001453465 000__ 05724cam\a2200493\a\4500 001453465 001__ 1453465 001453465 003__ OCoLC 001453465 005__ 20230314003352.0 001453465 006__ m\\\\\o\\d\\\\\\\\ 001453465 007__ cr\un\nnnunnun 001453465 008__ 221205s2023\\\\sz\\\\\\o\\\\\000\0\eng\d 001453465 019__ $$a1354208818 001453465 020__ $$a9783031163609$$q(electronic bk.) 001453465 020__ $$a3031163605$$q(electronic bk.) 001453465 020__ $$z3031163591 001453465 020__ $$z9783031163593 001453465 0247_ $$a10.1007/978-3-031-16360-9$$2doi 001453465 035__ $$aSP(OCoLC)1353101500 001453465 040__ $$aYDX$$beng$$cYDX$$dGW5XE$$dEBLCP$$dOCLCF$$dN$T 001453465 049__ $$aISEA 001453465 050_4 $$aTD427.A77 001453465 08204 $$a615.9/25715$$223/eng/20221212 001453465 24500 $$aGlobal arsenic hazard:$$becotoxicology and remediation /$$cNabeel Khan Niazi, Irshad Bibi, Tariq Aftab, editors. 001453465 260__ $$aCham, Switzerland :$$bSpringer,$$c2023. 001453465 300__ $$a1 online resource 001453465 4901_ $$aEnvironmental Science and Engineering,$$x1863-5539 001453465 5050_ $$aChapter 1 Global arsenic hazard and sustainable development -- Chapter 02 Global arsenic contamination of groundwater, soil, and food crops and health impacts -- Chapter 03 Arsenic contamination in rice and the possible mitigation options -- Chapter 04 Arsenic in gold mining wastes: an environmental and human health threat in Ghana -- Chapter 05 Arsenic Contamination in Karst Regions -- Chapter 06 Arsenic dynamics in paddy rice ecosystems and human exposure -- Chapter 07 Interaction of arsenic with biochar in water and soil: principles, applications, and prospects -- Chapter 08 Accumulation and translocation of arsenic in rice with its distributional flow during cooking: A study in West Bengal, India -- Chapter 09 An overview of arsenic contamination in water resources of Pakistan, risk assessment and remediation strategies -- Chapter 10 Approaches for stochastic modelling of toxic ion adsorption at crystal-water interfaces: A case study of arsenic -- Chapter 11 A comparison of technologies for remediation of arsenic-bearing water: The significance of constructed wetlands -- Chapter 12 Application of nanotechnology in mitigating arsenic stress and accumulation in crops: Where we are and where we are moving towards? -- Chapter 13 Nano-enabled remediation of arsenic-bearing water and wastewater -- Chapter 14 Molecular Aspects of Arsenic Responsive Microbes in Soil-Plant-Aqueous Triphasic Systems -- Chapter 15 Phosphate-induced phytoextraction by Pteris vittata reduced arsenic uptake by rice -- Chapter 16 Modified biosorbents as potential biomaterials for arsenic removal from contaminated water -- Chapter 17 Phytoremedial potential of perennial woody vegetation under arsenic-contaminated conditions in diverse environments -- Chapter 18 Bacterial tolerance and biotransformation of arsenic in soil and aqueous media -- Chapter 19 Arsenic bioremediation of soil and water systems - an overview -- Chapter 20 Modern aspects of phytoremediation of arsenic-contaminated soils -- Chapter 21 Nanoparticulate iron oxide minerals for arsenic removal from contaminated water -- Chapter 22 Arsenic-toxicity and tolerance: phytochelatin-mediated detoxification and genetic engineering-based remediation -- Chapter 23 Distribution of arsenic in rice grain from West Bengal, India: Its relevance to geographical origin, variety, cultivars and cultivation season. . 001453465 506__ $$aAccess limited to authorized users. 001453465 520__ $$aThis book provides a plethora of information about global arsenic (As) contamination and the challenges for environment. Arsenic is a naturally occurring metalloid that is widely distributed in water, soil, air and biota from natural and anthropogenic sources. Arsenic has been found in drinking water in over 100 countries worldwide, which caused a major public health issue including: cardiovascular disorders, diabetes, and cancers of various organs - these are some of the general health effects of As exposure. Exposure of plants to As, even at very low concentrations, can cause many morphological, physiological, and biochemical changes. The recent research on As in the water-soil-plant-human systems indicates that As toxicity to plants varies with As speciation in plants, type of plant species and with other soil factors controlling As accumulation in plants. In recent years, the development of efficient green chemistry methods for detoxification of trace metal poisoning has become a major focus of researchers. It has been investigated in order to find an eco-friendly and recyclable technique for the removal of As contamination from the natural resources. Understanding the significance of As hazard and roles of sustainable or eco-friendly approaches in its mitigation, we intend to bring forth a comprehensive volume "Global Arsenic Hazard - Ecotoxicology and Remediation" highlighting the various prospects involved in current scenario. We are hopeful that this comprehensive volume will furnish the requisite of all those who are working or have interest in the proposed topic. 001453465 588__ $$aOnline resource; title from PDF title page (SpringerLink, viewed December 12, 2022). 001453465 650_0 $$aArsenic$$xEnvironmental aspects. 001453465 650_0 $$aArsenic$$xToxicology. 001453465 655_0 $$aElectronic books. 001453465 7001_ $$aNiazi, Nabeel Khan,$$eeditor. 001453465 7001_ $$aBibi, Irshad,$$eeditor. 001453465 7001_ $$aAftab, Tariq,$$eeditor. 001453465 77608 $$iPrint version:$$z3031163591$$z9783031163593$$w(OCoLC)1338831544 001453465 830_0 $$aEnvironmental science and engineering (Springer (Firm)),$$x1863-5539 001453465 852__ $$bebk 001453465 85640 $$3Springer Nature$$uhttps://univsouthin.idm.oclc.org/login?url=https://link.springer.com/10.1007/978-3-031-16360-9$$zOnline Access$$91397441.1 001453465 909CO $$ooai:library.usi.edu:1453465$$pGLOBAL_SET 001453465 980__ $$aBIB 001453465 980__ $$aEBOOK 001453465 982__ $$aEbook 001453465 983__ $$aOnline 001453465 994__ $$a92$$bISE