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Original Articles

Changes in Biological Properties in Soil Amended with Rock Phosphate and Waste Mica Enriched Compost using Biological Amendments and Chemical Fertilizers Under Wheat-Soybean Rotation

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Pages 2050-2073 | Received 29 Dec 2011, Accepted 16 Aug 2012, Published online: 08 Aug 2014

REFERENCES

  • Abdelhamid, M.T., H. Takatsugu, and O. Shinya. 2004. Composting of rice straw with oilseed rape cake and poultry manure and its effects on faba bean (Vicia faba L) growth and soil properties. Bioresource Technology 93: 183–189.
  • Bandick, A.K., and R.P. Dick. 1999. Field management effects on soil enzyme activities. Soil Biology and Biochemistry 31: 1471–1479.
  • Bending, G.D., C. Putland, and F. Rayns. 2000. Changes in microbial community metabolism and labile organic matter fractions as early indicators of the impact of management on soil biological quality. Biology and Fertility of Soils 31: 78–84.
  • Biswas, D.R., and G. Narayanasamy, G. 2006. Rock phosphate enriched compost: An approach to improve low-grade Indian rock phosphate. Bioresource Technology 97: 2243–2251.
  • Biswas, D.R., G. Narayanasamy, S.C. Datta, S. Geeta, B. Mamata, D. Maiti, A. Mishra, and B.B. Basak. 2009. Changes in nutrient status during preparation of enriched organomineral fertilizers using rice straw, low-grade rock phosphate, waste mica, and phosphate solubilizing microorganism. Communications in Soil Science and Plant Analysis 40: 2285–2307.
  • Bolton, H., L.F. Elliott, R.I. Papendick, and D.F. Bezdicek. 1985. Soil microbial biomass and selected soil enzyme activities: effect of fertilization and cropping practices. Soil Biology and Biochemistry 17: 297–302.
  • Bouyoucos, G.J. 1962. Hydrometer method improved for making particle size analysis of soils. Agronomy Journal 54: 464–465.
  • Bremner, J.M., and D.W. Nelson. 198.2. Chemical decomposition of nitrite in soils. In: Transactions, 9th International Congress of Soil Science, Vol 11, pp. 495–503. Adelaide, Australia: International Congress of Soil Science.
  • Brookes, P.C., D.S. Powlson, and D.S. Jenkinson. 1984. Phosphorus in the soil microbial biomass. Soil Biology and Biochemistry 16: 169–175.
  • Brookes, P.C., D.S. Powlson, and D.S. Jenkinson. 1982. Measurement of microbial biomass phosphorus in soil. Soil Biology and Biochemistry 14: 319–332
  • Bucher, A.E. 1999. Evaluating soil management using indicators of soil quality. M.Sc. Thesis, Department of Crop and Soil Sciences, The Pennsylvania State University, University Park, Pennsylvania, USA.
  • Burns, R.G. 1982. Enzyme activity in soil: location and a possible role in microbial ecology. Soil Biology and Biochemistry 14: 423–427.
  • Chen, X., J.J. Tang, Z.G. Fang, and S. Hu. 2002. Phosphate-solubilizing microbes in rhizosphere soils of 19 weeds in southeastern China. Journal of Zhejiang University Science 3: 355–361.
  • Coleman, D.C., C.P. P. Reid, and C.V. Cole. 1983. Biological strategies of nutrient cycling in soil systems. Advances in Ecological Research 13: 5–55.
  • Diaz, L.F., G.M. Savage, L.L. Eggerth, and C.G. Golueke. 1993. Composting and Recycling Municipal Solid Waste. Boca Raton, FL:Lewis Publishers.
  • Duncan, D.B. 1955. Multiple range and multiple F-test. Biometrics 11: 1–42.
  • FAI. 2010. Fertiliser Statistics 2009–2010. The Fertiliser Association of India: New Delhi.
  • FAI. 2011. Fertiliser Statistics 2010–2011. The Fertiliser Association of India: New Delhi.
  • Goyal, S., S.K. Dhull, and K.K. Kapoor. 2005. Chemical and biological changes during composting of different organic wastes and assessment of compost maturity. Bioresource Technology 96: 1584–1591.
  • Goyal, S., M.M. Mishra, S.S. Dhankar, K.K. Kapoor, and R. Batra. 1993. Microbial biomass turnover and enzyme activities following the application of farmyard manure to field soils with and without previous long-term applications. Biology and Fertility of Soils 15: 60–64.
  • Gregorich, E.G., B.H. Ellert, E.G. Gregorich, M.R. Carter, C.M. Monreal, and B.H. Ellert. 1994. Towards a minimum data set to assess soil organic matter quality in agricultural soils. Canadian Journal of Soil Science 74: 367–385.
  • Grierson, P.F., N.B. Comerford, and E.J. Jokela. 1998. Phosphorus mineralization kinetics and response of microbial phosphorus to drying and rewetting in a Florida Spodosol. Soil Biology and Biochemistry 30: 1323–1331.
  • Hanway, J.J., and H. Heidel. 1952. Soil analysis methods as used in Iowa state college, Soil Testing Laboratory. Iowa Agriculture 54: 1–31.
  • Jackson, M.L. 1973. Methods of Chemical Analysis. New Delhi: Prentice Hall of India (Pvt.) Ltd.
  • Jenkinson, D.S., and D.S. Powlson. 1976. The effect of biological treatment on metabolism in soil. Fumigation with chloroform. Soil Biology and Biochemistry 8: 167–177.
  • Kandeler, E., S. Palli, M. Stemmer, and M.H. Gerzabek. 1999. Tillage changes microbial biomass and enzymes activities in particle-size fractions of a Haplic Chernozem. Soil Biology and Biochemistry 31: 1253–1264.
  • Kautz, T., S. Wirth, and F. Ellmer. 2004. Microbial activity in a sandy arable soil is governed by the fertilization regime. European Journal of Soil Biology 40: 87–94.
  • Keeney, D.R., and D.W. Nelson. 1982. Nitrogen-inorganic forms. In: Methods of Soil Analysis. Part 2. Chemical and Microbiological Properties, eds. A.L. Page, R.H. Miller, and D.R. Keeney, pp. 643–698. Madison, WI: ASA.
  • Klein, D.A., T.C. Loh, and R.L. Goulding. 1971. A rapid procedure to evaluate dehydrogenase activity in soil of low organic matter. Soil Biology and Biochemistry 3: 385–387.
  • Kukreja, K., M.M. Mishra, S.S. Dhankar, K.K. Kapoor, and A.P. Gupta. 1991. Effect of long-term manurial application on microbial biomass. Journal of the Indian Society of Soil Science 39: 681–684.
  • Malkomes, H.P. 1991. Existing alternative tests to measure side effects of pesticides on soil microorganisms: Dehydrogenase activity. Toxicology Environmental Chemistry 30: 167–176.
  • Mandal, A., A.K. Patra, D. Singh, A. Swarup, and E.R. Masto. 2007. Effect of long-term application of manure and fertilizer on biological and biochemical activities in soil during crop development stages. Bioresource Technology 98: 3585–3592.
  • Manjaiah, K.M., and D. Singh. 2001. Soil organic matter and biological properties after 26 years of maize–wheat–cowpea cropping as affected by manure and fertilization in a Cambisol in semiarid region of India. Agriculture, Ecosystems and Environment 86: 155–162.
  • McGill, W.B., K.R. Cannon, A. Robertson, and F.D. Cook. 1986. Dynamics of soil microbial biomass and water-soluble organic C in Breton L after 50 years of cropping to two rotations. Canadian Journal of Soil Science 66: 1–19.
  • Nandi, N., J.N. Hajra, and N.B. Sinha. 1996. Microbial synthesis of humus from rice straw following two-step composting process. Journal of the Indian Society of Soil Science 44: 416–423.
  • Nannipieri, P., S. Grego, and B. Ceccanti. 1990. Ecological significance of the biological activity in soil. In: Soil Biochemistry, Vol 6, eds. J.M. Bollag, and G. Stotzky, pp. 293–355. New York: Marcel Dekker.
  • Nannipieri, P., R.L. Johnson, and E.A. Paul. 1978. Criteria for measurement of microbial growth and activity in soil. Soil Biology and Biochemistry 10: 223–229.
  • Ne`ble, S., V. Calvert, J. Le Petit, and S. Criquet. 2007, Dynamic of phosphatase activities in a cork oak litter (Quercus suber L.) following sewage sludge application. Soil Biology and Biochemistry 39: 2735–2742.
  • Nishanth, D., and D.R. Biswas. 2008. Kinetics of phosphorus and potassium release from rock phosphate and waste mica enriched compost and their effect on yield and nutrient uptake by wheat (Triticum aestivum). Bioresource Technology 99: 3342–3353.
  • Oberson, A., D.K. Friesen, I.M. Rao, S. Bühler, and E. Frossard. 2001. Phosphorus transformations in an Oxisol under contrasting land-use systems: the role of the soil microbial biomass. Plant and Soil 237: 197–210.
  • Olsen, S.R. C. W. Cole, F.S. Watanabe, and L.A. Dean. 1954. Estimation of available phosphorus in soils by extraction with sodium bicarbonate. Circular 939. Washington, DC: United States Department of Agriculture.
  • Pascual, J.A., J.L. Moreno, T. Hernandez, and C. Garcia. 2002. Persistence of immobilized and total urease and phosphatase activities in a soil amended with organic wastes. Bioresource Technology 82: 73–78.
  • Powlson, D.S., and D.S. Jenkinson. 1981. A comparison of the organic matter, biomass, adenosine triphosphate and mineralizable nitrogen contents of ploughed and direct-drilled soils. The Journal of Agricultural Science 97: 713–721.
  • Pramanik, P., G.K. Ghosh, P.K. Ghosal, and P. Banik. 2007. Changes in organic C, N, P, and K and enzyme activities in vermicompost of biodegradable organic wastes under liming and microbial inoculants. Boresource Technology 98: 2485–2494.
  • Richards, L.A. 1954. Diagnosis and improvement of saline and alkali soils. USA Department of Agriculture Handbook 60. Washington, DC: USDA Government Printing Office.
  • Ritz, K., B.S. Griffiths, and R.E. Wheatley. 1992. Soil microbial biomass and activity under a potato crop fertilized with N and without C. Biology and Fertility of Soils 12: 265–271.
  • Saha, S., S. Kundu, V. Prakash, and B.L. Mina. 2008. Soil enzymatic activity as affected by long term application of farm yard manure and mineral fertilizer under a rainfed soybean–wheat system in N-W Himalaya. European Journal of Soil Biology 44: 309
  • Samar, S., R.K. Malik, R. Mangat, S. Singh, and M. Ram. 1999. Effect of rice straw burning on the efficacy of the herbicides in wheat (Triticum aestivum). Indian Journal of Agronomy 44: 361–366.
  • Seeling, B., and R.J. Zasoski. 1993. Microbial effects in maintaining organic and inorganic solution phosphorus concentrations in grassland top soil. Plant and Soil 148: 277–284.
  • Sharpley, A. 1999. Phosphorus availability. In: Handbook of Soil Science, ed. M.E. Sumner, pp. D19–D38. Boca Rton, FL: CRC Press,
  • Simek, M., D.W. Hopkins, J. Kalcik, T. Picek, H. Santruckova, J. Stana, and K. Travnik. 1999. Biological and chemical properties of arable soils affected by long-term organic and inorganic fertilizer applications. Biology and Fertility of Soils 29: 300–308.
  • Singh, R.D., and D.V. Yadav. 1996. Transformation of N, P and organic matter during paddy straw decomposition with and without rock phosphate. Agriculture Waste 18: 247–251.
  • Srivastava, S.C., and J.S. Singh. 1988. Carbon and phosphorus in the soil biomass of some tropical soils of India. Soil Biology and Biochemistry 20: 743–747.
  • Tabatabai, M.A. 1994. Soil enzymes. In: Methods of Soil Analysis, Part 2. Microbiological and Biochemical Properties, eds. R.W. Weaver, S. Angle, P. Bottomley, D. Bezdicek, S. Smith, A. Tabatabai, and A. Wollum, pp 775–833. Madison, WI: Soil Science Society of America.
  • Tabatabai, M.A., and J.M. Bremner. 1969. Use of p-nitrophenyl phosphate for assay of soil phosphatase activity. Soil Biology and Biochemistry 1: 301–307.
  • Tarafdar, J.C., and A. Jungk. 1987. Phosphatase activity in the rhizosphere and its relation to the depletion of soil organic phosphorus. Biology and Fertility of Soils 3: 199–204.
  • Tate, K.R. 1984. The biological transformation of phosphorus in soil. Plant and Soil 76: 245–256.
  • Tengerdy, R.P., and G. Szakacs. 2003. Bioconversion of lignocellulose in solid substrate fermentation. Biochemical Engineering Journal 13: 169–179.
  • Tian, G., G.O. Kolawole, G.L. Tian, and F.L. Sinclair. 1999. Phosphorus availability of phosphate rock incubated with plant residues with various chemical composition. Agroforestry Forum 9: 40–42 (Special Issue).
  • Vance, C.P., C. Uhde-Stone, and D.L. Allan. 2003. Phosphorus acquisition and use: Critical adaptations by plants for securing a nonrenewable resource. New Phytologist 157: 423–447.
  • Walkley, A., and I.A. Black. 1934. An examination of the Degtijariff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science 37: 29–38.
  • Wang, W.J., R.C. Dalal, P.W. Moody, and C.J. Smith. 2003. Relationships of soil respiration to microbial biomass, substrate availability and clay content. Soil Biology and Biochemistry 35: 273–284.
  • Watanabe, F.S., and S.R. Olsen 1965. Test of an ascorbic acid method for determining phosphorus in water and NaHCO3 extracts from soil. Proceedings of Soil Science Society of America 29: 677–678.
  • Wu, J., M. Huang, H.A. Xiao, Y.R. Su, C.L. Tong, D.Y. Huang, and J.K. Syers. 2007. Dynamics in microbial immobilization and transformations of phosphorus in highly weathered subtropical soil following organic amendments. Plant and Soil 290: 333–342.
  • Yadvinder-Singh, Bijay-Singh, and J. Timsina. 2005. Crop residue management for nutrient cycling and improving soil productivity in rice-based cropping systems in the tropics. Advances in Agronomy 85: 269–407.

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