Core Chinese Journal
Source Journal of CSCD(Core Version)
Source Journal for Chinese Scientific and Technical Papers
Core Journal of RCCSE
Included in JST China
Volume 39 Issue 9
Jan.  2022
Turn off MathJax
Article Contents
ZHANG Chuan-yan, XI Bei-dou, ZHANG Qiang, BAI Si-cong, ZHAO Xin-yu. APPLICATION STATUS AND PROSPECT OF COMPOST IN SOIL REMEDIATION AND QUALITY IMPROVEMENT[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(9): 176-186. doi: 10.13205/j.hjgc.202109025
Citation: ZHANG Chuan-yan, XI Bei-dou, ZHANG Qiang, BAI Si-cong, ZHAO Xin-yu. APPLICATION STATUS AND PROSPECT OF COMPOST IN SOIL REMEDIATION AND QUALITY IMPROVEMENT[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(9): 176-186. doi: 10.13205/j.hjgc.202109025

APPLICATION STATUS AND PROSPECT OF COMPOST IN SOIL REMEDIATION AND QUALITY IMPROVEMENT

doi: 10.13205/j.hjgc.202109025
  • Received Date: 2020-09-28
    Available Online: 2022-01-21
  • As an environmentally friendly technology, composting can transform waste organic matter into macromolecular humic-like substance which has variety of functional groups by biotransformation. And these products are beneficial to soil remediation and soil quality improvement, and complete return of organic matter from soil to soil, and can effectively solve the main contradictions, such as overloading of cultivated land and soil contamination in China. In this paper, the recent study in the soil remediation and quality improvement of compost were reviewed. The remediation of common contaminated soils (such as heavy metal contaminated soil, saline soil, organochlorine pesticide contamination soil), the quality improvement of soil carbon pool, and the global carbon cycle were discussed in detail. The future for development of compost was prospected, and expected to provide an effective reference for future research on the whole chain of organic waste treatment-engineering application of humic-like acids substance-soil remediation and quality improvement, and to help improve the theoretical basis and practical applications of soil remediation and quality improvement.
  • loading
  • [1]
    丛宏斌,赵立欣,姚宗路,等.中国农作物秸秆资源分布及其产业体系与利用路径[J].农业工程学报,2019,35(20):132-140.
    [2]
    QUADRI G,CHEN X,JAWITZ J W,et al.Biobased surfactant-like molecules from organic wastes:the effect of waste composition and composting process on surfactant properties and on the ability to solubilize tetrachloroethene (PCE)[J].Environmental Science & Technology,2008,42(7):2618-2623.
    [3]
    WITTBRODT P R,PALMER C D.Effect of temperature,ionic strength,background electrolytes,and Fe(Ⅲ) on the reduction of hexavalent chromium by soil humic substances[J].Environmental Science & Technology,1996,30(8):2470-2477.
    [4]
    WITTBRODT P R,PALMER C D.Reduction of Cr(Ⅵ) in the presence of excess soil fulvic acid[J].Environmental Science & Technology,1995,29(1):255-263.
    [5]
    WITTBRODT P R,PALMER C D.Reduction of Cr(Ⅵ) by soil humic acids[J].European Journal of Soil Science,1997,48(1):151-162.
    [6]
    HAUG R T.The practical handbook of compost engineering[M].Routledge,2018.
    [7]
    RYNK R,VAN De Kamp M,WILLSON G B,et al.On-Farm Composting Handbook (NRAES 54)[M].Northeast Regional Agricultural Engineering Service (NRAES),1992.
    [8]
    WHITNEY P J,LYNCH J M.The importance of lignocellulosic compounds in composting[M]//The Science of Composting,Springer,Dordrecht,1996:531-541.
    [9]
    SESAY A A,LASARIDI K,STENTIFORD E,et al.Controlled composting of paper pulp sludge using the aerated static pile method[J].Compost Science & Utilization,1997,5(1):82-96.
    [10]
    SIKORA L J.Benefits and drawbacks to composting organic by-products[M]//Beneficial Co-utilization of Agricultural,Municipal and Industrial By-products.Springer,1998:69-77.
    [11]
    DANSO G K,OTOO M,EKERE W,et al.Market feasibility of faecal sludge and municipal solid waste-based compost as measured by farmers' willingness-to-pay for product attributes:Evidence from kampala,uganda[J].Resources,2017,6(3):31.
    [12]
    ZHOU H B,MENG H B,ZHAO L X,et al.Effect of biochar and humic acid on the copper,lead,and cadmium passivation during composting[J].Bioresource Technology,2018,258:279-286.
    [13]
    CUI H Y,ZHANG S B,ZHAO M Y,et al.Parallel faction analysis combined with two-dimensional correlation spectroscopy reveal the characteristics of mercury-composting-derived dissolved organic matter interactions[J].Journal of Hazardous Materials,2020,384:121395.
    [14]
    PARK D,YUN Y S,JO J H,et al.Mechanism of hexavalent chromium removal by dead fungal biomass of Aspergillus niger[J].Water Research,2005,39(4):533-540.
    [15]
    FENDORF S E.Surface reactions of chromium in soils and waters[J].Geoderma,1995,67(1/2):55-71.
    [16]
    BARTLETT R J,JAMES B R.Mobility and bioavailability of chromium in soils[J].Advances in Environmental Science and Technology,1988,20:267-304.
    [17]
    SCAGLIA B,TAMBONE F,ADANI F.Cr(Ⅵ) reduction capability of humic acid extracted from the organic component of municipal solid waste[J].Journal of Environmental Sciences,2013,25(3):487-494.
    [18]
    GAO H,LIU Y G,ZENG G M,et al.Characterization of Cr(Ⅵ) removal from aqueous solutions by a surplus agricultural waste-Rice straw[J].Journal of Hazardous Materials,2008,150(2):446-452.
    [19]
    ESPINOZA-QuiÑones F R,MARTIN N,STUTZ G,et al.Root uptake and reduction of hexavalent chromium by aquatic macrophytes as assessed by high-resolution X-ray emission[J].Water Research,2009,43(17):4159-4166.
    [20]
    PAKZADEH B,BATISTA J R.Chromium removal from ion-exchange waste brines with calcium polysulfide[J].Water Research,2011,45(10):3055-3064.
    [21]
    LIU T Z,RAO P H,MAK M S H,et al.Removal of co-present chromate and arsenate by zero-valent iron in groundwater with humic acid and bicarbonate[J].Water Research,2009,43(9):2540-2548.
    [22]
    FATAFTAH A K,SANJAY H G,WALIA D S.Performance improvement and applications of humasorb-Cs?:a humic acid-based adsorbent for contaminated water clean up[M].Humic Substances.Woodhead Publishing,2000:309-319.
    [23]
    SALATI S,PAPA G,ADANI F.Perspective on the use of humic acids from biomass as natural surfactants for industrial applications[J].Biotechnology Advances,2011,29(6):913-922.
    [24]
    HERNÁNDEZ-Montoya V,ALVAREZ L H,MONTES-Morán M A,et al.Reduction of quinone and non-quinone redox functional groups in different humic acid samples by Geobacter sulfurreducens[J].Geoderma,2012,183:25-31.
    [25]
    SCAGLIA B,TAMBONE F,Adani F.Cr (Ⅵ) reduction capability of humic acid extracted from the organic component of municipal solid waste[J].Journal of Environmental Sciences,2013,25(3):487-494.
    [26]
    HUANG S W,CHIANG P N,LIU J C,et al.Chromate reduction on humic acid derived from a peat soil:exploration of the activated sites on HAs for chromate removal[J].Chemosphere,2012,87(6):587-594.
    [27]
    ZHANG J,YIN H L,CHEN L P,et al.The role of different functional groups in a novel adsorption-complexation-reduction multi-step kinetic model for hexavalent chromium retention by undissolved humic acid[J].Environmental Pollution,2018,237:740-746.
    [28]
    ZHANG J,YIN H L,WANG H,et al.Reduction mechanism of hexavalent chromium by functional groups of undissolved humic acid and humin fractions of typical black soil from Northeast China[J].Environmental Science and Pollution Research,2018,25(17):16913-16921.
    [29]
    AGRAWAL S G,FIMMEN R L,CHIN Y P.Reduction of Cr(Ⅵ) to Cr (Ⅲ) by Fe (Ⅱ) in the presence of fulvic acids and in lacustrine pore water[J].Chemical Geology,2009,262(3/4):328-335.
    [30]
    ZHANG J,YIN H L,WANG H,et al.Molecular structure-reactivity correlations of humic acid and humin fractions from a typical black soil for hexavalent chromium reduction[J].Science of the Total Environment,2019,651:2975-2984.
    [31]
    MAK M S H,LO I M C.Influences of redox transformation,metal complexation and aggregation of fulvic acid and humic acid on Cr(Ⅵ) and As (Ⅴ) removal by zero-valent iron[J].Chemosphere,2011,84(2):234-240.
    [32]
    ZHILIN D M,SCHMITT-Kopplin P,PERMINOVA I V.Reduction of Cr (Ⅵ) by peat and coal humic substances[J].Environmental Chemistry Letters,2004,2(3):141-145.
    [33]
    MOHAMED A,YU L,FANG Y,et al.Iron mineral-humic acid complex enhanced Cr (Ⅵ) reduction by Shewanella oneidensis MR-1[J].Chemosphere,2020,247:125902.
    [34]
    OHTA A,KAGI H,TSUNO H,et al.Speciation study of Cr (Ⅵ/Ⅲ) reacting with humic substances and determination of local structure of Cr binding humic substances using XAFS spectroscopy[J].Geochemical Journal,2012,46(5):409-420.
    [35]
    CHEN S Y,HUANG S W,CHIANG P N,et al.Influence of chemical compositions and molecular weights of humic acids on Cr(Ⅵ) photo-reduction[J].Journal of Hazardous Materials,2011,197:337-344.
    [36]
    KONHAUSER K O,KAPPLER A,RODEN E E.Cheminform abstract:iron in microbial metabolisms[J].Cheminform,2012,43(27).
    [37]
    PIEPENBROCK A,KAPPLER A.Humic Substances and Extracellular Electron Transfer[M].Microbial Metal Respiration.Springer,Berlin,Heidelberg,2013:107-128.
    [38]
    KAPPLER A,STRAUB K L.Geomicrobiological cycling of iron[J].Reviews in Mineralogy and Geochemistry,2005,59(1):85-108.
    [39]
    STRAUB K L,KAPPLER A,SCHINK B.Enrichment and isolation of ferric-iron-and humic-acid-reducing bacteria[J].Methods in Enzymology,2005,397:58-77.
    [40]
    LOVLEY D R,COATES J D,BLUNT-Harris E L,et al.Humic substances as electron acceptors for microbial respiration[J].Nature,1996,382(6590):445-448.
    [41]
    KLÜPFEL L,PIEPENBROCK A,KAPPLER A,et al.Humic substances as fully regenerable electron acceptors in recurrently anoxic environments[J].Nature Geoscience,2014,7(3):195-200.
    [42]
    YUAN Y,HE X S,XI B D,et al.Polarity and molecular weight of compost-derived humic acid affect Fe (Ⅲ) oxides reduction[J].Chemosphere,2018,208:77-83.
    [43]
    LI Y C,YU S,STRONG J,et al.Are the biogeochemical cycles of carbon,nitrogen,sulfur,and phosphorus driven by the "Fe Ⅲ-Fe Ⅱ redox wheel" in dynamic redox environments?[J].Journal of Soils and Sediments,2012,12(5):683-693.
    [44]
    TAS D O,PAVLOSTATHIS S G.The influence of iron reduction on the reductive biotransformation of pentachloronitrobenzene[J].European Journal of Soil Biology,2007,43(5/6):264-275.
    [45]
    PARSONS C T,COUTURE R M,OMOREGIE E O,et al.The impact of oscillating redox conditions:arsenic immobilisation in contaminated calcareous floodplain soils[J].Environmental Pollution,2013,178:254-263.
    [46]
    CONTIN M,MONDINI C,LEITA L,et al.Enhanced soil toxic metal fixation in iron (hydr) oxides by redox cycles[J].Geoderma,2007,140(1/2):164-175.
    [47]
    BORCH T,KRETZSCHMAR R,KAPPLER A,et al.Biogeochemical redox processes and their impact on contaminant dynamics[J].Environmental Science & Technology,2010,44(1):15-23.
    [48]
    BAUER I,KAPPLER A.Rates and extent of reduction of Fe(Ⅲ) compounds and O2 by humic substances[J].Environmental Science & Technology,2009,43(13):4902-4908.
    [49]
    WEI Y Q,WEI Z M,ZHANG F,et al.Role of humic acid chemical structure derived from different biomass feedstocks on Fe(Ⅲ) bioreduction activity:implication for sustainable use of bioresources[J].Catalysts,2019,9(5):450.
    [50]
    STERN N,MEJIA J,HE S M,et al.Dual role of humic substances as electron donor and shuttle for dissimilatory iron reduction[J].Environmental Science & Technology,2018,52(10):5691-5699.
    [51]
    LOVLEY D R,FRAGA J L,COATES J D,et al.Humics as an electron donor for anaerobic respiration[J].Environmental Microbiology,1999,1(1):89-98.
    [52]
    赵昕宇,范钰莹,席北斗,等.不同来源堆肥腐殖质还原菌异化铁还原能力评估与调控[J].中国环境科学,2018,38(10):3815-3822.
    [53]
    ZHANG Y,ZHAO Y,CHEN Y N,et al.A regulating method for reducing nitrogen loss based on enriched ammonia-oxidizing bacteria during composting[J].Bioresource Technology,2016,221:276-283.
    [54]
    ZHANG H J,DONG H Z,SHI Y T,et al.Transformation of cotton (Gossypium hirsutum L.) with AhCMO gene and the expression of salinity tolerance[J].Acta Agronomica Sinica,2007,33(7):1073-1078.
    [55]
    ZHU B C,SU J,CHANG M C,et al.Overexpression of a Δ1-pyrroline-5-carboxylate synthetase gene and analysis of tolerance to water-and salt-stress in transgenic rice[J].Plant Science,1998,139(1):41-48.
    [56]
    WONG V N L,GREENE R S B,MURPHY B W,et al.Decomposition of added organic material in salt-affected soils[C]//Cooperative Research Centre for Landscape Environments and Mineral Exploration Regional Regolith Symposia,2005,10:333-337.
    [57]
    LEME M M V,ROCHA M H,LORA E E S,et al.Techno-economic analysis and environmental impact assessment of energy recovery from Municipal Solid Waste (MSW) in Brazil[J].Resources Conservation & Recycling,2014,87:8-20.
    [58]
    QUIRK J P.The significance of the threshold and turbidity concentrations in relation to sodicity and microstructure[J].Soil Research,2001,39(6):1185-1217.
    [59]
    MEENA M D,JOSHI P K,NARJARY B,et al.Effects of municipal solid waste compost,rice-straw compost and mineral fertilisers on biological and chemical properties of a saline soil and yields in a mustard-pearl millet cropping system[J].Soil Research,2016,54(8):958-969.
    [60]
    QADIR M,SCHUBERT S.Degradation processes and nutrient constraints in sodic soils[J].Land Degradation & Development,2002,13(4):275-294.
    [61]
    RAYCHEV T,POPANDOVA S,JÓZEFACIUK G,et al.Physicochemical reclamation of saline soils using coal powder[J].International Agrophysics,2001,15(1):51-54.
    [62]
    WANG L L,SUN X Y,LI S Y,et al.Application of organic amendments to a coastal saline soil in North China:effects on soil physical and chemical properties and tree growth[J].PLOS One,2014,9(2):e89185.
    [63]
    WEBER J,KARCZEWSKA A,DROZD J,et al.Agricultural and ecological aspects of a sandy soil as affected by the application of municipal solid waste composts[J].Soil Biology and Biochemistry,2007,39(6):1294-1302.
    [64]
    HARGREAVES J,ADL M S,WARMAN P R.A review of the use of composted municipal solid waste in agriculture[J].Agriculture,Ecosystems & Environment,2008,123(1/2/3):1-14.
    [65]
    CHANDRA S,JOSHI H C,PATHAK H,et al.Effect of potassium salts and distillery effluent on carbon mineralization in soil[J].Bioresource Technology,2002,83(3):255-257.
    [66]
    MKHABELA M S,WARMAN P R.The influence of municipal solid waste compost on yield,soil phosphorus availability and uptake by two vegetable crops grown in a Pugwash sandy loam soil in Nova Scotia[J].Agriculture,Ecosystems & Environment,2005,106(1):57-67.
    [67]
    PARK M,SINGVILAY O,SHIN W,et al.Effects of long-term compost and fertilizer application on soil phosphorus status under paddy cropping system[J].Communications in Soil Science and Plant Analysis,2004,35(11/12):1635-1644.
    [68]
    LIN R Z,WANG X R,LUO Y,et al.Effects of soil cadmium on growth,oxidative stress and antioxidant system in wheat seedlings (Triticum aestivum L.)[J].Chemosphere,2007,69(1):89-98.
    [69]
    SINHA S,GUPTA A K.Translocation of metals from fly ash amended soil in the plant of Sesbania cannabina L.Ritz:effect on antioxidants[J].Chemosphere,2005,61(8):1204-1214.
    [70]
    WALKER D J,BERNAL M P.The effects of olive mill waste compost and poultry manure on the availability and plant uptake of nutrients in a highly saline soil[J].Bioresource Technology,2008,99(2):396-403.
    [71]
    KALE S P,MURTHY N B K,RAGHU K,et al.Studies on degradation of 14C-DDT in the marine environment[J].Chemosphere,1999,39(6):959-968.
    [72]
    FOGHT J,APRIL T,BIGGAR K,et al.Bioremediation of DDT-contaminated soils:a review[J].Biorernediation Journal,2001,5(3):225-246.
    [73]
    TURUSOV V,RAKITSKY V,TOMATIS L.Dichlorodiphenyltrichloroethane (DDT):ubiquity,persistence,and risks[J].Environmental Health Perspectives,2002,110(2):125-128.
    [74]
    GAUTAM S K,SURESH S.Studies on dechlorination of DDT (1,1,1-trichloro-2,2-bis (4-chlorophenyl) ethane) using magnesium/palladium bimetallic system[J].Journal of Hazardous Materials,2007,139(1):146-153.
    [75]
    SAYLES G D,YOU G,WANG M,et al.DDT,DDD,and DDE dechlorination by zero-valent iron[J].Environmental Science & Technology,1997,31(12):3448-3454.
    [76]
    PURNOMO A S,MORI T,KAMEI I,et al.Application of mushroom waste medium from Pleurotus ostreatus for bioremediation of DDT-contaminated soil[J].International Biodeterioration & Biodegradation,2010,64(5):397-402.
    [77]
    LAINE M M,JORGENSEN K S.Straw compost and bioremediated soil as inocula for the bioremediation of chlorophenol-contaminated soil[J].Applied and Environmental Microbiology,1996,62(5):1507-1513.
    [78]
    SEMPLE K T,FERMOR T R.Enhanced mineralization of UL-14C-pentachlorophenol by mushroom composts[J].Research in Microbiology,1997,148(9):795-798.
    [79]
    SEMPLE K T,WATTS N U,FERMOR T R.Influence of temperature on the mineralisation of[UL-14C] benzene in spent mushroom compost[J].FEMS Microbiology Letters,1998,164(2):317-321.
    [80]
    EGGEN T.Application of fungal substrate from commercial mushroom production-Pleuorotus ostreatus-for bioremediation of creosote contaminated soil[J].International Biodeterioration & Biodegradation,1999,44(2/3):117-126.
    [81]
    REID B J,FERMOR T R,SEMPLE K T.Induction of PAH-catabolism in mushroom compost and its use in the biodegradation of soil-associated phenanthrene[J].Environmental Pollution,2002,118(1):65-73.
    [82]
    LAU K L,TSANG Y Y,CHIU S W.Use of spent mushroom compost to bioremediate PAH-contaminated samples[J].Chemosphere,2003,52(9):1539-1546.
    [83]
    PUGLISI E,CAPPA F,FRAGOULIS G,et al.Bioavailability and degradation of phenanthrene in compost amended soils[J].Chemosphere,2007,67(3):548-556.
    [84]
    LOURENCETTI C,FAVORETO R,MARCHI M R R,et al.Residues of organochlorine pesticides and PCBs in some Brazilian municipal solid waste compost[J].Journal of Environmental Science and Health,Part B,2007,42(6):697-705.
    [85]
    CARACCIOLO A B,GIULIANO G,GRENNI P,et al.Effect of urea on degradation of terbuthylazine in soil[J].Environmental Toxicology and Chemistry:An International Journal,2005,24(5):1035-1040.
    [86]
    ALBER T,CASSIDY M B,ZABLOTOWICZ R M,et al.Degradation of p-nitrophenol and pentachlorophenol mixtures by Sphingomonas sp.UG30 in soil perfusion bioreactors[J].Journal of Industrial Microbiology and Biotechnology,2000,25(2):93-99.
    [87]
    BREEDVELD G D,SPARREVIK M.Nutrient-limited biodegradation of PAH in various soil strata at a creosote contaminated site[J].Biodegradation,2000,11(6):391-399.
    [88]
    DENG X,WU C Y,LI Y,et al.Effects of Chicken Manure Compost on the Production of Dissolved Organic Carbon and the Degradation of p,p'-DDT in Loam Soil[C]//2016 5th International Conference on Civil,Architectural and Hydraulic Engineering (ICCAHE 2016).Atlantis Press,2016.
    [89]
    PURNOMO A S,KOYAMA F,MORI T,et al.DDT degradation potential of cattle manure compost[J].Chemosphere,2010,80(6):619-624.
    [90]
    WU C Y,CHEN N,LI H,et al.Kocuria rosea HN01,a newly alkaliphilic humus-reducing bacterium isolated from cassava dreg compost[J].Journal of Soils and Sediments,2014,14(2):423-431.
    [91]
    SADIQ S,MAHMOOD-Ul-Hassan M,AHAD K,et al.Bioremediation of hexachlorocyclohexane (HCH) in soil using spent mushroom compost of Pleurotus ostreatus[J].Bioremediation Journal,2018,22(3/4):126-135.
    [92]
    ANDERSON D B,HINCHEE R E,HOEPPEL R E.Bioremediation of recalcitrant organics[M].Battelle Press,1995.
    [93]
    REGAN Sr R W.Use of SMS as a compost matrix to degrade pesticide residuals[J].Compost Science & Utilization,1994,2(3):56-62.
    [94]
    VANDERVOORT C,ZABIK M J,BRANHAM B,et al.Fate of selected pesticides applied to turfgrass:effect of composting on residues[J].Bulletin of Environmental Contamination and Toxicology,1997,58(1):38-45.
    [95]
    ALI H,KHAN E,SAJAD M A.Phytoremediation of heavy metals-concepts and applications[J].Chemosphere,2013,91(7):869-881.
    [96]
    李如意,李丁.废弃重金属的植物修复与再利用研究进展[J].生物产业技术,2017(3):106-110.
    [97]
    高喜,张佩,徐川川,等.土壤重金属污染的植物修复[J].中国资源综合利用,2017,35(3):70-74.
    [98]
    GUANGWEI Y,HENGYI L,TAO B A I,et al.In-situ stabilisation followed by ex-situ composting for treatment and disposal of heavy metals polluted sediments[J].Journal of Environmental Sciences,2009,21(7):877-883.
    [99]
    SINGH J,KALAMDHAD A S.Concentration and speciation of heavy metals during water hyacinth composting[J].Bioresource Technology,2012,124:169-179.
    [100]
    SONG U,PARK H.Importance of biomass management acts and policies after phytoremediation[J].Journal of Ecology and Environment,2017,41(1):13.
    [101]
    SONG U.Improvement of soil properties and plant responses by compost generated from biomass of phytoremediation plant[J].Environmental Engineering Research,2019,25(5):638-644.
    [102]
    ESWARAN H,Van Den BERG E,REICH P.Organic carbon in soils of the world[J].Soil Science Society of America Journal,1993,57(1):192-194.
    [103]
    PRIES C E H,CASTANHA C,PORRAS R C,et al.The whole-soil carbon flux in response to warming[J].Science,2017,355(6332):1420-1423.
    [104]
    CHEN X M,DENG Q,LIN G J,et al.Changing rainfall frequency affects soil organic carbon concentrations by altering non-labile soil organic carbon concentrations in a tropical monsoon forest[J].Science of the Total Environment,2018,644:762-769.
    [105]
    YAN J F,WANG L,HU Y,et al.Plant litter composition selects different soil microbial structures and in turn drives different litter decomposition pattern and soil carbon sequestration capability[J].Geoderma,2018,319:194-203.
    [106]
    WANG H,LIU S R,SCHINDLBACHER A,et al.Experimental warming reduced topsoil carbon content and increased soil bacterial diversity in a subtropical planted forest[J].Soil Biology and Biochemistry,2019,133:155-164.
    [107]
    MUKUMBUTA I,SHIMIZU M,HATANO R.Short-term land-use change from grassland to cornfield increases soil organic carbon and reduces total soil respiration[J].Soil and Tillage Research,2019,186:1-10.
    [108]
    KARHU K,WALL A,VANHALA P,et al.Effects of afforestation and deforestation on boreal soil carbon stocks-comparison of measured C stocks with Yasso07 model results[J].Geoderma,2011,164(1/2):33-45.
    [109]
    FENG J,XU X,WU J J,et al.Inhibited enzyme activities in soil macroaggregates contribute to enhanced soil carbon sequestration under afforestation in central China[J].Science of the Total Environment,2018,640:653-661.
    [110]
    孙艳妮.长期不同施肥下红壤性水田和旱地土壤有机碳稳定性差异研究[D].南京:南京农业大学,2015.
    [111]
    LI M,HU H L,HE X S,et al.Organic carbon sequestration in soil humic substances as affected by application of different nitrogen fertilizers in a vegetable-rotation cropping system[J].Journal of Agricultural and Food Chemistry,2019,67(11):3106-3113.
    [112]
    SONG X Y,LIU S J,LIU Q H,et al.Carbon sequestration in soil humic substances under long-term fertilization in a wheat-maize system from north China[J].Journal of Integrative Agriculture,2014,13(3):562-569.
    [113]
    SPACCINI R,PICCOLO A,CONTE P,et al.Increased soil organic carbon sequestration through hydrophobic protection by humic substances[J].Soil Biology and Biochemistry,2002,34(12):1839-1851.
    [114]
    CHEN Y Q,CAO J B,ZHAO J,et al.Labile C dynamics reflect soil organic carbon sequestration capacity:understory plants drive topsoil C process in subtropical forests[J].Ecosphere,2019,10(6):e02784.
    [115]
    LIM S L,WU T Y,LIM P N,et al.The use of vermicompost in organic farming:overview,effects on soil and economics[J].Journal of the Science of Food and Agriculture,2015,95(6):1143-1156.
    [116]
    MUSTAFA M F,LIU Y J,DUAN Z H,et al.Volatile compounds emission and health risk assessment during composting of organic fraction of municipal solid waste[J].Journal of Hazardous Materials,2017,327:35-43.
    [117]
    NIE E Q,ZHENG G D,SHAO Z Z,et al.Emission characteristics and health risk assessment of volatile organic compounds produced during municipal solid waste composting[J].Waste Management,2018,79:188-195.
    [118]
    CHENG Z W,SUN Z T,ZHU S J,et al.The identification and health risk assessment of odor emissions from waste landfilling and composting[J].Science of the Total Environment,2019,649:1038-1044.
    [119]
    SCHMIDT M W I,TORN M S,ABIVEN S,et al.Persistence of soil organic matter as an ecosystem property[J].Nature,2011,478(7367):49-56.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (96) PDF downloads(7) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return