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Analysis of heterogeneous uptake by nanoparticles via differential mobility analysis-drift tube ion mobility spectrometry

机译:差分迁移率分析-漂移管离子迁移谱法分析纳米颗粒的异质吸收

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摘要

Improved methods are needed to study sorption of vapor molecules by particles in the gas phase (heterogeneous uptake), which is an important process in both natural and engineered environments. Here, a new measurement system, composed of a differential mobility analyzer (DMA) and drift tube ion mobility spectrometer (DTIMS) in series, is used to examine the heterogeneous uptake of water vapor by 2.85-7.6 nm particles composed of lithium and sodium iodide. The extent of heterogeneous uptake is determined by controlling the relative humidity of the drift region in the DTIMS in the 0-30% range (in air at atmospheric pressure and room temperature), and is quantified via the dimensionless growth factor (GF), i.e. the ratio of the mobility diameter of particles at a prescribed relative humidity relative to their mobility diameter under dry conditions. The precision in GF estimation of the DMA-DTIMS system is shown to be below 0.2%. An analytical equation to calculate the growth factor, based upon predictions of the equilibrium constants for the successive uptake of vapor molecules by particles, is also presented. While the equation is sufficiently general to enable comparison between measured GFs and predictions from any theoretical expression for equilibrium constants, we specifically compare measurements to GF predictions based on the classical Kelvin-Thomson-Raoult (KTR) model for the vapor pressure of a small particle, with consideration of the influence of the ion-dipole potential on water vapor-nanoparticle collisions, it is shown that KTR calculations drastically underpredict the extent of heterogeneous uptake for the examined nanoparticles.
机译:需要改进的方法来研究气相中的颗粒对蒸气分子的吸附(异质吸收),这在自然和工程环境中都是重要的过程。在这里,一种新的测量系统由串联的差分迁移率分析仪(DMA)和漂移管离子迁移谱仪(DTIMS)组成,用于检查由锂和碘化钠组成的2.85-7.6 nm颗粒对水蒸气的异质吸收。通过将DTIMS中漂移区的相对湿度控制在0-30%的范围内(在大气压和室温下的空气中),可以确定异质摄取的程度,并通过无量纲生长因子(GF)进行量化,即在干燥条件下,在规定的相对湿度下颗粒的迁移率直径与它们的迁移率直径之比。显示DMA-DTIMS系统的GF估计精度低于0.2%。还提出了一个计算方程,该方程基于颗粒连续吸收蒸气分子的平衡常数的预测来计算生长因子。尽管该方程式足够通用,可以比较测得的GFs和任何理论表达式中的平衡常数预测值,但我们还是将测量值与基于经典Kelvin-Thomson-Raoult(KTR)模型的GF预测值比较,用于小颗粒的蒸气压考虑到离子偶极电势对水蒸气-纳米粒子碰撞的影响,结果表明,KTR计算极大地低估了所检查纳米粒子的异质吸收程度。

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