Spent Coffee Ground (SCG) is characterized by high organic content, in the form of insoluble polysaccharides bound and phenol compounds. Phenol compounds are toxic to nature and are?a cause of environmental pollution. Composting method of this study is aerobic static batch composting with temperature control with adding activators of some fungi such as Aspergillus sp, and Penicillium sp. The purpose of the research is to fill the research gap from previous studies of spent coffee grounds compost, which requires a long time in composting, so that if it is used directly on the soil and plants, the positive effect also requires a long time. The result of composting for 28 days with this method is that mature compost has black crumb and normal pH, with characteristics of C/N ratio below 10: C1 (7.06), C2 (6.99). This value is far from the control with a C/N ratio of 8.33. Decompose rate of macromolecule are above 40% for lignin and 70% for cellulose. Implementation of compost in radish plants, resulting Germination Index above 80% which indicates that the compost is ripe: control (92.39%), C1 (183.88%), C2 (191.86%). The results of the analysis with FTIR also showed that the compost was mature and stable, and rich in minerals. So, it can be concluded that?this composting method can speed up composting time and optimize the results of compost produced.
References
[1]
Santos, C., Fonseca, J., Aires, A., Coutinho, J. and Trindade, H. (2017) Effect of Different Rates of Spent Coffee Grounds (SCG) on Composting Process, Gaseous Emissions and Quality of End-Product. Waste Management, 59, 37-47. https://doi.org/10.1016/j.wasman.2016.10.020
[2]
Murthy, P.S. and Naidu, M.M. (2012) Production and Application of Xylanase from Penicillium sp. Utilizing Coffee By-Products. Food and Bioprocess Technology, 2, 657-664. https://doi.org/10.1007/s11947-010-0331-7
[3]
Leifa, F., Pandey, A., Mohan, R., Soccol, C.R. and Mohan, R. (2000) Coffee Biotechnology and Quality. Journal of Basic Microbiology, 3, 177-187.
[4]
Cruz, R. (2014) A Dissertation: Coffee By-Product, Sustainable Agro-Industrial Recovery and Impact on Vegetables Quality. Universidade do Porto, Porto.
[5]
Ros, M., Pascual, J.A., Garcia, C., Hernandez, M.T. and Insam, H. (2006) Hydrolase Activities, Microbial Biomass and Bacterial Community in a Soil after Long-Term Amendment with Different Composts. Soil Biology and Biochemistry, 38, 3443-3452. https://doi.org/10.1016/j.soilbio.2006.05.017
[6]
Beffa, T. and Perrot, J. (1998) Le Compost. La Salamandre, NO. 128, 18-40.
[7]
Insam, H., Amor, K., Renner, M. and Crepaz, C. (1996) Changes in Functional Abilities of the Microbial Community during Composting of Manure. Microbial Ecology, 31, 77-87. https://doi.org/10.1007/BF00175077
[8]
Kimura, T. (2000) Properties of Composting Reactions and Development of New Composting Processes. In Resource Recovery and Recycling Technology of Organic Wastes. NTS Inc., Tokyo, 93-116.
[9]
Mutiara, K.A., Nurhatika, S. and dan Muhibidin, A. (2013) The Effect of Inoculum Bacteria Zymomonas mobilis and Time of Fermentation on Ethanol Production from Vegetable and Fruit Waste in Wonokromo Market Surabaya. Journal of Science and Art, 2, 218-225.
[10]
Utama, C.S., Sulistiyanto, B., Suthama, N. and Setiani, B.E. (2013) Utility of Rice Bran Mixed with Fermentation Extract of Vegetable Waste Unconditioned as Probiotics from Vegetable Market. International Journal of Science and Engineering, 2, 97-102.
[11]
Irawan, B., Kasiamdari, R.S., Sunarminto, B.H. and Sutariningsih, E. (2014) Preparation of Fungal Inoculum for Leaf Litter Composting from Selected Fungi. Journal of Agricultural and Biological Science, 9, 89-95.
[12]
Murbandono, L. (2003) A Book: Compost Making. Penebar Swadaya, Jakarta.
[13]
Subowo, Y.B. and Corazon, C. (2010) Selection of Lignin and PAH Decomposed Soil Fungi from Several Environments in Bali. Biology News, 2, 227-234.
[14]
Subowo, Y.B. (2015) Testing the Activity of Penicillium sp. R7, 5 and Aspergillus niger NK on Growing Media to Support the Growth of Rice Plants in Saline Land. Prosiding Seminar Nasional Masyarakat Biodiversitas Indonesia, 1, 1136-1141.
[15]
Adlini, N.I. (2014) Cellulolytic Microbial Selection to Degrade Lignin from Peat Soil from Rimbo Panjang Village, Kampar Riau. Riau University, Riau.
[16]
Yuleli (2009) The Use of Several Types of Fungi to Increase Growth of Rubber Plants (Hevea brasiliensis) in Peatlands. University of North Sumatra, Medan.
[17]
Martina, R.T., Marđetko, N., Kracher, D., Ludwig, R. and Šantek, B. (2018) Lignocellulose Degradation: An Overview of Fungi and Fungal Enzymes Involved in Lignocellulose Degradation. Engineering in Life Sciences, 18, 768-778. https://doi.org/10.1002/elsc.201800039
[18]
Gupta, A. and Verma, J.P. (2015) Sustainable Bio-Ethanol Production from Agroresidues: A Review. Renewable and Sustainable Energy Reviews, 41, 550-567. https://doi.org/10.1016/j.rser.2014.08.032
[19]
Gupta, V.K., Kubicek, C.P., Berrin, J.-G., Wilson, D.W., Couturier, M., Berlin, A., et al. (2016) Fungal Enzymes for Bio-Products from Sustainable and Waste Biomass. Trends in Biochemical Sciences, 41, 633-645. https://doi.org/10.1016/j.tibs.2016.04.006
[20]
Madadi, M. and Abbas, A. (2017) Lignin Degradation by Fungal Pretreatment: A Review. Journal of Plant Pathology and Microbiology, 8, 398. https://doi.org/10.4172/2157-7471.1000398
[21]
Daniel, G. and Nilsson, T. (1998) Developments in the Study of Soft Rot and Bacterial Decay. In: Bruce, A. and Palfreyman, J.W., Eds., Forest Products Biotechnology, Taylor & Francis, Abingdon-on-Thames, 37-62.
[22]
Yamane, K., Kono, M., Fukunaga, T., Iwai, K., Sekine, R., Watanabe, Y. and Iijima, M. (2014) Field Evaluation of Coffee Grounds Application for Crop Growth Enhancement, Weed Control, and Soil Improvement. Plant Production Science, 17, 93-102. https://doi.org/10.1626/pps.17.93
[23]
Gomes, T., Pereira, J.A., Ramalhosa, E., Casal, S. and Baptista, P. (2013) Effect of Fresh and Composted Spent Coffee Grounds on Lettuce Growth, Photosynthetic Pigments and Mineral Composition. VII Congreso Ibérico de Agroingenieria y Ciencias Horticolas, Madrid, 26-29 August 2013, 1372-1376.
[24]
Echeveria, M.C., Cardelli, A., Bedini, S., Colombini, A., Incrocci, I. and A. Castagna, A. (2012) Microbial Enhanced Composting of Wet Olive Husks. Bioresource Technology, 104, 509-517. https://doi.org/10.1016/j.biortech.2011.11.042
[25]
Joshi, R., Singh, J. and Vig, A.P. (2015) Vermicompost as an Effective Organic Fertilizer and Biocontrol Agent: Effect on Growth, Yield and Quality of Plants. Reviews in Environmental Science and Bio/Technology, 14, 137-159. https://doi.org/10.1007/s11157-014-9347-1
[26]
Zeng, J., Price, G.W. and Arnold, P. (2012) Evaluation of an Aerobic Composting Process for the Management of Specified Risk Materials (SRM). Journal of Hazardous Materials, 219-220, 260-266. https://doi.org/10.1016/j.jhazmat.2012.04.003
[27]
Gill, S.S., Jana, A.M. and Shrivastav, A. (2014) Aerobic Bacterial Degradation of Kitchen Waste: A Review. Journal of Microbiology, Biotechnology and Food Sciences, 6, 477-483.
[28]
Asmak, A., Endar, H., Taizo, M., Yoshiharu, M. and Hiroyuki, H. (2020) Evaluation of Potency Spent Coffee Grounds for Make Black Compost. E3S Web of Conferences, 142, Article No. 04002. https://doi.org/10.1051/e3sconf/202014204002
[29]
Association of Official Agriculture Chemists (2002) Official Methods of Analysis of AOAC International, In: Horwitz, W., Ed., Agricultural Chemicals, Contaminants, Drugs, 17th Edition, AOAC International, Gaithersburg.
[30]
CEN Change (1999) European Standards for Waste Sampling. CEN Change, Paris.
[31]
Kalab, M. (2008) Conventional Scanning Electron Microscopy of Bacteria. Food Microstructure, No. 10, 95-111. https://doi.org/10.22443/rms.inf.1.33
[32]
Sreedevi, S., Sajith, S. and Benjamin, S. (2013) Cellulase Producing Bbacteria from the Wood-Yards on Kallai River Bank. Advances in Microbiology, 3, 326-332. http://dx.doi.org/10.4236/aim.2013.34046
[33]
Zucconi, F., Pera, A., Forte, M. and de Bertoldi, M. (1981) Evaluating Toxicity of Immature Compost. BioCycle, 22, 54-57.
[34]
Smidt, M.E. and Tintner, J. (2008) Reproducibility of FTIR Spectra of Compost, Municipal Solid Waste and Landfill Material. Applied Spectroscopy, 62, 190-196. https://doi.org/10.1366/000370208783575537
[35]
Mussatto, S.I., Ballesteros, L.F., Martins, S. and Teixeira, J.A. (2011) Extraction of Antioxidant Phenolic Compounds from Spent Coffee Grounds. Separation and Purification Technology, 83, 173-179. https://doi.org/10.1016/j.seppur.2011.09.036
[36]
Varadachari, V. and Ghosh, K. (1984) On Humus Formation. Plant and Soil, 77, 305-313. https://doi.org/10.1007/BF02182933
[37]
Fustec, E., Chauvet, E. and Gas, G. (1989) Lignin Degradation and Humus Formation in Alluvial Soils and Sediments. Applied and Environmental Microbiology, 55, 922-926. https://doi.org/10.1128/AEM.55.4.922-926.1989
[38]
Inbar, Y., Chen, Y. and Hadar, Y. (1989) Solid-State Carbon-13 Nuclear Magnetic Resonance and Infrared Spectroscopy of Composted Organic Matter. Soil Science Society of America Journal, 53, 1695-1701. https://doi.org/10.2136/sssaj1989.03615995005300060014x
Hakil, M. and Gonzalez, D.S. (1998) Degradation and Product Analysis of Caffeine and Related Dimethylxanthines by Filamentous Fungi. Enzyme and Microbial Technology, 22, 355-359. https://doi.org/10.1016/S0141-0229(97)00205-6
[41]
Watanabe, T. (2002) Pictorial Atlas of Soil and Seed Fungi Morphologies of Cultured Fungi and Key to Species. 2nd Edition, CRC Press, Boca Raton. https://doi.org/10.1201/9781420040821
[42]
Kasana, R.C., Salawan, R., Dhar, H., Dutt, S. and Gulati, A. (2008) A Rapid and Easy Method for the Detection of Microbial Celluloses on Agar Plates Using Gram’s Iodine. Current Microbiology, 5, 503-507. https://doi.org/10.1007/s00284-008-9276-8
[43]
Shahriarinour, M., Wahab, M.N.A., Ariff, A. and Mohamad, R. (2011) Screening, Isolation and Selection of Cellulosic Fungi from Oil Palm Empty Fruit Bunch Fibre. Biotechnology, 10, 108-113. https://dx.doi.org/10.3923/biotech.2011.108.113
[44]
Marlina, E.T. (2009) Bioconversion of Livestock Industry Waste. Unpad Press, Bandung.
[45]
Kiyonori, H. (1990) Production of Compost from Organic Wastes. ASPAC. Food and Fertilizer Technology Center. Extension Bulletin, 311.
[46]
Cáceres, R., Malińska, K and Marfà, O. (2018) Nitrification within Composting: A Review. Waste Management, 72, 119-137. https://doi.org/10.1016/j.wasman.2017.10.049
[47]
Lasaridi, S. (1998) A Simple Respirometric Technique for Assessing Compost Stability. Water Research, 32, 3717-3723. https://doi.org/10.1016/S0043-1354(98)00143-2
[48]
Barberis, R. and Nappi, P. (1996) Evaluation of Compost Stability. In: de Bertoldi, M., Srequi, P., Lremmes, B. and Papi, T., Eds., The Science of Composting, Springer, Dordrecht, 175-184. https://doi.org/10.1007/978-94-009-1569-5_18
[49]
Butler, T.A., Sikora, L.J., Steinhilber, P.M. and Douglass, L.W. (2001) Compost Age and Sample Storage Effects on Maturity Indicators of Biosolids Compost. Journal of Environmental Quality, 30, 2141-2148. https://doi.org/10.2134/jeq2001.2141
[50]
Bernal, M.P., Paredes, C., Sanchez-Monedero, M.A. and Cegarra, J. (1998) Maturity and Stability Parameters of Composts Prepared with a Wide Range of Organic Wastes. Bioresource Technology, 63, 91-99. https://doi.org/10.1016/S0960-8524(97)00084-9
[51]
Kassegn, G., Hiluf, K., Gebregziabher, G., Degefe, G. and Kumera, B. (2015) Physicochemical Characterization and Microbial Identifcation of Compost Produced from Municipal Solid Waste in Shewa Robit Town, Ethiopia. Research Journal of Agricultural and Environmental Sciences, 2, 25-30.
[52]
Getahun, T., Nigusie, A., Entele, T., Van Gerven, T., Van der Bruggen, B. (2012) Effect of Turning Frequencies on Composting Biodegradable Municipal Solid Waste Quality. Resources, Conservation and Recycling, 65, 79-84. https://doi.org/10.1016/j.resconrec.2012.05.007
[53]
Dadi, D., Daba, G., Beyene, A., Luis, P. and Van der Bruggen, B. (2019) Composting and Co Composting of Coffee Husk and Pulp with Source Separated Municipal Solid Waste: A Breakthrough in Valorization of Coffee Waste. International Journal of Recycling of Organic Waste in Agriculture, 8, 263-277. https://doi.org/10.1007/s40093-019-0256-8
[54]
Singh, A., Shahid, M., Srivastava, M., Pandey, S., Sharma, A. and Kumar, V. (2014) Optimal Physical Parameters for Growth of Trichoderma Species at Varying pH, Temperature and Agitation. Virology & Mycology, 3, Article No. 127.
[55]
Riffaldi, R., Leviminzi, R., Pera, A. and Debertoldi, M. (1986) Evaluation of Compost Maturity by Means of Chemical and Microbial Analyses. Waste Management & Research, 4, 387-396. https://doi.org/10.1177/0734242X8600400157
[56]
Huang, G.F., Wong, J.W.C., Wu, Q.T. and Nagar, B.B. (2004) Effect of C/N on Composting of Pig Manure with Sawdust. Waste Management, 24, 805-813. https://doi.org/10.1016/j.wasman.2004.03.011
[57]
Amir, S., Hafidi, M., Merlina, G. and Revel, J.C. (2005) Sequential Extraction of Heavy Metals during Composting of Sewage Sludge. Chemosphere, 59, 801-810. https://doi.org/10.1016/j.chemosphere.2004.11.016
[58]
Haroun, M., Idris, A. and Omar, S. (2009) Analysis of Heavy Metals during Composting of the Tannery Sludge Using Physicochemical and Spectroscopic Techniques. Journal of Hazardous Materials, 165, 111-119. https://doi.org/10.1016/j.jhazmat.2008.09.092
[59]
Alvira, P., Negro, M.J. and Ballesteros, M. (2011) Effect of endoxylanase and α-La- rabinofuranosidase Supplementation on the Enzymatic Hydrolysis of Steam Exploded Wheat Straw. Bioresource Technology, 102, 4552-4558. https://doi.org/10.1016/j.biortech.2010.12.112
[60]
Caricasole, P., Provenzano, M.R., Hatcher, P.G. and Senesi, N. (2011) Evolution of Organic Matter during Composting of Different Organic Wastes Assessed by CPMAS13 C NMR Spectroscopy. Waste Management, 31, 411-415. https://doi.org/10.1016/j.wasman.2010.09.020
[61]
Zhao, L., Gu, W.M., He, P.J. and Shao, L.M. (2011) Biodegradation Potential of Bulking Agents Used in Sludge Bio-Drying and Their Contribution to Bio-Generated Heat. Water Research, 45, 2322-2330. https://doi.org/10.1016/j.watres.2011.01.014
[62]
Bikovens, O., Dizhbite, T. and Telysheva G. (2012) Characterisation of Humic Substances Formed during Co-Composting of Grass and Wood Wastes with Animal Grease. Environmental Technology, 33, 1427-1433. https://doi.org/10.1080/09593330.2011.632652
[63]
Hachicha, R., Rekik, O., Hachicha, S., Ferchichi, M., Woodward, S., Moncef, N., Cegarra, J. and Mechichi, T. (2012) Co-Composting of Spent Coffee Ground with Olive Mill Wastewater Sludge and Poultry Manure and Effect of Trametes versicolor Inoculation on the Compost Maturity. Chemosphere, 88, 677-682. https://doi.org/10.1016/j.chemosphere.2012.03.053
[64]
Luz Cayuela, M., Sanchez-Monedero, M.A., Roig, A., Sinicco, T. and Mondini, C. (2012) Biochemical Changes and GHG Emissions during Composting of Lignocellulosic Residues with Different N-Rich by-Products. Chemosphere, 88, 196-203. https://doi.org/10.1016/j.chemosphere.2012.03.001
[65]
Wang, L.P., Shen, Q.R., Yu, G.H., Ran, W. and Xu, Y.C. (2012) Fate of Biopolymers during Rapeseed Meal and Wheat Bran Composting as Studied by Two-Dimensional Correlation Spectroscopy in Combination with Multiple Fluorescence Labeling Techniques. Bioresource Technology, 105, 88-94. https://doi.org/10.1016/j.biortech.2011.11.064
[66]
Bernabé, G.A., Kobelnik, M., Almeida, S., Ribeiro, C.A. and Crespi, M.S. (2013) Thermal Behavior of Lignin and Cellulose from Waste Composting Process. Journal of Thermal Analysis and Calorimetry, 111, 589-595. https://doi.org/10.1007/s10973-012-2276-8
[67]
He, X.S., Xi, B.D., Jiang, Y.H., He, L.-S., Li, D., Pan, H.-W., et al. (2013) Structural Transformation Study of Water-Extractable Organic Matter during the Industrial Composting of Cattle Manure. Microchemical Journal, 106, 160-166. https://doi.org/10.1016/j.microc.2012.06.004
[68]
Iwai, H., Fukushima, M., Yamamoto, M., Komai, T. and Kawabe, Y. (2013) Characterization of Seawater Extractable Organic Matter from Bark Compost by TMAH-py-GC/MS. Journal of Analytical and Applied Pyrolysis, 99, 9-15. https://doi.org/10.1016/j.jaap.2012.11.012
[69]
Paradelo, R., Moldes, A.B. and Barral, M.T. (2013) Evolution of Organic Matter during the Mesophilic Composting of Lignocellulosic Winery Wastes. Journal of Environmental Management, 116, 18-26. https://doi.org/10.1016/j.jenvman.2012.12.001
[70]
Blanchette, R.A., Held, B.W., Jurgens, J.A., McNew, D.L., Harrington, T.C., Duncan, S.M. and Farrell, R.L. (2004) Wood-Destroying Soft-Rot Fungi in the Historic Expedition Huts of Antarctica. Applied and Environmental Microbiology, 70, 1328-1335. https://doi.org/10.1128/AEM.70.3.1328-1335.2004
[71]
Rodriguez, A., Perestelo, F., Carnicero, A., Regalado, V., Perez, R., De La Fuente, G. and Falcon, M.A. (1996) Degradation of Natural Lignins and Lignocellulosic Substrates by Soil-Inhabiting Fungi Imperfecti. FEMS Microbiology Ecology, 21, 213-219.
[72]
Regalado, V., Rodrí′guez, A., Perestelo, F., Carnicero, A., De La Fuente, G., Falcon, M.A. (1997) Lignin Degradation and Modification by the Soil-Inhabiting Fungus Fusarium Proliferatum. Applied and Environmental Microbiology, 63, 3716-3718. https://doi.org/10.1128/AEM.63.9.3716-3718.1997
[73]
Tuomela, M., Vikman, M., Hatakka, A. and Ita¨vaara, M. (2000) Biodegradation of Lignin in a Compost Environment: A Review. Bioresource Technology, 72,169-183. https://doi.org/10.1016/S0960-8524(99)00104-2
[74]
Kluczek-Turpeinen, B., Tuomela, M., Hatakka, A. and Hofrichter, M. (2003) Lignin Degradation in a Compost Environment by the Deuteromycete Paecilomyces Inflatus. Applied Microbiology and Biotechnology, 61, 374-379. https://doi.org/10.1007/s00253-003-1272-0
[75]
Haider, K. and Trojanowski, J. (1975) Decomposition of Specifically 14C-Labelled Phenol and Dehydropolymers of Coniferyl Alcohols as Model for Lignin Degradation by Soft- and White-Rot Fungi. Archives of Microbiology, 105, 33-41. https://doi.org/10.1007/BF00447109
[76]
Kirk, T.K. and Farrell, R.L. (1987) Enzymatic “Combustion”: The Microbial Degradation of Lignin. Annual Review of Microbiology, 41, 465-505. https://doi.org/10.1146/annurev.mi.41.100187.002341
[77]
Hatakka, A. (2001) Biodegradation of Lignin. In: Hofrichter, M. and Steinbüchel, A., Eds., Biopolymers, Lignin, Humic Substances and Coal, Vol. 1, Wiley-VCH, Weinheim, 129-180. https://doi.org/10.1002/3527600035.bpol1005
[78]
Kahjoo, G. and Rolf, H. (2003) General Oil Palm Nutrition. In: Fairhurst, T.H. and Hardter, R., Eds., Oil Palm: Management for Large and Sustainable Yields, PPI, La Crosse, 191-230.
[79]
Boroomand, N. and Grouh, M.S.H. (2012) Macroelements Nutrition (NPK) of Medicinal Plants: A Review. Journal of Medicinal Plants Research, 6, 2249-2255.
[80]
House, W.A., Howson, M.R. and Pethybridge, A.D. (1988) Crystallisation Kinetics of Calcite in the Presence of Magnesium Ions. Journal of the Chemical Society, Faraday Transactions 1: Physical Chemistry in Condensed Phases, 84, 2723-2734. https://doi.org/10.1039/F19888402723
[81]
Kulcu, R. and Yaldiz, O. (2004) Determination of Aeration Rate and Kinetics of Composting Some Agricultural Wastes. Bioresource Technology, 93, 49-57. https://doi.org/10.1016/j.biortech.2003.10.007
[82]
Liu, K. and Price, G. (2011) Evaluation of Three Composting Systems for the Management of Spent Coffee Grounds. Bioresource Technology, 102, 7966-7974. https://doi.org/10.1016/j.biortech.2011.05.073
[83]
Moharana, P. and Biswas, D. (2016) Assessment of Maturity Indices of Rock Phosphate Enriched Composts Using Variable Crop Residues. Bioresource Technology, 222, 1-13. https://doi.org/10.1016/j.biortech.2016.09.097
[84]
Raj, D. and Antil, R. (2010) Evaluation of Maturity and Stability Parameters of Composts Prepared from Agro-Industrial Wastes. Bioresource Technology, 102, 2868-2873. https://doi.org/10.1016/j.biortech.2010.10.077
[85]
Awasthi, R., Gaur, P., Turner, N., Vadez, V., Siddique, K. and Nayyar, H. (2017) Effects of Individual and Combined Heat and Drought Stress during Seed Filling on the Oxidative metabolism and Yield of Chickpea (Cicer arietinum) Genotypes Differing in Heat and Drought Tolerance. Crop and Pasture Science, 68, 823-841. https://doi.org/10.1071/CP17028
[86]
Tiquia, S.M. (2005) Microbiological Parameters as Indicators of Compost Maturity. Journal of Applied Microbiology, 99, 816-828. https://doi.org/10.1111/j.1365-2672.2005.02673.x
[87]
Reveille, J. and Solomon, D. (2003) Evidence-Based Guidelines for the Use of Immunologic Tests: Anticentromere, Scl-70, and Nucleolar Antibodies. Arthritis Rheum, 49, 399-412. https://doi.org/10.1002/art.11113
[88]
Bohm, D. (2009) Compost Quality Determination Using Infrared Spectroscopy and Multivariate Data Analysis. Universität Für Bodenkultur Wien, Wien
[89]
Kacurakova, M., Smith, A.C., Gidley, M.J. and Wilson, R.H. (2002) Molecular Interactions in Bacterial Cellulose Composites Studied by ID FT-IR and Dynamic 2D FT-IR Spectroscopy. Carbohydrate Research, 337, 1145-1153. https://doi.org/10.1016/S0008-6215(02)00102-7
[90]
Matias, M.C., Orden, M.U., Sanchez, C.G. and Urreaga, J.M. (2000) Comparative Spectroscopic Study of the Modification of Cellulose Materials with Different Coupling Agents. Journal of Applied Polymer Science, 75, 256-266. https://doi.org/10.1002/(SICI)1097-4628(20000110)75:2<256::AID-APP8>3.0.CO;2-Z
[91]
Zancada, M.C., Almendros, G. and Ballesta, R.J. (2003) Humus Quality after Eucalypti Reforestations in Asturias (Northern Spain). Science of the Total Environment, 313, 245-258. https://doi.org/10.1016/S0048-9697(03)00255-9
[92]
Smidt, E., Lechner, P., Schwanninger, M., Haberhauer, G. and Gerzabek, M.H. (2002) Characterization of Waste Organic Matter by FT-IR Spectroscopy: Application in Waste Science. Applied Spectroscopy, 56, 1170-1175. https://doi.org/10.1366/000370202760295412
[93]
Filip, Z. and Bielek, P. (2002) Susceptibility of Humic Acids from Soils with Various Contents of Metals to Microbial Utilization and Transformation. Biology and Fertility of Soils, 36, 426-433. https://doi.org/10.1007/s00374-002-0559-0
[94]
Senesi, N., D’Orazio, V. and Ricca, G. (2003) Humic Acids in the First Generation of Eurosoils. Geoderma, 116, 325-344. https://doi.org/10.1016/S0016-7061(03)00107-1