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The innovation of Hitachi ZA3000 atomic absorption spectrophotometer is endless
The ZA3000 series atomic absorption spectrophotometer adheres to the polarization Zeeman method and dual detector real-time calibration, with the addi
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The innovation of Hitachi ZA3000 atomic absorption spectrophotometer is endless

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日立ZA3000原子吸收分光光度计 创新永无止境

The ZA3000 series atomic absorption spectrophotometer adheres to the polarization Zeeman method and dual detector real-time calibration, with the addition of Hitachi's exclusive technology, providing excellent, stable and reliable data results.

  • characteristic

  • Analyze examples

  • System lineup

  • Application data

characteristic

Polarization Zeeman background correction method is applicable to: graphite furnace/flame/hydride generation method

Tested immediately upon startup, with a more stable baseline.

High reliability data can be obtained through polarization Zeeman background correction.

Real time calibration of dual beam dual detector

Two detectors simultaneously detect the sample beam and reference beam, and the fully real-time background correction technique obtains reliable results. And there is no mechanical switching of the optical axis, resulting in higher repeatability and stability.

new technology

Dual injection technology

The use of dual pore graphite tubes in graphite furnace analysis can effectively improve sensitivity. The dual pore graphite tube increases the contact area between the sample and the graphite tube, improves the thermal conductivity efficiency, shortens the holding time of the drying process, and allows for detection with a larger sample volume in the same analysis time, resulting in higher sensitivity and lower detection yield.

Automatic boiling detection function

It can improve the accuracy of the detection results. Automatically detect boiling and mark "P" after the measured value. Based on this, it can be confirmed whether boiling has occurred and the heating program can be corrected in a timely manner.

Automatic residual removal of graphite tube

It can effectively reduce sample residue and improve the accuracy and reproducibility of detection results.
There are two automatic methods for disability removal:
Heating "mode, specifying the maximum heating time and cooling time;
Temperature program "mode, the instrument has a built-in residual temperature program, with a maximum residual temperature of 3000 ℃.

Continuous injection function of automatic sampler

After inhaling the first reagent with an automatic injection needle, inhale the next reagent through air, and repeat the cycle to inject all samples into a C-shaped graphite tube at once.
Can effectively reduce reagent contamination; Save 40% of injection time; To obtain the same test results, a lower amount or concentration of matrix modifier is required.

Analyze examples

Flame analysis of copper, zinc, lead, nickel, and chromium in soil

Even for complex samples with high salt content such as soil decomposition fluids, they are not affected by background absorption interference from coexisting substances, resulting in higher measurement accuracy. This is thanks to Hitachi ZA3000's use of polarization Zeeman correction method to remove background.

Reference standard: Chinese Environmental Protection Standard HJ 491-2019. Determination of copper, zinc, lead, nickel, and chromium in soil and sediment by flame atomic absorption spectrophotometry

Analysis of Beryllium in Water by Graphite Furnace Method

The content of beryllium in water is extremely low, and it is susceptible to interference from alkali metals in water during measurement, which affects the accuracy of the measurement. The Hitachi ZA3000 adopts polarization Zeeman background correction method, combined with an integrated platform graphite tube, which can easily eliminate the interference of coexisting substances and achieve high-precision analysis of beryllium in water.

Reference standard: HJ/T 59-2000 Determination of Beryllium in Water Quality Graphite furnace atomic absorption spectrophotometry

System lineup

Model number/
project
ZA3000 ZA3300 ZA3700
Analysis method Flame+graphite furnace flame Graphite furnace
optical system Real time dual beam method
Background correction Polarization Zeeman method
light source 8 lights (rotating light frame)
spectroscopic system Type/Diffraction Grating Zenil Tana type 1800 lines/mm, with a dazzling wavelength of 200nm
Wavelength range, setting 190-900 nm, Automatic peak seeking setting
Reciprocal of linear dispersion rate 1.3 nm/mm
spectral bandwidth 4th gear (0.2, 0.4, 1.3, 2.6 nm)
detector 2 photoelectric multiplier tubes (A), simultaneously detecting sample beam and background beam
Flame section combustion head Pre mixed fish tail type combustion head ——
Atomizer Corrosion resistant and efficient atomizer
Ignition method Automatic ignition
Security check function Optical flame monitoring; Flame sensor error detection; Combustion/auxiliary pressure monitoring; Liquid level detection of waste liquid; Cooling water flow detection; When a malfunction occurs, the buffer tank of the combustion aid has the function of preventing backfire; Nitrous oxide safety system
Graphite furnace section Temperature control range 50-2800 ℃, automatically clearing temperature of 3000 ℃ —— 50-2800 ℃, automatically clearing temperature of 3000 ℃
Temperature control method Optical temperature control and current heating control Optical temperature control and current heating control
Sample injection method Continuous injection method and double hole injection method without displacement Continuous injection method and double hole injection method without displacement
Gas flow control Protective gas: Ar gas, 3 L/min
Carrier gas: Ar gas
0, 10, 30, 200 mL/min. (4-speed automatic adjustable)
Protective gas: Ar gas, 3 L/min
Carrier gas: Ar gas
0, 10, 30, 200 mL/min. (4-speed automatic adjustable)
Security detection function Ar gas pressure detection
Cooling water flow detection
Graphite furnace temperature detection
Ar gas pressure detection
Cooling water flow detection
Graphite furnace temperature detection
*
All analysis methods use polarization Zeeman correction.
*
We can provide graphite tube CII (with lower cost and higher sensitivity compared to graphite tube HR) and conventional pyrolytic graphite tube HR (7J0-8880)

Application Data

Flame method

AA200001_1C Analysis of Chromium (Cr) in Soil by Flame Method download
AA200001_2C Analysis of Nickel (Ni) in Soil (Flame Method) download
AA200001_3C Lead (Pb) Analysis in Soil (Flame Method) download
AA200001_4C Analysis of Copper (Cu) in Soil by Flame Method download
AA200001_5C Analysis of Zinc (Zn) in Soil by Flame Method download
AA190004_C Analysis of Aluminum (Al) Using High Temperature Burner (Flame Method) download
AA190003_C Analysis of Barium (Ba) in Environmental Water (Flame Method+Graphite Furnace Method) download
AA190002_C Background correction of sodium (Na) using flame atomic absorption method according to JIS K 0102 download
AA190001_C Analysis of Cobalt (Co) in Environmental Water (Flame Method+Graphite Furnace Method) download
AA140010_C Analysis of Strontium (Sr) Content in Mineral Water (Flame Method) download
AA140002_C Analysis of Sodium (Na) in High Concentration Urea by Flame Method download
AA140001_C Analysis of Potassium (K) in High Concentration Urea by Flame Method download
AA130017_E Analysis of Calcium (Ca) Elements in Mineral Water (Flame Method) download
AA130002_E Analysis of Chromium (Cr) Element in Gelatin (Flame Method) download
AA130001_E Analysis of Iron (Fe) Element in Gelatin (Flame Method) download
AA120035_E Analysis of lead (Pb) element in urban particulate matter (flame method) download
AA120034_E Analysis of boron (B) element in fertilizers (flame method) download
AA120032_E Analysis of Lead (Pb) Elements in Food Additives (Flame Method) download
AA120031_E Analyze selenium (Se) elements in environmental water using flame method download
AA120030_E Analysis of Lead (Pb) Elements in Traditional Chinese Medicine (Flame Method) download
AA120029_E Analysis of Cadmium (Cd) Elements in Traditional Chinese Medicine (Flame Method) download
AA120022_E Analysis of Copper (Cu) Elements in Soybean Flour (Flame Method) download
AA120017_E Analysis of Sodium (Na) Element in Powder Soup (Flame Method) download
AA120016_E Analysis of Cadmium (Cd) Elements in Brown Rice (Flame Method) download
AA120015_E Analysis of arsenic (As) elements in beverages (flame method) download
AA120010_E Analysis of Cesium (Cs) Elements in Drainage (Flame Method) download
AA120005_E Analysis of Lead (Pb) Elements in River Water (Flame Method) download

graphite furnace atomic absorption spectroscopy

AA190007_C Analysis of copper (Cu) in different solvents (graphite furnace method) download
AA190006_C Analysis of Cadmium (Cd) in Chocolate by Graphite Furnace Method download
AA190005_C Analysis of Beryllium (Be) in Environmental Water (Graphite Furnace Method) download
AA190003_C Analysis of Barium (Ba) in Environmental Water (Flame Method+Graphite Furnace Method) download
AA190001_C Analysis of Cobalt (Co) in Environmental Water (Flame Method+Graphite Furnace Method) download
AA170003_C Analysis of arsenic (As) element in river water (graphite furnace method) download
AA170002_C Analysis of Antimony (Sb) Elements in High Salt Samples (Graphite Furnace Method) download
AA170001_C Analysis of Chromium (Cr) Elements in River Water (Graphite Furnace Method) download
AA140006_C Analysis of Antimony (Sb) in Steel (Graphite Furnace Method) download
AA140005_C Analysis of Cadmium (Cd) in Lithium Hexafluorophosphate by Graphite Furnace Method download
AA140004_C Analysis of tellurium (Te) element in steel (graphite furnace method) download
AA140003_C Analysis of Magnesium (Mg) in Lithium Hexafluorophosphate by Graphite Furnace Method download
AA120026_E Analyze the indium (In) element in the air of the work environment (graphite furnace method) download
AA120024_E Analysis of Manganese (Mn) Elements in River Water (Graphite Furnace Method) download
AA120021_E Lead (Pb) element in food additives (graphite furnace method) download
AA120020_E Analysis of Chromium (Cr) Elements in River Water (Graphite Furnace Method) download
AA120018_E Analysis of beryllium (Be) element in river water (graphite furnace method) download
AA120014_E Analysis of Nickel (Ni) Element in River Water (Graphite Furnace Method) download
AA120013_E Analysis of Cadmium (Cd) Elements in River Water (Graphite Furnace Method) download
AA120012_E Analysis of Lead (Pb) Elements in Milk (Graphite Furnace Method) download
AA120009_E Analysis of Cesium (Cs) Elements in Soybeans (Graphite Furnace Method) download
AA120007_E Analysis of arsenic (As) element in river water (graphite furnace method) download
AA120006_E Analysis of Antimony (Sb) Element in River Water (Graphite Furnace Method) download
AA120004_E Analysis of Boron (B) Element in Mineral Water (Graphite Furnace Method) download

hydride generation

   
AA140009_C Analysis of arsenic (As) content in glucosamine using hydride generation method download
AA150009_C Analysis of selenium (Se) elements in rivers using hydride generation method download

application

Introduce measurement examples of atomic absorption spectrophotometer.

Basic Course of Atomic Absorption Spectrophotometer

Introduce the basic knowledge of atomic absorption spectrophotometer, including calibration methods from "atomic absorption spectrophotometer" to "background (BKG) calibration method".

Science Environment

Introduce the symbol of Hitachi High Tech Science Group, which aims to become a leader in the technology field.

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