Saleh Navid B, Pfefferle Lisa D, Elimelech Menachem
Department of Chemical Engineering, Yale University, New Haven, Connecticut 06520-8286, USA.
Environ Sci Technol. 2008 Nov 1;42(21):7963-9. doi: 10.1021/es801251c.
The initial aggregation kinetics of multiwalled carbon nanotubes (MWNTs) were examined through time-resolved dynamic light scattering. Aggregation of MWNTs was evaluated by varying solution pH and the concentration of monovalent (NaCl) and divalent (CaCl2 and MgCl2) salts. Suwannee River humic acid (SRHA) was used to study the effect of background natural organic matter on MWNT aggregation kinetics, Increasing salt concentration and addition of divalent calcium and magnesium ions induced MWNT aggregation by suppressing electrostatic repulsion, similar to observations with aquatic colloidal particles. The critical coagulation concentration (CCC) values for MWNTs were estimated as 25 mM NaCI, 2.6 mM CaCl2, and 1.5 mM MgCl2. An increase in solution pH from acidic (pH 3) to basic (pH 11) conditions resulted in a substantial (over 2 orders of magnitude) decrease in MWNT aggregation kinetics, suggesting the presence of ionizable functional groups on the MWNT carbon scaffold. The presence of humic acid in solution markedly enhanced the colloidal stability of MWNTs, reducing the aggregation rate by nearly 2 orders of magnitude. The enhanced MWNT stability in the presence of humic acid is attributable to steric repulsion imparted by adsorbed humic acid macromolecules. Our results suggest that MWNTs are relatively stable at solution pH and electrolyte conditions typical of aquatic environments.
通过时间分辨动态光散射研究了多壁碳纳米管(MWNTs)的初始聚集动力学。通过改变溶液pH值以及单价盐(NaCl)和二价盐(CaCl2和MgCl2)的浓度来评估MWNTs的聚集情况。使用苏万尼河腐殖酸(SRHA)研究背景天然有机物对MWNT聚集动力学的影响。增加盐浓度以及添加二价钙和镁离子会通过抑制静电排斥诱导MWNT聚集,这与对水生胶体颗粒的观察结果相似。MWNTs的临界凝聚浓度(CCC)值估计为25 mM NaCl、2.6 mM CaCl2和1.5 mM MgCl2。溶液pH值从酸性(pH 3)增加到碱性(pH 11)条件导致MWNT聚集动力学大幅下降(超过2个数量级),这表明MWNT碳支架上存在可电离的官能团。溶液中腐殖酸的存在显著增强了MWNTs的胶体稳定性,使聚集速率降低了近2个数量级。腐殖酸存在时MWNT稳定性增强归因于吸附的腐殖酸大分子产生的空间排斥作用。我们的结果表明,在典型的水生环境溶液pH值和电解质条件下,MWNTs相对稳定。