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| 008 | 170403s2017 sz a o 001 0 eng d | ||
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_a3319523813 _q(electronic bk.) |
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_aTD192.75 _bP498 2017 EB |
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| 245 | 0 | 0 |
_aPhytoremediation _nVolume 5, _pManagement of Environmental Contaminants _cAbid A. Ansari, Sarvajeet Singh Gill, Ritu Gill, Guy R. Lanza, Lee Newman, editors. |
| 264 | 1 |
_aCham, Switzerland _bSpringer _c2017. |
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| 300 |
_a1 recurso en línea (xiv, 514 páginas) _bilustraciones (algunas a color) |
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| 336 |
_aTexto _btxt _2rdacontent |
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_aelectrónico _bc _2rdamedia |
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_arecurso electrónico _bcr _2rdacarrier |
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| 347 |
_atext file _bPDF _2rda |
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| 500 | _aIncluye índice | ||
| 500 |
_aSpringerLink _bSpringer Biomedical and Life Sciences eBooks 2017 English+International |
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| 505 | 0 | _aPreface; Contents; Contributors; Part I: Phytoremediation Using Soil Microorganisms; Chapter 1: Microbial Inoculants-Assisted Phytoremediation for Sustainable Soil Management; 1.1 Introduction; 1.2 Sources of Soil Pollution; 1.3 Contributions of Plants and Microbial Inoculants in Phytoremediation; 1.4 Methods of Inoculating Plants with Microbial Inoculants; 1.5 Types of Soil Pollutants; 1.6 Mechanisms of Microbial Inoculants in Phytoremediation of Polluted Soil; 1.7 Challenges of Microbial Inoculants-Assisted Phytoremediation | |
| 505 | 8 | _a1.8 Characteristics to Consider in the Choice of a Plant for Microbial-Assisted Phytoremediation1.9 Conclusions; References; Chapter 2: Phytoremediation of Salt-Impacted Soils and Use of Plant Growth-Promoting Rhizobacteria (PGPR) to Enhance Phytoremediation; 2.1 Introduction; 2.1.1 Overview of Phytoremediation; 2.1.2 Prevalence and Sources of Salt-Impacted Soils; 2.1.3 Soil Salt Chemistry; 2.1.4 Responses of Plants to Salt Impacts; 2.1.4.1 Uptake and Transport of Na+, K+, and Cl−; 2.1.4.2 Salt Stress and ROS Damage; 2.1.4.3 Salt Stress and Acclimation Signaling Pathways | |
| 505 | 8 | _a2.1.4.4 Physiology of Salt Tolerance in Halophytes and Glycophytes2.1.5 Remediation and Phytoremediation of Salt; 2.1.5.1 Advantages of Phytoremediation of Salt; 2.1.5.2 Choosing Plants for Phytoremediation of Salt; 2.1.5.3 PGPR-Enhanced Phytoremediation; 2.1.5.4 Successful Remediation of Salt-Impacted Soils; 2.1.5.5 Obstacles Affecting Phytoremediation of Salt-Impacted Soils in the Field; 2.1.5.6 Revegetation as a Measure of Successful Phytoremediation of Salt; 2.2 PGPR-Enhanced Phytoremediation Systems (PEPS); 2.2.1 Development, Proof, and Full-Scale Application of PEPS | |
| 505 | 8 | _a2.2.2 Adapting PEPS for Salt Remediation2.2.2.1 Lab/Greenhouse Experiments; Effects of Salinity and PGPR on Plant Growth; Alleviation of Salt Inhibition of Photosynthesis in PGPR-Treated Plants; Effects of Salinity and PGPR on Cell Membrane Integrity; 2.2.2.2 Field Trials; Effects of Salinity and PGPR on Plant Growth; Uptake of NaCl from Soil; 2.2.3 Feasibility of Salt Phytoremediation Using PEPS; 2.3 Conclusions; References; Chapter 3: Successful Integrated Bioremediation System of Hydrocarbon-Contaminated Soil at a Former Oil Refinery Using Autochthonous Bacteria and Rhizo-Microbiota | |
| 505 | 8 | _a3.1 Introduction3.2 Integrated Bioremediation System of Hydrocarbon-Contaminated Soil: Case Study; 3.2.1 Detection of Pollutant Area and Sampling; 3.2.2 Laboratory Activities; 3.2.2.1 Analytical Analyses; 3.2.2.2 Characterization of Autochthonous Biodegrading Bacteria; 3.2.2.3 Mesocosm Trials; 3.2.3 In Situ Activities; 3.2.3.1 Pilot Field; 3.2.3.2 Land Farming; 3.2.3.3 Biostimulation; 3.2.3.4 Phytoremediation; 3.2.3.5 Bioaugmentation; 3.2.3.6 Biosparging; 3.3 Integrated Process Monitoring and In Situ Results; 3.4 Conclusion; References | |
| 520 | 3 | _aThis text details the plant-assisted remediation method, ℓ́ℓphytoremediationℓ́ℓ, which involves the interaction of plant roots and associated rhizospheric microorganisms for the remediation of soil contaminated with high levels of metals, pesticides, solvents, radionuclides, explosives, crude oil, organic compounds and various other contaminants. Many chapters highlight and compare the efficiency and economic advantages of phytoremediation to currently practiced soil and water treatment practices. Volume 5 of Phytoremediation: Management of Environmental Contaminants provides the capstone of the series. Taken together, the five volumes provide a broadℓ́ℓbased global synopsis of the current applications of phytoremediation using plants and the microbial communities associated with their roots to decontaminate terrestrial and aquatic ecosystems. . | |
| 650 | 7 |
_aFitorremediación _2embne _0(OCoLC)fst01063324 _0 _9439534 |
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| 700 | 1 |
_aAnsari, Abid A. _eeditor literario _993597 |
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| 700 | 1 |
_aGill, Ritu, _eeditor literario _993598 |
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| 700 | 1 |
_aGill, Sarvajeet Singh, _eeditor literario _984564 |
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| 700 | 1 |
_aLanza, Guy R. _eeditor literario _993599 |
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| 700 | 1 |
_aNewman, Lee, _eeditor literario _993600 |
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| 856 | 4 | 0 |
_uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-3-319-52381-1 _zAcceso a este recurso digital (usuarios Universidad Europea de Madrid) |
| 988 | _aEBOOK, asignarmaterias, EBSPRINGER_2017C | ||
| 998 |
_b02/2018 _dz _e- _zSI |
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_c95719 _d95719 _x1 |
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