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Effect of magnetic field on the gas-jet boosted radio frequency glow discharge atomic emission spectrometry

机译:磁场对喷气增强射频辉光放电原子发射光谱法的影响

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The effect of a magnetic field on the radio frequency (rf) powered gas-jet boosted glow discharge (GD) source was investigated. The fundamental characteristic study includes the effects of discharge power of 10-50 W, and pressures range from 2 to 7 torr, on de bias potential, sample weight loss rate and emission intensity with and without magnetic field. The bias potential and sample weight loss do not change with pressure above approximately 4 torr; however, as the pressure is dropped below approximately 4 torr there is a significant decrease in the bias potential and sample weight loss with addition of the magnetic field, while significant enhancement in signal intensity was observed with the addition of magnetic fields using Cu samples at 40 W, 200 ml/min gas flow rate and 5 torr pressure. The Cu(I) 324.7-nm and Cu(I) 327.4-nm wavelengths were enhanced as much as three times, while one order of magnitude enhancement was observed at the Cu(II) 224.7-nm wavelength. These results show that a magnetic field in this system only enhanced the excitation of sputtered atoms, and not on the sputtering. Both magnetic and non-magnetic boosted rf-GD shows a short-term precision of <1% RSD and long-term stability of <5% RSD for both major and trace element lines. Calibration curves are linear over 3-4 orders of magnitude with a general improvement of linearity by ratioing the signal to an internal standard of the matrix in both systems. Limits of detection for magnetic boosted GD are tens part per billion from many trace elements in low alloy steel which is an order of improvement over conventional rf-GD system. (C) 2000 Elsevier Science B.V. All rights reserved. [References: 32]
机译:研究了磁场对射频(rf)供电的气体喷射增强辉光放电(GD)源的影响。基本特性研究包括10-50 W的放电功率和2至7托的压力范围对有无磁场时的偏电势,样品失重率和发射强度的影响。偏置电位和样品失重不会随压力高于约4托而变化;但是,当压力降到约4托以下时,随着磁场的加入,偏置电势和样品重量的损失会显着降低,而使用40℃的Cu样品时,随着磁场的加入,信号强度会显着提高。 W,200 ml / min的气体流速和5托的压力。 Cu(I)324.7-nm和Cu(I)327.4-nm波长增强了三倍,而在Cu(II)224.7-nm波长处观察到一个数量级的增强。这些结果表明,该系统中的磁场仅增强了溅射原子的激发,而没有增强溅射。磁性和非磁性增强型rf-GD的主要元素和痕量元素线的短期精度均小于1%RSD,长期稳定性均小于5%RSD。校准曲线在3-4个数量级上是线性的,通过在两个系统中将信号与矩阵的内标成比例,可以总体上改善线性度。磁性增强型GD的检测极限是低合金钢中许多痕量元素的十亿分之十,这是对传统rf-GD系统的改进。 (C)2000 Elsevier Science B.V.保留所有权利。 [参考:32]

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