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Soybean is an important legume crop which is adversely affected by prolonged weed infestation. With the objective to combat this issue over two consecutive years (2022 and 2023), field experiments were conducted at the Agronomic Research Farm, Department of Agronomy, University of Agriculture Faisalabad. The study contains 11 treatments, sole and sequential application of pre-emergence and post-emergence herbicides including s-metolachlor + pendimethalin; s-metolachlor; fluazifop-p-butyl; haloxyfop-p-ethyl; s-metolachlor + pendimethalin and fluazifop-p-butyl; s-metolachlor + pendimethalin and haloxyfop-p-ethyl; s-metolachlor and fluazifop-p-butyl; s-metolachlor and haloxyfop-p-ethyl; weed-free; weedy check and two hand hoeing (at 30 and 45 days after sowing) replicated three times in a randomized complete block design. Growth parameters, weed-related factors and crop yield were meticulously assessed using standard procedures. The study showed that sequential application of herbicide s-metolachlor + pendimethalin as PRE and fluazifop-p-butyl as POST resulted in increased crop vigor scores (7.70 and 7.83), cumulative leaf area duration (197.86 and 195.86 days), net assimilation rate (2.79 and 2.75 g·m-2·day-1·), leaf area index (4.75 and 4.78 m2·m-2·), total dry matter (531.49 2022 and 544.65 g·m-2·), reduced weed cover scores (2.40 and 2.10), lower weed counts (35.67 and 28.67), higher plant population (32.00 and 32.33 m-2·), taller plant height (45.00 and 47.00 cm), higher number of pods plant-1·(42.60 and 43.37), improved seed yield (1784.84 and 1784.84 kg·ha-1·), harvest index (36.12% and 37.04%), higher protein content (35.78% and 36.97%), oil content (20.33% and 20.90%), oil yield (386.96 and 402.08 kg·ha-1·) and effective weed control percentage (44.59% to 75.65% at 45 days after spray), with weed control efficiency (88.62% and 89.16%), weed index showed that it reduced minimum (11.43% and 7.19%) soybean yield, herbicide efficiency index (8.83% and 11.38%) in 2022 and 2023 respectively. So, it is recommended that sequential application of s-metolachlor + pendimethalin as a pre-emergence followed by fluazifop-p-butyl as a post-emergence herbicide optimize soybean growth parameters, yield attributes and quality parameters.
Czasopismo
Rocznik
Tom
Strony
231--257
Opis fizyczny
Bibliogr. 63 poz., rys.
Twórcy
autor
- Department of Agronomy, Faculty of Agriculture, University of Agriculture Faisalabad, 38000, Pakistan
autor
- Department of Agronomy, Faculty of Agriculture, University of Agriculture Faisalabad, 38000, Pakistan
autor
- Department of Agronomy, Faculty of Agriculture, University of Agriculture Faisalabad, 38000, Pakistan
autor
- Department of Plant Breeding and Genetics, University of Agriculture Faisalabad, 38000, Pakistan
Bibliografia
- 1. Adigun, J. A., Daramola, O. S., Adeyemi, O. R., Olorunmaiye, P. M., Osipitan, O. A., Idiodemise, O. (2017). Effects of row-spacing and period of weed interference on growth and yield of Cowpea (Vigna unguiculata (L.) Walp). Nigerian Journal of Ecology, 16, 88–100. https://doi.org/10.5539/jas.v6n4p188
- 2. Aher, K. P., Pawar, S. U., Syed, S. J. R., Gokhale, D. N. (2023). Broad spectrum post-emergence herbicide combinations for weed control in soybean (Glycine max (L.) Merrill). Pharma Innovation Journal, 12(1), 1511–1513. https://doi.org/10.9734/ijecc/2023/v13i92653
- 3. Akter, N., Amin, A. R., Masum, S. M., & Haque, M. N. (2016). Effect of sowing dates and weed control methods on yield components of soybean (Glycine max L. Merrill). Pakistan Journal of Weed Science Research, 22, 527–541. https://researcherslinks.com/current-issues/effect-of-sowing-dates-and-weed-control-methods-on-yield-components-of-soybean-glycine-max-l-merrill/38/5/8072
- 4. Al-Khatib, K., Peterson, D. (1999). Soybean (Glycine max) response to simulated drift from selected sulfonylurea herbicides, dicamba, glyphosate, and glufosinate. Weed Technology, 13, 264–270. https://doi.org/10.1017/S0890037X00041713
- 5. Andersen, S. M., Clay, S. A., Wrage, L. J., & Matthees, D. (2004). Soybean foliage residues of dicamba and 2,4-D and correlations to application rates and yield. Agronomy Journal, 96(3), 750–760. https://doi.org/10.2134/agronj2004.0750
- 6. Anwar, F. G., Kamal, M., Nadeem, F., Shabir, G. (2016). Variation of quality characteristics among oils of different soybean varieties. Journal of King Saud University Science, 28, 332–338. https://doi.org/10.1016/j.jksus.2015.10.001
- 7. Asad, S. A., Wahid, M. A., Farina, S., Ali, R., & Muhammad, F. (2020). Soybean production in Pakistan: Experiences, challenges, and prospects. International Journal of Agriculture and Biology, 24, 995–1005. https://doi.org/10.17957/IJAB/15.1526
- 8. Behera, U. K., Sharma, A. R., Monsefi, A., Ronanki, S., Layek, A., Bhargavi, B. (2015). Tillage and weed management for improving productivity and nutrient uptake of soybean. In Proceedings of the 25th Asian-Pacific Weed Science Society Conference on Weed Science for Sustainable Agriculture, Environment, and Biodiversity 1–5. APWSS.
- 9. Chu, Z., Chen, J., Nyporko, A., Han, H., Yu, Q., Powles, S. (2018). Novel α-tubulin mutations conferring resistance to dinitroaniline herbicides in Lolium rigidum. Frontiers in Plant Science, 9, 97. https://doi.org/10.3389/fpls.2018.00097
- 10. Costa, N. V., Pavan, G. C., Dourado, R. F., Costa, A. C. P. R., Vasconcelos, E. S. (2013). Seletividade de herbicidas aplicados com óleo mineral na cultura da mandioca ‘Cascuda’. Revista Brasileira de Herbicidas, 12(3), 251–259. https://doi.org/10.7824/rbh.v12i3.204
- 11. Daramola, O. S. (2020). Timing of weed management and yield penalty due to delayed weed management in soybean. Planta Daninha, 38. https://doi.org/10.1590/S0100-83582020380100072
- 12. Daramola, O. S., Adeyemi, O. R., Adigun, J. A., Adejuyigbe, C. O. (2019). Row spacing and weed management methods influence growth and yield of soybean. Agriculture Tropical and Subtropical, 52, 59–71. https://doi.org/10.2478/ats-2019-0007
- 13. Das, S. K., Biswas, B., Moinuddin, G., Hansda, A. (2016). Effect of integrated and purely chemical weed management practices on yield attributing characters, yield, weed density, weed dry weight, and total microbial population in soil of pigeon pea (Cajanus cajan (L.) Millsp.). Ecology and Environment Conservation, 22(Suppl. April).
- 14. Deore, N. R., Shete, B. T., Tambe, A. D. (2008). To evaluate the effect of pre- and post-emergence herbicide on weed control and productivity of soybean (Glycine max (L.) Merrill). Journal of Maharashtra Agricultural University, 33, 226–267. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ija&volume=48&issue=4&article=018
- 15. Dias, R. C., Santos, M. V., Oliveira, F. L. R., Ferreira, E. A., Santos, J. B., Rodrigues, B. M., Martins, C. A. (2017). Controle químico do capim-braquiária em cultivo de alfafa. Semina: Ciências Agrárias, 38(6), 3695–3704. https://doi.org/10.5433/1679-0359.2017v38n6p3695
- 16. Ezebuiro, P., Yakubu, A. I., Audu, M. (2021). Evaluation of three pre-emergence herbicides for weed control in soybean [Glycine max (L.) Merr.] in Dutsinma and Sokoto, Sudan Savanna. FUDMA Journal of Science, 5(4), 368–374. https://doi.org/10.33003/fjs-2021-0504-772
- 17. Ezebuiro, P., Yakubu, A., Musa, M. (2021). Effect of pre-emergence herbicides on the growth and yield of soybean [Glycine max (L.) Merrill] in Sudan Savanna. FUDMA Journal of Agriculture and Agricultural Technology, 7(1), 16–26.
- 18. Gaikwad, R. P., Pawar, V. S. (2002). Chemical weed control in soybean. Indian Journal of Weed Science, 34, 297–298. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ijws&volume=34&issue=3and4&article=039
- 19. Ghadiya, B. M., Gohil, B. S., Muchhadiya, R. M. (2024). Enhancing summer soybean yield through evaluation of herbicidal weed management options. International Journal of Environmental and Climate Change, 14(4), 267–274. https://doi.org/10.9734/IJECC/2024/v14i44114
- 20. Gohil, B. S. (2015). Integrated management of weed seedbank in kharif groundnut grown after wheat (Dissertation). Junagadh Agricultural University, Junagadh, Gujarat.
- 21. Grundy, A. C., Mead, A., Bond, W., Clark, G., Burston, S. (2011). The impact of herbicide management on long-term changes in the diversity and species composition of weed populations. Weed Research, 51(2), 187–200. https://doi.org/10.1111/j.1365-3180.2010.00831.x
- 22. Hamza, A. M., Soliman, I. E. (2011). Phytotoxicity and competitive effect of some weeds on onion crop and its control methods. Journal of Plant Protection and Pathology, 2(3), 333–346. https://doi.org/10.21608/jppp.2011.86425
- 23. Harithavardhini, J., Jayalalitha, K., Ashoka, R. Y., Krishnaveni, B. (2017). Effect of post-emergence herbicides on photosynthetic pigments, antioxidant enzyme activity, and yield of blackgram. Pharmacology and Life Sciences, 6, 20–26.
- 24. Hudetz, M., Dan, W. K., Milliken, R. F., Nelgen, N. (1999). Synergistic herbicidal compositions of S-metolachlor. U.S. Patent 5, 981, 432.
- 25. Jakhar, R. R., Sharma, R. (2015). Growth and yield attributes as influenced by integrated weed management in soybean. Advances in Research Journal of Crop Improvement, 6, 129–133.
- 26. Johnson, B. J. (1971). Effects of sequential herbicide treatments on weeds and soybeans. Weed Science, 19(6), 695–700. https://doi.org/10.1017/S0043174500051087
- 27. Kadam, S. P., Gokhale, D. N., Pawar, S. U., Chavan, R. M. (2018). Efficacy of post-emergence herbicides in soybean (Glycine max (L.) Merrill). Journal of Pharmacognosy and Phytochemistry, 7(6), 456–458. Retrieved from https://www.phytojournal.com/archives?year=2018&vol=7&issue=6&ArticleId=6192
- 28. Khaliq, A., Matloob, A., Mahmood, S., Rana, N. A., Khan, M. B. (2012). Seeding density and herbicide tank mixtures furnish better weed control and improve growth, yield, and quality of direct-seeded fine rice. International Journal of Agriculture and Biology, 14(4). Retrieved from http://www.fspublishers.org/ijab/past-issues/IJABVOL_14_NO_4/3.pdf
- 29. Kumar, A., Dhaka, A. K., Kumar, S., Singh, S., Punia, S. S. (2019). Weed management indices as affected by different weed control treatments in pigeon pea [Cajanus cajan (L.) Millsp.]. Journal of Pharmacognosy and Phytochemistry, 8(3), 3490–3494. Retrieved from https://www.phytojournal.com/archives?year=2019&vol=8&issue=3&ArticleId=8556
- 30. Kumar, V., Jha, P. (2015). Effective preemergence and postemergence herbicide programs for kochia control. Weed Technology, 29, 24–34. https://doi.org/10.1614/WT-D-14-00026.1
- 31. Luo, X. Y., Matsumoto, H. (2002). Susceptibility of a broad-leaved weed, Acanthospermum hispidum, to the grass herbicide fluazifop-butyl. Weed Biology and Management, 2(2), 98–103. https://doi.org/10.1046/j.1445-6664.2002.00053.x
- 32. Mahoney, D. J., Jordan, D. L., Hare, A. T., Leon, R. G., Vann, M. C., Burgos, N. R., Jennings, K. M. (2019). The influence of postemergence herbicide timing and frequency on weed control and soybean yield. Crop, Forage, and Turfgrass Management, 5, 1–7. https://doi.org/10.2134/cftm2019.05.0036
- 33. Malik, R. S., Yadav, A., Malik, R. K. (2006). Integrated weed management in soybean. Indian Journal of Weed Science, 38(1&2), 65–68. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ijws&volume=38&issue=1and2&article=017
- 34. Mallory-Smith, C. A., & Retzinger, E. J. (2003). Revised classification of herbicides by site of action for weed resistance management strategies. Weed Technology, 17, 605–619. https://doi.org/10.1614/0890-037X(2003)017[0605:RCOHBS]2.0.CO;2
- 35. Meloni, D. A., Nieva, M. J., Martínez, C. A. (2022). Effects of glyphosate on germination and photosynthesis in Prosopis alba G.: A biochemical approach. Biofix, 7(1), Article 81308. http://dx.doi.org/10.5380/biofix.v7i1.81308
- 36. Menalled, F. D., Gross, K. L., Hammond, M. (2001). Weed aboveground and seed bank community responses to agricultural management systems. Ecological Applications, 11, 1586–1601. https://doi.org/10.1890/1051-0761(2001)011[1586:WAAASB]2.0.CO;2
- 37. Merga, B., & Alemu, N. (2019). Integrated weed management in chickpea (Cicer arietinum L.). Cogent Food & Agriculture, 5, 1620152. https://doi.org/10.1080/23311932.2019.1620152
- 38. Motley, K., Dellow, J., Storrie, A., & Spenceley, J. (2001). Using herbicides in Lippia management program. Agnote DPI-384. NSW Agriculture.
- 39. Muttanna, K. (2015). Effect of post-emergence herbicide cycloxydim 20% EC on weeds, growth, and yield of soybean (M.Sc. thesis). University of Agricultural Sciences, Dharwad, Karnataka. Retrieved from http://krishikosh.egranth.ac.in/handle/1/5810128761
- 40. Nikoa, R. M., Owen, D. K., Swanton, C. J. (2015). Weed abundance, distribution, diversity, and community analyses. Weed Science, 63, 64–90. https://doi.org/10.1614/WS-D-13-00075.1
- 41. Nishant, K., Tigga, R. (2018). Effect of sowing date and weed management techniques on yield attributes and yield of blackgram. International Journal of Chemical Studies, 6(6), 2705–2708. Retrieved from https://www.chemijournal.com/archives/?year=2018&vol=6&issue=6&ArticleId=4603&si=false
- 42. O’Connell, P. J., Harms, C. T., & Allen, J. R. (1998). Metolachlor, S-metolachlor and their role within sustainable weed management. Crop Protection, 17, 207–212. https://doi.org/10.1016/S0261-2194(98)80011-2
- 43. Patil, A. S., Bhavsar, M. S., Deore, P. S., Raut, D. M. (2019). Effect of integrated weed management on weed dynamics of soybean (Glycine max (L.) Merrill) under Junagadh, India. International Journal of Current Microbiology and Applied Sciences, 7(1), 1110–1115. https://doi.org/10.20546/ijcmas.2018.701.130
- 44. Prachand, S., Kalhapure, A., & Kubde, K. L. (2015). Weed management in soybean with pre- and postemergence herbicides. Indian Journal of Weed Science, 47(2), 163–165. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ijws&volume=47&issue=2&article=014
- 45. Rani, B. P., & Venkateswarlu, E. (2022). Evaluation of pre and post emergence herbicides in greengram (Vigna radiata L.) during Kharif and Rabi seasons in the uplands of Krishna zone of Andhra Pradesh. Indian Journal of Agricultural Research, 56(3), 290–296. https://doi.org/10.18805/IJARe.A-5724
- 46. Raza, M. A., Gul, H., Wang, J., Yasin, H. S., Qin, R., Khalid, M. H. B., Yang, W. (2021). Land productivity and water use efficiency of maize-soybean strip intercropping systems in semi-arid areas: A case study in Punjab Province, Pakistan. Journal of Cleaner Production, 308, 127282. https://doi. org/10.1016/j.jclepro.2021.127282
- 47. Ren, Y., Zhang, L., Yan, M., Zhang, Y., Chen, Y., Palta, J. A. (2021). Effect of sowing proportion on above- and below-ground competition in maizesoybean intercrops. Scientific Reports, 11, 1–12. https://doi.org/10.1038/s41598-021-95242-w
- 48. Rohit, B. U., Narayan, B. P. (2018). Effect of integrated weed management on growth, productivity, and economics of soybean. International Journal of Academic Research and Development, 3(4), 650–652.
- 49. Rupareliya, V. V., Mathukia, R. K., Gohil, B. S., Javiya, P. P. (2020). Effect of post-emergence herbicides and their mixture on growth, yield, and quality of soybean (Glycine max L.). Journal of Pharmacognosy and Phytochemistry, 9(6), 1161–1164. Retrieved from https://www.phytojournal.com/archives?year=2020&vol=9&issue=6&ArticleId=13106
- 50. Safdar, M. E., Nadeem, M. A., Rehman, A., Ali, A., Iqbal, N., Mumtaz, Q., Javed, A. (2020). Screening of herbicides for effective control of weeds in soybean (Glycine max L.). Pakistan Journal of Weed Science Research, 26(3). https://doi.org/10.28941/pjwsr.v26i3.862
- 51. Sandil, M. K., Sharma, J. K., Sanodiya, P., Pandey, A. (2015). Bio-efficacy of tank mixed propaquizafop and imazethapyr against weeds in soybean. Indian Journal of Weed Science, 47(2), 158–162. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ijws&volume=47&issue=2&article=013
- 52. Singh, D., Mir, N. H., Singh, N., Kumar, J. (2014). Promising early post-emergence herbicides for effective weed management in soybean. Indian Journal of Weed Science, 46(2), 135–137. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ijws&volume=46&issue=2&article=007
- 53. Singh, H. P., Batish, D. R., Dogra, D. R., Kaur, S., Kohli, R. K., Negi, A. (2014). Negative effect of litter of invasive weed Lantana camara on structure and composition of vegetation in the lower Siwalik Hills, northern India. Environmental Monitoring and Assessment, 186, 3379–3389. https://doi.org/10.1007/s10661-014-3624-x
- 54. Singh, S. P., Yadav, R. S., Kumawat, A., Bairwa, R. C. (2018). Weed control in green gram (Vigna radiata) and its residual effect on Indian mustard (Brassica juncea). Indian Society of Agronomy, 63, 21–25. https://doi.org/10.59797/ija.v63i1.5368
- 55. Sirisha, L. B., Kumar, S., Kumar, S., Behera, S. K., & Chattopadhay, T. (2020). Effect of pre- and postemergence herbicidal application on weed dynamics and yield in lentil (Lens culinaris). International Journal of Chemical Studies, 8(4), 3926–3932. https://doi.org/10.22271/chemi.2020.v8.i4ax.10260
- 56. Solomon, C. B., Bradley, K. W. (2014). Influence of application timings and sublethal rates of synthetic auxin herbicides on soybean. Weed Technology, 28, 454–464. https://doi.org/10.1614/WT-D-13-00145.1
- 57. Soltani, N., Vyn, J. D., Sikkema, P. H. (2009). Control of common waterhemp (Amaranthus tuberculatus var. rudis) in corn and soybean with sequential herbicide applications. Canadian Journal of Plant Science, 89, 127–132. https://doi.org/10.4141/CJPS08051
- 58. Song, J. S., Chung, J. H., Lee, K. J., Kwon, J., Kim, J. W., Im, J. H., Kim, D. S. (2020). Herbicide-based weed management for soybean production in the Far Eastern region of Russia. Agronomy, 10(11), 1823. https://doi.org/10.3390/agronomy10111823
- 59. United Nations. (2015). Transforming our world: The 2030 Agenda for Sustainable Development. Retrieved from https://sdgs.un.org/goals/goal2
- 60. Vijayalaxmi, G. S., Hiremath, S. M., Hosmath, P. L., Doddamani, M. B. (2012). Sequential application of pre- and post-emergence herbicide in soybean. Journal of Agricultural Science, 25, 262–263. Retrieved from http://pub.uasd.edu/ojs/index.php/kjas/article/viewFile/2559/2404
- 61. Vyas, M. D., Jain, A. K. (2005). Effect of pre- and post-emergence herbicides on weed control and productivity of soybean. Indian Journal of Agronomy, 48(4), 309–311. Retrieved from https://www.indianjournals.com/ijor.aspx?target=ijor:ija&volume=48&issue=4&article=018
- 62. Walsh, M. J., Devlin, R. D., Powles, S. B. (2004). Potential for preseason herbicide application to prevent weed emergence in the subsequent growing season. Weed Technology, 18(2), 228–235. https://doi.org/10.1614/WT-03-13R1
- 63. Zhao, J., Wang, C., Shi, X., Bo, X., Li, S., Shang, M. (2021). Modeling climatically suitable areas for soybean and their shifts across China. Agricultural Systems, 192, 103205. https://doi.org/10.1016/j.agsy.2021.103205
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Bibliografia
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