14.10
原子发射光谱法 (AES) 的仪器涉及各种组件,包括将样品转化为气相原子和离子的雾化装置。雾化装置主要有两种类型:连续雾化器和离散雾化器。连续雾化器(如等离子体和火焰)以恒定流的方式引入样品,而离散雾化器则使用进样器或自动进样器注入单个样品。最常见的离散雾化器是电热雾化器。
雾化是以气溶胶形式引入样…
原子发射光谱仪由样品雾化器、等离子体光源、波长分离装置、换能器和微处理器控制器组成。
使用蠕动泵吸取样品,并将其输送至雾化器,雾化器将样品溶液转化为细小液滴。
较大的液滴被导向排水口,而细小的液滴则由氩气携带进入等离子体——通常为直流等离子体或电感耦合等离子体。
在等离子体中,样品被原子化为气相原子和离子,并在进一步碰撞过程中被激发。
等离子体中的原子或离子发射光谱随后通过单色仪、多色仪或光谱仪进行分离。
单色器通过单个出口狭缝依次分离出单个波长,而具有多个出口狭缝的多色器则可同时分离出多个波长。
或者,光谱仪能够同时监测一系列波长。
通过单个或多个光电倍增管换能器或阵列检测器将分离的辐射转换为电信号,并进行进一步分析。
View the full transcript and gain access to JoVE Core videos
Q1: What are the main components of an atomic emission spectrometer?
An atomic emission spectrometer consists of a sample nebulizer, plasma source, wavelength-isolating device, transducers, and microprocessor controller. The nebulizer converts the sample solution into fine droplets carried by argon gas to the plasma. The plasma atomizes samples into gas-phase atoms and ions, which emit radiation that is separated by a monochromator, polychromator, or spectrograph and converted into electrical signals for analysis.
Q2: How does a nebulizer prepare samples for atomic emission spectroscopy?
A nebulizer draws sample solution using a peristaltic pump and converts it into fine droplets through nebulization. Larger droplets are directed to a drain, while fine droplets are carried by argon gas to the plasma for atomization. This process ensures efficient introduction of the sample into the plasma as an aerosol, enabling consistent and complete atomization of the sample material.
Q3: What is the difference between monochromators and polychromators in emission spectroscopy?
Monochromators separate individual wavelengths sequentially through a single exit slit, measuring one emission line at a time. Polychromators use multiple exit slits to isolate and measure several wavelengths concurrently. Spectrographs enable simultaneous monitoring of a range of wavelengths, making them ideal for rapid multi-element analysis compared to sequential measurement approaches.
Q4: What role does the plasma play in atomic emission spectroscopy?
The plasma atomizes sample material into gas-phase atoms and ions through high-temperature excitation. Upon collision within the plasma, these atoms and ions become excited and emit characteristic radiation. Common plasma sources include inductively coupled plasma and direct current plasma, both providing the thermal energy necessary to generate atomic emission for elemental analysis.
Q5: How do transducers convert emission radiation into usable signals?
Transducers, such as photomultiplier tubes or array detectors, convert isolated radiation into electrical signals. Single photomultiplier transducers measure one wavelength at a time, while multiple transducers or array detectors can simultaneously capture signals from several wavelengths. These electrical signals are then processed and analyzed by the microprocessor controller for quantitative and qualitative results.
Q6: What are continuous and discrete atomizers in emission spectroscopy?
Continuous atomizers, like plasmas and flames, introduce samples in a constant stream for steady-state analysis. Discrete atomizers inject individual samples using syringes or autosamplers, with the electrothermal atomizer being the most common type. Each approach offers different advantages depending on sample volume, analysis speed, and the number of elements requiring simultaneous determination.
Q7: How do sequential and simultaneous spectrometers differ in multi-element analysis?
Sequential spectrometers scan different emission lines in sequence, measuring one element at a time using a monochromator. Simultaneous spectrometers use polychromators or spectrographs to measure multiple wavelengths and elements at once. Simultaneous instruments enable faster analysis and are particularly useful for rapid multi-element determinations in complex samples.