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Original Articles

EFFECTS OF NITROGEN AND PHOSPHORUS LEVELS, AND FROND-HARVESTING ON ABSORPTION, TRANSLOCATION AND ACCUMULATION OF ARSENIC BY CHINESE BRAKE FERN (PTERIS VITTATA L.)

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Pages 313-328 | Published online: 30 Dec 2008

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (3)

Junying Zhao, Huaming Guo, Jie Ma & Zhaoli Shen. (2015) Effect of Fluoride on Arsenic Uptake from Arsenic-Contaminated Groundwater using Pteris vittata L.. International Journal of Phytoremediation 17:4, pages 355-362.
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A. Ciurli, L. Lenzi, A. Alpi & A. Pardossi. (2014) Arsenic Uptake and Translocation by Plants in Pot and Field Experiments. International Journal of Phytoremediation 16:7-8, pages 804-823.
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Alka Kumari, Brij Lal, YogeshB. Pakade & Piar Chand. (2011) Assessment of Bioaccumulation of Heavy Metal by Pteris Vittata L. Growing in the Vicinity of Fly Ash. International Journal of Phytoremediation 13:8, pages 779-787.
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Articles from other publishers (13)

Sarick Matzen & Céline Pallud. (2022) Critical Perspectives on Soil Geochemical Properties Limiting Arsenic Phytoextraction with Hyperaccumulator Pteris vittata. Geosciences 13:1, pages 8.
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S.L. Matzen, A.L. Olson & C.E. Pallud. (2022) Soil texture and climate limit cultivation of the arsenic hyperaccumulator Pteris vittata for phytoextraction in a long-term field study. Journal of Hazardous Materials 436, pages 129151.
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Davide Marzi, Maria Luisa Antenozio, Sara Vernazzaro, Clara Sette, Enrico Veschetti, Luca Lucentini, Giancarlo Daniele, Patrizia Brunetti & Maura Cardarelli. (2021) Advanced Drinking Groundwater As Phytofiltration by the Hyperaccumulating Fern Pteris vittata. Water 13:16, pages 2187.
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Sarick Matzen, Sirine Fakra, Peter Nico & Céline Pallud. (2020) Pteris vittata Arsenic Accumulation Only Partially Explains Soil Arsenic Depletion during Field-Scale Phytoextraction. Soil Systems 4:4, pages 71.
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Ping Li, Zhou Jiang, Yanhong Wang, Ye Deng, Joy D. Van Nostrand, Tong Yuan, Han Liu, Dazhun Wei & Jizhong Zhou. (2017) Analysis of the functional gene structure and metabolic potential of microbial community in high arsenic groundwater. Water Research 123, pages 268-276.
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Abioye O. Fayiga & Uttam K. Saha. (2016) Arsenic hyperaccumulating fern: Implications for remediation of arsenic contaminated soils. Geoderma 284, pages 132-143.
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Xin Wang & Lena Ma. 2014. In-Situ Remediation of Arsenic-Contaminated Sites. In-Situ Remediation of Arsenic-Contaminated Sites 69 86 .
Huaming Guo, Zhennan Zhong, Mei Lei, Xiaolei Xue, Xiaoming Wan, Junying Zhao & Tongbin Chen. (2012) Arsenic Uptake from Arsenic-Contaminated Water Using Hyperaccumulator Pteris vittata L.: Effect of Chloride, Bicarbonate, and Arsenic Species. Water, Air, & Soil Pollution 223:7, pages 4209-4220.
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Piyasa Ghosh, Bala Rathinasabapathi & Lena Q. Ma. (2011) Arsenic-resistant bacteria solubilized arsenic in the growth media and increased growth of arsenic hyperaccumulator Pteris vittata L.. Bioresource Technology 102:19, pages 8756-8761.
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Piar Chand, Ruchi Sharma, Ramdeen Prasad, Rakesh Kumar Sud & Yogesh B. Pakade. (2011) Determination of Essential & Toxic Metal and Its Transversal Pattern from Soil to Tea Brew. Food and Nutrition Sciences 02:10, pages 1160-1165.
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Seenivasan Natarajan, Robert H. Stamps, Lena Q. Ma, Uttam K. Saha, Damaris Hernandez, Yong Cai & Edward J. Zillioux. (2011) Phytoremediation of arsenic-contaminated groundwater using arsenic hyperaccumulator Pteris vittata L.: Effects of frond harvesting regimes and arsenic levels in refill water. Journal of Hazardous Materials 185:2-3, pages 983-989.
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Bala Rathinasabapathi. 2010. Working with Ferns. Working with Ferns 261 269 .
Xin Wang, Lena Q. Ma, Bala Rathinasabapathi, Yunguo Liu & Guangming Zeng. (2010) Uptake and translocation of arsenite and arsenate by Pteris vittata L.: Effects of silicon, boron and mercury. Environmental and Experimental Botany 68:2, pages 222-229.
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