[1] 董文, 张青, 罗涛, 等. 不同有机肥连续施用对土壤质量的影响. 中国农学通报, 2020, 36(28): 106-110 [2] 李财生, 吴月颖, 陈丽铭, 等. 不同来源有机肥释放的溶解有机质粒径分布与光谱特征. 植物营养与肥料学报, 2022, 28(6): 961-971 [3] Filella M. Freshwaters: Which NOM matters? Environmental Chemistry Letters, 2009, 7: 21-35 [4] He W, Choi I, Lee JJ, et al. Coupling effects of abiotic and biotic factors on molecular composition of dissolved organic matter in a freshwater wetland. Science of the Total Environment, 2016, 544: 525-534 [5] Xu HC, Yan MQ, Li WT, et al. Dissolved organic matter binding with Pb(II) as characterized by differential spectra and 2D UV-FTIR heterospectral correlation analysis. Water Research, 2018, 144: 435-443 [6] 范行程, 葛俊杰, 谢越, 等. 蘑菇渣和稻秸堆肥中DOM与Cu2+的络合机制. 生态与农村环境学报, 2024, 40(2): 285-292 [7] 杨超, 何小松, 高如泰, 等. 堆肥过程不同分子量水溶性有机物电子转移能力的演变及影响因素. 分析化学, 2017, 45(4): 579-586 [8] 李岚, 叶苹苹, 罗玉萍, 等. 典型有机物料在藏区人工草地中的腐解与养分释放特征. 西北农业学报, 2025, 34(5): 904-912 [9] 佟影影, 武修远, 高越, 等. 堆肥溶解性有机质组成与重金属变化研究. 洛阳理工学院学报: 自然科学版, 2020, 30(2): 7-11 [10] 赵威, 席北斗, 赵越, 等. 简易填埋场垃圾渗滤液水溶性有机物对Pb (Ⅱ)迁移转化特性的影响. 环境科学研究, 2014, 27(5): 527-533 [11] Jorstad LB, Jankowski J, Acworth RI. Analysis of the distribution of inorganic constituents in a landfill leachate-contaminated aquifer, Astrolabe Park, Sydney, Australia. Environmental Geology, 2004, 46: 263-272 [12] Chen Y, Xu YP, Qu FJ, et al. Effects of different loa-ding rates and types of biochar on passivations of Cu and Zn via swine manure composting. Journal of Arid Land, 2020, 12: 1056-1070 [13] Chen L, Li BL, Wu ZP, et al. Interactions between lead (Ⅱ) ions and dissolved organic matter derived from organic fertilizers incubated in the field. Journal of Environmental Sciences, 2022, 121: 77-89 [14] Huang M, Li ZW, Huang B, et al. Investigating binding characteristics of cadmium and copper to DOM derived from compost and rice straw using EEM-PARAFAC combined with two-dimensional FTIR correlation analyses. Journal of Hazardous Materials, 2018, 344: 539-548 [15] 焦宇欣, 李东阳, 龚天成, 等. 基于光谱色谱分析热解温度对沼渣生物炭DOM组成特性的影响. 环境科学研究, 2021, 34(10): 2468-2476 [16] Rashid I, Murtaza G, Dar AA, et al. The influence of humic and fulvic acids on Cd bioavailability to wheat cultivars grown on sewage irrigated Cd-contaminated soils. Ecotoxicology and Environmental Safety, 2020, 205: 111347 [17] Bai HC, Jiang ZM, He MJ, et al. Relating Cd2+ binding by humic acids to molecular weight: A modeling and spectroscopic study. Journal of Environmental Sciences, 2018, 70: 154-165 [18] 梁以豪, 倪才英, 黎衍亮, 等. 稻田土壤溶解性有机质组成及其与Cd2+络合过程研究. 土壤学报, 2025, 62(1): 153-164 [19] 宋楚轩, 孙士权, 刘丽娟, 等. 富里酸对淤泥堆肥中重金属赋存形态的影响. 中国环境科学, 2025, 45(10): 5596-5606 [20] 申慧彦, 曹承泽, 王嘉富, 等. 典型可溶性有机质组分与土霉素荧光猝灭研究. 环境科学与技术, 2023, 46(5): 201-207 [21] Xu WX, Yang Q, Jiang YM, et al. Improving soil pH, nutrient concentrations, and enzyme activities by green manure returning in young and mature rubber plantation on Hainan Island, China. Plant and Soil, 2024, 495: 341-358 [22] 李德近, 马想, 孙悦, 等. 典型区域秸秆和有机肥混土填埋后的腐解特征. 中国农业科学, 2023, 56(6): 1127-1138 [23] 张义宁, 王俊. 绿肥腐解过程及其对旱作农田土壤碳氮和玉米产量的影响. 生态学杂志, 2023, 42(11): 2613-2621 [24] 韩佳益, 王雨阳, 赵庆杰, 等. 不同腐解阶段羊粪与海藻有机肥对P(Ⅱ)的吸附. 农业环境科学学报, 2021, 40(9): 1904-1914 [25] 雷琬莹, 滕培基, 王博, 等. 东北黑土区不同种类有机物料腐解特征及驱动因素分析. 农业工程学报, 2024, 40(13): 107-116 [26] 刘熙明, 袁静超, 梁尧, 等. 还田方式对玉米秸秆腐解特征及其节肥潜力的影响. 农业资源与环境学报, 2025, 42(2): 404-411 [27] 杨海婷, 祁文俊, 高超前, 等. 园林绿化废弃物有机肥养分释放特征及对油松生长的影响. 植物营养与肥料学报, 2024, 30(6): 1173-1184 [28] 马想, 徐明岗, 赵惠丽, 等. 我国典型农田土壤中有机物料腐解特征及驱动因子. 中国农业科学, 2019, 52(9): 1564-1573 [29] 李然, 徐明岗, 孙楠, 等. 不同碳氮比下秸秆腐解与养分释放的动力学特征. 中国农业科学, 2023, 56(11): 2118-2128 [30] 李然, 徐明岗, 邬磊, 等. 煤矿区复垦土壤中秸秆和生物炭的分解特征. 植物营养与肥料学报, 2021, 27(7): 1129-1140 [31] 赵芹, 程东会, 王燕, 等. 不同物料堆肥过程中溶解性有机质和腐殖酸的物质结构演化时序差异分析. 环境工程技术学报, 2023, 13(4): 1514-1524 [32] 朱园辰. 畜禽粪便堆肥衍生的溶解性有机质对黑土中重金属稳定性的影响及作用机制. 博士论文. 哈尔滨: 东北农业大学, 2023 [33] 孟佳靖, 窦红, 陈哲, 等. 白洋淀夏季汛期入淀河流水体溶解性有机物的光谱特征及来源. 环境科学, 2024, 45(5): 2640-2650 [34] Wu J, Zhang H, He PJ, et al. Insight into the heavy metal binding potential of dissolved organic matter in MSW leachate using EEM quenching combined with PARAFAC analysis. Water Research, 2011, 45: 1711-1719 [35] Ryan DK, Weber JH. Fluorescence quenching titration for determination of complexing capacities and stability constants of fulvic acid. Analytical Chemistry, 1982, 54: 986-990 [36] Chen ML, Jang S, Shin KH, et al. Unique cha-racteristics and spatiotemporal variations of dissolved organic matter along the Yeongsan River estuary impacted by an estuary dam. Estuarine, Coastal and Shelf Science, 2025, 313: 109081 [37] Yamashita Y, Cory RM, Nishioka J, et al. Fluorescence characteristics of dissolved organic matter in the deep waters of the Okhotsk Sea and the northwestern North Pacific Ocean. Deep Sea Research Part Ⅱ: Topical Studies in Oceanography, 2010, 57: 1478-1485 [38] Kim J, Song BC, Kim TH. Origin of dissolved organic carbon under phosphorus-limited coastal-bay conditions revealed by fluorescent dissolved organic matter. Frontiers in Marine Science, 2022, 9: 971550 [39] Liu C, Du YH, Yin HB, et al. Exchanges of nitrogen and phosphorus across the sediment-water interface influenced by the external suspended particulate matter and the residual matter after dredging.Environmental Pollution, 2019, 246: 207-216 [40] Wang K, Li XK, He C, et al. Transformation of dissolved organic matters in swine, cow and chicken manures during composting. Bioresource Technology, 2014, 168: 222-228 [41] 牛玉慧, 马想, 梁晶. 有机物料对城市绿地土壤碳库管理指数的影响. 应用生态学报, 2025, 36(1): 169-177 [42] 吴景贵, 吕岩, 王明辉, 等. 有机肥腐解过程的红外光谱研究. 植物营养与肥料学报, 2004, 10(3): 259-266 [43] 赵敏, 陈丙法, 冯慕华, 等. 不同裂解温度下生物炭释放溶解性有机质的光谱特征分析. 光谱学与光谱分析, 2020, 40(8): 2505-2511 [44] Ren LH, Yan BH, Kumar Awasthi M, et al. Accele-rated humification and alteration of microbial communities by distillers' grains addition during rice straw composting. Bioresource Technology, 2021, 342: 125937 [45] 余旭芳, 周俊, 任兰天, 等. 小麦秸秆堆肥水溶性有机物的结构和组成演变. 光谱学与光谱分析, 2021, 41(4): 1199-1204 [46] 周可, 谢凤行, 李亚玲, 等. 不同微生物菌剂处理对鸡粪堆肥发酵的影响. 天津农业科学, 2009, 15(3): 10-13 [47] 尹英杰, 商建英. 农作物秸秆腐解规律及其可溶性有机质特征. 土壤学报, 2025, 62(3): 692-704 [48] 夏明明, 刘佳, 吴萌, 等. 含钙添加剂处理下不同秸秆腐解产物可溶性有机质三维荧光特征变化. 光谱学与光谱分析, 2024, 44(1): 118-124 [49] 李艳, 魏丹, 王伟, 等. 秸秆-牛粪发酵过程中溶解性有机质的荧光光谱特征. 光谱学与光谱分析, 2021, 41(9): 2846-2852 [50] Rajapaksha AU, Ok YS, El-Naggar A, et al. Dissolved organic matter characterization of biochars produced from different feedstock materials. Journal of Environmental Management, 2019, 233: 393-399 [51] 袁冬海, 崔骏, 洪志强, 等. 白洋淀沉水植物腐解溶解性有机物与重金属的相互作用. 环境工程学报, 2016, 10(5): 2184-2192 [52] 张博, 王书航, 姜霞, 等. 湖泊沉积物有机质的连续提取与荧光光谱特征分析. 环境科学学报, 2017, 37(8): 2878-2888 [53] Guo XJ, Yuan DH, Li Q, et al. Spectroscopic techniques for quantitative characterization of Cu (II) and Hg (II) complexation by dissolved organic matter from lake sediment in arid and semi-arid region. Ecotoxicology and Environmental Safety, 2012, 85: 144-150 [54] 朱燕婉, 陆长清. 腐殖酸-锌络合物稳定性的研究. 土壤学报, 1982, 19(1): 55-61 |