Academic literature on the topic 'Vittata'

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Journal articles on the topic "Vittata"

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Schofield, Pamela J., and Jessica M. Schulte. "Small but tough: What can ecophysiology of croaking gourami Trichopsis vittata (Cuvier, 1831) tell us about invasiveness of non-native fishes in Florida?" NeoBiota 28 (January 8, 2016): 51–65. https://doi.org/10.3897/neobiota.28.5259.

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Trichopsis vittata (Cuvier, 1831) is a small, freshwater gourami (Fam: Osphronemidae) native to southeast Asia. It was first detected in Florida in the 1970s and seems to have persisted for decades in a small area. In this study, we documented T. vittata's ecophysiological tolerances (salinity and low-temperature) and qualitatively compared them to published values for other sympatric non-native species that have successfully invaded much of the Florida peninsula. Trichopsis vittata survived acute salinity shifts to 16 psu and was able to survive up to 20 psu when salinity was raised more slow
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AKHMETOVA, LILIA, and OLIVIER MONTREUIL. "Revision of Metadorodocia Machatschke, 1957, a genus endemic to Madagascar (Coleoptera: Scarabaeidae: Rutelinae: Adoretini)." Zootaxa 2401, no. 1 (2010): 61. http://dx.doi.org/10.11646/zootaxa.2401.1.5.

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The genus Metadorodocia, which is endemic to Madagascar, is revised. A lectotype is designated for its type species, Adoretus vittatus Waterhouse, 1878. A second species of this genus, Metadorodocia frolovi n. sp., is diagnosed from M. vittata and described. Illustrations for both species are provided and their distributions are clarified.
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Zhou, Ting, Li Juan You, Meng Wei Han, Xue Feng Wang, Hong Juan Wang, and Jun Xiang Chen. "Investigation of the Accumulation Effect of Pteris vittata L. in Triphenylarsine-Contaminated Soil." Advanced Materials Research 955-959 (June 2014): 2007–13. http://dx.doi.org/10.4028/www.scientific.net/amr.955-959.2007.

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The principle and mechanism of triphenylarsine (TPA) accumulation of arsenic hyper-accumulator-Pteris vittata L was investigated to remediate soil contaminated by abandoned arsenical chemical weapons in somewhere in Jilin Province, by means of soil and water culture in the greenhouse. Through analysis of changes in concentrations of total arsenic and TPA in Pteris vittata L. and in inorganic arsenic concentration of water culture solution, observation of apparent characteristics and determination of organic arsenic forms in Pteris vittata L., results show that Pteris vittata L. could accumulat
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Zhu, Qi Hong, and Hong Xia Xia. "Effect of Zn Stress on Pteris vittata." Advanced Materials Research 581-582 (October 2012): 1151–55. http://dx.doi.org/10.4028/www.scientific.net/amr.581-582.1151.

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In order to investigate the ability of Pteris vittata restoring Zn polluted soil, water cultured experiment is utilized to study the enriching ability of Pteris vittata to Zn, and the detoxification mechanism of Pteris vittata to Zn. The experimental results show that Pteris vittata has certain enriching ability to Zn,and the translation coefficient of Zn in Pteris vittata reaches 1.0. With the increasing of Zn application amount, chlorophyll and soluble sugar contents of Pteris vittata show ascending first and then descending,O2-• and MDA contents continuously ascend,starch content continuous
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Yensen, Eric, and Teresa Tarifa. "Galictis vittata." Mammalian Species 727 (July 2003): 1–8. http://dx.doi.org/10.1644/727.

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Gafur, Nurfitri Abdul, Masayuki Sakakibara, Satoru Komatsu, Sakae Sano, and Koichiro Sera. "Environmental Survey of the Distribution and Metal Contents of Pteris vittata in Arsenic–Lead–Mercury-Contaminated Gold Mining Areas along the Bone River in Gorontalo Province, Indonesia." International Journal of Environmental Research and Public Health 19, no. 1 (2022): 530. http://dx.doi.org/10.3390/ijerph19010530.

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In this paper, we report ecological and environmental investigations on Pteris vittata in the As–Pb–Hg-polluted Bone River area, Gorontalo Province, Indonesia. The density distribution of P. vittata decreases from around the artisanal and small-scale gold mining (ASGM) site to the lower reaches of the Bone River, and it is rarely found near Gorontalo City. The maximum concentrations of As, Hg, and Pb recorded in the soil samples were 401, 36, and 159 mg kg−1, respectively, with their maximum concentrations in P. vittata recorded as 17,700, 5.2, and 39 mg kg−1, respectively. Around the ASGM sit
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Santosh, Bhuvana. "Research on Phinella Vittata." International Journal of Science and Research (IJSR) 12, no. 11 (2023): 169–71. http://dx.doi.org/10.21275/sr231031215946.

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Mumpuni, Mugi. "Variasi Morfologi Pteris Vittata l. (Pteridaceae; Pteridophyta) dan Korelasinya dengan Ketinggian Lokasi Tempat Tumbuhnya di Jawa." BIOLINK (Jurnal Biologi Lingkungan Industri Kesehatan) 2, no. 2 (2017): 100–109. http://dx.doi.org/10.31289/biolink.v2i2.799.

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Pteris vittata has a high morphological variation and it has wide geographic regions around the world . Study of morphology and its correlation with with altitude of plant origin area in Java is very little informed. This aims of this research were first to study the diversity of morphological characters of P. vittata from Java; and to know the correlations among morphological characters to the plant orignated altitute; This study was conducted from September 2012 until September 2013. Plants materials were collected by exploration method. Morphological observations carried out on 130 indivi
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Han, Ning, Chongyang Yang, Shunya Shimomura, Chihiro Inoue, and Mei-Fang Chien. "Empirical Evidence of Arsenite Oxidase Gene as an Indicator Accounting for Arsenic Phytoextraction by Pteris vittata." International Journal of Environmental Research and Public Health 19, no. 3 (2022): 1796. http://dx.doi.org/10.3390/ijerph19031796.

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Arsenic (As) is a toxic semi-metallic element that is ubiquitous in the environment and poses serious human health risks. Phytoextraction by Pteris vittata is considered a low-cost and environmentally friendly approach to treat As-contaminated soil. P. vittata mainly absorbs arsenate thus the bioavailability of As to P. vittata depends on the chemical form of As. Microbial redox of As contributes to the biogeochemical cycling of As, and rhizobacterium-assisted phytoextraction by P. vittata was proposed. In this study, this microbe-assisted phytoextraction was applied to two fields, and the eff
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Pan, Guofei, Yanyan Wei, Ningning Zhao, Minghua Gu, Bing He, and Xueli Wang. "Effects of Claroideoglomus etunicatum Fungi Inoculation on Arsenic Uptake by Maize and Pteris vittata L." Toxics 10, no. 10 (2022): 574. http://dx.doi.org/10.3390/toxics10100574.

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The intercropping of arsenic (As) hyperaccumulator Chinese brake fern (Pterisvittata L.) with maize (Zea mays L.) is being widely utilized to enhance phytoremediation without impeding agricultural production. Arbuscular mycorrhizal (AM) fungi can regulate the physiological and molecular responses of plants in tolerating heavy metal stress. We studied the effects of inoculation with AM fungi on As uptake by maize and P. vittata grown in soil contaminated with As. The results show that infection with the fungus Claroideoglomus etunicatum (Ce) increased the biomass of maize and P. vittata. Moreov
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Dissertations / Theses on the topic "Vittata"

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Shelmerdine, Paula Ann. "Phytoremediation of arsenic-contaminated soils using the hyperaccumulating fern Pteris vittata." Thesis, University of Nottingham, 2007. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.446147.

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Previous studies have shown that pteris vittata may accumulate substantial quantities of arsenic (As) in its shoots. The present study involved collecting soils from 21 contrasting sites from around England which had been contaminated with arsenic as result of a wide range of human activities and natural causes. These were used to examine growth and As uptake by P. vittata in a series of pot experiments. Initial experiments used soil from 10 fields on a large commercial sewage disposal estate located north east of Nottingham. These soils were highly organic and contained high concentrations of
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Dickinson, Michelle. "Secondary ion mass spectrometry (SIMS) analysis of the arsenic-hyperaccumulator, Pteris vittata." Thesis, University of Bristol, 2005. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.422557.

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Gonzaga, Maria Isidoria Silva. "Effects of soil and plant on arsenic accumulation by arsenic hyperaccumulator Pteris vittata L." [Gainesville, Fla.] : University of Florida, 2006. http://purl.fcla.edu/fcla/etd/UFE0013732.

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Kertulis-Tartar, Gina Marie. "Arsenic hyperaccumulation by Pteris vittata L. and its potential for phytoremediation of arsenic-contaminated soils." [Gainesville, Fla.] : University of Florida, 2005. http://purl.fcla.edu/fcla/etd/UFE0010081.

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Da, Dalt Alessandra <1988&gt. "Fitorisanamento di suoli contaminati da arsenico tramite la felce (Pteris vittata L.): vantaggi e limiti." Master's Degree Thesis, Università Ca' Foscari Venezia, 2014. http://hdl.handle.net/10579/5666.

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L’obiettivo dello studio è stato quello di valutare l’efficienza della felce (Pteris vittata L.) nella fitoestrazione di arsenico da suoli contaminati, in varie condizioni ambientali e colturali. Il lavoro è stato effettuato direttamente in campo attraverso l’utilizzo di felci precedentemente piantumate in parcelle sperimentali, e giunte al terzo anno di crescita. L’andamento del bioaccumulo di arsenico nella parte epigea delle piante è stato seguito per un periodo di sei mesi, durante il quale le felci sono state cresciute nelle condizioni ambientali naturali, ad eccezione dell’irrigazione ne
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RODRIGUES, Ana Paula Vitória Costa. "Variação geográfica em Kentropyx calcarata spix, 1825 (Reptilia: Teiidae) e revalidação de Kentropyx vittata (Schinz, 1822)." Universidade Federal do Pará, 2018. http://repositorio.ufpa.br/jspui/handle/2011/10490.

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Submitted by JACIARA CRISTINA ALMEIDA DO AMARAL (jaciaramaral@ufpa.br) on 2018-12-17T18:46:26Z No. of bitstreams: 2 license_rdf: 0 bytes, checksum: d41d8cd98f00b204e9800998ecf8427e (MD5) DISSERTAÇÃO_entrega.pdf: 2781108 bytes, checksum: 29e6c7c64b36f27d0dd17d83ffc1c7d5 (MD5)<br>Approved for entry into archive by JACIARA CRISTINA ALMEIDA DO AMARAL (jaciaramaral@ufpa.br) on 2018-12-17T18:47:43Z (GMT) No. of bitstreams: 2 license_rdf: 0 bytes, checksum: d41d8cd98f00b204e9800998ecf8427e (MD5) DISSERTAÇÃO_entrega.pdf: 2781108 bytes, checksum: 29e6c7c64b36f27d0dd17d83ffc1c7d5 (MD5)<br>Made avai
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Bui, Thi Kim Anh. "Phytoremediation potential of Pteris vittata L. and Eleusine indica L. through field study and greenhouse experiments." Technische Universität Dresden, 2016. https://tud.qucosa.de/id/qucosa%3A32590.

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This study focused on determining Arsenic (As), Lead (Pb), Cadmium (Cd) and Zinc (Zn) concentrations of indigenous plants Pteris vittata L. and Eleusine indica L. in greenhouse experiment and some mining sites in Bac Kan province, Vietnam. The results showed that the soils of surveyed mining areas contained 378 – 6753 mgkg-1 As, 3210 - 21312 mgkg-1 Pb, 15.6- 312 mgkg-1 Cd and 1280-25310 mgkg-1 Zn depending on the characteristics of each mining site. In both greenhouse and field, Pteris vittata L. was As hyperaccumulators, containing more than 0.1% As in its shoots. Eleusine indica L accumulate
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Minello, Fabiola <1980&gt. "Fitorisanamento di suoli contaminati da metalli pesanti e metalloidi." Doctoral thesis, Università Ca' Foscari Venezia, 2011. http://hdl.handle.net/10579/1101.

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L’obiettivo dello studio è stato quello di individuare e impiegare specie vegetali bioaccumulatrici di metalli/metalloidi per la phytoremediation. Due progetti hanno riguardato l’applicazione in campo della felce Pteris vittata. E’ stata indagata la sua capacità di iperaccumulatrice su suoli con contaminazione multipla, in presenza o meno di micorrizazione. P. vittata ha dimostrato ottima efficienza di accumulo per As e capacità di resistenza anche con elevate concentrazioni di coinquinanti. I funghi micorrizici hanno favorito la crescita delle felci e la loro tolleranza ad altri contaminanti.
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Roberts, Briony Z. Jr. "Dialects, Sex-specificity, and Individual Recognition in the Vocal Repertoire of the Puerto Rican Parrot (Amazona vittata)." Thesis, Virginia Tech, 1997. http://hdl.handle.net/10919/79692.

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The following study is part of a larger study examining techniques that might be of use in the release program of the Puerto Rican Parrot (Amazona vittata), including marking, capturing, and radio-tracking. The portion of the study reported here documents the vocal behavior of A. vittata during the reproductive season and examines the possibility of using vocalizations to identify individuals, determine the sex of individuals and determine the location of an individual's breeding territory. Objectives of this study included: 1) cataloguing and categorizing the vocal repertoire of A. vittata,
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Leung, Ho Man Homan. "Interactions of arbuscular mycorrhizal fungi with an arsenic hyperaccumulator plant (pteris vittata) on the uptake of arsenic." HKBU Institutional Repository, 2008. http://repository.hkbu.edu.hk/etd_ra/945.

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Books on the topic "Vittata"

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Was, Nicolette Winneke. Burrow competition between broad-billed prions (Pachyptila vittata) and the endangered Chatham petrel (Pterodroma axillaris). Dept. of Conservation, 2000.

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Hendler, Gordon. New species of brittle stars from the Western Atlantic, Ophionereis vittata, Amphioplus sepultus, and Ophiostigma siva, and the designation of a neotype for Ophiostigma isocanthum (Say) (Echinodermata: Ophiuroidea). Natural History Museum of Los Angeles County, 1995.

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Rājana, Kamalā, and Viveka Maindargī. Vittīya samāveśana aura vittīya sāksharatā. Kr̥shi Baiṅkiṅga Mahāvidyālaya, Bhāratīya Rizarva Baiṅka, 2011.

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Engel, Howard. Vittima cercasi. A. Mondadori, 1990.

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Verdcourt, Bernard. Vittariaceae. Published on behalf of the East African Governments by A.A. Balkema, 1999.

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Davis, Donald R., and Matthew J. Medeiros. A Revision of the Family Adelidae of the Western Hemisphere (Lepidoptera: Adeloidea). Smithsonian Institution Press, 2023. http://dx.doi.org/10.5479/si.23817864.

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The systematics, morphology, and distributions are reviewed for the New World Adelidae. Four genera (Ceromitia, 51 species; Nemophora, 1 species; Adela, 19 species; Cauchas, 16 species) are currently recognized for North, Central, and South America. Keys to all New World genera and species are provided, as are diagnoses, illustrations, and distributional data. The following species are described as new: Adela atrata, Adela austrina, Adela powelli, Adela stenoptera, Adela striata, Cauchas alaskae, Cauchas clarkei, Cauchas elongata, Cauchas excavata, Cauchas lobata, Cauchas recurvata, Cauchas sp
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Invernici, Antonio. La quinta vittima. Baldini Castoldi Dalai, 2007.

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Civaliṅkarājā, Es. Vittuva Cirōmaṇi Kaṇēcaiyar. Kumaran̲ Puttaka Illam, 2007.

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Tullio, Dobner, ed. Una vittima scomoda. Sperling Paperback, 2004.

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Coulter, Catherine. Vittima innocente: Romanzo. Longanesi, 2005.

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Book chapters on the topic "Vittata"

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El Ghoubali, Douae, Stacy Pirro, Mohamed Zaki, et al. "Complete Mitochondrial Genome of Arctonoe Vittata." In Lecture Notes in Networks and Systems. Springer Nature Switzerland, 2025. https://doi.org/10.1007/978-3-031-91337-2_31.

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Chen, Tongbin, Mei Lei, Xiaoming Wan, Xiaoyong Zhou, and Jun Yang. "Arsenic Hyperaccumulator Pteris vittata L. and Its Arsenic Accumulation." In SpringerBriefs in Environmental Science. Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-7820-5_1.

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Chen, Tongbin, Mei Lei, Xiaoming Wan, Jun Yang, and Xiaoyong Zhou. "Arsenic Hyperaccumulator Pteris vittata L. and Its Application to the Field." In Twenty Years of Research and Development on Soil Pollution and Remediation in China. Springer Singapore, 2018. http://dx.doi.org/10.1007/978-981-10-6029-8_27.

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Mandal, Asit, Tapan J. Purakayastha, Ashok K. Patra, and Binoy Sarkar. "Phosphate-Induced Phytoextraction by Pteris vittata Reduced Arsenic Uptake by Rice." In Global Arsenic Hazard. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-031-16360-9_15.

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Rathinasabapathi, Bala. "Arsenic Hyperaccumulator Fern Pteris vittata: Utilities for Arsenic Phytoremediation and Plant Biotechnology." In Working with Ferns. Springer New York, 2010. http://dx.doi.org/10.1007/978-1-4419-7162-3_19.

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Bondada, Bhaskar Rao, and Lena Qiying Ma. "Tolerance of Heavy Metals in Vascular Plants: Arsenic Hyperaccumulation by Chinese Brake Fern (Pteris Vittata L.)." In Pteridology in the New Millennium. Springer Netherlands, 2003. http://dx.doi.org/10.1007/978-94-017-2811-9_28.

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Deogam, Rahul, Nikhil Kumar Pipil, Navjyoti Chakraborty, Sayan Chatterjee, and Ram Singh Purty. "In Silico Characterization and Structural Modeling of Proteins Involved in Arsenic Tolerance of Hyper Accumulating Fern Pteris Vittata." In Advances in Chemical, Bio and Environmental Engineering. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-96554-9_28.

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Jian-guang, Yang, Deng Zi-xiang, Li Jun-yuan, and Zhang Xu-liang. "Removal of Heavy Metals and Upgrading Crude Bio-Oil from Pteris Vittata Stems and Leaves Harvest Using Hydrothermal Upgrading Process." In EPD Congress 2014. John Wiley & Sons, Inc., 2014. http://dx.doi.org/10.1002/9781118889664.ch17.

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Tiwari, Sarita, and Bijaya Ketan Sarangi. "Determination of Arsenic Extraction by an Indian Ecotype Pteris vittata; Arsenate Reductase Activity Assay and arsC as a Molecular Marker." In Springer Geology. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-99495-2_6.

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Widyastuti, G., and G. Surya. "Phytoremediation strategies of arsenic-contaminated surface water near former mining pit ‘Kolong’ using arsenic hyperaccumulator Pteris vittata as mitigation measurement in Bangka Island, Indonesia." In Arsenic in the Environment: Bridging Science to Practice for Sustainable Development As2021. CRC Press, 2024. http://dx.doi.org/10.1201/9781003317395-191.

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Conference papers on the topic "Vittata"

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Costa, Deibson Silva da, and Roberto Tetsuo Fujiyama. "CARACTERIZAÇÃO MECÂNICA, FÍSICA E MICROESTRUTURAL DE FIBRAS DE BAMBU DA ESPÉCIE BAMBUSA VULGARIS CV VITTATA (RIVIÈRE & C. RIVIÈRE) MCCLURE." In 66º Congresso Anual da ABM. Editora Blucher, 2011. https://doi.org/10.5151/2594-5327-18265.

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Huang, Yi, Masayoshi Hatayama, and Chihiro Inoue. "Characterization of pteris vittata rhizosphere during treatment of arsenite in hydroponics." In 2010 International Conference on Chemistry and Chemical Engineering (ICCCE). IEEE, 2010. http://dx.doi.org/10.1109/iccceng.2010.5560432.

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Almeida, A. S., S. P. Barros-Alves, G. L. Hirose, and D. F. R. Alves. "VULNERABILIDADE NUTRICIONAL DOS PRIMEIROS ESTÁGIOS LARVAIS DO CAMARÃO LYSMATA VITTATA (CRUSTACEA: DECAPODA)." In X Congresso Brasileiro sobre Crustáceos. Sociedade Brasileira de Carcinologia, 2018. http://dx.doi.org/10.21826/2178-7581x2018177.

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DeNafo, Matthew. "Removal of Arsenic with the Process of Phytoremediation using Pteris vittata Ferns." In World Environmental and Water Resources Congress 2007. American Society of Civil Engineers, 2007. http://dx.doi.org/10.1061/40927(243)428.

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Pallud, Céline, Sarick Matzen, Sirine Fakra, and Peter Nico. "Phytoextraction with Pteris vittata leads to increased arsenic leaching in soil." In Goldschmidt2021. European Association of Geochemistry, 2021. http://dx.doi.org/10.7185/gold2021.7842.

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Zayed, Rafe Md Abu, Bashirunnisa Ananya, and Ariful Islam Nahid. "Modelling and Viability Study of a Biomass PowerPlant Fired with Pteris vittata in Bangladesh." In 2021 3rd International Conference on Sustainable Technologies for Industry 4.0 (STI). IEEE, 2021. http://dx.doi.org/10.1109/sti53101.2021.9732551.

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Ostapiv, Fabiano. "Uses and properties of bamboo charcoal." In ENSUS2023 - XI Encontro de Sustentabilidade em Projeto. Grupo de Pesquisa Virtuhab/UFSC, 2023. http://dx.doi.org/10.29183/2596-237x.ensus2023.v11.n3.p48-61.

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In this work was made a brief review of the main uses of bamboo charcoal. Several uses were found, the main ones being: treating water and effluents, improving the structure and fertility of soil adsorbent of vapors and odors to improve air quality inside buildings, remove oil spilled at sea, absorbing and diffusing electromagnetic and acoustics waves, acoustic treatment of indoor environments, emergency treatment against poisoning by ingestion, among other uses. The work also was discussed the process of carbonization of bamboo and was shown a portable equipment for the production of charcoal
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Hatayama, Masayoshi, Chihiro Inoue, and Kozo Shinoda. "Investigation of Arsenic Accumulation and Senescence by Measuring Possible Indicators of Arsenic Stress in Pteris vittata." In 2010 4th International Conference on Bioinformatics and Biomedical Engineering (iCBBE). IEEE, 2010. http://dx.doi.org/10.1109/icbbe.2010.5517814.

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Chen, Junyang, Jianping Li, Kang Wu, and Songming Zhu. "<i>Design and Experiment of Automatic seeder for Pteris vittata L.</i>." In 2019 Boston, Massachusetts July 7- July 10, 2019. American Society of Agricultural and Biological Engineers, 2019. http://dx.doi.org/10.13031/aim.201900342.

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Zhibin, Zhang, Yu Shimiao, Tan Xiaobo, et al. "Performance of P. vittata L. and C. demersum L. for Arsenic(III) Bioaccumulation and Short-Term Uptake." In 2011 International Conference on Computer Distributed Control and Intelligent Environmental Monitoring (CDCIEM). IEEE, 2011. http://dx.doi.org/10.1109/cdciem.2011.250.

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Reports on the topic "Vittata"

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Jo Ann Banks and David Salt. Genetic and Molecular Dissection of Arsenic Hyperaccumulation in the fern Pteris vittata. Office of Scientific and Technical Information (OSTI), 2008. http://dx.doi.org/10.2172/926316.

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Castillo, Diego F., and Mauro I. Schiaffini. Galictis vittata. Categorización 2019 de los mamíferos de Argentina según su riesgo de extinción. Lista Roja de los mamíferos de Argentina, 2019. http://dx.doi.org/10.31687/saremlr.19.136.

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Panha, Somsak. Investigation on the host specificity of the glochidium of freshwater pearl mussel, Hyriopsis (Limnoscapha) myersiana (Lea, 1856). Chulalongkorn University, 1991. https://doi.org/10.58837/chula.res.1991.12.

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The reproduction cycle and the host specificity of the freshwater pearl mussel, Hyriopsis (Limnoscapha) myersiana were studies from April 1990 to May 1991. Marsupia were found already in early November but, the peak occurred between December and January. The glochidia will emerge from late November till early March. In the laboratory, mussel took less than 24 hours to release all the glochidia. The experiment on host specificity of the glochidia on the fry of 11 species of fish was carried out, using 4 levels of glochidium concentration. The mortality of the fish after infection was plotted ag
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