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 |
[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.
|