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Статті в журналах з теми "Effect of herbicide on"

1

Milosevic, Nada, and Mitar Govedarica. "Effect of herbicides on microbiological properties of soil." Zbornik Matice srpske za prirodne nauke, no. 102 (2002): 5–21. http://dx.doi.org/10.2298/zmspn0201005m.

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Microorganisms decompose herbicides and they may serve as bioindicators of soil changes following herbicide application. Certain microbial species may be used as bioherbicides. This study has shown that Azotobacter is most sensitive to herbicide application; it is, therefore, a reliable indicator of the biological value of soil. The numbers of this group of nitrogen-fixing bacteria decrease considerably in the period of 7-14 days after herbicide application. Simultaneously, the numbers of Actinomycetes and less so of fungi increase, indicating that these microorganisms use herbicides as source
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2

Redlick, Collen, Hema S. N. Duddu, Lena D. Syrovy, Christian J. Willenborg, Eric N. Johnson, and Steven J. Shirtliffe. "Effect of Seeding Rate on Dose Response of Wild Mustard (Sinapis arvensis) to Fluthiacet-Methyl." Weed Science 65, no. 4 (June 9, 2017): 525–33. http://dx.doi.org/10.1017/wsc.2017.9.

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Concern over the development of herbicide-resistant weeds has led to interest in integrated weed management systems that reduce selection pressure by utilizing mechanical and cultural weed control practices in addition to herbicides. Increasing crop seeding rate increases crop competitive ability and thus can enhance herbicide efficacy. However, it is unknown how increasing the seeding rate affects an herbicide’s efficacy. The objective of this study was to examine the interaction between increasing seeding rate and herbicide dose to control weeds. To meet this objective, the herbicide fluthia
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3

Lobachev, Yuriy Viktorovich, and Valeriy Tikonovich Krasilnikov. "The effect of new tank mixtures and herbicide compositions on economically useful indicators of soy." Agrarian Scientific Journal, no. 2 (February 19, 2020): 16–23. http://dx.doi.org/10.28983/asj.y2020i2pp16-23.

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The method of two-way analysis of variance in three field experiments in the conditions of the Right Bank of the Saratov Region studied the effect of four herbicides, two new tank mixtures and two new herbicide compositions on grain yield, number of plants per square meter, number of beans per plant, number of grains per plant, plant mass, the mass of beans from the plant, the mass of grain from the plant, the mass of 1000 grains, the protein content in the grain, the height of the plant, the height of attachment of the lower bean. The effectiveness of the herbicides was as follows: frontier o
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4

Wang, Pei, Hui Li, Weidong Jia, Yin Chen, and Roland Gerhards. "A Fluorescence Sensor Capable of Real-Time Herbicide Effect Monitoring in Greenhouses and the Field." Sensors 18, no. 11 (November 5, 2018): 3771. http://dx.doi.org/10.3390/s18113771.

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Herbicide resistant weeds need to be identified early so that yield loss can be avoided by applying proper field management strategies. A novel chlorophyll-fluorescence-imaging sensor has been developed to conduct real-time herbicide effect evaluation. In this research, greenhouse and field experiments were conducted to calibrate the capability of the sensor in monitoring herbicide effects on different biotypes of two grass weeds (Alopecurus myosuroides, Apera spica-venti) in southwestern Germany. Herbicides with different modes of action were applied for the effect monitoring. Chlorophyll flu
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5

Samadi Kalkhoran, Elham, Mohammad Taghi Alebrahim, Hamid Reza Mohammaddoust Chamn Abad, Jens Carl Streibig, Akbar Ghavidel, and Te-Ming Paul Tseng. "The Survival Response of Earthworm (Eisenia fetida L.) to Individual and Binary Mixtures of Herbicides." Toxics 10, no. 6 (June 12, 2022): 320. http://dx.doi.org/10.3390/toxics10060320.

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Frequent use of herbicides may impose a risk on non-target species. The objective was to test the combined toxic effect of binary herbicide mixtures—metribuzin:halosulfuron and metribuzin:flumioxazin—on non-target earthworms in two test systems: filter paper and a soil toxicity test system. The joint action experiments were independently run twice to substantiate the findings. The most potent individual herbicide was metribuzin, with a 50% lethal concentration (LC50) of 17.17 µg ai. cm−2 at 48 h in the filter paper test. The toxicity of the individual herbicides on the filter paper test was ra
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6

Gao, Liu, Jiang, Fu, Zhao, Li, and Ye. "Protective Responses Induced by Chiral 3-Dichloroacetyl Oxazolidine Safeners in Maize (Zea mays L.) and the Detoxification Mechanism." Molecules 24, no. 17 (August 22, 2019): 3060. http://dx.doi.org/10.3390/molecules24173060.

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Herbicide safeners selectively protect crops from herbicide injury while maintaining the herbicidal effect on the target weed. To some extent, the detoxification of herbicides is related to the effect of herbicide safeners on the level and activity of herbicide target enzymes. In this work, the expression of the detoxifying enzyme glutathione S-transferase (GST) and antioxidant enzyme activities in maize seedlings were studied in the presence of three potential herbicide safeners: 3-dichloroacetyl oxazolidine and its two optical isomers. Further, the protective effect of chiral herbicide safen
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7

Zarzecka, Krystyna, Marek Gugała, Iwona Mystkowska, and Anna Sikorska. "Changes in dry weight and starch content in potato under the effect of herbicides and biostimulants." Plant, Soil and Environment 67, No. 4 (March 30, 2021): 202–7. http://dx.doi.org/10.17221/622/2020-pse.

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The aim of the study was to determine the interaction of herbicides and herbicides with biostimulants on the accumulation of dry matter and starch in potato tubers. In a three-year field experiment based on the method of randomised sub-blocks, two factors were taken into account. The first factor were potato cultivars: Bartek, Gawin, Honorata. The second factor were five methods of herbicides and biostimulants application: (1) the control object without chemical protection (CO); (2) herbicide linuron + clomazone (Harrier 295 ZC) (H); (3) herbicide linuron + clomazone (Harrier 295 ZC) and biost
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8

Petrova, Sofia, Stanislav Stamatov, and Blagoy Andonov. "Study of the effect of different herbicides and herbicidal combinations on weed flora and chickpea yield." Agricultural Sciences 14, no. 32 (March 18, 2022): 31–36. http://dx.doi.org/10.22620/agrisci.2022.32.005.

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Chickpea (Cicer arietinum L.) is the third most important grain legume crop in the world and the first important legume in the South and West Asia. For Bulgaria the chickpea is an old traditional crop used mainly for human consumption and to a lesser extent for feed. One of the most important yield limiting factors in the chickpea seed production is the poor weed management. The establishment of the most appropriate herbicide or herbicide combination for the effective control especially of the weed flora is a priority task of the chickpea cultivation. The aim of this study was to investigate t
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9

Swanson, Bert T., and James B. Calkins. "Weed Control Strategies for Field- and Container-grown Herbaceous Perennials." HortScience 30, no. 4 (July 1995): 894E—894. http://dx.doi.org/10.21273/hortsci.30.4.894e.

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Fourteen herbicides or herbicide combinations, a wood chip mulch, a chipped rubber tire mulch, and a newspaper mulch were evaluated for weed control efficacy and potential phytotoxicity using 12 species of herbaceous perennials under field-growing conditions. Nineteen herbicides or herbicide combinations were similarly evaluated under container-growing conditions using 11 species of herbaceous perennials. The effect of herbicide application time also was monitored through application of herbicides to dormant and actively growing plants. Herbicides and mulch treatments were compared to weeded a
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10

Beckie, Hugh J., Fa-Yan Chang, and F. Craig Stevenson. "The Effect of Labeling Herbicides with Their Site of Action: A Canadian Perspective." Weed Technology 13, no. 3 (September 1999): 655–61. http://dx.doi.org/10.1017/s0890037x00046364.

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Industry, public-sector researchers and extension agents, and growers were surveyed in 1998 to determine their perspectives on how labeling herbicides with their site of action (group number) would affect the herbicide use practices of growers. The crop protection industry in Canada represented by the Crop Protection Institute (CPI) generally supports herbicide resistance labeling but has some concerns regarding the wording of the labels, including the identification symbol. Most researchers and extension agents believe that labeling herbicides with their site of action will facilitate herbici
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Дисертації з теми "Effect of herbicide on"

1

Somireddy, Upender Reddy. "Effect of Herbicide-Organic Mulch Combinations on Weed Control and Herbicide Persistence." The Ohio State University, 2012. http://rave.ohiolink.edu/etdc/view?acc_num=osu1325255792.

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2

Mansooji, Ali Mohammad. "Herbicide resistance in wild oats, Avena spp." Title page, contents and abstract only, 1993. http://web4.library.adelaide.edu.au/theses/09PH/09phm289.pdf.

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3

Maneechote, Chanya. "Mechanisms of herbicide resistance in wild oats (Avena spp.)." Title page, contents and abstract only, 1995. http://web4.library.adelaide.edu.au/theses/09PH/09phm274.pdf.

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Анотація:
Bibliography : leaves 159-184. This study found at least three mechanisms of resistance to the acetyl coenzyme A carboxylase (ACCase)-inhibiting herbicides. A modified target -site was responsible for moderate and high resistance to herbicides at the whole plant level. Enhanced herbicide metabolism and reduced translocation of herbicide to the target site was observed in one resistant biotype each.
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4

Abulnaja, Khalid Omar. "Effect of different herbicide classes on lipid metabolism." Thesis, Cardiff University, 1989. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.254870.

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5

Zama, Paul. "Studies on the mechanisms of action of the herbicide safener CGA- 92194." Diss., Virginia Polytechnic Institute and State University, 1985. http://hdl.handle.net/10919/49970.

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CGAr92194 {α-[1,3-dioxolan-2-yl-methoxy)imino]benzeneacetonitrile} is a herbicide safener that is used as a seed dressing agent (1.25 g ai/kg seeds) to protect grain sorghum [<i>Sorghum bicolor</i> (L.) Moench] against metolachlor [2-chloroi-<u>N</u>-(2-ethyl-6-methylphenyl-<u>N</u>-(2-methoxy1-methylethyl)acetamide] injury. The potential adverse phytotoxic effects and the mechanisms of the protective action of this safener were studied in laboratory experiments. Adverse phytotoxicity was assessed by comparing CGA-92194 and the herbicide safeners cyometrinil {(Z)-α[(cyanomethoxy)imino]benzene
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6

Clifford, Philip A. (Philip Alan). "Validation of a Coupled Herbicide Fate and Target Plant Species Effects Model." Thesis, University of North Texas, 1989. https://digital.library.unt.edu/ark:/67531/metadc332422/.

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A series of experiments provided data to parameterize and validate a coupled herbicide fate and target plant species effects model. This simulation model is currently designed to predict responses of water hyacinth populations to treatments of the dimethylamine formulation of 2,4- dichloro-phenoxy acetic acid (2,4-D -DMA). Experiments investigated 1) the response of water hyacinth to varying exposures of 2,4-D (DMA); 2) the role of water hyacinth density and herbicide interception in treatment effectiveness using 2,4-D (DMA); and 3) the importance of root exposure to obtain control of water hy
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7

Nietschke, Brett Steven. "Integrated strategies for wild oat (Avena spp.) management in southern Australian farming systems." Title page, contents and abstract only, 1997. http://web4.library.adelaide.edu.au/theses/09PH/09phn677.pdf.

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Bibliography: leaves 128-146. Study was undertaken to determine the occurence and species incidence of wild oats in a major cropping region of southern Australia. Population dynamic studies were undertaken at two sites to define the seed bank decline and emergence pattern of several wild oat populations over a three year period. Management studies were conducted to determine appropriate strategies for the control of wild oats in southern Australian farming systems.
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8

Mersie, Wondimagegnehu. "Selectivity and soil behavior of chlorsulfuron." Diss., Virginia Polytechnic Institute and State University, 1985. http://hdl.handle.net/10919/53563.

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Response of barley (<i>Hordeum vulgare</i> L.) and wheat (<i>Triticum aestivum</i> L.) to root-applied chlorsulfuron (2-chloro N-[[(4-methoxy-6-methyl-1,3,5-triazin-2-yl) amino] carbonyl] benzenesulfonamide), a herbicide for use in small grains, was investigated. The results showed that, although wheat roots take up more chlorsulfuron than barley roots, barley was less tolerant to chlorsulfuron and chlorsulfuron was more mobile in barley. This study indicated that difference in uptake or translocation cannot explain the differential response of the two species to root-applied chlorsulfuron. I
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9

Fillmore, Andrew Nathan. "Droplet Size Effect on Herbicide Used in Cereals to Control Dicotyledonous Weeds." Thesis, North Dakota State University, 2014. https://hdl.handle.net/10365/27419.

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Experiments were conducted to evaluate the effect of droplet size on the efficacy of translocated and non-translocated herbicides. Translocated and non-translocated herbicides provided similar control when comparing droplet size effect on efficacy. Medium and very coarse droplet sizes gave the greatest visible injury whereas coarse-sized gave the lowest visible injury assessments for most species. However, droplet size generally did not affect contact herbicide efficacy. Overall, droplet size was not a strong factor contributing to herbicide efficacy and often, differences were only between he
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10

Yenne, Samuel P. "Investigations on the mechanism of action of the oxime ether safeners for the protection of grain sorghum against metolachlor." Diss., Virginia Polytechnic Institute and State University, 1989. http://hdl.handle.net/10919/54821.

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Анотація:
Herbicide safeners (protectants, antidotes) are used to protect crop plants from herbicide injury. Currently our understanding of the mechanisms involved in the protection of plants by safeners is not well defined; therefore, investigations were conducted to elucidate the mechanism(s) of action of the oxime ether safeners. Molecular comparisons of selected herbicide-safener combinations using computer-aided molecular modeling revealed that the chemical structures of safeners and herbicides are very similar at the molecular level; and, indicate that these compounds could bind at the same active
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Книги з теми "Effect of herbicide on"

1

P, Sharma M. Recognizing Herbicide Action & Injury. 2nd ed. Vegreville, Alt: Alberta Environmental Centre, 1986.

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2

1944-, Duke Stephen O., and Fedtke Carl 1940-, eds. Physiology of herbicide action. Englewood Cliffs, N.J: P T R Prentice Hall, 1993.

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3

Ritter, Ronald Lloyd. Understanding herbicide resistance in weeds. Des Plaines, Ill: Sandoz Crop Protection Corp., 1989.

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4

Mallory-Smith, Carol. Herbicide-resistant weeds and their management. [Moscow, Idaho]: University of Idaho Cooperativae Extension System, 1993.

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5

Mallory-Smith, Carol. Herbicide-resistant weeds and their management. [Moscow, Idaho]: University of Idaho Cooperativae Extension System, 1993.

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6

Mallory-Smith, Carol. Herbicide-resistant weeds and their management. [Moscow, Idaho]: University of Idaho Cooperativae Extension System, 1993.

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7

Mallory-Smith, Carol. Herbicide-resistant weeds and their management. [Moscow, Idaho]: University of Idaho Cooperativae Extension System, 1999.

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8

Mallory-Smith, Carol. Herbicide-resistant weeds and their management. [Moscow, Idaho]: University of Idaho Cooperativae Extension System, 1999.

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9

Peter, Böger, and Sandmann Gerhard, eds. Target sites of herbicide action. Boca Raton, Fla: CRC Press, 1989.

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10

C, Kirkwood R., ed. Target sites for herbicide action. New York: Plenum Press, 1991.

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Частини книг з теми "Effect of herbicide on"

1

Clay, S. A., D. E. Clay, Z. Liu, and S. S. Harper. "The Effect of Ammonia on Atrazine Sorption and Transport." In Herbicide Metabolites in Surface Water and Groundwater, 117–24. Washington, DC: American Chemical Society, 1996. http://dx.doi.org/10.1021/bk-1996-0630.ch010.

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2

Beckert, Michel, and Yves Dessaux. "Effects on the Environment." In Effects of Herbicide-Tolerant Crop Cultivation, 107–23. Dordrecht: Springer Netherlands, 2016. http://dx.doi.org/10.1007/978-94-024-1007-5_5.

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3

Beckert, Michel, and Yves Dessaux. "Mechanisms of Herbicide Resistance and HTV Breeding Techniques." In Effects of Herbicide-Tolerant Crop Cultivation, 1–28. Dordrecht: Springer Netherlands, 2016. http://dx.doi.org/10.1007/978-94-024-1007-5_1.

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Beckert, Michel, and Yves Dessaux. "HTV Diffusion and Use." In Effects of Herbicide-Tolerant Crop Cultivation, 29–58. Dordrecht: Springer Netherlands, 2016. http://dx.doi.org/10.1007/978-94-024-1007-5_2.

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Beckert, Michel, and Yves Dessaux. "Diffusion of the HT Trait and the Appearance of Herbicide Resistance." In Effects of Herbicide-Tolerant Crop Cultivation, 59–88. Dordrecht: Springer Netherlands, 2016. http://dx.doi.org/10.1007/978-94-024-1007-5_3.

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Beckert, Michel, and Yves Dessaux. "The Development of HTV Cropping Systems." In Effects of Herbicide-Tolerant Crop Cultivation, 89–106. Dordrecht: Springer Netherlands, 2016. http://dx.doi.org/10.1007/978-94-024-1007-5_4.

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Monteiro, A., I. Moreira, and E. Sousa. "Effect of prior common reed (Phragmites australis) cutting on herbicide efficacy." In Biology, Ecology and Management of Aquatic Plants, 305–8. Dordrecht: Springer Netherlands, 1999. http://dx.doi.org/10.1007/978-94-017-0922-4_44.

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8

Jadhav, Ashok S., M. G. Patil, and R. K. Sonwane. "Effect of Herbicide Application on Soil Microflora and Nutrient Status of Soil." In Plant Growth Promoting Rhizobacteria (PGPR): Prospects for Sustainable Agriculture, 163–68. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-6790-8_13.

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9

Zollinger, Richard K., John D. Nalewaja, Dallas E. Peterson, and Bryan G. Young. "Effect of Hard Water and Ammonium Sulfate on Weak Acid Herbicide Activity." In Pesticide Formulations and Delivery Systems, 30th Volume: Regulations and Innovation, 115–28. 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959: ASTM International, 2010. http://dx.doi.org/10.1520/stp152720120009.

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Lampert, Winfried, Walter Fleckner, Eckart Pott, Ursula Schober, and Karl-Ulrich Störkel. "Herbicide effects on planktonic systems of different complexity." In Environmental Bioassay Techniques and their Application, 415–24. Dordrecht: Springer Netherlands, 1989. http://dx.doi.org/10.1007/978-94-009-1896-2_42.

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Тези доповідей конференцій з теми "Effect of herbicide on"

1

Priyanto, Akhmad Dwi, Daniel Saputra, Fuad Abd Rachman, and Rico Januar Sitorus. "Effect of Glyphosate Herbicide on Environmental Health." In 2nd Sriwijaya International Conference of Public Health (SICPH 2019). Paris, France: Atlantis Press, 2020. http://dx.doi.org/10.2991/ahsr.k.200612.012.

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2

Timergalin, M. D., A. V. Feoktistova, T. V. Rameev, S. P. Chetverikov та Z. R. Sultangazin. "Wheat yields of herbicide treatment along with auxin-producing bacteria Pseudomonas sp. DА1.2". У 2nd International Scientific Conference "Plants and Microbes: the Future of Biotechnology". PLAMIC2020 Organizing committee, 2020. http://dx.doi.org/10.28983/plamic2020.246.

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The effect of the identified auxin-producing strain of bacteria on wheat plants when treated with the herbicides Chistalan and Nanometh in the field was studied. The ability of bacterial treatment to increase wheat yield under herbicidal stress due to the positive effect of bacteria on plant growth and development at early stages of development is shown.
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3

Owen, Micheal D. K. "Effect of Enrvironmental Conditions on Weed/Herbicide Interactions." In Proceedings of the First Annual Crop Production and Protection Conference. Iowa State University, Digital Press, 1989. http://dx.doi.org/10.31274/icm-180809-310.

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4

Kalabashkina, E. V., V. A. Tsymbalova, S. V. Uldina, L. P. Abramkina, A. V. Mednov, N. A. Yashina, and L. I. Mavlutova. "Anti-slag herbicides on Agata spring wheat." In Растениеводство и луговодство. Тимирязевская сельскохозяйственная академия, 2020. http://dx.doi.org/10.26897/978-5-9675-1762-4-2020-172.

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results of research on the effect of anti-slag herbicides: Axial, CE, Verdict, VDG, Lastik exstra, EС, Pallas 45, MD on spring wheat Agata in the Moscow region are presented. The research was performed in 2019 on the fields of the Nemchinovka research center. Infestation was represented by two types of monocotyledonous weeds from the Bluegrass family (Grasses): annual bluegrass (Póa Annua) and barn grass (Echinóchloa crus-gálli). The use of anti-slag herbicides reduces the number of weeds in the experiment and their air-dry mass. Herbicide treatment increased the wheat grain yield by 1.19-1.67
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5

Zhang, Yun, Xin Ke, and Lian-zhu Guan. "Effect of herbicide on microbial activity in paddy soil." In 2011 International Conference on Remote Sensing, Environment and Transportation Engineering (RSETE). IEEE, 2011. http://dx.doi.org/10.1109/rsete.2011.5964975.

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Cabrera, A., L. Cox, P. Velarde, and J. Cornejo. "Effect of an organic residue on herbicide field dissipation." In WASTE MANAGEMENT 2008. Southampton, UK: WIT Press, 2008. http://dx.doi.org/10.2495/wm080611.

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Giesler, Loren J. "Can herbicides affect disease development? An overview of differentiating herbicide injury from crop disease and what is known about herbicide effects on disease development." In Proceedings of the 24th Annual Integrated Crop Management Conference. Iowa State University, Digital Press, 2015. http://dx.doi.org/10.31274/icm-180809-180.

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8

Feoktistova, A. V., M. D. Timergalin, T. V. Rameev, and S. P. Chetverikov. "The role of auxin-producing bacteria in the formation of a growth response in wheat plants under herbicidal stress." In 2nd International Scientific Conference "Plants and Microbes: the Future of Biotechnology". PLAMIC2020 Organizing committee, 2020. http://dx.doi.org/10.28983/plamic2020.073.

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The paper presents the results of the effect of treatment with bacteria on the growth and hormonal balance of wheat plants with simultaneous exposure to the herbicide Chistalan. It is shown that herbicide stress is leveled by bacteria.
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Mickelson, S. K., and J. L. Baker. "Tillage and Herbicide Incorporation Effects on Runoff Losses." In Proceedings of the 1992 Crop Production and Protection Conference. Iowa State University, Digital Press, 1995. http://dx.doi.org/10.31274/icm-180809-498.

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Tey, J. N., S. Gandhi, I. P. M. Wijaya, J. Wei, C. R. Suri, I. Rodriguez, and S. G. Mhaisalkar. "Liquid Gated Carbon Nanotubes Field Effect Transistors (LG-CNTFET) Platform for Herbicide Sensing." In ASME 2009 International Mechanical Engineering Congress and Exposition. ASMEDC, 2009. http://dx.doi.org/10.1115/imece2009-10571.

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Single-walled carbon nanotube (SWCNT) is a one-dimensional system with all its carbon atoms present on the surface, hence its conductance is highly sensitive to the surrounding charge environment. Due to the extreme charge sensitivity, biocompatibility and chemical stability, SWCNT is particularly interested in biosensing application. In this paper, we demonstrated a practical approach of fabricating laminated SWCNT liquid gate field effect transistor (LGFET) through a solution processed route involving only two materials, PDMS and SWCNT. The laminated SWCNT LGFETs show great potential towards
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Звіти організацій з теми "Effect of herbicide on"

1

McDonald, Philip M., and Gary O. Fiddler. Effect of cattle grazing, seeded grass, and an herbicide on ponderosa pine seedling survival and growth. Albany, CA: U.S. Department of Agriculture, Forest Service, Pacific Southwest Research Station, 1999. http://dx.doi.org/10.2737/psw-rp-242.

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2

Mudge, Christopher R., Kurt D. Getsinger, and Benjamin P. Sperry. Simulated Herbicide Spray Retention on Floating Aquatic Plants as Affected by Carrier Volume and Adjuvant Type. U.S. Army Engineer Research and Development Center, June 2022. http://dx.doi.org/10.21079/11681/44540.

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Foliar delivery of herbicides is a common means for plant management in aquatic environments. Though this technique is decades old, little is known about vegetative spray retention relative to this application method. A more complete understanding of maximizing herbicide retention could lead to improved plant management while simultaneously decreasing pesticide load in aquatic environments. Therefore, outdoor mesocosm experiments were conducted in 2020 to evaluate the effect of adjuvant type on foliar spray retention in waterhyacinth [Eichhornia crassipes (Mart.) Solms]. Additionally, the effe
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3

Wendel, G. W., Neil I. Lamson, and Neil I. Lamson. Effects of herbicide release on the growth of 8- to 12-year-old hardwood trees. Broomall, PA: U.S. Department of Agriculture, Forest Service, Northeastern Forest Experimental Station, 1987. http://dx.doi.org/10.2737/ne-rp-598.

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Taber, Henry G., and Vincent Lawson. Residual Effects of Callisto, Impact, and Laudis Herbicide on Cucumber, Pepper, Snap Bean, and Tomato. Ames: Iowa State University, Digital Repository, 2010. http://dx.doi.org/10.31274/farmprogressreports-180814-2497.

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5

Wendel, G. W., Neil I. Lamson, and Neil I. Lamson. Effects of herbicide release on the growth of 8- to 12-year-old hardwood trees. Broomall, PA: U.S. Department of Agriculture, Forest Service, Northeastern Forest Experimental Station, 1987. http://dx.doi.org/10.2737/ne-rp-598.

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6

Kochenderfer, Jeffrey D., and James N. Kochenderfer. Effects of herbicide concentration and application timing on the control of beech root and stump sprouts using the cut-stump treatment. Newtown Square, PA: U.S. Department of Agriculture, Forest Service, Northern Research Station, 2009. http://dx.doi.org/10.2737/nrs-gtr-48.

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7

Blume, Christopher, and Nick E. Christians. Herbicide Efficacy Trial. Ames: Iowa State University, Digital Repository, 2010. http://dx.doi.org/10.31274/farmprogressreports-180814-2210.

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8

Lawson, Vince. Potato Herbicide Evaluations. Ames: Iowa State University, Digital Repository, 2016. http://dx.doi.org/10.31274/farmprogressreports-180814-53.

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Lawson, Vincent, and Henry G. Taber. Sweet Corn Herbicide Study. Ames: Iowa State University, Digital Repository, 2006. http://dx.doi.org/10.31274/farmprogressreports-180814-615.

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Kassel, Paul, and Terry Tuttle. Dicamba Herbicide Demonstration for Soybean. Ames: Iowa State University, Digital Repository, 2018. http://dx.doi.org/10.31274/farmprogressreports-180814-1958.

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