生态环境学报 ›› 2026, Vol. 35 ›› Issue (5): 770-783.DOI: 10.16258/j.cnki.1674-5906.2026.05.010
符小坤1(
), 杜雨菲1, 郑传洁1, 贾文浩1, 王旭程2, 马旖旎1, 黄开波1,*(
)
收稿日期:2025-09-12
修回日期:2026-01-07
接受日期:2026-02-17
出版日期:2026-05-18
发布日期:2026-05-08
通讯作者:
*E-mail: 作者简介:符小坤(2000年生),女,硕士研究生,研究方向为新污染物环境行为。E-mail: 2533570783@qq.com
基金资助:
FU Xiaokun1(
), DU Yufei1, ZHENG Chuanjie1, JIA Wenhao1, WANG Xucheng2, MA Yini1, HUANG Kaibo1,*(
)
Received:2025-09-12
Revised:2026-01-07
Accepted:2026-02-17
Online:2026-05-18
Published:2026-05-08
摘要:
为厘清人类活动与自然过程对热带岛屿水体溶解性有机质(DOM)特征的影响,选取典型水体(河流、湖泊、河口及近海),结合紫外-可见吸收光谱、三维荧光光谱和傅里叶变换离子回旋共振质谱(FT-ICR MS),系统解析DOM的来源、组成及转化机制。结果表明,DOM组成在不同水体间具有差异:紫外光谱显示河流与湖泊DOM芳香性较高(SUVA254为13.02-18.88 L∙mg−1·m−1),陆源特征显著;河口DOM芳香性异常升高(SUVA254达148.29-228.31 L∙mg−1·m−1),三维荧光光谱显示类蛋白组分增多,体现陆海混合与污水输入的共同作用;近海DOM则以低芳香性(SUVA254为7.85-14.63 L∙mg−1·m−1)、高自生源(FI为1.21-1.30)特征为主。而FT-ICR MS从分子层面表明:流域样品中异常荧光峰与高SUVA254、低FI值(0.10)的组合,对应分子组成中高丰度稠环芳香结构,表明可能存在多环芳烃污染;河口区检出苯并噻唑等人工有机硫化物,且与CHOS类化合物同步富集,表明存在污水输入的迹象。分子转化路径分析进一步表明,河口DOM转化网络最为复杂,同时存在氧化、还原、甲基化等多种反应,体现该区域在陆海交互与人为干扰下的活跃转化特征。该研究使用光学指标与分子指纹相结合的方法,可有效揭示DOM组成规律并识别人类活动影响,结果可为热带岛屿水环境保护及碳循环研究提供了科学依据。
中图分类号:
符小坤, 杜雨菲, 郑传洁, 贾文浩, 王旭程, 马旖旎, 黄开波. 热带岛屿不同水体溶解性有机质特征研究[J]. 生态环境学报, 2026, 35(5): 770-783.
FU Xiaokun, DU Yufei, ZHENG Chuanjie, JIA Wenhao, WANG Xucheng, MA Yini, HUANG Kaibo. Characteristics of Dissolved Organic Matter (DOM) in Different Tropical Water Bodies[J]. Ecology and Environmental Sciences, 2026, 35(5): 770-783.
图1 南渡江流域-河口-延伸海域及红城湖采样点分布图 其中HP代表湖泊;LY代表流域;HK代表河口;HY代表海洋
Figure 1 Distribution map of sampling points in the Nandu River Basin-estuary-extended sea area and Hongcheng Lake
图2 不同水体DOM的三维荧光光谱特征 图中已去除拉曼散射及瑞利散射干扰;等高线表示荧光强度(R.U.)
Figure 2 Three-dimensional fluorescence spectral characteristics of DOM in different water bodies
| 参数指标 | 单位 | 采样点位 | |||||||
|---|---|---|---|---|---|---|---|---|---|
| HP1 | HP2 | LY1 | LY3 | HK2 | HK3 | HY2 | HY3 | ||
| CDOC (by C) | mg·L−1 | 3.286 | 58.772 | 15.074 | 29.754 | 7.977 | 3.374 | 13.399 | 34.920 |
| SUVA254 | L∙mg−1·m−1 | 141.651 | 10.527 | 18.876 | 13.025 | 148.288 | 228.311 | 7.845 | 14.630 |
| E254/E365 | - | 5.134 | 4.652 | 5.571 | 3.405 | 3.984 | 5.333 | 2.599 | 2.791 |
| E465/E665 | - | - | 2.587 | - | 1.509 | 2.240 | 3.391 | 1.517 | 2.341 |
| S275-295 | nm−1 | 0.017 | 0.016 | 0.019 | 0.016 | 0.016 | 0.018 | 0.012 | 0.009 |
| BIX | - | 1.838 | 2.111 | 3.302 | 1.071 | 3.954 | 8.161 | 1.170 | 1.196 |
| HIX | - | 1.583 | 1.866 | 1.767 | 1.143 | 0.702 | 1.807 | 1.220 | 1.123 |
| FI | - | 0.070 | 0.085 | 0.102 | 1.014 | 0.409 | 0.253 | 1.207 | |
表1 研究区部分水体DOM浓度及紫外-可见光谱及荧光光谱特征参数
Table 1 The DOM concentration of some water bodies in the study area and the characteristic parameters of ultraviolet-visible spectra and fluorescence spectra
| 参数指标 | 单位 | 采样点位 | |||||||
|---|---|---|---|---|---|---|---|---|---|
| HP1 | HP2 | LY1 | LY3 | HK2 | HK3 | HY2 | HY3 | ||
| CDOC (by C) | mg·L−1 | 3.286 | 58.772 | 15.074 | 29.754 | 7.977 | 3.374 | 13.399 | 34.920 |
| SUVA254 | L∙mg−1·m−1 | 141.651 | 10.527 | 18.876 | 13.025 | 148.288 | 228.311 | 7.845 | 14.630 |
| E254/E365 | - | 5.134 | 4.652 | 5.571 | 3.405 | 3.984 | 5.333 | 2.599 | 2.791 |
| E465/E665 | - | - | 2.587 | - | 1.509 | 2.240 | 3.391 | 1.517 | 2.341 |
| S275-295 | nm−1 | 0.017 | 0.016 | 0.019 | 0.016 | 0.016 | 0.018 | 0.012 | 0.009 |
| BIX | - | 1.838 | 2.111 | 3.302 | 1.071 | 3.954 | 8.161 | 1.170 | 1.196 |
| HIX | - | 1.583 | 1.866 | 1.767 | 1.143 | 0.702 | 1.807 | 1.220 | 1.123 |
| FI | - | 0.070 | 0.085 | 0.102 | 1.014 | 0.409 | 0.253 | 1.207 | |
图3 基于FT-ICR MS的不同水体DOM分子Van Krevelen图 背景区域表示不同分子类别:脂质(Lipids,H/C:1.5-2.0;O/C:0-0.3);蛋白质/脂肪族(Aliphatic/proteins,H/C:1.5-2.2;O/C:0.3-0.67);碳水化合物(Carbohydrates,H/C:1.5-2.0;O/C:0.67-1.0);木质素/CRAM-like结构(Lignins/CRAM-like structures,H/C:0.7-1.5;O/C:0.1-0.67);单宁(Tannins,H/C:0.6-1.2;O/C:0.5-0.9);芳香结构(Aromatic structures,H/C:0.3-0.7;O/C:0.1-0.67)。每个点代表一个独特的分子式
Figure 3 The VK diagrams of DOM molecules in different water bodies based on FT-ICR MS
| 点位 | HP1 | HP2 | HP3 | LY1 | LY2 | LY3 | LY4 | HK1 | HK2 | HK3 | HK4 | HY1 | HY2 | HY3 | HY4 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 节点数 | 2014 | 1761 | 1997 | 203 | 1732 | 1918 | 1749 | 1410 | 2045 | 2062 | 2032 | 1455 | 636 | 1400 | 1380 |
| 边数 | 12580 | 11208 | 12898 | 1035 | 8614 | 11945 | 10851 | 8301 | 12832 | 12808 | 10630 | 8639 | 3336 | 8339 | 8208 |
| 网络密度 | 0.003 | 0.004 | 0.003 | 0.025 | 0.003 | 0.003 | 0.004 | 0.004 | 0.003 | 0.003 | 0.003 | 0.004 | 0.008 | 0.004 | 0.004 |
表2 各采样点分子转化网络定量参数
Table 2 Quantitative parameters of molecular transformation networks at sampling points
| 点位 | HP1 | HP2 | HP3 | LY1 | LY2 | LY3 | LY4 | HK1 | HK2 | HK3 | HK4 | HY1 | HY2 | HY3 | HY4 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 节点数 | 2014 | 1761 | 1997 | 203 | 1732 | 1918 | 1749 | 1410 | 2045 | 2062 | 2032 | 1455 | 636 | 1400 | 1380 |
| 边数 | 12580 | 11208 | 12898 | 1035 | 8614 | 11945 | 10851 | 8301 | 12832 | 12808 | 10630 | 8639 | 3336 | 8339 | 8208 |
| 网络密度 | 0.003 | 0.004 | 0.003 | 0.025 | 0.003 | 0.003 | 0.004 | 0.004 | 0.003 | 0.003 | 0.003 | 0.004 | 0.008 | 0.004 | 0.004 |
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