Methanol Application and Soil Water Content: Increased Production and Cultivation of Soybean Plants
Abstract
Soybean cultivation can increase its production by providing methanol and groundwater. This research aims to analyze the application of methanol, soil water content, and the interaction between methanol and soil water content to increase soybean production. The research was conducted from June to October 2022 in Pangkajene District, Pangkep Regency, South Sulawesi, Indonesia. The research used a split-plot design, and each treatment was repeated three times. The first plot is the level of water content, which consists of three levels: A1: 25–50%, A2: 50–75%, and A3: 75–100%, while the subplot is the methanol concentration, which consists of four levels: Mo: no methanol, M1: 15% methanol, M2: 30% methanol, and M3: 45% methanol. The research results show that soil water levels of 75-100% and methanol 30% have a good influence on growth and production components. Providing methanol can increase water use efficiency.
Keywords: methanol application; groundwater use; production; soybean cultivation
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MAIMUNAH G, RUSMAYADI, LANGAI B P. Pertumbuhan dan Hasil Dua Varietas Tanaman Kedelai (Glycine max. L. Merril) Dibawah Kondisi Cekaman Kekeringan pada Berbagai Stadia Tumbuh. Enviro Scienteae, 2018, 14(3), 211–221.
LEMES E M, COELHO L, ANDRADE S L, et al. Triangular greenness index to evaluate the effects of dicamba in soybean. AgriEngineering, 2022, 4(3), 758–769.
SHEA Z, SINGER W M, ZHANG B. Soybean production, versatility, and improvement. In: HASANUZZAMAN M. (ed.) Legume crops - prospects, production and uses. London: IntechOpen, 2020. https://doi.org/10.5772/intechopen.91778
QIN P, WANG T, LUO Y. A review on plant-based proteins from soybean: health benefits and soy product development. Journal of Agriculture and Food Research, 2022, 7, 100265.
SOE HTET M N, HAI J B, BO P T, et al. Evaluation of nutritive values through comparison of forage yield and silage quality of mono-cropped and intercropped maize-soybean harvested at two maturity stages. Agriculture, 2021, 11(5), 452.
SURYANDARI K C. Olahan Kedelai. Jakarta: PT Bumi Aksara, 2021.
USMAN, UMAR F, RUSLANG. Gizi dan Pangan Lokal. Padang: PT Global Eksekutif Teknologi, 2022.
LESTARI P, PUTRI R E, RINEKSANE I A, et al. Keragaman Genetik 27 Aksesi Kedelai (Glycine max L. Merr.) Introduksi Subtropis berdasarkan Marka SSR. Vegetalika, 2021, 10(1), 1–17.
RUSMANA N E P, JUSTIKA A. Growth and yield of various soy varieties (Glycine max L. Merr.) on drought stress. Jurnal Keteknikan Pertanian Tropis dan Biosistem, 2020, 8(3), 228–235.
MAHANTA S, HABIB M R, MOORE J M. Effect of high-voltage atmospheric cold plasma treatment on germination and heavy metal uptake by soybeans (Glycine max). International Journal of Molecular Sciences, 2022, 23(3), 1611.
SALAMA H S, KHALIL H E, NAWAR A I. Utilization of thinned sunflower and soybean intercrops as forage: a useful strategy for small scale farms in intensive agricultural systems. International Journal of Plant Production, 2020, 14, 487–499.
TRIYANTI D R. Outlook Komoditas Pertanian Tanaman Pangan. Jakarta: Pusat Data dan Sistem Informasi Pertanian, Sekretariat Jenderal Kementerian Pertanian, 2020.
LAMINA. Kedelai dan Pengembangannya. Jakarta: Simlex, 1989.
BASTARI T. Kebijaksanaan Pemerintah dalam Pengembangan Produksi Menuju Swasembada Kedelai. In: Makalah dalam Rangka Seminar dan Workshop “Penelitian serta Usaha Pengembangan Kedelai”, Bogor, 1991.
ASTUTI K, RAMADHANI D M, KHASANAH I N. Analisis Produktivitas Jagung dan Kedelai Di Indonesia. Jakarta: BPS-RI, 2021.
RUMINTA, IRWAN A W, NURMALA T, et al. Analisis dampak perubahan iklim terhadap produksi kedelai dan pilihan adaptasi strategisnya pada lahan tadah hujan di Kabupaten Garut. Jurnal Kultivasi, 2020, 19(2), 1089–1097.
LIU H, XIONG W, PEQUEÑO D N, et al. Exploring the uncertainty in projected wheat phenology, growth and yield under climate change in China. Agricultural and Forest Meteorology, 2022, 326, 109187.
PENG H, XIONG J, ZHANG J, et al. Water requirements and comprehensive benefit evaluation of diversified crop rotations in the Huang-Huai Plain. Sustainability, 2023, 15(13), 10229.
JUMRANI K, BHATIA V S. Influence of different light intensities on specific leaf weight, stomatal density photosynthesis and seed yield in soybean. Plant Physiology Reports, 2020, 25, 277–283.
KUMAGAI E, HASEGAWA T. Lower photosynthetic rate and photosynthetic nitrogen use efficiency in northern Japanese soybean cultivars than Midwestern US cultivars. Crop Science, 2023, 63(1), 266–277.
LI G, XIAO W, YANG T, et al. Optimization and process effect for microalgae carbon dioxide fixation technology applications based on carbon capture: a comprehensive review. C, 2023, 9(1), 35.
DRAG D W, SLATTERY R, SIEBERS M, et al. Soybean photosynthetic and biomass responses to carbon dioxide concentrations ranging from pre-industrial to the distant future. Journal of Experimental Botany, 2020, 71(12), 3690–3700.
SIMON ARAYA S, LISO V, CUI X, et al. A review of the methanol economy: the fuel cell route. Energies, 2020, 13(3), 596.
BATTAGLIA P, BUFFO G, FERRERO D, et al. Methanol synthesis through CO2 capture and hydrogenation: thermal integration, energy performance and techno-economic assessment. Journal of CO2 Utilization, 2021, 44, 101407.
LANOUE J, ST LOUIS S, LITTLE C, et al. Continuous lighting can improve yield and reduce energy costs while increasing or maintaining nutritional contents of microgreens. Frontiers in Plant Science, 2022, 13, 983222.
SARKINFULANI M, MUHAMMAD A. Yield variability of soybean [Glycine max (L.) Merrill] as affected by foliar applied kaolin under irrigation in Sudan savanna of Nigeria. Journal of Current Opinion in Crop Science, 2023, 4(2), 68–75.
SEN S, YILDIRIM I. A tutorial on how to conduct meta-analysis with IBM SPSS statistics. Psych, 2022, 4(4), 640–667.
RANE J, SINGH A K, TIWARI M, et al. Effective use of water in crop plants in dryland agriculture: implications of reactive oxygen species and antioxidative system. Frontiers in Plant Science, 2022, 12, 778270.
COHEN I, ZANDALINAS S I, FRITSCHI F B, et al. The impact of water deficit and heat stress combination on the molecular response, physiology, and seed production of soybean. Physiologia Plantarum, 2021, 172(1), 41–52.
SALISBURY F B, ROSS C. Plant physiology. Belmont, California: Wadsworth, 1992.
MOUSAVI S M, AKBARPOUR V, MORADI H, et al. Effect of methanol and ethanol foliar application on some growth characteristics and some of secondary metabolites thyme (Thymus vulgaris L.). Journal of Plant Production Research, 2021, 28(1), 213–229.
LALOUCKOVA K, MALA L, MARSIK P, et al. In vitro antibacterial effect of the methanolic extract of the Korean soybean fermented product doenjang against Staphylococcus aureus. Animals, 2021, 11(8), 2319.
SIHOTANG M C, SIPAYUNG R. Application two different calcium on sweet corn growth (Zea mays saccharata Strutt.) in Ultisol. Jurnal Pertanian Tropik, 2021, 8(2), 129–134.
GOLDSWORTHY P R, FISHER N M. The physiology of tropical field crops. Yogyakarta: Gadjah Mada University Press, 1992.
YANG X, STEENHUIS T S, DAVIS K F, et al. Diversified crop rotations enhance groundwater and economic sustainability of food production. Food and Energy Security, 2021, 10(4), e311.
DUTTA A, TRIVEDI A, NATH C P, et al. A comprehensive review on grain legumes as climate‐smart crops: challenges and prospects. Environmental Challenges, 2022, 7, 100479.
STEVENS J, FARALLI M, WALL S, et al. Stomatal responses to climate change. In: BECKLIN K M, WARD J K, WAY D A. (eds.) Photosynthesis, respiration, and climate change. Advances in photosynthesis and respiration. Cham: Springer, 2021, Volume 48: 17–47.
TAKAHASHI Y, BOSMANS K C, HSU P K, et al. Stomatal CO2/bicarbonate sensor consists of two interacting protein kinases, Raf-like HT1 and non-kinase-activity requiring MPK12/MPK4. Science Advances, 2022, 8(49), eabq6161.
BPS. Crisis, poverty and human development in Indonesia. Jakarta: Bureau of Analysis and Development, Statistics Indonesia (BPS), 1999.
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