Agus F, Subiksa IGM. 2008. Lahan Gambut: Potensi untuk Pertanian dan Aspek Lingkungan. Bogor (ID): Balai Lingkugan Tanah dan World Agroforestry Center (ICRAF).
Akbar S, Freed S, Hameed A, Gul HT, Akmal M, Malik MN, Naeem M, Khan MB. 2012. Compability of Metharhizium anisoplae with different insecticides and fungicides. Afrc. J. Of Micro research 6(17): 3956-3962.
Alexander M. 1997. Introduction to Soil Mycrobiology. 2nd Ed. New York (US): John Willey and Sons.
Alexander M. 2001. Aging, bioavaibility and overestimation of risk from environmental poluttans. Sci Technol. 34(20): 4259-4265.
[BBSDLP] Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan Pertanian. 2008. Laporan Tahunan, Konsorsium Penelitian dan Pengmbangan Perubahan Iklim pada Sektor Pertanian. Bogor (ID); Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan Pertanian.
Barchia MF. 2006. Gambut: Agroekosistem dan ransformasi Karbon. Yogyakarta (ID): Gadjah Mada University Press.
Bartha R, Lanzilotta RP, Pramer D. 1967. Stability and effects of some pesticide in soil. App Microbiology 15(1): 67-75.
Bhuyan S, Sreedharan B, Adhya TK, Sethunathan N. 1993. Enhanced
biodegradation of -hexachlorocyclohexane ( -HCH) in HCH (commercial)
acclimatized flooded soil: factors affecting its development and persistence. Pest. Sci. 38: 49–55.
Bollen GJ. 1979. Side effect of pesticide on microbial interactions. In : Schippers B, Gams W, editor. Soil-Borne Plant Pathogen. New York (US): Academic press.
Busse MD, Ratcliff AW, Shestak CJ, Power RF. 2001. Glyphosate toxicity and effect of long-term vegetation control on soil microbial communities. Soil Biol. Biochem. 33: 1777-1789.
Cycon M, Seget ZP. 2007. Effect of selected pesticide on soim microflora involved in organic matter and nitrogen transformation: pot experiment. Pol. J. Ecol. 55(2): 207-220.
Deacon J. 2004. The Microbial World: Armillaria mellea and Other Wood-decay
Fungi [Internet]. Tersedia pada:
http://helios.bto.ed.ac.uk/bto/microbes/armill.htm.
Djojosumarto P. 2008. Pestisida dan Aplikasinya. Jakarta (ID): PT Agromedia pustaka.
Elsas Jd, Smalla K. 1996. Methods for sampling soil microbes. In: Christon JH, Knudsen GR, Melnerney MJ, Stetzenbach LD, Walter MV, editor. Manual of Environmental Microbiologi. Washington D. C: ASM Press.
[EPA] Environmental Protection Agency. 1998. Fate, Transport and Transformation Test Guidelines. OPPTS 835.1220. Sedimen and Soil and Adsorption/Desorption Isotherm. United State Environmental Protection Agency.
Fitriyani IH. 2013. Uji pemberian paraquat, difenolconazole dan buthylphenylmethyl carbamat (BPMC) terhadap emisi CO2 dan CH4 serta
perubahan konsentrasi asam-asam fenolat di tanah gambut [tesis]. Bogor (ID): Institut Pertanian Bogor.
Fliessbach A, Mader P. 2004. Short and long-term effects on soil microorganisms of two potato pesticide spraying sequences with either glufosinate as defoliants. Biol. Fertil. Soils 40: 268–276.
Suciati F. 2016. Pengaruh pemberian dua jenis pestisida terhadap perubahan asam fenolat serta produksi CO2 dan CH4 pada tanah gambut [tesis]. Bogor (ID): Institut Pertanian Bogor.
Hanafiah KA. 2005. Dasar-Dasar Ilmu Tanah. Jakarta (ID): Rajawali Pers.
Handayanto E, Hairiah K. 2007. Biologi tanah: Landasan Pengelolaan Tanah Sehat. Malang: Pustaka Adipura.
Hardjowigeno S. 1986. Sumber Daya Fisik Wilayah dan Tata Guna Lahan: Histosol. Bogor (ID): Fakultas Pertanian Institut Pertanian Bogor.
Hastuti RD. 2007. Bakteri penambat nitrogen hidup bebas. Di dalam: Saraswati R, Husen E, Simanugkalit RMD, editor. Metode Analisis Biologi Tanah. Bogor (ID): Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan, Badan Penelitian dan Pengembangan Pertanian, Departemen Pertanian.
Hastuti RD, Ginting RCB. 2007. Enumerasi Bakteri, Cendawan dan Aktinomicetes. Di dalam: Saraswati R, Husen E, Simanugkalit RMD, editor. Metode Analisis Biologi Tanah. Bogor (ID): Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan, Badan Penelitian dan Pengembangan Pertanian, Departemen Pertanian.
Husen E, Saraswati R, Simanungkalit RDM. 2007. Isolasi, Karakterisasi dan Enumerasi Mikrob. Di dalam: Saraswati R, Husen E, Simanugkalit RMD, editor. Metode Analisis Biologi Tanah. Bogor (ID): Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan, Badan Penelitian dan Pengembangan Pertanian, Departemen Pertanian.
Hussain S, Tariq S, Muhammad S, Muhammad A, Azeem K. 2009. Impact of pesticides on soil microbial diversity, enzymes, and biochemical reactions. Elsivier 102: 163-168.
Inubushi K, Furukawa Y, Hadi A, Purnomo E, Tsurota H. 2003. Seasonal change of CO2, CH4, and N2O fluxes in relation to land use change in tropical eatland located in coastal area of South Kalimantan. J Chemosphere 52: 603-608.
Isminingsih. 2009. Studi kecenderungan emisi gas rumah kaca (GRK) dan neraca karbon pada berbagai sistem pengelolaan tanaman padi [Tesis]. Bogor (ID): Institut pertanian bogor.
Johansen K, Jacobsen CS, Torsvik V. 2001. Pesticide effect on bacterial diversity in agricultural soil. Biol. Ferti. Soil. 33: 443-453.
Joosten H. 2009. Peatland status and drainage related emissions in all countries of the world. The Global Peatland CO2 Picture. Wetlands International. Lynn WC, Mc Kinzie WE, Grossman RB. 1974. Field laboratory test for
characterization of histosol. Soil Sci Soc of Am J. 6: 11-20.
Maloney SE. 2001. Pesticide Degradation. In: Gadd GM, editor. Fungi in Bioremediation. Inggris (UK): Cambridge University Press.
Mosier AR, Halvorson AD, Peterson GA. Robertson GD, Sherrod L. 2004. Measurement of net global warming potential in three agroecosystem. Nutr. Cycl. Agroeco. 2(1): 35-45.
Napitupulu D. 2012. Dinamika populasi mikrob tanah dengan sistem pola tanam padi kedelai pada pertanian organik [tesis]. Bogor (ID): Institut Pertanian Bogor.
Niewiadomska A. 2004. Effect of carbendazim, imazetapirandthiramon nitrogenase activity, the number of microorganisms in soil and yield of red clover (Trifolium pretense L). Pol. J. Environ. 13, 403–410.
Noor M. 2001. Pertanian Lahan Gambut: Potensi dan Kendala. Jakarta (ID): Penerbit Kanisius.
Noor M. 2010. Lahan Gambut: Pengembangan, Konservasi, dan Perubahan Iklim. Yogyakarta (ID): Gadjah Mada University Press.
Purwoko T. 2007. Fisiologi Mikroba. Jakarta (ID): PT. Bumi Aksara.
Rache KD, Coats J. 1998. Comparative biodegradation of organophosporus insecticides in soil. Specificity of enhanced microbial biodegradation. J. Agric. Food Chem. 36: 193-199.
Rahayuningsih E. 2009. Analisis Kuantitatif Perilaku Pestisida di Tanah. Yogyakarta : Universitas Gadjah Mada.
Rao S. 1994. Mikroorganisme Tanah dan Pertumbuhan Tanaman. Jakarta (ID): UI-Press.
Rastogi G, Sani RK. 2002. Molecular techniques to assess microbial community structure, function, and dynamics in the environment. In Ahmad I, Ahmad F, Pichtel J, editor. Microbes and Microbial Technology: Agricultural and Environmental Applications. California (US) : Springer.
Rosmimik, Yuniarti E. 2007. Mikroba perombak bahan organik. Di dalam: Saraswati R, Husen E, Simanugkalit RMD, editor. Metode Analisis Biologi Tanah. Bogor (ID): Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan, Badan Penelitian dan Pengembangan Pertanian, Departemen Pertanian.
Santosa E. 2007. Mikroba pelarut fosfat. Di dalam: Saraswati R, Husen E, Simanugkalit RMD, editor. Metode Analisis Biologi Tanah. Bogor (ID): Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan, Badan Penelitian dan Pengembangan Pertanian, Departemen Pertanian.
Setyanto P. 2004. Mitigasi gas metana dari lahan sawah. Di dalam: Agus F, Adimihardja A, Harjowigeno S, Fagi AM, Hartasik W, editor. Tanah Sawah dan Teknologi Pengelolaannya. Bogor (ID): Pusat Penelitian dan Pengembangan Tanah dan Agroklimat.
Setyanto P, Burhan H. 2009. The effect of water regime and soil management on methane emission reduction from rice field. Jurnal Irigasi 4(2): 154-165. Soil Survey Staff. 1999. Key to Soil taxonomy. 9th Edition. United States
Department of Agriculture. Natural Resources Conservation Service. Subowo YB. 2013. Kemampuan Beberapa Jamur Tanah dalam Menguraikan
Pestisida Deltametrin dan Senyawa Lignoselulosa. Berita Biologi. 12(2): 231-238.
Susanti MA. 2015. Dampak penggunaan pestisida dan pengelolaan air terhadap kualitas lingkungan dan emisi karbon di lahan gambut yang disawahkan [Disertasi]. Bogor (ID): Institut Pertanian Bogor.
Suprihati. 2007. Populasi mikrob dan fluks metana (CH4) serta Nitrous oksida (N2O) pada tanah sawah: pengaruh pengelolaan air, bahan organik dan pupuk nitrogen [Disertasi]. Bogor (ID): Institut Pertanian Bogor.
Srikandi. 2010. Hubungan antara tingkat residu pestisida dan komunitas biota tanah pada lahan padi sawah [tesis]. Bogor (ID): Institut Pertanian Bogor.
Sylvia D, Fuhrmann J, Hartel P, Zuberer D. 1999. Principles and Applications of Soil Microbiology. New Jersey (US): Pearson Education.
Turetsky MR, St Louis VT. 2006. Disturbance in boreal peatlands, in: Wieder RK, Vitt DH, edited. Boreal Peatland Ecosystems. Ecological Studies, 188, Springer-Verlag, Berlin Heidelberg.
Widyastuti R, Anas I. 2013. Petunjuk Laboratorium Biologi dalam Praktek. Bogor (ID): Direktorat Jenderal Pendidikan Tinggi, Pusat Antara Universitas Bioteknologi, Institut Pertanian Bogor.
Zimdahl RL. 1993. Fundamental of weed science. Sandiego (USA): Academia Press.
LAMPIRAN
Lampiran 2 Karakteristik pestisida yang digunakan dalam penelitian
Jenis
pestisida Formulasi Bahan aktif
Kandungan bahan aktif
Konsentrasi pestisida dalam 1 ha tanah ½ dosis anjuran Dosis anjuran 2x dosis anjuran Herbisida Emulsifiable concentrate (EC) Paraquat 276 g/L 552 g 1104 g 2208 g Insektisida Emulsifiable concentrate (EC) Buthylphenylmethyl carbamat (BPMC)/ Fenobucarb 485 g/L 242.5 g 485 g 970 g
Lampiran 3 Hasil analisis ragam populasi mikrob fungsional tanah pada tanah gambut.
Sumber keragaman Derajat bebas Jumlah
kuadrat
Kuadrat
tengah F hitung Pr > F
Populasi bakteri pelarut fosfat
Pestisida (P) 6 9.1602013 1.5267002 1.77 0.1215
Waktu inkubasi (W) 3 65.6798757 21.8932919 25.42 <.0001
Interaksi P*W 18 143.0954985 7.9497499 9.23 <.0001
Populasi cendawan pelarut fosfat
Pestisida (P) 6 12.38242867 2.06373811 3.66 0.0039 Waktu inkubasi (W) 3 46.89232693 15.63077564 27.74 <.0001 Interaksi P*W 18 14.30142198 0.79452344 1.41 0.1633
Populasi bakteri selulolitik
Pestisida (P) 6 5.73732750 0.95622125 1.01 0.4307 Waktu inkubasi (W) 3 8.97728329 2.99242776 3.15 0.0320 Interaksi P*W 18 19.37756754 1.07653153 1.13 0.3476
Populasi cendawan selulolitik
Pestisida (P) 6 0.74095353 0.12349226 1.51 0.1918 Waktu inkubasi (W) 3 1.96509866 0.65503289 8.01 0.0002 Interaksi P*W 18 0.92399033 0.05133280 0.63 0.8624 Populasi Azotobacter Pestisida (P) 6 2.65099306 0.44183218 2.40 0.0392 Waktu inkubasi (W) 3 2.82210045 0.94070015 5.11 0.0034 Interaksi P*W 18 10.11813637 0.56211869 3.05 0.0007 Populasi Azospirillum Pestisida (P) 6 37.2979693 6.2163282 4.58 0.0008 Waktu inkubasi (W) 3 15.4901242 5.1633747 3.81 0.0149 Interaksi P*W 18 139.9815505 7.7767528 5.73 <.0001
Lampiran 4 Hasil analisis ragam produksi karbondioksida (CO2) dan metana (CH4).
Sumber keragaman Derajat bebas Jumlah
kuadrat
Kuadrat
tengah F hitung Pr > F
Produksi karbondioksida (CO2)
Pestisida (P) 6 746.894131 124.482355 0.75 0.6122 Waktu inkubasi (W) 3 3982.158029 1327.386010 7.99 0.0002 Interaksi P*W 18 3183.775580 176.876421 1.07 0.4088 Produksi metana (CH4) Pestisida (P) 6 2.33153414 0.38858902 2.84 0.0176 Waktu inkubasi (W) 3 2.03231472 0.67743824 4.94 0.0041 Interaksi P*W 18 2.76204757 0.15344709 1.12 0.3588