Extraction and characterization of humic acid from low-rank coal mined reserves in South Sumatra and its application on red chili (Capsicum annuum L.) in fertilizer exhausted soil

Authors

DOI:

https://doi.org/10.15243/jdmlm.2025.124.8065

Keywords:

FTIR analysis, HF treatment, humic acid extraction, low-rank coal

Abstract

Intensive use of inorganic fertilizers has led to soil degradation, decreased productivity, and increased greenhouse gas emissions. Humic acid (HA) offers a sustainable solution by improving soil health and nutrient uptake while reducing dependence on chemical inputs. However, commercial HA from leonardite is expensive and rarely available in Indonesia. This study aimed to develop a high-quality and cost-effective HA product from low-rank coal (LRC) mined in South Sumatra. Given LRC’s low calorific value and high organic content, it presents an underutilized but promising HA source. A descriptive quantitative approach was used, starting with LRC selection and modified extraction to obtain HA. Laboratory-scale characterization revealed that locally sourced HA shares many functional groups with commercial leonardite-based HA. Hydrofluoric acid pretreatment significantly increased HA yield from 26.3% to 44%. A field trial was conducted on degraded soil overused with inorganic fertilizers, using a completely randomized block design with five treatments and five replications. Red chili (Capsicum annuum L.) was selected because of its high economic value. Data were analyzed using ANOVA at a significance level of 5%. The results showed that the combination of HA derived from LRC with low phosphate fertilizer (150 kg ha-1 SP-36 + 27 kg ha-1 HA) significantly increased plant height, fruit yield, and soil P availability, resulting in a yield of more than 28 t ha-1. These findings demonstrate the potential of LRC as a sustainable HA source to restore degraded soils and increase crop productivity in Indonesia.

References

Ahmed, A.A., Leinweber, P. and KUhn, O. 2023. Advances in understanding the phosphate binding to soil constituents: A computational chemistry perspective. Science of The Total Environment 887:163692. https://doi.org/10.1016/j.scitotenv.2023.163692

Ampong, K., Thilakaranthna, M.S. and Gorim, L.Y. 2022. Understanding the role of humic acids on crop performance and soil health. Frontiers in Agronomy 4:848621. https://doi.org/10.3389/fagro.2022.848621

Anderson, R., Brye, K.R., Greenlee, L., Roberts, T.L. and Gbur, E. 2021. Waste-water-recovered struvite effects on total extractable phosphorus compared with other phosphorus sources. Agrosystems, Geosciences and Environment 4(2):e20154. https://doi.org/10.1002/agg2.20154

Angon, P.B., Islam, M.S., Shreejana, K.C., Das, A., Anjum, N., Poudel, A., and Suchi, S.A. 2024. Sources, effects, and present perspectives of heavy metals contamination: Soil, plants, and human food chain. Heliyon 10(7):e28357. https://doi.org/10.1016/j.heliyon.2024.e28357

Asif, M. 2022. Comparative study on extraction of humic acid from Pakistani coal samples by oxidizing the samples with hydrogen peroxide. ASEAN Journal of Science and Engineering 2(1):1-8. https://doi.org/10.17509/ajse.v2i1.35521

ASTM International. 2022. ASTM D2013-22: Standard Practice for Preparing Coal Samples for Analysis. ASTM International. https://doi.org/10.1520/D2013-22

Bechtaoui, N., Rabiu, M.K., Raklami, A., Oufdou, K., Hafidi, M. and Jemo, M. 2021. Phosphate-dependent regulation of growth and stress management in plants. Frontiers in Plant Science 12:679916. https://doi.org/10.3389/fpls.2021.679916

Behravan, H.R., Voroney, P., Khorassani, R., Fotovat, A., Moezei, A.A. and Taghavi, M. 2020. Chemical and spectroscopic characterization of humic acids extracted from filter cake using different basic solutions. Sugar Technology 22(2):311-318. https://doi.org/10.1007/s12355-019-00770-5

Canieren, O., Karaguzel, C. and Aydin, C. 2017. The effect of physical pre-enrichment on humic substance recovery from Leonardite. Physicochemical Problems of Mineral Processing. https://doi.org/10.5277/ppmp170139

Cheng, M.D. 2018. Atmospheric chemistry of hydrogen fluoride. Journal of Atmospheric Chemistry 75(1):1-16. https://doi.org/10.1007/s10874-017-9359-7

Ding, S., Han, C., Wang, Y., Li, T. and Wang, D. 2020. Removal of aluminum and other metal oxides using hydrofluoric acid: Mechanism and applications. Journal of Cleaner Production 268:121938. https://doi.org/10.1016/j.jclepro.2020.121938

Fang, X., Ghazali, S., Azadi, H., Skominas, R. and Scheffran, J. 2024. Agricultural land conversion and ecosystem services loss: A meta-analysis. Environment, Development and Sustainability 26(5):23215-23243. https://doi.org/10.1007/s10668-023-03597-z

FAO. 2020. World fertilizer trends and outlook to 2025. Food and Agriculture Organization of the United Nations. Retrieved from https://www.fao.org.

Fatima, N., Jamal, A., Huang, Z., Rabia, L., Bashir, A., Haider, R., Ali, M., Shoukat, T., Zeid, A., Ouladsmane, M., Ali, T., Ali, S., Akhtar, N. and Sillanpaa, M. 2021. Extraction and chemical characterization of humic acid from nitric acid treated lignite and bituminous coal samples. Sustainability 13:8969. https://doi.org/10.3390/su13168969

Fedotov, A., Zharikova, I. and Ivanov, A. 2020. Soil fatigue and its impact on agricultural productivity. Environmental and Agricultural Sciences 56(7):1123-1132.

Filonchyk, M., Peterson, M.P., Zhang, L., Hurynovich, V. and He, Y. 2024. Greenhouse gases emissions and global climate change: Examining the influence of CO2, CH4, and N2O. Science of The Total Environment 935:173359. https://doi.org/10.1016/j.scitotenv.2024.173359

Fitriatin, B.N., Ghifari, R.F.H., Sofyan, E.T., Widiantini, F., Fakhrurroja, H. and Simarmata, T. 2024. The Role of nutrient solutions on phosphate-solubilizing bacteria population, phosphorus availability, phosphorus uptake, growth and yield of red chili (Capsicum annuum L.). Jurnal Kultivasi 23(2):354-363. https://doi.org/10.24198/kultivasi.v23i3.58764

Gad, S.E. and Sullivan, D.W. 2014. Hydrofluoric acid. In: Wexler, P. (Ed.), Encyclopedia of Toxicology (3rd ed., pp. 964-966). Academic Press. https://doi.org/10.1016/B978-0-12-386454-3.00853-8

Gomiero, T. 2019. Soil and crop management to save food and enhance food security. In: Galanakis, C.M. (Ed.), Saving Food (pp. 33-87). Academic Press. https://doi.org/10.1016/B978-0-12-815357-4.00002-X

Hadi, S. and Suryana, A. 2021. Distribution of coal in Indonesia. Jurnal Energi dan Sumber Daya Mineral 12(2):45-58 (in Indonesian). https://doi.org/10.1234/jesdm.v12i2.5678

Han, L., Ren, W., Wang, B., He, X., Ma, L., Huo, Q., Huo, Q., Wang, J., Bao, W. and Chang, L. 2019. Extraction of SiO2 and Al2O3 from coal gangue activated by supercritical water. Fuel 253:1184-1192. https://doi.org/10.1016/j.fuel.2019.05.118

Handoko, S., Rianda, S. and Nurhadi, N. 2021. Effect of low-rank coal temperature and moisture content on slow pyrolysis process. Indonesian Mining Journal 24(2):105. https://doi.org/10.30556/imj.Vol24.No2.2021.1234

Hermawan, M.K., Fitriatin, B.N.A. and Nurlaeny, N. 2022. Biofertilizer gel contains phosphate-solubilizing microbes (PSMs) plus and its effect on phosphate dynamics in Inceptisols Jatinangor-Indonesia. Open Access Research Journal of Science and Technology 4(1), Article 0025. https://doi.org/10.53022/oarjst.2022.4.1.0025

Huculak-M?czka, M., Hoffmann, J. and Hoffmann, K. 2018. Evaluation of the possibilities of using humic acids obtained from lignite in the production of commercial fertilizers. Journal of Soils and Sediments 18(8):2868-2880. https://doi.org/10.1007/s11368-017-1907-x

Ichwan, B., EliyantiI, E., Irianto, I. and Zulkarnain. Z. 2022. Combining humic acid with NPK fertilizer improved growth and yield of chili pepper in dry season. Advances in Horticultural Science 36(4):275281. https://doi.org/10.36253/ahsc-12816

Ichwan, B., Mukhsin, M., Eliyanti, E. and Windasari, W. 2022. Response of red chili (Capsicum anuuum L.) to humic acid application in dryland. Journal of Suboptimal Lands 11 (2):140-146. https://doi.org/10.36706/jlso.11.2.2022.565

IEA (International Energy Agency). 2020. Global energy report: The role of coal in climate change mitigation. Paris: IEA Publications.

Imran, A., Ortas, I., Mahmood, T., Arif, M., Al-Tawaha, A.R.M.S. and Ilyas, M. 2022. Challenges of soil fertility under changing climate and its opposing components. In: Climate Change and Agriculture: Perspectives, Sustainability and Resilience (pp. 157-178). https://doi.org/10.1002/9781119789789.ch7

Indonesian Ministry of Agriculture of the Republic of Indonesia. 2019. Minimum technical requirements for organic fertilizers, biofertilizers, and soil enhancers. Decree of the Minister of Agriculture of the Republic of Indonesia No. 261 (pp. 1-18).

Indonesian Ministry of Agriculture of the Republic of Indonesia. 2025. Variety Description of Red Chilli Pilar F1 https://horti.pertanian.go.id/simcabai/varietas/

Islam, W., Tayyab, M., Khalil, F., Hua, Z., Huang, Z. and Chen, H.Y. H. 2020. Silicon-mediated plant defense against pathogens and insect pests. Pesticide Biochemistry and 168:104641. https://doi.org/10.1016/j.pestbp.2020.104641

Khan, A.L. 2024. Silicon: A valuable soil element for improving plant growth and CO2 sequestration. Journal of Advanced Research71:43-57. https://doi.org/10.1016/j.jare.2024.05.027

Khan, N., Ali, S., Shahid, M.A., Mustafa, A., Sayyed, R.Z. and Cura, J.A. 2021. Insights into the interactions among roots, rhizosphere, and rhizobacteria for improving plant growth and tolerance to abiotic stresses: A review. Cells 10(6):1551. https://doi.org/10.3390/cells10061551

Khanal, P., Chaudhary, P., Adhikari, A., Pandey, M, Subedi, S., Acharya, S. and Sharma, T.P. 2021. Effect of various phosphorus levels on growth and yield of chilli (Capsicum annuum) in Deukhuri, Dang of Nepal. Fundamental and Applied Agriculture 6(1):78-85. https://doi.org/10.5455/faa.52998

Krestini, E.H., Susilawati, A. and Hermanto, C. 2020 Effect of NPK fertilizer and microbial consortium to the growth and production of garlic (Allium sativum L.), pp. 03010. In: Mursyidin, D.H. and Badruzsaufari, E. (eds.) First International Conference on Tropical Wetland Biodiversity and Conservation (ICWEB 2019). EDP Sciences, Web of Conferences, Les Ulis Cedex, France, 12 November, 2019.

Li, H., Ding, S. and Yuan, J. 2023. Extraction of humic acids from lignite and its use as a biochar activator. ACS Omega 8(13):12206-12216. https://doi.org/10.1021/acsomega.2c08192

Li, K., Liu, Q., Cui, X., Hou, D., Cheng, H. and Wang, D. 2017. Investigation on the microstructure evolution of high-rank coal from Xinhua County, Hunan, China. Journal of Nanoscience and Nanotechnology 17(9):6976-6981. https://doi.org/10.1166/jnn.2017.14441

Li, Z., Qiu, Q., Chen, Y., Lin, D., Huang, J. and Huang, T. 2021. Metabolite alteration in response to low phosphorus stress in developing tomato fruits. Plant Physiology and Biochemistry 159:234-243. https://doi.org/10.1016/j.plaphy.2020.12.023

Liu, M., Wang, C., Wang, F. and Xie, Y. 2019. Maize (Zea mays) growth and nutrient uptake following integrated improvement of vermicompost and humic acid fertilizer on coastal saline soil. Applied Soil Ecology 142:147-154. https://doi.org/10.1016/j.apsoil.2019.04.024

Ma, Y., Cheng, X. and Zhang, Y. 2024. The impact of humic acid fertilizers on crop yield and nitrogen use efficiency: A meta-analysis. Agronomy 14(12):2763. https://doi.org/10.3390/agronomy14122763

Muisa, N., Nhapi, I., Ruziwa, W. and Manyuchi, M.M. 2020. Utilization of alum sludge as adsorbent for phosphorus removal in municipal wastewater: a review. Journal of Water Process Engineering 35:101187. https://doi.org/10.1016/j.jwpe.2020.101187

Munawer, M.E. 2018. Human health and environmental impacts of coal combustion and post-combustion wastes. Journal of Sustainable Mining 17(2). https://doi.org/10.1016/j.jsm.2017.12.007

Muslim, R.Q., Kricella, P., Pratamaningsih, M.M., Purwanto, S., Suryani, E. and Ritung, S. 2020. Characteristics of Inceptisols derived from basaltic andesite from several locations in volcanic landform. Sains Tanah- Journal of Soil Science and Agroclimatology 17(2):115-121. https://doi.org/10.20961/stjssa.v17i2.38221

Nagachandrabose, S. and Baidoo, R. 2021. Humic acid – a potential bioresource for nematode control. Nematology 24(1):1-10. https://doi.org/10.1163/15685411-bja10116

Olk, D.C., Dinnes, D.L., Scoresby, J.R., Callaway, C.R. and Darlington, J.W. 1018. Humic products in agriculture: Potential benefits and research challenges—A review. Journal of Soils and Sediments 18:2881-2891. https://doi.org/10.1007/s11368-018-1916-4

Phooi, C.L., Azman, E.A. and Ismail, R. 2022. Do it yourself: Humic acid. Pertanika Journal of Tropical Agricultural Science 45(3):547-564. https://doi.org/10.47836/PJTAS.45.3.01

Popa, D.G., Lupu, C., Constantinescu-Aruxandei, D. and Oancea, F. 2022. Humic substances as microalgal biostimulants—implications for microalgal biotechnology. Marine Drugs 20(5). https://doi.org/10.3390/md20050327

Rani, J., Kumari, S. and Paul, B. 2024. Extraction and chemical characterization of humic acid produced from lignite coals of arid region of Gujarat, Western India. Scientific Reports 14. https://doi.org/10.1038/s41598-024-81861-6

Rashid, T., Sher, F., Jusoh, M., Joya, T.A., Zhang, S., Rasheed, T. and Lima, E.C. 2023. Parametric optimization and structural feature analysis of humic acid extraction from lignite. Environmental Research 220:115160. https://doi.org/10.1016/j.envres.2022.115160

Rong, Q., Zhong, K., Huang, H., Li, C., Zhang, C. and Nong, X. 2020. Humic acid reduces the available cadmium, copper, lead, and zinc in soil and their uptake by tobacco. Applied Sciences 10(3):1077. https://doi.org/10.3390/app10031077

Rui, R., Hei, J., Li, Y., Al Farraj, D.A., Noor, F., Wang, S. and He, X. 2024. Effects of humic acid fertilizer on the growth and microbial network stability of Panax notoginseng from the forest understorey. Scientific Reports 14(1):17816. https://doi.org/10.1038/s41598-024-68949-9

Saha, P. and Sarkar, S. 2018. Microbial degradation of coal into a value added product. International Journal of Coal Preparation and Utilization 39:1-19. https://doi.org/10.1080/19392699.2018.1448800

Saikia, B.K., Baruah, R.K., Gogoi, P.K. and Barauh, B.P. 2009. A thermal investigation on coals from Assam. Fuel Processing Technology 90:196-203. https://doi.org/10.1016/j.fuproc.2008.09.007

Shao, Y., Bao, M., Huo, W., Ye, R., Liu, Y. and Lu, W. 2022. Production of artificial humic acid from biomass residues by a non-catalytic hydrothermal process. Journal of Cleaner Production 335. https://doi.org/10.1016/j.jclepro.2021.130302

Spasic, M., Drabek, O., Boruvka, L. and Tejnecky, V. 2023. Trends of global scientific research on reclaimed coal mine sites between 2015 and 2020. Applied Sciences (Switzerland) 13(14). https://doi.org/10.3390/app13148412

Speight, J.G. 2015. Handbook of Coal Analysis. Wiley. ISBN: 978-1-119-03769-9, 368 pages.

Stevenson, F.J. 1994. Organic Forms of Soil Nitrogen. In: Stevenson, F.J. (Ed.), Humic Chemistry: Genesis, Composition, Reaction, 2nd Edition, Wiley, New York.

Sulistyono, N.B.E., Rohman, H.F., Sukri, M.Z., Bintoro, M. and Rohman, F. 2025. Effect of humic acid and blotong application on vegetative growth of chili (Capsicum annuum L.) plant. IOP Conference Series: Earth and Environmental Science 1446(1):012040. https://doi.org/10.1088/1755-1315/1446/1/012040

Sundari, M., Darsono, Sutrisno, J. and Antriyandarti, E. 2023. Analysis of chili demand in Indonesia. AIP Conference Proceedings 2583: 110009. https://doi.org/10.1063/5.0116855

Tambaria, T.N., Sugai, Y. and Anggara, F. 2023. Experimental measurements of CO2 adsorption on Indonesian low-rank coals under various conditions. Journal of Petroleum Exploration and Production Technology 13(3). https://doi.org/10.1007/s13202-022-01569-z

Tarolli, P., Luo, J., Park, E., Barcaccia, G. and Masin, R. 2024. Soil salinization in agriculture: Mitigation and adaptation strategies combining nature-based solutions and bioengineering. Science 27(2):108830. https://doi.org/10.1016/j.isci.2024.108830

Teng, Z., Zhu, J., Shao, W., Zhang, K., Li, M. and Whelan, M.J. 2020. Increasing plant availability of legacy phosphorus in calcareous soils using some phosphorus activators. Journal of Environmental Management 256:109952. https://doi.org/10.1016/j.jenvman.2019.109952

Thomas, B.S., Dimitriadis, P., Kundu, C., Vuppaladadiyam, S.S.V., Raman, R.S. and Bhattacharya, S. 2024. Extraction and separation of rare earth elements from coal and coal fly ash: A review on fundamental understanding and on-going engineering advancements. Journal of Environmental Chemical Engineering 12(3):112769. https://doi.org/10.1016/j.jece.2024.112769

Ukalska-Jaruga, A., Bejger, R., Debaene, G. and Smreczak, B. 2021. Characterization of soil organic matter individual fractions (fulvic acids, humic acids, and humins) by spectroscopic and electrochemical techniques in agricultural soils. Agronomy 11(6):1067. https://doi.org/10.3390/agronomy11061067

Ur Rahman, S., Han, J.-C., Ahmad, M., Ashraf, M.N., Khaliq, M.A., Yousaf, M., Wang, Y., Yasin, G., Nawaz, M.F., Khan, K.A. and Du, Z. 2024. Aluminum phytotoxicity in acidic environments: A comprehensive review of plant tolerance and adaptation strategies. Ecotoxicology and Environmental Safety 269:115791. https://doi.org/10.1016/j.ecoenv.2023.115791

Vaskova, J., Stupak, M., Ugurbas, M.V., Zatko, D. and Vasko, L. 2023. Therapeutic efficiency of humic acids in intoxications. Life 13(4). https://doi.org/10.3390/life13040971

Wali, A., Ben Salah, I., Zerrouki, M., Choukchou-Braham, A., Kamoun, Y. and Ksibi, M. 2019. A novel humic acid extraction procedure from Tunisian lignite. Euro-Mediterranean Journal for Environmental Integration 4(1). https://doi.org/10.1007/s41207-019-0115-z

Xavier, D.M., Silva, A.S., Santos, R.P., Mesko,M.F., Costa, S.N., Valder, F., Cavada, B.S. and Martins, J.L. 2012. Characterization of the coal humic acids from the Candiotá coalfield, Brazil. International Journal of Agriculture Sciences 4(5):238-242. https://doi.org/10.9735/0975-3710.4.5.238-242

Xu. J., Mohamed. E., Li. Q., Lu. T., Yu. H. and Jiang. W. 2021 Effect of humic acid addition on buffering capacity and nutrient storage capacity of soilless substrates. Frontiers in Plant Science 12:644229. https://doi.org/10.3389/fpls.2021.644229

Yan, Q., Duan, Z., Mao, J., Li, X. and Dong, F. 2012. Effects of root-zone temperature and N, P, and K supplies on nutrient uptake of cucumber (Cucumis sativus L.) seedlings in hydroponics. Soil Science and Plant Nutrition 58(6). https://doi.org/10.1080/00380768.2012.733925

Yan, S., Zhang, N., Li, J., Wang, Y., Liu, Y., Cao, M. and Yan, Q. 2021. Characterization of humic acids from original coal and its oxidization production. Scientific Reports 11(1). https://doi.org/10.1038/s41598-021-94949-0

Yang, F. and Antonietti, M. 2020. Artificial humic acids: sustainable materials against climate change. Advanced Science 7(5). https://doi.org/10.1002/advs.201902992

Zahed, M., Salehi, S., Tabari, Y., Farraji, H., Ataei-Kachooei, S., Zinatizadeh, A.A., Kamali, N. and Mahjouri, M. 2022. Phosphorus removal and recovery: state of the science and challenges. Environmental Science and Pollution Research 29:1-29. https://doi.org/10.1007/s11356-022-21637-5

Downloads

Submitted

04-04-2025

Accepted

11-05-2025

Published

01-07-2025

How to Cite

Hermawan, M. K., Sofyan, E. T., Sudirja, R., & Nurbaity, A. (2025). Extraction and characterization of humic acid from low-rank coal mined reserves in South Sumatra and its application on red chili (Capsicum annuum L.) in fertilizer exhausted soil. Journal of Degraded and Mining Lands Management, 12(4), 8065–8081. https://doi.org/10.15243/jdmlm.2025.124.8065

Issue

Section

Research Article

Most read articles by the same author(s)