|
|
|
|
|
|
Spectral Analysis of the Effect of Organic Fertilizer Application on the
Evolution of Organic Matter and Nitrogen in Farmaland |
PAN Hong-wei, TONG Wen-bin, LEI Hong-jun*, YANG Guang, SHI Li-li |
School of Water Conservancy, North China University of Water Resources and Electric Power, Zhengzhou 450046, China
|
|
|
Abstract Organic fertilizer is an effective means to improve soil physical structure, enhance soil fertility and regulate nutrient balance. However, the effects of organic fertilizer application on the evolution of organic matter and nitrogen in farmland are still unclear. This paper studied the changes of TOC, DOC and inorganic nitrogen contents in soil after applying organic fertilizer. The changes of DOM spectral characteristics of soil after applying organic fertilizer were analyzed using three-dimensional fluorescence spectroscopy. PARAFAC was used to analyze the changes in the relative contents of the fluorescent components in soil DOM in different periods after applying organic fertilizer, and 2D-COS was used to analyze the change sequence of the fluorescent components with time. In addition, the response relationship between the relative content of DOM components and soil nitrogen was studied using the typical correlation analysis method to explore the effects of organic fertilizer application on the evolution of soil organic matter and nitrogen. The results showed that: ① The application of organic fertilizer increased the content of total organic carbon, water-soluble organic carbon and nitrate nitrogen but decreased the content of ammonium nitrogen. ②Three-dimensional fluorescence spectra of soil DOM showed a peak (UV humic acid), M peak (UVA humic acid) and T peak (tryptophan). PARAFAC analysis showed that soil DOM was mainly composed of terrestrial humic acid (C1), typical humic acid (C2) and tryptophan (C3). The results showed that applying organic fertilizer could increase the relative contents of soil C1, C2 and C3 components. The relative contents of C1, C2 and C3 in the soil treated with organic fertilizer increased initially and then decreased, reaching the maximum on the 30th day. The change order of different fluorescence components with time was C1(C2)↑→C3, and humic acid-like changed greatly, and the promotion of humic acid-like by organic fertilizer was significant.③The application of organic fertilizer can improve the bioavailability of soil and reduce the degree of soil humification. BIX value increased first and then decreased after applying organic fertilizer and reached the maximum on the 30th day; The HIX value decreased at first and then went up and reached the minimum on the 30th day. BIX and HIX were negatively correlated (R2=0.732). ④The relative contents of C1, C2 and C3 were positively correlated with nitrate nitrogen and negatively correlated with ammonium nitrogen, and the relative contents of C1 and C2 had a great influence on the contents of nitrate nitrogen and ammonium nitrogen. In conclusion, reasonable application of organic fertilizer can control the transformation of soil organic matter and nitrogen reducing the non-point source pollution of chemical fertilizer.
|
Received: 2021-08-14
Accepted: 2022-02-19
|
|
Corresponding Authors:
LEI Hong-jun
E-mail: hj_lei2002@163.com
|
|
[1] QIN Ji-hong,WANG Shu,LIU Chen, et al(秦纪洪,王 姝,刘 琛, 等). China Environmental Science(中国环境科学), 2019, 39(10): 4321.
[2] HAO Rong, XU Zhao-yu, SHEN Ci-fu, et al(郝 蓉,徐召玉,沈祠福, 等). Ecology and Environmental Sciences(生态环境学报), 2019, 28(6): 1127.
[3] ZHANG Qiang, XI Bei-dou, YANG Jin-jin, et al(张 强,席北斗,杨津津, 等). China Environmental Science(中国环境科学), 2021, 41(2): 763.
[4] MIAO Chuang-he, LÜ Yi-zhong, YU Yue, et al(缪闯和,吕贻忠,于 越, 等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2020, 40(12): 3832.
[5] HUANG Ting-lin, FANG Kai-kai, ZHANG Chun-hua, et al(黄廷林,方开凯,张春华, 等). Environmental Science(环境科学), 2016, 37(9): 3394.
[6] CUI Bing, GAO Hong-jie, ZHENG Zhao-pei, et al(崔 兵,高红杰,郑昭佩, 等). Journal of Ecology and Rural Environment(生态与农村环境学报), 2021, 37(3): 369.
[7] MIAO Chuang-he,LÜ Yi-zhong(缪闯和,吕贻忠). Soils(土壤), 2021, 53(1): 168.
[8] SHENG Hao, SONG Di-si, WANG Cui-hong, et al(盛 浩,宋迪思,王翠红, 等). Soils(土壤), 2015, 47(6): 1049.
[9] SONG Ge, SUN Bo, JIAO Jian-ying(宋 歌,孙 波,教剑英). Acta Pedologica Sinica(土壤学报), 2007, (2): 288.
[10] ZHOU Guang-wei, ZHANG Wen, MIN Wei, et al(周广威,张 文,闵 伟, 等). Journal of Plant Nutrition and Fertilizers(植物营养与肥料学报), 2015, 21(2): 413.
[11] YANG Zhen-qi, QIN Fu-cang, LI Long, et al(杨振奇,秦富仓,李 龙, 等). Transactions of the Chinese Society of Agricultural Engineering(农业工程学报), 2019, 35(17): 154.
[12] Zepp R G, Sheldon W M, Moran M A. Marine Chemistry, 2004, 89(1): 15.
[13] He W, Hur J. Water Research, 2015, 83: 217.
[14] He W, Jung H, Lee J, et al. The Science of the Total Environment, 2016, 547: 1.
[15] HE Wei,BAI Ze-lin,LI Yi-long, et al(何 伟,白泽琳,李一龙, 等). Acta Scientiae Circumstantiae(环境科学学报), 2016, 36(2): 359.
[16] Stedmon C A,Markager S,Bro R. Marine Chemistry,2003, 82(3-4): 239.
[17] Lapierre J F,Frenette J. Aquatic Science,2009, 71(1): 15.
|
[1] |
ZHANG Yong-bin1, ZHU Dan-dan1, CHEN Ying1*, LIU Zhe1, DUAN Wei-liang1, LI Shao-hua2. Wavelength Selection Method of Algal Fluorescence Spectrum Based on Convex Point Extraction From Feature Region[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(10): 3031-3038. |
[2] |
WANG Fan1, 2, CHEN Long-yue2, 3, DUAN Dan-dan1, 2, 4*, CAO Qiong1, 4, ZHAO Yu1, LAN Wan-rong5. Estimation of Total Nitrogen Content in Fresh Tea Leaves Based on
Wavelet Analysis[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(10): 3235-3242. |
[3] |
KUANG En-jun1, 2, 3, CHI Feng-qin1, ZHANG Jiu-ming1, XU Ming-gang2*, Gilles Colinet3, SU Qing-rui1, HAO Xiao-yu1, ZHU Bao-guo4. Analysis of DOC Component Structure of Black Soil Profile With Straw Deeply Bried and Based on Fluorescence Spectrum[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(10): 3243-3248. |
[4] |
ZHANG Jiu-ming1,KUANG En-jun1,CHI Feng-qin1*,LIU Yi-dan4,ZHOU Bao-ku1,XIA Xiao-yu3,WANG Xiao-jun1,SUN Lei1,CHANG Ben-chao1,WEI Dan2. Fluorescence Spectrum Characteristics of DOC in Black Soil Under
Organic Substitution of Chemical Nitrogen Fertilizer[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(09): 2919-2923. |
[5] |
YI Jun1, YANG Guang2, PAN Hong-wei2*, ZHAO Li-li1, LEI Hong-jun2, TONG Wen-bin2, SHI Li-li2. PARAFAC and FRI Preferred 3D Fluorescence Extraction Time of
Dissolved Organic Matter[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(08): 2444-2451. |
[6] |
WU Yan-han, CHEN Quan-li*, LI Jun-qi, ZHAO An-di, LI Xuan, BAO Pei-jin. Study on the Spectral Characteristics of Filled Amazonite[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(08): 2499-2505. |
[7] |
PENG Yan-fang1, WANG Jun1, WU Zhi-sheng2*, LIU Xiao-na3, QIAO Yan-jiang2*. NIR Band Assignment of Tanshinone ⅡA and Cryptotanshinone by
2D-COS Technology and Model Application Tanshinone Extract[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(06): 1781-1785. |
[8] |
ZHANG Yu-yang, CHEN Mei-hua*, YE Shuang, ZHENG Jin-yu. Research of Geographical Origin of Sapphire Based on Three-Dimensional Fluorescence Spectroscopy: A Case Study in Sri Lanka and Laos Sapphires[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1508-1513. |
[9] |
FAN Nai-yun, LIU Gui-shan*, ZHANG Jing-jing, YUAN Rui-rui, SUN You-rui, LI Yue. Rapid Determination of TBARS Contents in Tan Mutton Using Hyperspectral Imaging[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 713-718. |
[10] |
YANG Xin1, 2, WU Zhi-hang3, YE Yin1, 2*, CHEN Xiao-fang1, 2, YUAN Zi-ran1, 2, WANG Jing1, 2. Parallel Factor Analysis of Fluorescence Excitation Emission Matrix Spectroscopy of DOM in Waters of Agricultural Watershed of Dianbu River[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 978-983. |
[11] |
GAO Le-le1, ZHONG Liang1, DONG Hai-ling1, LAI Yu-qiang5, LI Lian1,3*, ZANG Heng-chang1, 2, 3, 4*. Characterization of Moisture Absorption Process of Stevia and Rapid Determination of Rebaudioside a Content by Using Near-Infrared Spectroscopy[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 415-422. |
[12] |
SHI Chuan-qi1, 2, LI Yan3, 4, YU Shao-peng1*, HU Bao-zhong1, 2, WANG Hui1, JIN Liang4. Study on the Effect of Foundation Pit Drainage on Water Dissolved Organic Matter in Urban River[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 498-504. |
[13] |
WU Yan-han, CHEN Quan-li*, ZHAO An-di, LI Xuan, BAO Pei-jin. Study on the Gemmological Characteristics of Filled Morganite[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 575-581. |
[14] |
LIU Tian-shun1, 2, LI Peng-fa1, 2, LI Gui-long1, 2, WU Meng1, LIU Ming1, LIU Kai1, 2, LI Zhong-pei1, 2*. Using Three-Dimensional Excitation-Emission Matrix to Study the Compositions of Dissolved Organic Matter in the Rhizosphere Soil of Continuous Cropping Peanuts With Different Health States[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 634-641. |
[15] |
LOU Meng-han1, 2, JIN Hong-mei2, 3, 4*, LIANG Dong2, 3, ZHU Yan-yun2, 3, ZHU Ning2, 3, 4, LI Dan-yang2, 3. Fluorescence Spectra Characteristics of Dissolved Organic Matter in Mesophilic Anaerobic Digestion of Pig and Dairy Manure Slurries[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(01): 141-146. |
|
|
|
|