Depolymerization and modification
of lignin have been achieved
simultaneously in a one-pot chemical reaction. Two heteroelement-rich
modifiers, imidazol-1-yl phosphonic dichloride and 1H-1,2,4-triazol-1-yl
phosphonic dichloride, were selected to react with lignin in this
work. The modified lignin (m-lignin) is demonstrated as an effective
lubricating additive for [choline][amino acid] ([CH][AA]) bioionic
liquids. Different characterization techniques have been utilized
to study the lignin depolymerization, reaction between lignin and
modifiers and m-lignin/[CH][AA] interaction. The effect of the molecular
structure of the modifiers on the rheological and tribological properties
of m-lignin/[CH][AA] lubricants was systematically investigated. Density
function theory is used to calculate the electronic structure of lignin,
m-lignin, and [CH][AA]. The atomic natural charge analysis revealed
the most negative charge on nitrogen bonded to a phosphorus atom and
the strongest capability of forming hydrogen bonding with [CH][AA].
The introduced nitrogen and phosphorus elements not only increase
the hydrogen bonding density in m-lignin/[CH][AA] but also enhance
the polarity of the m-lignin, both of which facilitate a strong adhesion
of lubricant on a metal surface and thus promote lubrication. A larger
fraction of heteroatom groups in m-lignin contributes to a better
lubrication property of these lubricants.
Synthetic additives are widely used in lubricants nowadays to upgrade lubrication properties. The potential of integrating sustainable components in modern lubricants has rarely been studied yet. In this work, two sustainable resources lignin and gelatin have been synergistically incorporated into ethylene glycol (EG), and their tribological properties were systematically investigated. The abundant hydrogen bonding sites in lignin and gelatin as well as their interchain interaction via hydrogen bonding play the dominating roles in tuning the physicochemical properties of the mixture and improving lubricating properties. Moreover, the synergistic combination of lignin and gelatin induces charge separation of gelatin that enables its preferable adsorption on the friction surface through electrostatic force and forms a robust lubrication layer. This layer will be strengthened by lignin through the interpolymer chain hydrogen bonding. At an optimized lignin:gelatin mass ratio of 1:1 and 19 wt % loading of each in EG, the friction coefficient can be greatly stabilized and the wear loss was reduced by 89% compared to pure EG. This work presents a unique synergistic phenomenon between gelatin and lignin, where hydrogen bonding and change separation are revealed as the key factor that bridges the individual components and improves overall lubricating properties.
Abstract. Surface water quality monitoring (SWQM) provides essential information for water environmental protection. However, SWQM is costly and limited in terms of equipment and sites. The global popularity of social media and intelligent mobile devices with GPS and photography functions allows citizens to monitor surface water quality. This study aims to propose a method for SWQM using social media platforms. Specifically, a WeChat-based application platform is built to collect water quality reports from volunteers, which have been proven valuable for water quality monitoring. The methods for data screening and volunteer recruitment are discussed based on the collected reports. The proposed methods provide a framework for collecting water quality data from citizens and offer a primary foundation for big data analysis in future research.
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