Department of Environmental Science, Zhejiang University, Hangzhou, Zhejiang 310058, China.
Zhejiang Provincial Key Laboratory of Organic Pollution Process and Control, Hangzhou, Zhejiang 310058, China.
Environ Sci Technol. 2023 Feb 21;57(7):2981-2991. doi: 10.1021/acs.est.2c06816. Epub 2023 Feb 7.
The interactions between dissolved organic matter (DOM) and iron (Fe) oxyhydroxide are crucial in regulating the biogeochemical cycling of nutrients and elements, including the preservation of carbon in soils. The mechanisms of DOM molecular assembly on mineral surfaces have been extensively studied at the mesoscale with equilibrium experiments, yet the molecular-level evolution of the DOM-mineral interface under dynamic interaction conditions is not fully understood. Here, we designed a microfluidic reactor coupled with an online solid phase extraction (SPE)-LC-QTOF MS system to continually monitor the changes in DOM composition during flowing contact with Fe oxyhydroxide at circumneutral pH, which simulates soil minerals interacting with constant DOM input. Time-series UV-visible absorption spectra and mass spectrometry data showed that after aromatic DOM moieties were first preferentially sequestered by the pristine Fe oxyhydroxide surface, the adsorption of nonaromatic DOM molecules with greater hydrophobicity, lower acidity, and lower molecular weights (<400) from new DOM solutions was favored. This is accompanied by a transition from mineral surface chemistry-dominated adsorption to organic-organic interaction-dominated adsorption. These findings provide direct molecular-level evidence to the zonal model of DOM assembly on mineral surfaces by taking the dynamics of interfacial interactions into consideration. This study also shows that coupled microfluidics and online high-resolution mass spectrometry (HRMS) system is a promising experimental platform for probing microscale environmental carbon dynamics by integrating in situ reactions, sample pretreatment, and automatic analysis.
溶解有机质(DOM)和铁(Fe)氢氧化物之间的相互作用对于调节营养物质和元素的生物地球化学循环至关重要,包括土壤中碳的保存。DOM 在矿物表面的分子组装机制已在中尺度上通过平衡实验进行了广泛研究,但在动态相互作用条件下 DOM-矿物界面的分子水平演化尚不完全清楚。在这里,我们设计了一种微流反应器,与在线固相萃取(SPE)-LC-QTOF MS 系统相结合,以连续监测在中性 pH 下与 Fe 氢氧化物流动接触过程中 DOM 组成的变化,这模拟了土壤矿物质与恒定 DOM 输入相互作用。时间序列紫外可见吸收光谱和质谱数据表明,在芳香 DOM 部分首先被原始 Fe 氢氧化物表面优先螯合之后,疏水性、低酸度和低分子量(<400)的非芳香 DOM 分子从新 DOM 溶液中的吸附更有利。这伴随着从以矿物表面化学为主导的吸附到以有机-有机相互作用为主导的吸附的转变。这些发现通过考虑界面相互作用的动态性,为 DOM 在矿物表面的组装的分区模型提供了直接的分子水平证据。本研究还表明,耦合微流控和在线高分辨率质谱(HRMS)系统是通过整合原位反应、样品预处理和自动分析来探测微尺度环境碳动态的有前途的实验平台。