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Recycling potential of organic wastes of arecanut and cocoa in India: a short review

, &
Pages 91-102 | Received 24 Jun 2014, Accepted 25 Jul 2015, Published online: 11 Sep 2015

References

  • Salinger MJ. Climate variability and change: past, present and future – an overview. Clim Chang. 2005;70:9–29. doi: 10.1007/s10584-005-5936-x
  • Peltonen-Sainio P, Jauhiainen L, Hannukkala A. Declining rapeseed yields in Finland: how why and what next? J Agric Sci. 2007;145:587–598. doi: 10.1017/S0021859607007381
  • Berry PM, Spink JH. A physiological analysis of oilseed rape yields: past and future. J Agric Sci. 2006;144:381–392. doi: 10.1017/S0021859606006423
  • Nelson GC, Rosegrant MW, Koo J, et al. Climate change: impact on agriculture and costs of adaptation. Washington, DC: International Food Policy Research Institute; 2009.
  • Hartemink AE. Assessing soil fertility decline in the tropics using soil chemical data. Adv Agron. 2006;89:179–225. doi: 10.1016/S0065-2113(05)89004-2
  • Stockdale EA, Shepherd MA, Fortune S, et al. Soil fertility in organic farming systems-fundamentally different? Soil Use Manage. 2002;18:301–308. doi: 10.1079/SUM2002143
  • Galantini J, Rosell R. Long-term fertilization effects on soil organic matter quality and dynamics under different production systems in semiarid Pampean soils. Soil Till Res. 2006;87:72–79. doi: 10.1016/j.still.2005.02.032
  • Palm CA, Giller KE, Mafongoya PL, et al. Management of organic matter in the tropics: translating theory into practice. Nutr Cycl Agroecosys. 2001;61:63–75. doi: 10.1023/A:1013318210809
  • Tiesson HE, Cuevas E, Chacon P. The role of soil organic matter in sustaining soil fertility. Nature. 1994;371:783–785. doi: 10.1038/371783a0
  • Herencia JF, Ruiz JC, Melero S, et al. A short-term comparison of organic v. Conventional agriculture in a silty loam soil using two organic amendments. J Agr Sci. 2008;146:677–687. doi: 10.1017/S0021859608008071
  • Gomiero T, Paoletti MG, Pimentel D. Energy and environmental issues in organic and conventional agriculture. Crit Rev Plant Sci. 2008;27:239–254. doi: 10.1080/07352680802225456
  • GOI. Directorate of Economics and Statistics, Ministry of Agriculture, Government of India; 2014.
  • Perur NG. Acid soils of Karnataka. In: Mahapatra IC, Mandal SC, Misra C, et al., editors. Acid soils of India. New Delhi: Indian Council of Agricultural Research; 1996. p. 165–173.
  • Bhat R, Sujatha S, Jose CT. Assessing soil fertility of a laterite soil in relation to yield of arecanut (Areca catechu L.) in humid tropics of India. Geoder. 2012;189–190:91–97. doi: 10.1016/j.geoderma.2012.05.010
  • Bhat R. Climate, soil and agronomy. In: Balasimha D, editor. Cocoa. Kasaragod: CPCRI; 2002. p. 48–69.
  • Bhat R, Sujatha S. Influence of biomass partitioning and nutrient uptake on yield of arecanut (Areca catechu L.) grown on a laterite soil. Commun Soil Sci Plan. 2012;43:1757–1767. doi: 10.1080/00103624.2012.684823
  • Bavappa KVA, Khader KBA, Biddappa CC, et al. Coconut and arecanut based high density multi-species cropping systems. J Plantation Crop. 1986;14:74–87.
  • Bhat R, Sujatha S. Soil fertility status as influenced by arecanut based cropping system and nutrient management. J Plantation Crop. 2007;35:158–165.
  • Havlin JL, Beaton JD, Tisdale SL, et al. Soil fertility and fertilizers: an introduction to nutrient management: potassium. 7th ed. New Jersey, NJ: Upper Saddle River; 2005.
  • Biddappa CC, Upadhyay AK, Hedge MR, et al. Organic matter recycling in plantation crops. J Plantation Crop. 1996;24:71–85.
  • Bhat NT, Mohapatra AR. Supplying nutrients through organic manures, inorganic fertilizers and their combination on arecanut crops. J. Plantation Crop. 1989;16:443–447.
  • Verghese PT, Nampoothiri KUK. Investment and expected returns from oil palm cultivation in India. Planter. 1988;64:353–361.
  • Khalid H, Tarmizi AM. Nutrient cycling and innovative approach of biomass management in oil palm plantation. Paper presented at: PIPOC Intl. Palm Oil Congr., Malaysian Palm Oil Board; 2001; Kuala Lumpur, Malaysia.
  • Usha KE, Vikraman Nair R. Recyling potential of litter in cashew. In: Rethinam P, Khan HH, Reddy VM, et al., editors. Plantation crops research and development in the new millennium. Kochi: Coconut Development Board; 2002. p. 348–350.
  • Subramanian P, Srinivasa Reddy DV, Palaniswamy C, et al. Studies on nutrient export and nutrient recycling in coconut based high density multispecies cropping system. Cord. 2005;21:20–27.
  • Bhat R, Sujatha S. Arecanut based high density multispecies cropping/farming system. In: Thomas GV, Krishnakumar V, Maheshwarappa HP, et al., editors. Arecanut based cropping/farming systems. Kasaragod: CPCRI; 2011a. p. 27–44.
  • Sujatha S, Bhat R, Balasimha D, et al. Arecanut based inter/mixed cropping systems. In: Thomas GV, Krishnakumar V, Maheshwarappa HP, et al., editors. Arecanut based cropping/farming systems. Kasaragod: CPCRI; 2011. p. 6–26.
  • Ray AK, Acharya GC, Maheswarappa HP, et al. Arecanut based cropping systems in North East Region of India. In: Thomas GV, Krishnakumar V, Maheshwarappa HP, et al., editors. Arecanut based cropping/farming systems. Kasaragod: CPCRI; 2011. p. 45–54.
  • Sit AK, Acharya GC, Thomas GV. Arecanut based cropping systems in Sub Himalayan Terai Region of West Bengal. In: Thomas GV, Krishnakumar V, Maheshwarappa HP, et al., editors. Arecanut based cropping/farming systems. Kasaragod: CPCRI; 2011. p. 55–62.
  • Bhat R, Sujatha S. Organic matter recycling in arecanut based high density multispecies cropping system. In: Thomas GV, Krishnakumar V, Maheshwarappa HP, et al., editors. Arecanut based cropping/farming systems. Kasaragod: CPCRI; 2011. p. 63–76.
  • Lim KO. The energy potential and current utilization of agriculture and logging wastes in Malaysia. Renew Energ. 1986a;8:2–236, RERIC-AIT, Bangkok.
  • Abdul Haris A, Balasimha D, Sujatha S, et al. The influence of drip irrigation and fertilizer on yield and photosynthetic characteristics of cocoa in mixed cropping system with arecanut. J. Plantation Crop. 1999;27:131–135.
  • Varghese PT, Nelliat EV, Balakrishnan TK. Beneficial interactions of coconut-cocoa crop combination. In: Proceedings of Plantation Crops Symp. PLACROSYM-I; 1978, p. 383–392.
  • Opakunle JS. Nutrient distribution and cycling in a Theobroma cacao L. agro-ecosystem in Southwestern Nigeria. Acta Oecol. 1989;10:347–357.
  • Isaac ME, Gordon AM, Thevathasan N, et al. Temporal changes in soil carbon and nitrogen in West African multi-strata agroforestry systems:a chronosequence of pools and fluxes. Agroforest Syst. 2005;65:23–31. doi: 10.1007/s10457-004-4187-6
  • Owusu-Sekyere E, Cobbina J, Wakatsuki T. Decomposition, nutrient release patterns and fluxes from leaf litter of secondary forests in Ghana. J Appl Ecol. 2006;9:1–9.
  • Bhat R, Sujatha S. Nutrient uptake pattern in cocoa. In: Proceedings of Seminar on Strategies for enhancing productivity of cocoa. Vittal: CPCRI, RS; 2011c. p. 86–88.
  • Santana MBM, Cabala Ro P, Serodio MH, et al. Nutrient recycling in cocoa agrosystems, in Proceedings of International Cocoa Research Conference, Santo Domingo, Dominican Republic; 1988. p. 233–237.
  • Manikandan P, Joshi OP, Khan HH, et al. Nutrient profile in an arecanut-cacao system on a laterite soil. Trop Agric. 1987;64:13–16.
  • Bhat R, Sujatha S. Crop management. In: Balasimha D, editor. Arecanut. Kasaragod: CPCRI; 2004. p. 48–69.
  • Annamalai SJK, Azeez S, Nayar NM. Alternative uses of arecanut and utilisation of by-products. In: Balasimha D, Rajagopal V, editors. Arecanut. Kasaragod: CPCRI; 2004. p. 224–258.
  • NIANP. Areca Sheath as an alternate dry fodder, Palmphlet No. 9. Bangalore: National Institute of Animal Nutrition and Physiology; 2011.
  • Jagannathan D, Yadukumar N, Sarath babu S. Arecanut plate making: A profitable business. Indian J Arecanut Spices Med Plants. 2011;13:3–6.
  • Uma Maheswari P, Saranya M, Nandhini K, et al. Composting of Areca nut leaf sheath and its effects on growth and biochemical contents of Vigna unguiculata L. Indian J Sci. 2015:138–148.
  • Raghupathy R, Viswanathan R, Devadas CT. Quality of paper boards from arecanut leaf sheath. Bioresource Tech. 2002;82:99–100. doi: 10.1016/S0960-8524(01)00141-9
  • Akhila R, Kurup JG, Abraham TE. Solid State production of manganese peroxidases using arecanut husk as substrate. Braz Arch Biol Techn. 2010;53(3):555–562. doi: 10.1590/S1516-89132010000300008
  • Sasmal S, Goud VV, Mohanty K. Ultrasound Assisted Lime Pretreatment of Lignocellulosic Biomass toward Bioethanol Production. Energy Fuels. 2012;26(6):3777–3784. doi: 10.1021/ef300669w
  • Kumar M, Moon UR, Mitra A. Rapid separation of carotenes and evaluation of their in vitro antioxidant properties from ripened fruit waste of Areca catechu – A plantation crop of agro-industrial importance. Ind Crop Prod. 2012;40:204–209. doi: 10.1016/j.indcrop.2012.03.014
  • Smith OB, Adegbola AA. Studies on the feeding value of agro-industrial byproducts and the feeding value of cocoa pods for cattle. Trop Anim Prod. 1982;7:290–295.
  • Aregheore EM. Crop residues and agro-industrial byproducts in four Pacific Island countries: availability, utilization and potential value in ruminant nutrition. Asian- Australasian J Animal Sci. 2000;13(Supplement B):266–269.
  • Fagbenro OA.* Utilization of cocoa-pod husk in low-cost diets by the clariid catfish, Clarias isheriensis (Sydenham). Aquac Res. 1992;23(2):175–182. doi: 10.1111/j.1365-2109.1992.tb00608.x
  • Fagbenro OA.* Evaluation of heat-processed cocoa pod husk meal as an energy feedstuff in production diets for the clariid catfish, Clarias isheriensis (Sydenham). Aquacult Nutr. 1995;1(4):221–225. doi: 10.1111/j.1365-2095.1995.tb00047.x
  • Aregheore EM. Chemical Evaluation and Digestibility of Cocoa (Theobroma cacao) Byproducts Fed to Goats. Trop Anim Health Pro. 2002;34(4):339–348. doi: 10.1023/A:1015638903740
  • Moorthy VK. Production technology of oyster mushroom, Pleurotus sajor-caju (Fr). Singer [dissertation]. India: Mangalore University; 1993.
  • Moorthy VK, Chandramohanan R. Evaluation of various organic substrates for the cultivation of Pleurotus sajor-caju. J Plantation Crop. 1991;19:65–69.
  • Chandramohanan R. Utilization of areca (Areca catechu L.) wastes for oyster mushroom (Pleurotus spp) production. Vittal: CPCRI, Regional Station; 1999.
  • Pani BK, Das SR. Production of oyster mushroom (Pleurotus sajor-caju) from arecanut leaf wastes. Environ Ecol. 1999;17:1015–1017.
  • Madhusudhanan K, Chandramohanan R. Cultivation of Pleurotus sajor-caju (Fr.) Singer on areca wastes – standardization of substrate preparation during summer and rainy seasons. Mushroom Res. 1997;6:75–78.
  • Yahaya ANA. Treatment and utilisation of oil palm empty fruit bunch (EFB) by Pleurotus sajor-caju cultivation and vermicomposting [dissertation]. University of Sheffield; 2012.
  • Edwards CA. Breakdown of animal, vegetable and industrial organic wastes by earthworms. In: Edwards CA, Neuhauser EF, editors. Earthworms in waste and environmental management. The Hague: SPB Academic; 1988. p. 21–31.
  • Orozco FH, Cegarra J, Trujillo LM, et al. Vermicomposting of coffee pulp using the earthworm Eisenia fetida: Effects on C and N contents and the availability of nutrients. Biol Fert Soils. 1996;22:162–166. doi: 10.1007/BF00384449
  • Dash MC, Senapati BK. Vermitechnology: potentiality of Indian earthworms for vermicomposting and vermifeed. In: Mishra MM, Kapoor KK, editors. Soil biology. Hissar: Hissar Agricultural University; 1986. p. 61–70.
  • Trigo D, and Lavelle P. Changes in respiration rate and some physiochemical properties of soil during gut transit through Allolobophora molleri (Lumbricidae,~Oligochaeta). Biol Fert Soils. 1993;15:185–188. doi: 10.1007/BF00361609
  • Edwards CA, Domínguez J, Arancon NQ. The influence of vermicomposts on plant growth and pest incidence. In: Shakir SH, Mikhail WZA, editors. Soil zoology for sustainable development in the 21st century. Cairo: Self-Publisher; 2004. p. 397–420.
  • Arancon NQ, Edwards CA, Bierman P, et al. Effects of vermicomposts produced from cattle manure, food waste and paper waste on the growth and yield of peppers in the field. Pedobiologia. 2005;49:297–306. doi: 10.1016/j.pedobi.2005.02.001
  • Vivas A, Moreno B, Garcia-Rodriguez S, et al. Assessing the impact of composting and vermicomposting on bacterial community size and structure, and microbial functional diversity of an olive-mill waste. Bioresource Technol. 2009;100:1319–1326. doi: 10.1016/j.biortech.2008.08.014
  • Edwards CA, Burrows I. The potential of earthworms composts as plant growth media, in earthworms. In: Edward CA, Neuhauser EF, editors. Waste and environmental management. The Hague: SPB Academic Publishing; 1988. p. 21–32. ISBN 90-5103-017-7.
  • Dominguez J, Edwards CA, Subler S. A comparison of vermicomposting and composting. Biocycle. 1997;28:57–59.
  • Subler S, Edwards C, Metzger J. Comparing vermicomposts and composts. Biocycle. 1998;39:63–66.
  • Ndegwa PM, Thompson SA. Integrating composting and vermicomposting the treatment and bioconversion of biosolids. Bioresource Technol. 2001;76:107–112. doi: 10.1016/S0960-8524(00)00104-8
  • Tognetti FL, Mazzarino MJ, Hernández MT. Composting vs. vermicomposting: a comparison of end product quality. Compost Sci Util. 2005;13:6–13. doi: 10.1080/1065657X.2005.10702212
  • Ngo TN, Rumpel C, Dignac MF, et al. Transformation of buffalo manure by composting or vermicomposting to rehabilitate degraded tropical soils. Ecol Eng. 2011;37:269–276. doi: 10.1016/j.ecoleng.2010.11.011
  • Chowdappa P, Biddappa CC, Sujatha S. Efficient recycling of organic wastes in arecanut (Areca catechu L.) and cocoa (Theobroma cacao L.) plantations through vermicomposting. Indian J Agric Sci. 1999;69:563–566.
  • Thomas GV, Prabhu SR, Reeny MZ, et al. Evaluation of lignocellulosic biomass from coconut palm as substrate for cultivation of Pleurotus sajor caju (Fr) Singer. World J Microbiol Biotechn. 1998;14:879–882. doi: 10.1023/A:1008881124903
  • Bernal MP, Sanchez-Monedero MA, Paredes C, et al. Carbon mineralization from organic wastes at different composting stages during their incubation with soil. Agr Ecosyst Environ. 1998;69:175–189. doi: 10.1016/S0167-8809(98)00106-6
  • Manna MC, Jha S, Ghosh PK, et al. Comparative efficacy of three epigeic earthworms under different deciduous forest litters decomposition. Bioresource Technol. 2003;88:197–206. doi: 10.1016/S0960-8524(02)00318-8
  • Evans KD, Isaac ME, James Q. Litterfall and litter nutrient dynamics under cocoa ecosystems in lowland humid Ghana. Plant Soil. 2010;330:55–64. doi: 10.1007/s11104-009-0173-0
  • Kale RD, Bano K, Krishnamoorthy RV. Potential of Perionyx excavatus for utilizing organic wastes. Pedobiologia. 1982;23:419–425.
  • Butt KR. Utilisation of solid paper-mill sludge and spent brewery yeast as a feed for soil-dwelling earthworms. Bioresource Technol. 1993;44:105–107. doi: 10.1016/0960-8524(93)90182-B
  • Butt KR, Frederickson J, Morris RM. An earthworm cultivation and soil inoculation technique for land restoration. Ecol Eng. 1995;4:1–9. doi: 10.1016/0925-8574(93)E0053-S
  • Prabhu SR, Subramanian P, Bidappa CC, et al. Prospects of improving coconut productivity through vermiculture technologies. Indian Coconut J. 1998;29:79–84.
  • Sujatha S, Bhat R. Impact of drip fertigation on arecanut-cocoa system in humid tropics of India. Agroforest Syst. 2013a;87:643–656. doi: 10.1007/s10457-012-9585-6
  • Sujatha S, Bhat R. Impact of vermicompost and Nitrogen-Phosphorus-Potassium application on biomass partitioning, nutrient uptake and productivity of arecanut (Areca catechu L.). J Plant Nutrition. 2013b;36:976–989. doi: 10.1080/01904167.2013.766206
  • Kurian R, Velmourougane K. Chemical and microbiological changes during vermicomposting of coffee pulp using exotic (Eudrilus eugeniae) and native earthworm (Perionyx ceylanesis) species. Biodegradation. 2011;22:497–507. doi: 10.1007/s10532-010-9422-4
  • Rupani PF, Ibrahim MH, Ismail SA. Nutrient transport characteristics of livestock manure in a farmland. Int J Recycl Org Waste Agric. 2013;2:1–6. doi: 10.1186/2251-7715-2-10
  • Nagavallemma KP, Wani SP, Stephane Lacroix PVV, et al. Vermicomposting: recycling wastes into valuable organic fertilizer. Global Theme on Agrecosystems Report; 2004.
  • Kizilkayaa R, Suheyda H, Turkayb F, et al. Vermicompost effects on wheat yield and nutrient contents in soil and plant. Archives Agron Soil Sci. 2012;58:S175–S179. doi: 10.1080/03650340.2012.696777
  • Nahrul Hayawin Z, Abdul Khalil HPS, Jawaid MM, et al. Exploring chemical analysis of vermicompost of various oil palm fibre wastes. Environ. 2010;30:273–278.
  • Mitchell A. Production of   and vermicompost from feedlot cattle manure. Soil Biol Biochem. 1997;29:763–766. doi: 10.1016/S0038-0717(96)00022-3
  • Gunadi B, Edwards CA. The effect of multiple applications of different organic wastes on the growth, fecundity and survival of Eisenia foetida (Savigny) (Lumbricidae). Pedobiologia. 2003;47:321–329. doi: 10.1078/0031-4056-00196
  • Garg VK, Kaushik P. Vermistablisation of solid textile mill sludge spiked with poultry droppings by an epigeic earthworm Eisenia foetida. Bioresource Technol. 2005;96:1063–1071. doi: 10.1016/j.biortech.2004.09.003
  • Sujatha S, Bhat R. Impacts of vermicompost and nitrogen, phosphorus, and potassium application on soil fertility status in arecanut grown on a laterite soil. Commun Soil Sci Plan. 2012;43:2400–2412. doi: 10.1080/00103624.2012.708074
  • Lee KE. Earthworms: their ecology and relationships with soils and land use. London: Academic Press Inc; 1985. p. 411.
  • Tejada M, Gonzalez JL, Hernandez MT, et al. Agricultural use of leachates obtained from two different vermicomposting processes. Bioresource Technol. 2008;99:6228–6232. doi: 10.1016/j.biortech.2007.12.031
  • Edwards CA, Arancon NQ. The use of earthworms in the breakdown of organic wastes to produce vermicomposts and animal feed protein. In: Edwards CA, editor. Earthworm ecology. Florida, FL: CRC Press LLC; 2004. p. 345–438.
  • Arancon NQ, Edwards CA, Lee S, et al. Influences of vermicomposts, produced by earthworms and microorganisms from cattle manure, food waste and paper waste, on the germination, growth and flowering of petunias in the greenhouse. Appl Soil Ecol. 2008;39:91–99. doi: 10.1016/j.apsoil.2007.11.010
  • Adi AJ, Noor ZM. Waste recycling: utilization of coffee grounds and kitchen waste in vermicomposting. Bioresource Technol. 2009;100:1027–1030. doi: 10.1016/j.biortech.2008.07.024
  • Pramanik P, Ghosh GK, Banik P. Effect of microbial inoculation during vermicomposting of different organic substrates on microbial status and quantification and documentation of acid phosphatase. Waste Manage. 2009;29:574–578. doi: 10.1016/j.wasman.2008.06.015
  • Prabhu Kumar G. Comparative evaluation of coconut waste compost. Agric Sci Dig. 2006;26:276–278.
  • Whittle AJ, Dyson AJ. The fate of heavy metals in green waste composting. Environ. 2002;22:13–21.
  • Deolalikar AV, Mitra A, Bhattacharyee S, et al. Effect of vermicomposting process on metal content of paper mill solid waste. J Environ Sci Eng. 2005;47:81–84.
  • Bhat R, Sujatha S. Establishing leaf nutrient limits arecanut through boundary line approach. J Plant Nutrition. 2013a;36:849–862. doi: 10.1080/01904167.2013.770524
  • Zhiguo D, Liu L, Dongliang C, et al. Application of diagnosis and recommendation integrated system in nutrient diagnosis of arecanut. Chinese J Trop Crop. 2010;3:361–364.
  • Gutierrez-Miceli FA, Gracia-Gomez RC, Rincon RR, et al. Formulation of liquid fertilizer for sorghum (Sorghum bicolour (L.) Moench) using vermicompost leachate. Bioresource Technol. 2008;99:6174–6180. doi: 10.1016/j.biortech.2007.12.043
  • CPCRI. Annual report for 2013–2014. Kasaragod: Central Plantation Crops Research Institute; 2014.
  • Bhat R, Sujatha S. Soil Fertility Status and Disorders in Arecanut (Areca Catechu L.) Grown on Clay and Laterite Soils of India. Commun Soil Sci Plan. 2014;45:1622–1635. doi: 10.1080/00103624.2014.907910
  • Sujatha S, Bhat R. Soil fertility changes due to land use system and drip fertigation in laterite soils. Commun Soil Sci Plan. 2015. doi:10.1080/00103624.2015.1044111
  • Hartenstein R, Hartenstein F. Physiochemical changes in activated sludge by the earthworm Eisenia foetida. J Environ Qual. 1981;10:377–382. doi: 10.2134/jeq1981.00472425001000030027x
  • Kizilkaya R, Hepsen S. Effect of bio-solid amendment on enzyme activities in earthworm (Lumbricus terrestris) casts. Plant Nutr Soil Sci. 2004;167:202–208. doi: 10.1002/jpln.200321263
  • Kizilkaya R, Hepsen S. Microbiological properties in earthworm Lumbricus terrestris L. cast and surrounding soil amended with various organic wastes. Commun Soil Sci Plan. 2007;38:2861–2876. doi: 10.1080/00103620701663107
  • Bhat R, Sujatha S, Balasimha D. Impact of drip fertigation on productivity of arecanut (Areca catechu L.). Agric Water Manage. 2007;90:101–111. doi: 10.1016/j.agwat.2007.02.016
  • Lyngbaek AE, Muschler RG, Sionclair FL. Productivity and profitability of multistrata organic versus conventional coffee farms in Costa Rica. Agrofor Syst. 2001;53:205–213. doi: 10.1023/A:1013332722014
  • Mader P, Aiebach A, Dubois D, et al. Soil fertility and biodiversity in organic farming. Science. 2002;296:1694–1697. doi: 10.1126/science.1071148
  • de Ponti T, Rijk B, van Ittersum MK. The crop yield gap between organic and conventional agriculture. Agric Syst. 2012;108:1–9. doi: 10.1016/j.agsy.2011.12.004
  • Van der Vossen HAM. A critical analysis of the agronomic and economic sustainability of organic coffee production. Experimental Agric. 2005;41:449–473. doi: 10.1017/S0014479705002863
  • Roberts P, Edwards-Jones G, Jones DL. Yield responses of wheat (Triticum aestivum) to vermicompost applications. Compost Sci Util. 2007;15:6–15. doi: 10.1080/1065657X.2007.10702304
  • Daniel N, Sonam T, Gerold R, et al. Organic agriculture in Bhutan: potential and challenges. Organic Agric. 2014;4(3):209–221.
  • Masciandaro G, Ceccanti B, Garcia C. Soil agroecological management: fertirrigation and vermicompost treatments. Bioresource Technol. 1997;59:199–206. doi: 10.1016/S0960-8524(96)00142-3
  • Arancon NQ, Edwards CA, Bierman P, et al. Influences of vermicomposts on field strawberries: 1. Effects on growth and yields. Bioresource Technol. 2004b;93:145–153. doi: 10.1016/j.biortech.2003.10.014
  • Singh R, Sharma RR, Kumar S, et al. Vermicompost substitution influences growth, physiological disorders, fruit yield and quality of strawberry (Fragaria x ananassa Duch.). Bioresource Technol. 2008;99:8507–8511. doi: 10.1016/j.biortech.2008.03.034
  • Gutiérrez-Miceli FA, Santiago-Borraz J, Montes Molina JA, et al. Vermicompost as a soil supplement to improve growth, yield and fruit quality of tomato (Lycopersicum esculentum). Bioresource Technol. 2007;98:2781–2786. doi: 10.1016/j.biortech.2006.02.032
  • Classen JJ, Mark Rice J, Sherman R. The effects of vermicompost on field turnips and rainfall runoff. Compost Sci Util. 2007;15:34–39. doi: 10.1080/1065657X.2007.10702308
  • Nehra AS, Hooda IS, Singh KP. Effect of integrated nutrient management on the growth and yield of wheat (Triticum aestivum). Indian J Agron. 2001;46:112–117.
  • Ranwa RS, Singh KP. Effect of integrated nutrient management with vermicompost on productivity of wheat (Triticum aestivum). Indian J Agron. 1999;44:554–559.
  • Sanchez JE, Harwood RR, Willson TC, et al. Managing soil carbon and nitrogen for productivity and environmental quality. Agron J. 2004;96:769–775. doi: 10.2134/agronj2004.0769
  • Tilston EL, Pitt D, Groenhof AC. Composted recycled organic matter suppresses soil-borne diseases of field crops. New Phytologist. 2002;154:731–740. doi: 10.1046/j.1469-8137.2002.00411.x
  • Maheswarappa HP, Thomas GV, Gupta A, et al. Productivity and nutrient status of coconut (Cocos nucifera) as influenced by integrated nutrient management with vermicomposted coconut leaves. Indian J Agron. 2014;59:455–459.
  • Sujatha S, Bhat R. Response of vanilla (Vanilla planifolia A.) intercropped in arecanut to irrigation and nutrition in humid tropics of India. Agric Water Manage. 2010;97:988–994. doi: 10.1016/j.agwat.2010.01.031
  • Sujatha S, Bhat R, Kannan C, et al. Impact of intercropping of medicinal and aromatic plants with organic farming approach on resource use efficiency in arecanut (Areca catechu L.) plantation in India. Ind Crop Prod. 2011a;33:78–83. doi: 10.1016/j.indcrop.2010.09.001
  • Hartemink AE. Nutrient stocks, nutrient cycling, and soil changes in cocoa ecosystems: A review. Adv Agron. 2005;86:227–253. doi: 10.1016/S0065-2113(05)86005-5
  • Giller KE, Beareb MH, Lavellec P, et al. Agricultural intensification, soil biodiversity and agroecosystem function. Appl Soil Ecol. 1997;6:3–16. doi: 10.1016/S0929-1393(96)00149-7
  • Palm CA, Robert JKM, Stephen MN. Combined use of organic and inorganic nutrient sources for soil fertility maintenance and replenishment. In: Buresh RJ, Sanchez PA, Calhoun F, editors. Replenishing soil fertility in Africa. Indianapolis, IN: Soil Sci. Society of America and American Society of Agron; 1997. p. 193–217.
  • Jacob J, Sarada S, Geetha V, et al. Recycling biomass for nutrient economy in coconut and arecanut based diversified cropping systems. Paper presented at: International Seminar and Workshop on Sustainable Utilization of Tropical Plant Biomass; 2008 December 15–16; Kariavattom, Thiruvananthapuram, India.
  • Zörb C, Senbayram M, Peiter E. Potassium in agriculture – Status and perspectives. J Plant Physiol. 2014;171:656–669. doi: 10.1016/j.jplph.2013.08.008
  • Khalid H, Zakaria Z, Anderson JM. Effects of oil palm residues management at replanting on soil nutrient dynamics and oil palm growth. Proceedings of the 1999 PORIM international palm oil congress (Agriculture). Bangi: Palm Oil Research Institute of Malaysia; 1999. p. 235–246.
  • Roberts P. Evaluation of vermicomposts for agricultural and horticultural uses [dissertation]. University of Wales, Bangor, United Kingdom; 2006.
  • Hartemink AE. Soil fertility decline in the tropics – with case studies on plantations. Wallingford: ISRIC-CABI Publishing; 2003.
  • Hartemink AE. Plantation agriculture in the tropics environmental issues. Outlook Agr. 2005b;34(1):11–21. doi: 10.5367/0000000053295150
  • Koyamu K, Nambiar EP. Changes in the characteristics of virgin soil brought under plantation crops. Paper presented at: Agronomy Soils Physiology and Economics of Plantation Crops, PLACROSYM 1; 1978 March 20; Kottayam, Kerala.
  • Kirchmann H, Thomas K, Bergström L. Nutrient supply in organic agriculture-plant availability, sources and recycling. In: Kirchmann H, Bergström L, editors. Organic crop production – ambitions and limitations. Amsterdam: Springer; 2008. p. 89–116.
  • Lim Su L, Wu Ta Y, Lim Pei N, et al. The use of vermicompost in organic farming: overview, effects on soil and economics. J Sci Food Agr. 2015;95:1143–1156. doi: 10.1002/jsfa.6849
  • Stockdale EA, Lampkin NH, Hovi M, et al. Agronomic and environmental implications of organic farming systems. Adv Agron. 2001;70:261–327. doi: 10.1016/S0065-2113(01)70007-7
  • Diacono M, Montemurro F. Long-term effects of organic amendments on soil fertility. A review. Agron Sustain Dev. 2010;30:401–422. doi: 10.1051/agro/2009040
  • Rosenani AB, Siti ZD, Kulaseharan S, et al. Effects of ten year application of empty fruit bunches in an oil palm plantation on soil chemical properties. Nutr Cycl Agroecosys. 2011;89:341–349. doi: 10.1007/s10705-010-9398-9
  • Moreno JL, Garcia C, Hernandez T, et al. Transference of heavy metals from a calcareous soil amended with sewage-sludge compost to barley plants. Bioresource Technol. 1996;55:251–258. doi: 10.1016/0960-8524(96)00009-0
  • Larcheveque M, Baldy V, Montes N, et al. Short-term effects of sewage-sludge compost on a degraded Mediterranean soil. Soil Sci Soc Am J. 2005;70:1178–1188. doi: 10.2136/sssaj2005.0115
  • Te Pas CM, Rees RM. Analysis of differences in productivity, profitability and soil fertility between organic and conventional cropping systems in the tropics and sub-tropics. J Integr Agr. 2014;13:2299–2310. doi: 10.1016/S2095-3119(14)60786-3
  • Silva AM, Manfreb LA, Rodrigo CU, et al. Organic farm does not improve neither soil, or water quality in rural watersheds from southeastern Brazil. Ecol Indic. 2015;48:132–146. doi: 10.1016/j.ecolind.2014.07.044
  • Greenland DJ. Soil science and sustainable land management. In: Syers JK, Rimmer DL, editors. Soil science and sustainable land management in the tropics. Wallingford: CAB International; 1994. p. 1–15.
  • Woomer PL, Martin A, Albrecht A, et al. The importance and management of soil organic matter in the tropics. In: Woomer PL, Swift MJ, editors. The biological management of tropical soil fertility. Chichester: John Wiley & Sons; 1994. p. 47–80.
  • Clark MS, Horwath WR, Shennan C, et al. Changes in soil chemical properties resulting from organic and low-input farming practices. Agron J. 1998;90:662–671. doi: 10.2134/agronj1998.00021962009000050016x
  • Luis PA, Luisa D, Beatriz L, et al. Organic farming has little effect on carbon stock in a Mediterranean dehesa (southern Spain). Catena. 2014;113:9–17. doi: 10.1016/j.catena.2013.09.002
  • Sanchez PA, Jama BA. Soil fertility replenishment takes off in East and Southern Africa. In: Vanlauwe B, Diels J, Sanginga N, et al., editors. Integrated plant nutrient management in sub-Saharan Africa: from concept to practice. Wallingford: CAB International; 2002. p. 23–45.
  • Morlat R. Long-term additions of organic amendments in a Loire valley vineyard on a calcareous sandy soil. II. Effects on root system, growth, grape yield, and foliar nutrient status of a cabernet franc vine. Am J Enol Vitic. 2008;59:364–374.
  • Giller KE. Targeting management of organic resources and mineral fertilizers: can we match scientists’ fantasies with farmers’ realities? In: Vanlauwe B, Diels J, Sanginga N, et al., editors. Integrated plant nutrient management in sub-Saharan Africa: from concept to practice. Wallingford: CAB International; 2002. p. 155–171.
  • Zarabi M, Jalai M. Rate of nitrate and ammonium release from organic residues. Compost Sci Util. 2012;20:222–229. doi: 10.1080/1065657X.2012.10737052
  • Askekaard M, Eriksen J, Olesen JE. Exchangeable potassium and potassium balances in organic crop rotations on a coarse sand. Soil Use Manage. 2003;19:96–103. doi: 10.1079/SUM2002173
  • Blevins DG. Role of potassium in protein metabolism in plants. In: Munson RD, editor. Potassium in agriculture. Madison, WI: American Society of Agronomy; 1985. p. 131–162.
  • Brennan RF, Bollard MDA. Influence of potassium and nitrogen fertilizer in yield, oil, and protein concentration of canola (Brassica napus L.) grain harvested in south Western Australia. Australian J Exp Agric. 2007;47:976–983. doi: 10.1071/EA06114
  • Josefsen AB, Sandbech H, Kaergard N, et al. Ecological scenarios for Denmark. A report from the interdisciplinary group in the committee for pesticides. Danish Environmental Protection Agency; 1999. (In Danish).
  • Askegaard M, Eriksen J. Exchangeable potassium in soil as indicator of potassium status in an organic crop rotation on loamy sand. Soil Use Manage. 2002;18(2):84–90. doi: 10.1111/j.1475-2743.2002.tb00224.x
  • Nguyen ML, Haynes RJ, Goh KM. Nutrient budgets and status in three pairs of conventional and alternative mixed cropping farms in Canterbury New Zealand. Agr Ecosyst Environ. 1995;52:149–162. doi: 10.1016/0167-8809(94)00544-O
  • Gosling P, Shepherd M. Long-term changes in soil fertility in organic arable farming systems in England, with particular reference to phosphorus and potassium. Agr Ecosyst Environ. 2005;105:425–432. doi: 10.1016/j.agee.2004.03.007
  • Løes AK, Øgaard AF. Long-term changes in extractable soil phosphorus (P) in organic dairy farming systems. Plant Soil. 2001;237:321–332. doi: 10.1023/A:1013328228904
  • Haraldsen TK, Asdal Å, Grasdalen C, et al. Nutrient balances and yields during conversion to organic cropping systems on silt loam and clay soils in Norway. Biol Agric Hort. 2001;17:229–246. doi: 10.1080/01448765.2000.9754844
  • Andrist-Rangel Y, Edwards AC, Hillier S, et al. Long-term K dynamics in organic and conventional mixed cropping systems as related to management and soil properties. Agr Ecosys Environ. 2007;122:413–426. doi: 10.1016/j.agee.2007.02.007
  • Berry PM, Stockdale EA, Sylvester-Bradley R, et al. N, P and K budgets for crop rotations on nine organic farms in the UK. Soil Use Manage. 2003;19:112–118. doi: 10.1079/SUM2003176
  • Öborn I, Andrist-Rangel Y, Askekaard M, et al. Critical aspects of potassium management in agricultural systems. Soil Use Manage. 2005;21(1):102–112. doi: 10.1079/SUM2005297
  • Fortune S, Hollies J, Stockdale EA. Effects of different potassium fertilizers suitable for use in organic farming systems on grass/clover yields and nutrient offtakes and interactions with nitrogen supply. Soil Use Manage. 2004;20(4):403–409. doi: 10.1111/j.1475-2743.2004.tb00389.x
  • Srinivasarao Ch, Vittal KPR, Kundu S, et al. Continuous cropping, fertilization, and organic manure application effects on potassium in an alfisol under arid conditions. Commun Soil Sci Plan. 2010;41:783–796. doi: 10.1080/00103620903565993
  • Henao J, Baanante C. Estimating rates of nutrient depletion in soils of agricultural lands of Africa. Muscle Shoals: IFDC; 1999.
  • Stoorvogel JJ, Smaling EMA, Janssen BH. Calculating soil nutrient balances in Africa at different scales. Ferti Res. 1993;35:227–235. doi: 10.1007/BF00750641
  • Dudal R, Byrnes BH. The effects of fertilizer use on the environment. In: van Reuler H, Prins WH, editors. The role of plant nutrients for sustainable food crop production in sub-Saharan Africa. Leidschendam: Dutch Association of Fertilizer Producers; 1993. p. 141–162.
  • Duguma B, Gochowski J, Bakala J. Smallholder cacao (Theobroma cacao Linn.) cultivation in agroforestry systems of West and Central Africa: Challenges and opportunities. Agroforest Syst. 2001;51:177–188. doi: 10.1023/A:1010747224249
  • Kotto-Same J, Woomer PL, Appolinaire M, et al. Carbon dynamics in slash-and-burn agriculture and land use alternatives of the humid forest zone in Cameroon. Agr Ecosyst Environ. 1997;65:245–256. doi: 10.1016/S0167-8809(97)00060-1
  • Oladokun MAO. Use of cocoa pod husk as fertilizer for maize production. Niger J Agron. 1986;1(3):103–109.
  • Aikpokpodion PE. Nutrients dynamics in cocoa soils, leaf and beans in Ondo state. Niger J Agr Sci. 2010;1(1):1–9.
  • Balasundram SK, Robert PC, Mulla DJ, et al. Spatial variability of soil fertility variables influencing yield in oil palm (Elaeis guineensis Jacq.). Asian J Plant Sci. 2006;5:397–408. doi: 10.3923/ajps.2006.397.408
  • Naidu LGK, Ramamurthy V, Sidhu GS, et al. Emerging deficiency of potassium in soils and crops of India. Karnataka J Agr Sci. 2011;24:12–19.
  • Jouquet EP, Bloquel ET, Thu Doan M, et al. Do Compost and Vermicompost Improve Macronutrient Retention and Plant Growth in Degraded Tropical Soils? Compost Sci Util. 2011;19:15–24. doi: 10.1080/1065657X.2011.10736972

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