光谱学与光谱分析 |
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Study on Fluorescence Characteristics of Dissolved Organic Matter during Municipal Solid Wastes Composting with Inoculation Microbes |
WEI Zi-min1, 2,XI Bei-dou1,ZHAO Yue2,WANG Shi-ping3*,LIU Hong-liang3 |
1. Laboratory of Urban Environmental System Engineering, Chinese Research Academy of Environmental Science, Beijing 100012, China 2. College of Life Science, Northeast Agricultural University, Harbin 150030, China 3. College of Food Science and Nutritional Engineering, China Agricultural University, Beijing 100083, China |
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Abstract Dissolved organic matter (DOM) of municipal solid waste (MSW) consists of minerals, water, ash and humic substances, and is known to enhance plant growth. In the present study, inoculating microbes (ZJ, MS) were used in municipal solid wastes composting, and the composting process was assisted using industrial technology. During composting, DOM was extracted from compost and purified. The spectroscopic characteristics of the DOM were determined using UV, FTIR, and fluorescence spectroscopy. The result showed that at the final stage of composting, the UV, FTIR and fluorescence spectra were similar in shape among all treatments, but the characteristic peaks intensities were different compared with the control process (CK) with no inoculation microbes, and the DOM spectral characteristics of inoculation with microbes showed that the shoulder peak of UV spectra near 280 nm obviously weakened;The FTIR spectrum exhibited a reduction in polysaccharides, and a relative increase in aromatic components;the fluorescence spectra exhibited an increase in aromatic compounds, and the fluorescence spectra of DOM were similar to that of fulvic acid in sewage sludge. Indeed, the UV, FTIR and fluorescence spectra all led to the same conclusion, i.e. treatments by inoculation with microbes led to a greater degree of aromatization of DOM than in CK, in the following order: MS+ZJ>ZJ>MS>CK. At final stage of MSW composting, the DOM spectra of the mixed inoculation of MSW with MS and ZJ was more similar to fulvic acid in sludge. It was indicated that DOM from composting with inoculation MS and ZJ has more activity than that of other treatments.
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Received: 2005-12-08
Accepted: 2006-03-28
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Corresponding Authors:
WANG Shi-ping
E-mail: weizm691120@163.com
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Cite this article: |
WEI Zi-min,XI Bei-dou,ZHAO Yue, et al. Study on Fluorescence Characteristics of Dissolved Organic Matter during Municipal Solid Wastes Composting with Inoculation Microbes [J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2007, 27(04): 735-738.
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URL: |
https://www.gpxygpfx.com/EN/Y2007/V27/I04/735 |
[1] Chefetz B, Hadar Y, Chen Y. Acta Hydrochim. Hydrobiol., 1998, 26(3): 172. [2] Chanyasak V, Kubota H. Ferment Technol., 1981, 59: 215. [3] Gressel N, Inbar Y, Singer A, et al. Soil Biol. Biochem., 1995, 27: 23. [4] Zech W G, Schulten H R. Sci. Total Environ., 1994, 152: 49. [5] LI Yan-xia, WANG Min-jian, WANG Ju-si(李艳霞, 王敏健, 王菊思). Environmental Science(环境科学), 1999, 20(2): 98. [6] SHEN Qi-rong, XU Yong, YANG Hong, et al(沈其荣, 徐 勇, 杨 红, 等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2005, 25(2): 211. [7] YU Tian-zhi, TENG Xiu-lan, DU Jin-zhou, et al(俞天智, 滕秀兰, 杜金州, 等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 1998, 18(6): 746. [8] Olk D C, Brunetti G, Senesi N. Soil Science Society of America Journal, 2000, 64: 1337. [9] Aguer J P, Trubetskaya O, Trubetskoj O, et al. Chemosphere, 2001, 44(2): 205. [10] Senesi N, Miano T M, Provenzano M R, et al. Soil Science, 1991, 152(4): 259. [11] Provenzano M R, Senesi N, Piccone G. Compost Science & Utilization, 1998, 6(3): 67. [12] Tlombardi A, Fjardim W. Water Res., 1999, 33(2): 512. [13] DOU Sen, CHEN En-feng, XU Xiang-cheng(窦 森, 陈恩凤, 须湘成). Acta Pedologica Sinica(土壤学报), 1995, 32(1): 40. [14] LIU Wei, HU Bin, YU Dun-yuan, et al(刘 伟, 胡 斌, 于敦源, 等). Geophysical & Geochemical Exploration(物探与化探), 2004, 28(2): 123. [15] ZHAN Xin-hua, ZHOU Li-xiang, SHEN Qi-rong, et al(占新华, 周立祥, 沈其荣, 等). Acta Scientiae Circumstantiae(环境科学学报), 2001, 21(4): 470.
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