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Mobility and adsorption of liquid organic hydrogen carriers (LOHCs) in soils - environmental hazard perspective

机译:土壤中液体有机氢载体(LOHC)的迁移性和吸附 - 环境危险视角

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摘要

Liquid organic hydrogen carriers (LOHCs) are an energy system that can be used to store and transport hydrogen under standard temperature and pressure chemically bound to a carrier. The LOHC systems show advantages over conventional energy systems (recyclability, higher sustainability and lower emissions) and other hydrogen-based systems (lower loses, ease of handling and higher safety), and are applied in stationary and mobile applications worldwide. The scale and type of use indicate that the release of LOHCs to the environment can be expected. Yet, their behaviour and fate have not been investigated especially with regard to assessment of exposure, mobility and possibility to reach surface water, groundwater or drinking water sources. To investigate that we studied the mobility of thirteen technologically promising LOHC candidates including indole, quinaldine, carbazole derivatives, benzyltoluene and dibenzyltoluene, and their (partially) saturated forms in soil, for the first time. The substances were classified into mobility classes based on their organic carbon-water partition coefficients (K-oc) determinedvia in silicomodels and HPLC screening. The log K(oc)values increased in the order indoles < quinaldines < carbazole derivatives < benzyltoluenes < dibenzyltoluenes covering a full spectrum of mobility scale (from highly mobile to immobile). The behaviour of exemplary LOHC system - quinaldine including H-2-unsaturated, partially and fully saturated forms - was further assessed by investigating the soil-water partition coefficients (K-d)viaadsorption batch equilibrium and column leaching test. The study showed that some LOHCs can be expected to be very mobile in soils and have the potential to reach groundwater.
机译:液体有机氢载体(LOHC)是能量系统,其可用于在标准温度和化学结合到载体的压力下储存和运输氢。 LOHC系统显示出与传统能量系统(可回收性,更高的可持续性和较低排放)和其他氢气系统(降低丢失,易于处理和更高的安全性)的优势,并应用于全球静止和移动应用。使用量表和类型表明可以预期LOHC的释放。然而,他们的行为和命运尚未在评估暴露,流动性和达到地表水,地下水或饮用水来源的评估方面进行调查。为了调查我们研究了十三种技术有前途的LOHC候选者,包括吲哚,喹啉,咔唑衍生物,苄基甲苯和二苄基甲苯,以及其在土壤中的(部分)的饱和形式。基于硅膜和HPLC筛选的有机碳 - 水分配系数(K-OC)确定via,将物质分为迁移率。 Log K(OC)值在顺序吲哚中增加<醌型素<咔唑衍生物<苄基甲苯<二苄基甲苯,覆盖全部迁移率的全部频谱(从高度移动到不动)。通过研究土壤 - 水分配系数(K-D)高载批准平衡和柱浸出试验,进一步评估包括H-2 - 不饱和,部分和完全饱和形式的喹啉碱基的行为。该研究表明,有些LOHC可以预期在土壤中非常移动,并且有可能达到地下水。

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  • 来源
    《Green chemistry》 |2020年第19期|共12页
  • 作者单位

    Univ Bremen Dept Sustainable Chem UFT Ctr Environm Res &

    Sustainable Technol Leobener Str 6 D-28359 Bremen Germany;

    Univ Bremen Dept Sustainable Chem UFT Ctr Environm Res &

    Sustainable Technol Leobener Str 6 D-28359 Bremen Germany;

    Univ Bremen Dept Sustainable Chem UFT Ctr Environm Res &

    Sustainable Technol Leobener Str 6 D-28359 Bremen Germany;

    Univ Bremen Dept Sustainable Chem UFT Ctr Environm Res &

    Sustainable Technol Leobener Str 6 D-28359 Bremen Germany;

    Dassault Systemes Deutschland GmbH BIOVIA D-51379 Leverkusen Germany;

    Univ Bremen Dept Gen &

    Theoret Ecol UFT Ctr Environm Res &

    Sustainable Technol Leobener Str 6 D-28359 Bremen Germany;

    Univ Bremen Dept Sustainable Chem UFT Ctr Environm Res &

    Sustainable Technol Leobener Str 6 D-28359 Bremen Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境化学;数理科学和化学;化学工业废物处理与综合利用;
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