Perbaikan Tanah Sulfat Masam melalui Aplikasi Biochar Diperkaya Daun Kelor dan Kalium untuk Produksi Terong

Ismail Astar, Sri Rahayu, Sherly Oktarianti, Setiawan Setiawan, Agus Suyanto

Abstract


Tanah sulfat masam merupakan kendala utama dalam pengelolaan lahan pertanian karena kemasaman tinggi dan keterbatasan hara yang menghambat produktivitas tanaman. Penelitian ini bertujuan mengevaluasi pengaruh aplikasi biochar dari sekam padi yang diperkaya ekstrak daun kelor (MLE), dikombinasikan dengan pupuk kalium (KCl), terhadap sifat kimia tanah dan produktivitas tanaman terong ungu (Solanum melongena L.). Percobaan dilakukan dengan rancangan acak lengkap faktorial menggunakan tiga dosis biochar-MLE (5, 10, 15 t ha⁻¹) dan tiga dosis KCl (100, 200, 300 kg ha⁻¹), masing-masing diulang tiga kali. Hasil menunjukkan bahwa kombinasi dosis tertinggi (15 t ha⁻¹ biochar-MLE + 300 kg ha⁻¹ KCl) secara signifikan meningkatkan pH tanah (dari 4,58 menjadi 5,50), kapasitas tukar kation, karbon organik, serta ketersediaan unsur hara N, P, K, Ca, dan Mg, dan sekaligus menurunkan kejenuhan Al dan H pertukaran. Perlakuan tersebut juga memperbaiki pertumbuhan vegetatif dan komponen hasil tanaman, termasuk tinggi tanaman, jumlah buah, bobot, dan ukuran buah. Aplikasi kombinasi biochar diperkaya ekstrak daun kelor dan pupuk K menunjukkan sinergi fungsional secara agronomis, yaitu perbaikan sifat kimia tanah yang saling melengkapi dan meningkatkan ketersediaan hara, tanpa dimaknai sebagai interaksi statistik antar perlakuan. Temuan ini mendukung penggunaan amandemen berbasis biomassa untuk restorasi kesuburan tanah secara berkelanjutan pada lingkungan lahan basah terdegradasi.


Keywords


Biochar; ekstrak daun kelor; pupuk KCl; restorasi kesuburan tanah; tanah sulfat masam

References


Adekiya, A. O., Agbede, T. M., Olayanju, A., Ejue, W. S., Adekanye, T. A., Adenusi, T. T., & Ayeni, J. F. (2020). Effect of Biochar on Soil Properties, Soil Loss, and Cocoyam Yield on a Tropical Sandy Loam Alfisol. Scientific World Journal, 2020. https://doi.org/10.1155/2020/9391630

Amer, M. M., Elbagory, M., El-Nahrawy, S., & Omara, A. E. D. (2022). Impact of Gypsum and Bio-Priming of Maize Grains on Soil Properties, Physiological Attributes and Yield under Saline–Sodic Soil Conditions. Agronomy, 12(10). https://doi.org/10.3390/agronomy12102550

Aminah, S., Ramdhan, T., & Yanis, M. (2015). Kandungan Nutrisi dan Sifat Fungsional Tanaman Kelor (Moringa oleifera). Buletin Pertanian Perkotaan, 5(2), 35–44. http://kliklkm.co.id,

Ardiansyah, A. O., Kautsar, V., & Rohmiyati, S. M. (2024). Penggunaan Macam Biochar sebagai Bahan Pembenah Tanah Masam dan Dosis Pupuk Nitrogen terhadap Pertumbuhan Bibit Kelapa Sawit Di Pre–Nursery. Agroforetech, 2(3), 1369–1377.

Aryanti, A. D., Surachman, S., & Listiawati, A. (2023). PENGARUH BIOCHAR TEMPURUNG KELAPA DAN PUPUK NPK TERHADAP PERTUMBUHAN DAN HASIL TERUNG GELATIK PADA TANAH ALUVIAL. Jurnal Sains Pertanian Equator, 12(4), 998. https://doi.org/10.26418/jspe.v12i4.67541

Ayaz, M., Feizienė, D., Tilvikienė, V., Akhtar, K., Stulpinaitė, U., & Iqbal, R. (2021). Biochar role in the sustainability of agriculture and environment. In Sustainability (Switzerland) (Vol. 13, Number 3, pp. 1–22). MDPI AG. https://doi.org/10.3390/su13031330

Chathurika, J. A. S., Kumaragamage, D., Zvomuya, F., Akinremi, O. O., Flaten, D. N., Indraratne, S. P., & Dandeniya, W. S. (2016). Woodchip biochar with or without synthetic fertilizers affects soil properties and available phosphorus in two alkaline, chernozemic soils. Canadian Journal of Soil Science, 96(4), 472–484. https://doi.org/10.1139/cjss-2015-0094

Chintala, R., Mollinedo, J., Schumacher, T. E., Malo, D. D., & Julson, J. L. (2014). Effect of biochar on chemical properties of acidic soil. Archives of Agronomy and Soil Science, 60(3), 393–404. https://doi.org/10.1080/03650340.2013.789870

Chowdhury, M. S. N., Sani, M. N. H., Siddique, A. B., Hossain, M. S., & Yong, J. W. H. (2024). Synergistic effects of biochar and potassium co-application on growth, physiological attributes, and antioxidant defense mechanisms of wheat under water deficit conditions. Plant Stress, 12. https://doi.org/10.1016/j.stress.2024.100452

Colla, G., Cardarelli, M., Bonini, P., & Rouphael, Y. (2017). Foliar applications of protein hydrolysate, plant and seaweed extracts increase yield but differentially modulate fruit quality of greenhouse tomato. HortScience, 52(9), 1214–1220. https://doi.org/10.21273/HORTSCI12200-17

Ebrahimi, M., Souri, M. K., Mousavi, A., & Sahebani, N. (2021). Biochar and vermicompost improve growth and physiological traits of eggplant (Solanum melongena L.) under deficit irrigation. Chemical and Biological Technologies in Agriculture, 8(1). https://doi.org/10.1186/s40538-021-00216-9

El-Mageed, T. A. A., Semida, W. M., Abdou, N. M., & El-Mageed, S. A. A. (2023). Coupling Effects of Potassium Fertilization Rate and Application Time on Growth and Grain Yield of Wheat (Triticum aestivum L.) Plants Grown Under Cd-Contaminated Saline Soil. Journal of Soil Science and Plant Nutrition, 23(1), 1070–1084. https://doi.org/10.1007/s42729-022-01104-3

El-Naggar, A., Lee, S. S., Awad, Y. M., Yang, X., Ryu, C., Rizwan, M., Rinklebe, J., Tsang, D. C. W., & Ok, Y. S. (2018). Influence of soil properties and feedstocks on biochar potential for carbon mineralization and improvement of infertile soils. Geoderma, 332, 100–108. https://doi.org/10.1016/j.geoderma.2018.06.017

El-Naggar, A., Lee, S. S., Rinklebe, J., Farooq, M., Song, H., Sarmah, A. K., Zimmerman, A. R., Ahmad, M., Shaheen, S. M., & Ok, Y. S. (2019). Biochar application to low fertility soils: A review of current status, and future prospects. In Geoderma (Vol. 337, pp. 536–554). Elsevier B.V. https://doi.org/10.1016/j.geoderma.2018.09.034

Gaskin, J. W., Speir, R. A., Harris, K., Das, K. C., Lee, R. D., Morris, L. A., & Fisher, D. S. (2010). Effect of peanut hull and pine chip biochar on soil nutrients, corn nutrient status, and yield. Agronomy Journal, 102(2), 623–633. https://doi.org/10.2134/agronj2009.0083

Hei, J., Yin, X., Wang, W., Sardans, J., Wang, C., Chen, X., Tariq, A., Zeng, F., Alrefaei, A. F., & Peñuelas, J. (2023). N-Enriched Biochar Increases Carbon, Nitrogen, and Phosphorus Accumulation Associated with Changes in Plant Ecological Stoichiometry in Subtropical Rice Paddy Fields. Experimental Agriculture, 59(11), 1–17. https://doi.org/10.1017/S001447972300008X

Hoque, T. S., Jahan, I., Ferdous, G., & Abedin, M. A. (2020). Foliar application of moringa leaf extract as a bio-stimulant on growth, yield and nutritional quality of brinjal. Journal of Agriculture, Food and Environment, 01(04), 94–99. https://doi.org/10.47440/jafe.2020.1414

Indrawati, U. S. Y. V., Herawatiningsih, R., & Kurniati, D. (2023). Effect of Combination of Biochar Tankos and Urea-enriched Chicken Manure (BIOCHIKE+) on Growth Oil Palm Seedling. Indian Journal of Agricultural Research, 57(6), 807–811. https://doi.org/10.18805/IJARe.AF-761

Jing, Y., Chen, X., Liu, Z., Huang, Q., LiI, Q., Chen, C., & Lu, S. (2013). [Effects of combined application of biochar and inorganic fertilizers on the available phosphorus content of upland red soil]. In Ying yong sheng tai xue bao = The journal of applied ecology: 24 4 (pp. 989–994).

Kabir, E., Kim, K. H., & Kwon, E. E. (2023). Biochar as a tool for the improvement of soil and environment. In Frontiers in Environmental Science (Vol. 11). Frontiers Media SA. https://doi.org/10.3389/fenvs.2023.1324533

Khan, S., Basra, S. M. A., Nawaz, M., Hussain, I., & Foidl, N. (2020). Combined application of moringa leaf extract and chemical growth-promoters enhances the plant growth and productivity of wheat crop (Triticum aestivum L.). South African Journal of Botany, 129, 74–81. https://doi.org/10.1016/j.sajb.2019.01.007

Khan, S., Ibrar, D., Bashir, S., Rashid, N., Hasnain, Z., Nawaz, M., Al-Ghamdi, A. A., Elshikh, M. S., Dvořáčková, H., & Dvořáček, J. (2022). Application of Moringa Leaf Extract as a Seed Priming Agent Enhances Growth and Physiological Attributes of Rice Seedlings Cultivated under Water Deficit Regime. Plants, 11(3). https://doi.org/10.3390/plants11030261

Kusumawati, A. (2015). ANALISA KARAKTERISTIK PUPUK KOMPOS BERBAHAN BATANG PISANG. Seminar Nasional Universitas PGRI Yogyakarta, 323–328.

Laird, D. A., Fleming, P., Davis, D. D., Horton, R., Wang, B., & Karlen, D. L. (2010). Impact of biochar amendments on the quality of a typical Midwestern agricultural soil. Geoderma, 158(3–4), 443–449. https://doi.org/10.1016/j.geoderma.2010.05.013

Lehmann, J., & Joseph, S. (2015). Biochar for Environmental Management. In J. Lehmann & S. Joseph (Eds.), Biochar for Environmental Management: Science, Technology and Implementation (2nd ed., Vol. 2, pp. 1–13). Routledge.

Lehmann, J., Pereira da Silva Jr, J., Steiner, C., Nehls, T., Zech, W., & Glaser, B. (2003). Nutrient availability and leaching in an archaeological Anthrosol and a Ferralsol of the Central Amazon basin: fertilizer, manure and charcoal amendments. In Plant and Soil (Vol. 249).

Martinsen, V., Alling, V., Nurida, N. L., Mulder, J., Hale, S. E., Ritz, C., Rutherford, D. W., Heikens, A., Breedveld, G. D., & Cornelissen, G. (2015). pH effects of the addition of three biochars to acidic Indonesian mineral soils. Soil Science and Plant Nutrition, 61(5), 821–834. https://doi.org/10.1080/00380768.2015.1052985

Mashamaite, C. V., Ngcobo, B. L., Manyevere, A., Bertling, I., & Fawole, O. A. (2022). Assessing the Usefulness of Moringa oleifera Leaf Extract as a Biostimulant to Supplement Synthetic Fertilizers: A Review. Plants, 11(17), 1–17. https://doi.org/10.3390/plants11172214

Masulili, A. S., Sutikarini, Suryani, R., Suci, I. A., Astar, I., Bancin, H. D., & Paiman. (2022). Role of biochar amendments in improving the properties of acid sulphate soil. Research on Crops, 23(4). https://doi.org/10.31830/2348-7542.2022.ROC-907

Murtaza, G., Usman, M., Iqbal, J., Hyder, S., Solangi, F., Iqbal, R., Okla, M. K., Al-Ghamdi, A. A., Elsalahy, H. H., Tariq, W., & Al-Elwany, O. A. A. I. (2024). Liming potential and characteristics of biochar produced from woody and non-woody biomass at different pyrolysis temperatures. Scientific Reports, 14(1). https://doi.org/10.1038/s41598-024-61974-8

Ndor, E., Jayeoba, O., & Asadu, C. (2015). Effect of Biochar Soil Amendment on Soil Properties and Yield of Sesame Varieties in Lafia, Nigeria. American Journal of Experimental Agriculture, 9(4), 1–8. https://doi.org/10.9734/ajea/2015/19637

Sahin, O., Taskin, M. B., Kaya, E. C., Atakol, O., Emir, E., Inal, A., & Gunes, A. (2017). Effect of acid modification of biochar on nutrient availability and maize growth in a calcareous soil. Soil Use and Management, 33(3), 447–456. https://doi.org/10.1111/sum.12360

Setiawan, S., Astar, I., & Ponorogo, A. (2021). Pengaruh Biochar dan NPK Mutiara Terhadap Pertumbuhan dan Hasil Tanaman Okra (Abelmoschus esculenthus L.) Pada Tanah Aluvial. Jurnal Teknotan, 15(2), 107. https://doi.org/10.24198/jt.vol15n2.7

Shao, Z., Zhang, X., Nasar, J., & Gitari, H. (2024). Synergetic Effect of Potassium, Biochar and Cattle Manure on the Growth and Yield of Maize, and Soil Physio-Chemical Characteristics. Plants, 13(23). https://doi.org/10.3390/plants13233345

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). https://doi.org/10.1038/s41598-020-69262-x

Shetty, R., Vidya, C. S. N., Prakash, N. B., Lux, A., & Vaculík, M. (2021). Aluminum toxicity in plants and its possible mitigation in acid soils by biochar: A review. Science of the Total Environment, 765. https://doi.org/10.1016/j.scitotenv.2020.142744

Suhardana, E. (2022). Pengaruh Komposisi Media Tanam Arang Sekam dan Pemberian Pupuk KCl Terhadap Pertumbuhan dan Hasil Tanaman Bawang Dayak (Eleutherine americana Merr.). JIMTANI, 2, 1–17.

Sun, Z., Hu, Y., Shi, L., Li, G., Pang, Z., Liu, S., Chen, Y., & Jia, B. (2022). Effects of biochar on soil chemical properties: A global meta-analysis of agricultural soil. Plant, Soil and Environment, 68(6), 272–289. https://doi.org/10.17221/522/2021-PSE

Suyanto, A., Masulili, A., Astar, I., & Kurniadi, E. (2025). Response of Morphophysiological Characteristics of Several New Superior Rice Varieties with the Use of Bioactive Compost Charcoal as an Ameliorant on Acid Sulfate Soil. International Journal of Agriculture and Biosciences, 14(3), 403–413. https://doi.org/10.47278/journal.ijab/2025.10

Syahputra, D. R., & Elfis. (2023). Pengaruh Bokashi Batang Pisang dan Pupuk KCl Terhadap Pertumbuhan Serta Produksi Tanaman Terung Ungu (Solanum melongena L). Jurnal Agroteknologi Agribisnis Dan Akuakultur, 3(2), 131–145.

Tao, Y., Han, S., Zhang, Q., Yang, Y., Shi, H., Akindolie, M. S., Jiao, Y., Qu, J., Jiang, Z., Han, W., & Zhang, Y. (2020). Application of biochar with functional microorganisms for enhanced atrazine removal and phosphorus utilization. Journal of Cleaner Production, 257. https://doi.org/10.1016/j.jclepro.2020.120535

Wang, J., Shi, D., Huang, C., Zhai, B., & Feng, S. (2023). Effects of Common Biochar and Acid-Modified Biochar on Growth and Quality of Spinach in Coastal Saline Soils. Plants, 12(18). https://doi.org/10.3390/plants12183232

Wang, W., Wang, C., Sardans, J., Fang, Y., Singh, B. P., Wang, H., Huang, X., Zeng, C., Tong, C., & Peñuelas, J. (2020). Multiple trade-offs between maximizing yield and minimizing greenhouse gas production in Chinese rice croplands. Land Degradation and Development, 31(10), 1287–1299. https://doi.org/10.1002/ldr.3507

Ye, J., Zhang, R., Nielsen, S., Joseph, S. D., Huang, D., & Thomas, T. (2016). A combination of biochar-mineral complexes and compost improves soil bacterial processes, soil quality, and plant properties. Frontiers in Microbiology, 7(APR). https://doi.org/10.3389/fmicb.2016.00372

Yuan, J. H., & Xu, R. K. (2011). The amelioration effects of low temperature biochar generated from nine crop residues on an acidic Ultisol. Soil Use and Management, 27(1), 110–115. https://doi.org/10.1111/j.1475-2743.2010.00317.x

Yuan, J. H., Xu, R. K., Wang, N., & Li, J. Y. (2011). Amendment of Acid Soils with Crop Residues and Biochars. Pedosphere, 21(3), 302–308. https://doi.org/10.1016/S1002-0160(11)60130-6

Yuniati, N., Kusumiyati, K., Mubarok, S., & Nurhadi, B. (2022). The Role of Moringa Leaf Extract as a Plant Biostimulant in Improving the Quality of Agricultural Products. In Plants (Vol. 11, Number 17). MDPI. https://doi.org/10.3390/plants11172186

Zhang, H., Chen, C., Gray, E. M., Boyd, S. E., Yang, H., & Zhang, D. (2016). Roles of biochar in improving phosphorus availability in soils: A phosphate adsorbent and a source of available phosphorus. Geoderma, 276, 1–6. https://doi.org/10.1016/j.geoderma.2016.04.020




DOI: https://doi.org/10.24198/jt.vol20n1.12

Refbacks

  • There are currently no refbacks.


Indexed by:

  

Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 International License (CC BY-SA 4.0)