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SOIL & CROP SCIENCES

Application of biochar and biological fertilizer to improve soil quality and Oryza sativa L. productivity

ORCID Icon, & ORCID Icon
Article: 2207416 | Received 06 Feb 2023, Accepted 22 Apr 2023, Published online: 01 May 2023

References

  • Ammal, A., Abunyewa, A. A., & Yeboah, E. (2020). Influence of integrated soil fertility management on the vegetative growth parameters of Zea mays in the guinea savanna eco-zone of Ghana. Journal of Agricultural Sciences, Belgrade, 65(2), 187–11. https://doi.org/10.2298/JAS2002187A
  • Awad, Y. M., Wang, J., Igalavithana, A. D., Tsang, D. C. W., Kim, K. H., Lee, S. S., & Ok, Y. S. (2018). Biochar effects on rice paddy: Meta-analysis. Advances in Agronomy, 148, 1–32. https://doi.org/10.1016/bs.agron.2017.11.005
  • Bakhat, H. F., Bibi, N., Fahad, S., Hammad, H. M., Abbas, S., Shah, G. M., Zakir, A., Murtaza, B., Ashraf, M. R., & Ashraf, M. R. (2021). Rice husk bio-char improves brinjal growth, decreases insect infestation by enhancing silicon uptake. Silicon, 13(10), 3351–3360. https://doi.org/10.1007/s12633-020-00719-4
  • Budiono, R., Adinurani, P. G., & Soni, P. (2019). Effect of new NPK fertilizer on lowland rice (Oryza sativa L.) growth. IOP Conference Series: Earth and Environmental Science, 293(1), 012034. https://doi.org/10.1088/1755-1315/293/1/012034
  • Carvajal-Muño, J. S., & Carmona-Garcia, C. E. (2012). Benefits and limitations of biofertilization in agricultural practices. Livest Res Rural Dev, 24(3), 1–8.
  • Chen, L., Li, X., Peng, Y., Xiang, P., Zhou, Y., Yao, B., Zhou, Y., & Sun, C. (2022). Co-application of biochar and organic fertilizer promotes the yield and quality of red pitaya (Hylocereus polyrhizus) by improving soil properties. Chemosphere, 294, 133619. https://doi.org/10.1016/j.chemosphere.2022.133619
  • Dede, M., Asdak, C., & Setiawan, I. (2022). Spatial dynamics model of land use and land cover changes: A comparison of CA, ANN, and ANN-CA. Register: Jurnal Ilmiah Teknologi Sistem Informasi, 8(1), 38–49. https://doi.org/10.26594/register.v8i1.2339
  • Dede, M., Sewu, R. S. B., Yutika, M., & Ramadhan, F. (2018). Analisis potensi perekonomian sektor pertanian, kehutanan, dan perikanan serta pertambangan dan penggalian di Pantura Jawa Barat. In Prosiding seminar nasional epicentrum 5.5. Universitas Pendidikan Indonesia. https://doi.org/10.31227/osf.io/mc2t6
  • Ebe, S., Ohike, T., Okanami, M., & Ano, T. (2019). Components of rice husk biochar in promoting the growth, sporulation and iturin a production of Bacillus sp. strain IA. Zeitschrift für Naturforschung C, 74(7–8), 211–217. https://doi.org/10.1515/znc-2018-0223
  • Escobar, N., & Solarte, V. (2015). Microbial diversity associated with organic fertilizer obtained by composting of agricultural waste. International Journal of Bioscience, Biochemistry and Bioinformatics, 5(2), 70–79. https://doi.org/10.17706/ijbbb.2015.5.2.70-79
  • Fahmid, I. M., Jamil, A., Agustian, A., Hatta, M., Aldillah, R., Yofa, R. D., & Susilowati, S. H. (2022). Study of the impact of increasing the highest retail price of subsidized fertilizer on rice production in Indonesia. Open Agriculture, 7(1), 348–359. https://doi.org/10.1515/opag-2022-0087
  • Fang, P., Abler, D., Lin, G., Sher, A., & Quan, Q. (2021). Substituting organic fertilizer for chemical fertilizer: Evidence from apple growers in China. Land, 10(8), 858. https://doi.org/10.3390/land10080858
  • Fitriatin, B. N., Yuniarti, A., Mulyani, O., Fauziah, F. S., & Tiara, M. D. (2009). Pengaruh mikroba pelarut fosfat dan pupuk P terhadap P tersedia, aktivitas fosfatase, P tanaman dan hasil padi gogo (Oryza sativa. L.) pada ultisol. Agrikultura, 20(3), 210–215. https://doi.org/10.24198/agrikultura.v20i3.961
  • Frene, J. P., Faggioli, V., Covelli, J., Reyna, D., Gabbarini, L. A., Sobrero, P., Ferrari, A., Gutierrez, M., & Wall, L. G. (2022). Agriculture by irrigation modifies microbial communities and soil functions associated with enhancing C uptake of a steppe semi-arid soil in northern Patagonia. Frontiers in Soil Science, 2, 835849. https://doi.org/10.3389/fsoil.2022.835849
  • Glaser, B., Wiedner, K., Seelig, S., Schmidt, H. P., & Gerber, H. (2015). Biochar organic fertilizers from natural resources as substitute for mineral fertilizers. Agronomy for Sustainable Development, 35(2), 667–678. https://doi.org/10.1007/s13593-014-0251-4
  • Hadiawati, L., Sugianti, T., & Triguna, Y. (2019). Rice-husk biochar for better yield of lowland rainfed rice in Lombok, Indonesia. AIP Conference Proceedings, 2199, 040001. https://doi.org/10.1063/1.5141288
  • Haque, M., Wang, F., Yi, C., Ahmed, F., Hossen, F., Islam, M. A., Hossain, M. A., Siddique, N., & He, C. (2021). Bacillus spp. contamination: A novel risk originated from animal feed to human food chains in south-eastern Bangladesh. Frontiers in Microbiology, 12, 3852. https://doi.org/10.3389/fmicb.2021.783103
  • Harini, R., Yunus, H. S., & Hartono, S. (2012). Agricultural land conversion: Determinants and impact for food sufficiency in Sleman Regency. The Indonesian Journal of Geography, 44(2), 120–133. https://doi.org/10.22146/ijg.2394
  • Hoffmann, M. P., Cock, J., Samson, M., Janetski, N., Janetski, K., Rötter, R. P., Fisher, M., & Oberthür, T. (2020). Fertilizer management in smallholder cocoa farms of Indonesia under variable climate and market prices. Agricultural Systems, 178, 102759. https://doi.org/10.1016/j.agsy.2019.102759
  • Hossain, N., Nizamuddin, S., Griffin, G., Selvakannan, P., Mubarak, N. M., & Mahlia, T. M. I. (2020). Synthesis and characterization of rice husk biochar via hydrothermal carbonization for wastewater treatment and biofuel production. Scientific Reports, 10(1), 1–15. https://doi.org/10.1038/s41598-020-75936-3
  • Imran, I. (2021). Unprecedented response of wheat to irrigation levels and various rates of Nano-black carbon. Journal of Soil, Plant and Environment, 1(1), 19–37. https://doi.org/10.56946/jspae.v1i1.3
  • Ismail, A., Widiawaty, M. A., Jupri, J., Setiawan, I., Sugito, N. T., & Dede, M. (2022). The influence of free and open-source software-geographic information system online training on spatial habits, knowledge and skills. Malaysian Journal of Society and Space, 18(1), 118–130. https://doi.org/10.17576/geo-2022-1801-09
  • Kantikowati, E., Yusdian, Y., Karya, D. M. M., & Alia, R. R. (2022). Karakteristik pertumbuhan dan hasil padi (Oryza sativa l.) Akibat perlakuan bahan organik dan pupuk hayati. Agro Tatanen, 4(1), 15–22. https://doi.org/10.55222/agrotatanen.v4i1.651
  • Karam, D. S., Nagabovanalli, P., Rajoo, K. S., Ishak, C. F., Abdu, A., Rosli, Z., Muharam, F. M., & Zulperi, D. (2021). An overview on the preparation of rice husk biochar, factors affecting its properties, and its agriculture application. Journal of the Saudi Society of Agricultural Sciences, 21(3), 149–159. https://doi.org/10.1016/j.jssas.2021.07.005
  • Kumar, S., Sindhu, S. S., Kumar, R., & Kumar, R. (2021). Biofertilizers: An ecofriendly technology for nutrient recycling and environmental sustainability. Current Research in Microbial Sciences, 3, 100094. https://doi.org/10.1016/j.crmicr.2021.100094
  • Major, J., Rondon, M., Molina, D., Riha, S. J., & Lehmann, J. (2010). Maize yield and nutrition during 4 years after biochar application to a Colombian savanna oxisol. Plant and Soil, 333(1), 117–128. https://doi.org/10.1007/s11104-010-0327-0
  • Masulili, A., Utomo, W. H., & Syechfani, M. S. (2010). Rice husk biochar for rice-based cropping system in acid soil 1. The characteristics of rice husk biochar and its influence on the properties of acid sulfate soils and rice growth in West Kalimantan, Indonesia. The Journal of Agricultural Science, 2(1), 39–47. https://doi.org/10.5539/jas.v2n1p39
  • Mohammadi, A., Khoshnevisan, B., Venkatesh, G., & Eskandari, S. (2020). A critical review on advancement and challenges of biochar application in paddy fields: Environmental and life cycle cost analysis. Processes, 8(10), 1275. https://doi.org/10.3390/pr8101275
  • Nguyen, B. T., Trinh, N. N., Le, C. M. T., Nguyen, T. T., Tran, T. V., Thai, B. V., & Le, T. V. (2018). The interactive effects of biochar and cow manure on rice growth and selected properties of salt-affected soil. Archives of Agronomy and Soil Science, 64(12), 1744–1758. https://doi.org/10.1080/03650340.2018.1455186
  • Nurbayani, S., & Dede, M. (2022). The effect of COVID-19 on white-collar workers: The DPSIR model and its semantic aspect in Indonesia. International Journal of Society, Culture and Language, 10(2), 1–16. https://doi.org/10.22034/ijscl.2022.550921.2592
  • Oladele, S., Adeyemo, A., Awodun, M., Ajayi, A., & Fasina, A. (2019). Fasina a 2019 Effects of biochar and nitrogen fertilizer on soil physicochemical properties, nitrogen use efficiency and upland rice (Oryza sativa) yield grown on an Alfisol in Southwestern Nigeria. International Journal of Recycling of Organic Waste in Agriculture, 8(3), 295–308. https://doi.org/10.1007/s40093-019-0251-0
  • Paiman, P., Ardiyanta, A., Kusumastuti, C., Gunawan, S., & Ardiani, F. (2021). Maximizing the rice yield (L.) using NPK fertilizer. The Open Agriculture Journal, 15(1), 33–38. https://doi.org/10.2174/1874331502115010033
  • Pellejero, G., Palacios, J., Vela, E., Gajardo, O., Albrecht, L., Aschkar, G., Chrorolque, A., García-Navarro, F. J., & Jiménez-Ballesta, R. (2021). Effect of the application of compost as an organic fertilizer on a tomato crop (Solanum lycopersicum L.) produced in the field in the lower valley of the Río Negro (Argentina). International Journal of Recycling of Organic Waste, 10(2), 145–155. https://doi.org/10.30486/ijrowa.2021.1909797.1135
  • Pérez, W. A., & Torres-Bazurto, J. (2020). Carbon-nitrogen ratio in soils with fertilizer applications and nutrient absorption in banana (Musa spp.) cv. Agronomía Colombiana, 38(2), 253–260. https://doi.org/10.15446/agron.colomb.v38n2.78075
  • Petrus, H. T. B. M., Putera, A. D. P., Wangi, I. P., Ramadhian, M. A., Setiawan, H., & Prasetya, A. (2020). Prasetya a 2020 Characterization of nitrogen release in modified controlled-release-fertilizer using rice husk biochar. International Journal of Technology, 11(4), 774–783. https://doi.org/10.14716/ijtech.v11i4.3520
  • Public Health Agency of Canada. 2011 Pathogen safety data sheets: Infectious substances – Pseudomonas spp. public health agency can. Canadian Government. https://www.canada.ca/en/public-health/services/laboratory-biosafety-biosecurity/pathogen-safety-data-sheets-risk-assessment/pseudomonas.html. Retrieved April 20, 2022.
  • Rafiuddin, A., Widiatmaka, W., & Munibah, K. (2016). Land use change pattern and the balance of food production in Karawang District. Jurnal Ilmu Tanah dan Lingkungan, 18(1), 15–20. https://doi.org/10.29244/jitl.18.1.15-20
  • Rajput, R., Pokhriya, P., Panwar, P., Arunachalam, A., & Arunachalam, K. (2019). Soil nutrients, microbial biomass, and crop response to organic amendments in rice cropping system in the Shiwaliks of Indian Himalayas. International Journal of Recycling of Organic Waste, 8(1), 73–85. https://doi.org/10.1007/s40093-018-0230-x
  • Sahim, A. N., Mat, N. K. N., & Sudarmana, E. (2018). The power of innovation, distribution and supervision factor in improving performance of supply chain management of subsidized fertilizer in Indonesia. International Journal of Supply Chain Management, 7(1), 129–134.
  • Shetty, R., & Prakash, N. B. (2020). Effect of different biochars on acid soil and growth parameters of rice plants under aluminium toxicity. Scientific Reports, 10(1), 12249. https://doi.org/10.1038/s41598-020-69262-x
  • Singh, B. (2018). Rice husk ash. In R. Siddique & P. Cachim (Eds.), Waste and supplementary cementitious materials in concrete (pp. 417–460). Woodhead Publishing.
  • Sunardi, S., Nursamsi, I., Dede, M., Paramitha, A., Arief, M. C. W., Ariyani, M., & Santoso, P. (2022). Assessing the influence of land-use changes on water quality using remote sensing and GIS: A study in Cirata Reservoir, Indonesia. Science and Technology Indonesia, 7(1), 106–114. https://doi.org/10.26554/sti.2022.7.1.106-114
  • Susiati, H., Dede, M., Widiawaty, M. A., Ismail, A., & Udiyani, P. M. (2022). Site suitability-based spatial-weighted multicriteria analysis for nuclear power plants in Indonesia. Heliyon, 8(3), e09088. https://doi.org/10.1016/j.heliyon.2022.e09088
  • Sy, T. N., Van, H. T., Huu, N. C., Van, N. C., & Mitsunori, T. (2021). Rice husk and melaleuca biochar additions reduce soil CH 4 and N 2O emissions and increase soil organic matter and nutrient availability. F1000research, 10(10), 1128. https://doi.org/10.12688/f1000research.74041.2
  • Uchimiya, M., Pignatello, J. J., White, J. C., Hu, S. T., & Ferreira, P. J. (2017). Structural transformation of biochar black carbon by C60 superstructure: Environmental implications. Scientific Reports, 7(1), 11787. https://doi.org/10.1038/s41598-017-12117-9
  • Ullah, S., Liang, H., Ali, I., Zhao, Q., Iqbal, A., Wei, S., Shah, T., Yan, B., & Jiang, L. (2020). Biochar coupled with contrasting nitrogen sources mediated change s in carbon and nitrogen pools, microbial and enzymatic activity in paddy soil. Journal of Saudi Chemical Society, 24(11), 835–849. https://doi.org/10.1016/j.jscs.2020.08.008
  • Varela-Milla, O., Rivera, E. B., Huang, W. J., Chien, C., & Wang, Y. M. (2013). Agronomic properties and characterization of rice husk and wood biochars and their effect on the growth of water spinach in a field test. Journal of Soil Science and Plant Nutrition, 13(2), 251–266. https://doi.org/10.4067/S0718-95162013005000022
  • Walianggen, A. (2022). Biochar rice husk charcoal on growth and production of long bean plants (Vigna sinensis l.): Formulation analysis. AGARICUS: Advances Agriculture Science & Farming, 2(1), 1–6. https://doi.org/10.5539/jas.v2n1p39/
  • Ye, Y., Liang, X., Chen, Y., Li, L., Ji, Y., Zhu, C., & Wang, X. (2014). Carbon, nitrogen and phosphorus accumulation and partitioning, and C: N: P stoichiometry in late-season rice under different water and nitrogen managements. PloS One, 9(7), e101776. https://doi.org/10.1371/journal.pone.0101776
  • Ye, T., Li, Y., Zhang, J., Hou, W., Zhou, W., Lu, J., Xing, Y., & Li, X. (2019). Nitrogen, phosphorus, and potassium fertilization affects the flowering time of rice (Oryza sativa L.). Global Ecology and Conservation, 20, e00753. https://doi.org/10.1016/j.gecco.2019.e00753
  • Yu, L., Yu, M., Lu, X., Tang, C., Liu, X., Brookes, P. C., & Xu, J. (2018). Combined application of biochar and nitrogen fertilizer benefits nitrogen retention in the rhizosphere of soybean by increasing microbial biomass but not altering microbial community structure. The Science of the Total Environment, 640-641, 1221–1230. https://doi.org/10.1016/j.scitotenv.2018.06.018
  • Zhang, Q., Liu, X., Yu, G., Duan, B., Wang, H., Zhao, H., Feng, D., Gu, M., & Liu, L. (2022). Reasonable nitrogen regime in the main crop increased grain yields in both main and ratoon rice. Agriculture, 12(4), 527. https://doi.org/10.3390/agriculture12040527
  • Zhang, H., Ullah, F., Ahmad, R., Shah, S. U. A., Khan, A., & Adnan, M. (2022). Response of soil proteobacteria to biochar amendment in sustainable agriculture-a mini review. Journal of Soil, Plant and Environment, 1(2), 16–30. https://doi.org/10.56946/jspae.v1i2.56