In this section, you can access to the latest technical information related to the FUTURE project topic.

Effects of temperature on aggregation kinetics of graphene oxide in aqueous solutions

Laboratory experiments were conducted to determine the effects of temperature (6, 25, and 40°C) on GO aggregation kinetics under different combinations of ionic strength, cation type, humic acid (HA) concentration by monitoring GO hydrodynamic radii and attachment efficiencies. The results showed that, without HA, temperature increase promoted GO aggregation in both monovalent (Na+ and K+) and divalent (Ca2+) solutions. This phenomenon might be caused by multiple processes including enhanced collision frequency, enhanced cation dehydration, and reduced electrostatic repulsion. The presence of HA introduced steric repulsion forces that enhanced GO stability and temperature showed different effects GO aggregation kinetics in monovalent and divalent electrolytes. In monovalent electrolytes, cold temperature diminished the steric repulsion of HA-coated GO. As a result, the fastest increasing rate of GO hydrodynamic radius and the smallest critical coagulation concentration value appeared at the lowest temperature (6°C). Conversely, in divalent electrolyte solutions with HA, high temperature favored GO aggregation, probably because the interactions between Ca2+ and HA increased with temperature resulting in lower HA coating on GO. Findings of this work emphasized the importance of temperature as well as solution chemistry on the stability and fate of GO nanoparticles in aquatic environment.

» Author: Mei Wang, Bin Gao, Deshan Tang, Huimin Sun, Xianqiang Yin, Congrong Yu

» Reference: Colloids and Surfaces A: Physicochemical and Engineering Aspects, Volume 538

» Publication Date: 05/02/2018

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