不同坡位柑橘园土壤团聚体矿物结合态有机碳矿化特征
作者:
中图分类号:

S153

基金项目:

国家现代农业产业技术体系建设专项(CARS-26)


Mineralization Characteristics of Mineral-Associated Organic Carbon in Citrus Orchards Soil Aggregates at Different Slope Positions
Author:
Fund Project:

Supported by the National Modern Agricultural Industry Technology System Construction Project ( CARS-26 )

  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [54]
  • |
  • 相似文献 [20]
  • | | |
  • 文章评论
    摘要:

    矿物结合态有机碳(MAOC)是土壤有机碳(SOC)的主要组成部分,其矿化特性对土壤固碳和全球气候变化具有重要影响。坡位作为重要的地形因子,显著影响有机碳与土壤矿物的相互作用及稳定性。然而,目前关于不同坡位土壤MAOC矿化特征尚不清楚。本研究以南方丘陵区典型柑橘园土壤为研究对象,通过室内培养探究了不同坡位(坡上、坡中和坡下)柑橘园土壤团聚体MAOC的矿化特征,分析了土壤理化因子和疏水性对MAOC矿化的影响。结果表明:坡下柑橘园土壤MAOC的累积矿化量(Ct)、矿化速率和潜在可矿化量(Co)均明显高于坡上和坡中,但坡下土壤Co/MAOC的比值明显低于坡上和坡中。随着团聚体粒径的减小,各坡位柑橘园土壤MAOC的Ct、矿化速率和Co均呈上升的变化趋势,而MAOC的矿化强度逐渐减弱。冗余分析(RDA)表明,MAOC潜在可矿化量(Co)与pH、SOC、MAOC、TN和C/N呈显著正相关(P < 0.05),与铁铝氧化物(Fed/Ald、Feo/Alo和Fep/Alp)和疏水性呈显著负相关(P < 0.05)。Co/MAOC与铁铝氧化物和MAOC疏水性呈显著正相关,而与Co、Ct、pH、SOC、MAOC、TN和C/N呈显著负相关。层次分割分析表明,Alo、Alp和Fep是影响MAOC矿化的重要因子。变差分解分析表明,Alo、Alp、Fep、C/N、MAOC和Feo的共同作用显著影响不同坡位团聚体中MAOC的矿化。研究结果对深入认识南方丘陵区不同坡位柑橘园土壤团聚体中矿物结合态有机碳形成机制、稳定特性以及提高土壤固碳具有重要意义。

    Abstract:

    【Objective】 Mineral-associated organic carbon (MAOC) is the most important of soil organic carbon(SOC), and its mineralization characteristics have an important impact on soil carbon sequestration and global climate change. As an important topographic factor, slope position significantly affects the interaction and stability of organic carbon and soil minerals. However, the influence of slope positions on mineralization characteristics of MAOC in soils is not fully understood. 【Method】 In this study, typical citrus orchard soils at different slope positions were sampled, and the aggregates with sizes of >2, 2~0.25, 0.25~0.053, and <0.053 mm were obtained by physical fractionation. Moreover, the MAOC in aggregates were separated to investigate the mineralization characteristics of MAOC at varying slope positions (upper slope, middle slope, and lower slope) through indoor cultivation. The influence of soil physicochemical factors and hydrophobicity on MAOC mineralization was analyzed by Infrared spectroscopy (FTIR), Redundancy analysis (RDA), and Hierarchical partitioning analysis. 【Result】 The results showed that the cumulative mineralization (Ct), mineralization rate and potential mineralization (Co) of MAOC in citrus orchard soil at lower slopes were significantly higher than those at upper and middle slopes, but the ratio of Co/MAOC at lower slope was significantly lower compared with upper and middle slopes. With the decrease in aggregate size, the Ct, mineralization rate, and Co of MAOC in citrus orchard soil at each slope position showed an upward trend, while the mineralization intensity of MAOC gradually weakened. RDA results showed that the Co was significantly positively correlated with pH, SOC, MAOC, TN, and C/N (P<0.05), and significantly negatively correlated with iron and aluminum oxides (Fed/Ald, Feo/Alo, and Fep/Alp) and hydrophobicity (P<0.05). Co/MAOC was significantly positively correlated with iron and aluminum oxides and hydrophobicity, but significantly negatively correlated with Co, Ct, pH, SOC, MAOC, TN, and C/N. Hierarchical partitioning analysis revealed that Alo, Alp, and Fep emerged as significant factors influencing the mineralization of MAOC. Variation decomposition analysis showed that the combined effects of Alo, Alp, Fep, C/N, MAOC, and Feo significantly affected MAOC mineralization in aggregates with different particle sizes at different slope positions. 【Conclusion】 The slope positions have obvious effects on the mineralization characteristics of MAOC in aggregates in citrus orchard soils. The findings of this study are of great significance for understanding the formation mechanisms and stability of mineral-bound organic carbon in soil aggregates and in enhancing soil organic carbon sequestration in citrus orchards at different slope positions in hilly regions of southern China.

    参考文献
    [1] Sokol N W,Whalen E D,Jilling A,et al. Global distribution,formation and fate of mineral-associated soil organic matter under a changing climate:A trait-based perspective[J]. Functional Ecology,2022,36(6):1411-1429.
    [2] Lavallee J M,Soong J L,Cotrufo M F. Conceptualizing soil organic matter into particulate and mineral-associated forms to address global change in the 21st century[J]. Global Change Biology,2020,26(1):261-273.
    [3] Yu W J,Huang W J,Weintraub-Leff S R,et al. Where and why do particulate organic matter(POM) and mineral-associated organic matter(MAOM) differ among diverse soils?[J]. Soil Biology and Biochemistry,2022,172:108756.
    [4] Heckman K,Hicks Pries C E,Lawrence C R,et al. Beyond bulk:Density fractions explain heterogeneity in global soil carbon abundance and persistence[J]. Global Change Biology,2022,28(3):1178-1196.
    [5] Hicks Pries C E,Castanha C,Porras R C,et al. The whole-soil carbon flux in response to warming[J]. Science,2017,355(6332):1420-1423.
    [6] Villarino S H,Talab E,Contisciani L,et al. A large nitrogen supply from the stable mineral-associated soil organic matter fraction[J]. Biology and Fertility of Soils,2023,59(7):833-841.
    [7] Jilling A,Keiluweit M,Gutknecht J L M,et al. Priming mechanisms providing plants and microbes access to mineral-associated organic matter[J]. Soil Biology and Biochemistry,2021,158:108265.
    [8] Shi F Y,Zhang F B,Yang M Y. Research hotspots and progress of soil organic carbon mineralization based on bibliometrics method[J]. Acta Pedologica Sinica,2022,59(2):381-392.[史方颖,张风宝,杨明义. 基于文献计量分析的土壤有机碳矿化研究进展与热点[J].土壤学报,2022,59(2):381-392.]
    [9] Shan H R,Zhang L,Gao Q,et al. Microbial community composition and species uniformity regulate the mineralization characteristics of organic carbon fractions in red soil[J]. Journal of Plant Nutrition and Fertilizers,2023,29(1):109-119.[单会茹,张璐,高强,等. 红壤有机碳组分中微生物群落构成及均匀度决定其矿化特征[J]. 植物营养与肥料学报,2023,29(1):109-119.]
    [10] Xue Z J,Li X Y,Jiao L,et al. Advance in the formation and stabilization mechanisms of soil mineral-associated organic carbon[J]. Journal of Soil and Water Conservation,2023,37(5):12-23.[薛志婧,李霄云,焦磊,等. 土壤矿质结合态有机碳形成及稳定机制的研究进展[J]. 水土保持学报,2023,37(5):12-23.]
    [11] Ma H L,Chen C C,Yin Y F,et al. Experimental study on carbon mineralization of different sizes particle in forest soils[J]. Acta Pedologica Sinica,2024. DOI:10.11766/trxb202303140102.[马红亮,陈灿灿,尹云锋,等.森林土壤不同粒径颗粒的碳矿化研究[J].土壤学报,2024.DOI:10.11766/trxb202303140102.]
    [12] Rong H,Fang H,Zhang Z B,et al. Effects of aggregate size distribution on soil pore structure and soil organic carbon mineralization[J]. Acta Pedologica Sinica,2022,59(2):476-485.[荣慧,房焕,张中彬,等. 团聚体大小分布对孔隙结构和土壤有机碳矿化的影响[J].土壤学报,2022,59(2):476-485.]
    [13] Yang M,Long Q,Li W L,et al. Mapping the environmental cost of a typical Citrus-producing county in China:Hotspot and optimization[J]. Sustainability,2020,12(5):1827.
    [14] Ma X C,Lu X P,Zhang Z M,et al. Analyses of the soil and tree nutrition and fruit quality of Satsuma mandarin in orchards at different latitudes in Hunan Province[J]. Journal of Fruit Science,2018,35(4):423-432.[马小川,卢晓鹏,张子木,等. 湖南省不同纬度温州蜜柑园土壤和叶片营养及果实品质分析[J]. 果树学报,2018,35(4):423-432.]
    [15]
    [15] Kharkwal G,Rawat Y S. Structure and composition of vegetation in subtropical forest of Kumaun Himalaya[J]. African Journal of Plant Science,2010,4(4):116-121.
    [16] Nan Y F,Guo S L,Zhang Y J,et al. Effects of slope aspect and position on soil organic carbon and nitrogen of terraces in small watershed[J]. Plant Nutrition and Fertilizer Science,2012,18(3):595-601.[南雅芳,郭胜利,张彦军,等. 坡向和坡位对小流域梯田土壤有机碳、氮变化的影响[J]. 植物营养与肥料学报,2012,18(3):595-601.]
    [17] Pedersen J A,Simpson M A,Bockheim J G,et al. Characterization of soil organic carbon in drained thaw-lake basins of Arctic Alaska using NMR and FTIR photoacoustic spectroscopy[J]. Organic Geochemistry,2011,42(8):947-954.
    [18] He Y T,He X H,Xu M G,et al. Long-term fertilization increases soil organic carbon and alters its chemical composition in three wheat-maize cropping sites across central and South China[J]. Soil and Tillage Research,2018,177:79-87.
    [19] Demyan M S,Rasche F,Schulz E,et al. Use of specific peaks obtained by diffuse reflectance Fourier transform mid-infrared spectroscopy to study the composition of organic matter in a Haplic Chernozem[J]. European Journal of Soil Science,2012,63(2):189-199.
    [20] Lan X J,Lü Z Z,Liu X M,et al. Effects of long-term fertilization on contents and chemical compositions of particle and mineral-combined organic matter in red paddy soils[J]. Soils,2021,53(1):140-147.[蓝贤瑾,吕真真,刘秀梅,等. 长期施肥对红壤性水稻土颗粒有机质和矿物结合态有机质含量与化学组成的影响[J]. 土壤,2021,53(1):140-147.]
    [21] Brubaker S C,Jones A J,Lewis D T,et al. Soil properties associated with landscape position[J]. Soil Science Society of America Journal,1993,57(1):235-239.
    [22] Cambardella C A,Elliott E T. Particulate soil organic-matter changes across a grassland cultivation sequence[J]. Soil Science Society of America Journal,1992,56(3):777-783.
    [23] Laudicina V A,Novara A,Barbera V,et al. Long-term tillage and cropping system effects on chemical and biochemical characteristics of soil organic matter in a Mediterranean semiarid environment[J]. Land Degradation & Development,2015,26(1):45-53.
    [24] Capriel P. Hydrophobicity of organic matter in arable soils:Influence of management[J]. European Journal of Soil Science,1997,48(3):457-462.
    [25] Fultz L M,Moore-Kucera J,Calderón F,et al. Using fourier-transform mid-infrared spectroscopy to distinguish soil organic matter composition dynamics in aggregate fractions of two agroecosystems[J]. Soil Science Society of America Journal,2014,78(6):1940-1948.
    [26] Margenot A J,Calderón F J,Goyne K W,et al. IR spectroscopy,soil analysis applications[M]//Encyclopedia of Spectroscopy and Spectrometry. Amsterdam:Elsevier,2017:448-454.
    [27] Šimon T,Javůrek M,Mikanová O,et al. The influence of tillage systems on soil organic matter and soil hydrophobicity[J]. Soil and Tillage Research,2009,105(1):44-48.
    [28] Xing Z,Tian K,Du C W,et al. Agricultural soil characterization by FTIR spectroscopy at micrometer scales:Depth profiling by photoacoustic spectroscopy[J]. Geoderma,2019,335:94-103.
    [29] Liu Y,Yu X,Yu Y,et al. Application of "rdacca.hp"R package in ecological data analysis:Case and progress[J]. Chinese Journal of Plant Ecology,2023,47(1):134-144.[刘尧,于馨,于洋,等. R程序包"rdacca.hp"在生态学数据分析中的应用:案例与进展[J]. 植物生态学报,2023,47(1):134-144.]
    [30] Li S P,Lu J J,Liang G P,et al. Factors governing soil water repellency under tillage management:The role of pore structure and hydrophobic substances[J]. Land Degradation & Development,2021,32(2):1046-1059.
    [31] Tang J,Liu Y Q,Wang S N,et al. Characteristics of organic carbon mineralization in saline-alkali paddy field in western Jilin Province[J]. Journal of Soil and Water Conservation,2019,33(2):162-168.[汤洁,刘禹晴,王思宁,等. 吉林西部盐碱地区稻田土壤有机碳矿化特征[J].水土保持学报,2019,33(2):162-168.]
    [32] Fatima S,Riaz M,Al-Wabel M I,et al. Higher biochar rate strongly reduced decomposition of soil organic matter to enhance C and N sequestration in nutrient-poor alkaline calcareous soil[J]. Journal of Soils and Sediments,2021,21(1):148-162.
    [33] Wei J,Cheng B,He X L,et al. Characteristics of soil microbial community structure in the rhizosphere of Hedysarum laeve Maxim revealed by phospholipid fatty acid(PLFA)[J]. Journal of Hebei Agricultural University,2019,42(1):57-64.[蔚杰,成斌,贺学礼,等. 磷脂脂肪酸(PLFA)法检测内蒙古沙化梁地不同坡位羊柴(Hedysarum laeve Maxim)根围土壤微生物群落结构[J]. 河北农业大学学报,2019,42(1):57-64.]
    [34] Kan Z R,Virk A L,He C,et al. Characteristics of carbon mineralization and accumulation under long-term conservation tillage[J]. Catena,2020,193:104636.
    [35] Chen C M,Hall S J,Coward E,et al. Iron-mediated organic matter decomposition in humid soils can counteract protection[J]. Nature Communications,2020,11:2255.
    [36] Mosier S,Apfelbaum S,Byck P,et al. Adaptive multi-paddock grazing enhances soil carbon and nitrogen stocks and stabilization through mineral association in southeastern US grazing lands[J]. Journal of Environmental Management,2021,288:112409.
    [37] Adhikari D,Dunham-Cheatham S M,Wordofa D N,et al. Aerobic respiration of mineral-bound organic carbon in a soil[J]. Science of the Total Environment,2019,651:1253-1260.
    [38] Zhuang S Y,Li Q,Wang J. Effect of amorphous Al hydroxide addition on soil organic matter decomposition with bamboo plantation[J]. Journal of Soils and Sediments,2016,16(1):95-104.
    [39] Leifeld J,Kögel-Knabner I. Soil organic matter fractions as early indicators for carbon stock changes under different land-use?[J]. Geoderma,2005,124(1/2):143-155.
    [40] Mustafa A,Xu M G,Ali Shah S A,et al. Soil aggregation and soil aggregate stability regulate organic carbon and nitrogen storage in a red soil of Southern China[J]. Journal of Environmental Management,2020,270:110894.
    [41] Cai A D,Xu H,Shao X F,et al. Carbon and nitrogen mineralization in relation to soil particle-size fractions after 32 years of chemical and manure application in a continuous maize cropping system[J]. PLoS One,2016,11(3):e0152521.
    [42] Rabbi S,Wilson B R,Lockwood P V,et al. Aggregate hierarchy and carbon mineralization in two Oxisols of New South Wales,Australia[J]. Soil and Tillage Research,2015,146:193-203.
    [43] Wang J,Chen F,Liu Y. Respiration characteristics of different sized soil aggregates and their contribution to carbon emissions[J]. Plant Science Journal,2014,32(6):586-593.[王菁,陈防,刘毅. 不同粒级土壤团聚体呼吸特征及其对碳排放的贡献[J]. 植物科学学报,2014,32(6):586-593.]
    [44] Zhao J S,Chen S,Hu R G,et al. Aggregate stability and size distribution of red soils under different land uses integrally regulated by soil organic matter,and iron and aluminum oxides[J]. Soil and Tillage Research,2017,167:73-79.
    [45] Hontoria C,Gómez-Paccard C,Mariscal-Sancho I,et al. Aggregate size distribution and associated organic C and N under different tillage systems and Ca-amendment in a degraded Ultisol[J]. Soil and Tillage Research,2016,160:42-52.
    [46] Zheng H B,Liu W R,Zheng J Y,et al. Effect of long-term tillage on soil aggregates and aggregate- associated carbon in black soil of Northeast China[J]. PLoS One,2018,13(6):e0199523.
    [47] Somasundaram J,Chaudhary R S,Awanish Kumar D,et al. Effect of contrasting tillage and cropping systems on soil aggregation,carbon pools and aggregate-associated carbon in rainfed Vertisols[J]. European Journal of Soil Science,2018,69(5):879-891.
    [48] Six J,Bossuyt H,Degryze S,et al. A history of research on the link between(micro) aggregates,soil biota,and soil organic matter dynamics[J]. Soil and Tillage Research,2004,79(1):7-31.
    [49] Nguyen M L,Goldfarb J L,Plante A F,et al. Sorption temperature and the stability of iron-bound soil organic matter[J]. Geoderma,2019,341:93-99.
    [50] Zhang Q,Fang H L,Shi Z H,et al. Advances in fluence factors of aggregate stability under erosion[J]. Scientia Silvae Sinicae,2007,43(S1):77-82.[张琪,方海兰,史志华,等. 侵蚀条件下土壤性质对团聚体稳定性影响的研究进展[J]. 林业科学,2007,43(S1):77-82.]
    [51] Schulten H R,Leinweber P. New insights into organic-mineral particles:Composition,properties and models of molecular structure[J]. Biology and Fertility of Soils,2000,30(5):399-432.
    [52] Zhang Y,Liang A Z,Zhang X P,et al. Progress in soil aggregates physical conservation mechanism for organic carbon[J]. Soil and Crop,2015,4(2):85-90.[张延,梁爱珍,张晓平,等. 土壤团聚体对有机碳物理保护机制研究[J]. 土壤与作物,2015,4(2):85-90.]
    [53] Wang X H,Yang Z J,Liu X F,et al. Effects of different forms of Fe and Al oxides on soil aggregate stability in midsubtropical mountainous area of Southern China[J]. Acta Ecologica Sinica,2016,36(9):2588-2596.[王小红,杨智杰,刘小飞,等. 中亚热带山区土壤不同形态铁铝氧化物对团聚体稳定性的影响[J]. 生态学报,2016,36(9):2588-2596.]
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

唐开钊,张君耀,吴聪,王帅,廖文娟,尹力初,周卫军,崔浩杰.不同坡位柑橘园土壤团聚体矿物结合态有机碳矿化特征[J].土壤学报,2024,61(6):1639-1652. DOI:10.11766/trxb202311170478 TANG Kaizhao, ZHANG Junyao, WU Cong, WANG Shuai, LIAO Wenjuan, YIN Lichu, ZHOU Weijun, CUI Haojie. Mineralization Characteristics of Mineral-Associated Organic Carbon in Citrus Orchards Soil Aggregates at Different Slope Positions[J]. Acta Pedologica Sinica,2024,61(6):1639-1652.

复制
分享
文章指标
  • 点击次数:241
  • 下载次数: 3180
  • HTML阅读次数: 1720
  • 引用次数: 0
历史
  • 收稿日期:2023-11-17
  • 最后修改日期:2024-03-17
  • 录用日期:2024-04-28
  • 在线发布日期: 2024-04-30
文章二维码