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利用同步辐射傅里叶变换红外光谱技术研究高温堆肥中堆肥团聚体内部热点功能群的时空分布特征。

New insight into the spatio-temporal patterns of functional groups of hotspot inside the composting aggregates by synchrotron-based FTIR in hyperthermophilic composting.

机构信息

State Key Laboratory of Pollution Control and Resource Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai 200092, China; Shanghai Institute of Pollution Control and Ecological Security, Tongji University, Shanghai 200092, China.

State Key Laboratory of Pollution Control and Resource Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai 200092, China; Shanghai Institute of Pollution Control and Ecological Security, Tongji University, Shanghai 200092, China.

出版信息

Sci Total Environ. 2024 Oct 1;945:174139. doi: 10.1016/j.scitotenv.2024.174139. Epub 2024 Jun 18.

DOI:10.1016/j.scitotenv.2024.174139
PMID:38901577
Abstract

Hyperthermophilic composting (HTC) is a recently developed and highly promising organic fraction of municipal solid waste (OFMSW) treatment technology. Investigation of organic matter (OM) dynamics in compost particle is thus crucial for the understanding of humification of HTC process. Herein, this work aimed to study the chemical and structural changes of OM at the molecular level during HTC of OFMSW using EEM and SR-FTIR analyses. Additionally, two-dimensional correlation spectroscopy (2D-COS) was also utilized to probe and identify the changes in chemical constituents and functional groups of organic compounds on the surface of compost particles during different composting periods. Results show that SR-FTIR can detect fine-scale (~μm) changes in functional groups from the edges to the interior of compost particles during different composting periods by mapping the particles in situ. In the hyperthermophilic stage (day 9), the extracted μ-FTIR spectrum reveals a distinct boundary between anaerobic and aerobic regions within the compost particle, with a thickness of anaerobic zone (1460 cm) of approximately 30 μm inside the particle's core. This provides direct evidence of anaerobic trends at compost microscales level within compost particles. 2D-COS analysis indicated that organic functional groups gradually agglomerated in the order of 1330 > 2930 > 3320 > 1600 > 1030 > 895 cm to the core skeleton of cellulose degradation residues, forming compost aggregates with well physicochemical properties. Overall, the first combination of SR-FTIR and EEM provides complementary explanations for the humification mechanism of HTC, potentially introducing a novel methodology for investigating the environmental behaviors and fates of various organic contaminants associated with OM during the in-situ composting biochemical process.

摘要

高温堆肥(HTC)是一种新兴且极具前景的城市固体废物(OFMSW)处理技术,主要针对有机部分。因此,研究堆肥颗粒中有机质(OM)的动态变化对于理解 HTC 过程中的腐殖化过程至关重要。本研究采用 EEM 和 SR-FTIR 分析,旨在从分子水平上研究 OFMSW 在 HTC 过程中 OM 的化学和结构变化。此外,还利用二维相关光谱(2D-COS)研究和识别在不同堆肥阶段堆肥颗粒表面有机化合物的化学成分和官能团的变化。结果表明,SR-FTIR 可以通过原位映射颗粒来检测功能基团在不同堆肥阶段从颗粒边缘到内部的细微变化(μm 级)。在高温阶段(第 9 天),提取的 μ-FTIR 光谱揭示了堆肥颗粒内部厌氧和好氧区域之间的明显边界,颗粒核心内部的厌氧区厚度(1460 cm)约为 30 μm。这为堆肥颗粒内微观尺度上的厌氧趋势提供了直接证据。2D-COS 分析表明,有机官能团逐渐向纤维素降解残留物的核心骨架聚集,顺序为 1330 > 2930 > 3320 > 1600 > 1030 > 895 cm,形成具有良好物理化学性质的堆肥团聚体。总之,SR-FTIR 和 EEM 的首次结合为 HTC 的腐殖化机制提供了互补的解释,可能为研究各种与 OM 相关的有机污染物在原位堆肥生化过程中的环境行为和归宿提供了一种新方法。

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