D x 15.00″H
Nanobio-100
NanoBio 100 is a full wavelength (190-1000nm) UV-Vis spectrophotometer, which is self-designed by Op..
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Micro raman spectrometer
ATP5020 Lowcost miniature raman spectrometer
13.00″W x 16.90″D x 5.00″H
ATP5020
Optosky ATP5020 lowcost miniature raman spectrometer employs the high-performance-to-price ratio, 20..
$4,300.00
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Micro spectrometer
ATP5200 is the fifth generation of TE-cooled high performance&nbs..
$6,200.00
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What is spectrometer
ATP5030 High-sensitivity & High-resolution UV-Vis Spectrometer
13.00″W x 16.90″D x 5.00″H
ATP5030
ATP5030 is a cooled, ultra-high resolution micro spectrometer newly developed by Optosky, ATP5030 is..
$3,500.00
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Global spectrometer leader
ATP5040 High-sensitivity & High-resolution, UV-Vis Spectrometer
110.00″W x 170.00″D x 52.00″H
ATP5040
Optosky ATP5040 uses 4096pixels, other parameters almost the same as ATP5020, it employs the ultra-h..
$7,333.00
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What is spectrometer
Cooled,Ultra High Resolution Micro Spectrometer
99.00″W x 135.00″D x 46.00″H
ATP5034
ATP5034 is a cooled, ultra-high resolution micro spectrometer newly developed by Optosky, ..
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optical spectrometer
ATP6500 Scientific-Grade UV-Vis Spectrometer
13.00″W x 16.90″D x 5.00″H
ATP6500
Optosky ATP6500 Scientific-Class UV-VIS-NIR Spectrometer employs ultra-high performance, 1044 x 64 p..
$18,200.00
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optical spectrometer
ATP6750 high-sensitivity miniature spectrometer is a high-sensitivity, high-transmittance, spatial-r..
$23,000.00
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optical spectrometer
Scientific-Grade Micro Spectrometer
0.00″W x 0.00″D x 0.00″H
ATP6500DC&ATP6500EM
ATP6500DC and ATP6500EM are self-developed deep cooling scientific-grade spectrometer by Optosky, wi..
$36,700.00
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