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  • 1
    Keywords: Analytical biochemistry ; Environmental chemistry ; Environmental Chemistry ; Green chemistry ; Nanotechnology ; Catalysis ; Analytical chemistry.
    Description / Table of Contents: 1. Nanostructured imprinted supported photocatalysts: Organic and inorganic matrixes -- 2. Supporting materials for immobilization of nanophotocatalysts -- 3. Non-metals (oxygen, sulfur, nitrogen, boron and phosphorus)-doped metal oxide hybrid nanostructures as highly efficient photocatalysts for water treatment and hydrogen generation -- 4. Challenges of synthesis and environmental applications of metal-free nano-heterojunctions -- 5. Perovskite-based materials for photocatalytic environmental remediation -- 6. Carbon Nitride-A Wonder Photocatalyst -- 7. Graphene and allies as a part of metallic photocatalysts -- 8. Silver-based photocatalysts- a special class -- 9. Green Synthesis of Novel Photocatalysts -- 10. Electrodeposition of Composite Coatings as a Method for Immobilizing TiO2 Photocatalyst -- 11. Spinning Disk Reactor technology in photocatalysis: nanostructured catalysts intensified production and applications
    Type of Medium: Online Resource
    Pages: 1 Online-Ressource (XIII, 336 p. 104 illus., 74 illus. in color)
    ISBN: 9783030106096
    Series Statement: Environmental Chemistry for a Sustainable World 29
    Language: English
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  • 2
    Keywords: Renewable energy sources ; Environmental chemistry ; Environmental Chemistry ; Chemical engineering ; Energy security ; Renewable energy resources.
    Description / Table of Contents: 1. Nanophotocatalysts for fuel production -- 2. Highly stable metal oxides-based heterostructured photocatalysts for an efficient photocatalytic hydrogen production -- 3. Novelty in designing of photocatalysts for water splitting and CO2 reduction -- 4. Z-Scheme Photocatalysts for the Reduction of Carbon Dioxide: Recent Advances and Perspectives -- 5. Photocatalysts for Artifical Photosynthesis -- 6. Polymeric semiconductors as efficient photocatalysts for water purification and solar hydrogen production -- 7. Advances and innovations in photocatalysis -- 8. Solar Light Active Nano Photocatalysts -- 9. High performance photocatalysts for organic reactions
    Type of Medium: Online Resource
    Pages: 1 Online-Ressource (XIII, 273 p. 123 illus., 67 illus. in color)
    ISBN: 9783030049492
    Series Statement: Environmental Chemistry for a Sustainable World 31
    Language: English
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  • 3
    Keywords: Waste disposal ; Waste Management/Waste Technology ; Chemical engineering ; Environmental management ; Waste management.
    Description / Table of Contents: 1. Solution and Challenges in recycling waste cathode-ray tube -- 2. Reconfigurable recycling systems of e-waste -- 3. An Economic Assessment of Present and Future Electronic Waste Streams: Japan’s Experience -- 4. Recent technologies in electronic waste management -- 5. Recycling challenges for electronic consumer products to e-waste: A developing countries perspective -- 6. Chemical recycling of electronic waste for clean fuel production -- 7. Management of electrical and electronic equipment in European Union countries: a comparison -- 8. E-waste management from macroscopic to microscopic scale -- 9. Recycling processes for the recovery of metal from e-waste of the LED industry -- 10. E-waste management and the conservation of geochemical scarce resources -- 11. Sustainable electronic waste management: Implications on environmental and human health -- 12. E-waste and their implications on the environmental and human health
    Type of Medium: Online Resource
    Pages: 1 Online-Ressource (XIII, 235 p. 57 illus., 29 illus. in color)
    Edition: 1st ed. 2020
    ISBN: 9783030141844
    Series Statement: Environmental Chemistry for a Sustainable World 33
    Language: English
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  • 4
    Keywords: Environmental Medicine ; Environmental pollution ; Analytical biochemistry ; Environmental chemistry ; Environmental Chemistry ; Environmental health. ; Water pollution. ; Analytical chemistry.
    Description / Table of Contents: 1. Role of nano-photocatalysis in heavy metal detoxification -- 2. Solar photocatalysis applications to antibiotic degradation in aquatic systems -- 3. Biomass-based photocatalysts for environmental applications -- 4. Role of nano-photocatalysis in heavy metal detoxification -- 5. Phosphors-based photocatalysts for wastewater treatment -- 6. Nanocarbons and Polymers Supported TiO2 Nanostructures as Efficient Photocatalysts for Remediation of Contaminated -- 7. Wastewater and Hydrogen Production -- 8. Investigation in sono-photocatalysis process using doped-catalyst and ferrite nanoparticles for wastewater treatment -- 9. Magnetic-based photocatalyst for antibacterial application and catalytic performance -- 10. Antimicrobial activities of photocatalysts to water disinfection -- 11. Medicinal Applications of Photocatalysts
    Type of Medium: Online Resource
    Pages: 1 Online-Ressource (XIII, 269 p. 68 illus., 32 illus. in color)
    Edition: 1st ed. 2020
    ISBN: 9783030126193
    Series Statement: Environmental Chemistry for a Sustainable World 30
    Language: English
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  • 5
    Keywords: Environmental chemistry ; Environmental Chemistry ; Catalysis ; Pollution prevention ; Analytical chemistry ; Electrochemistry
    Description / Table of Contents: Preface -- 1. Use of carbon dioxide in polymer synthesis (Annalisa Abdel Azim, Alessandro Cordara, Beatrice Battaglino, Angela Re) -- 2. Biological conversion of carbon dioxide into volatile organic compounds (Ihana Aguiar Severo, Pricila Nass Pinheiro, Karem Rodrigues Vieira, Leila Queiroz Zepka, Eduardo Jacob-Lopes) -- 3. Application of metal organic frameworks in carbon dioxide conversion to methanol (Tamer Zaki) -- 4. Conversion of Carbon Dioxide into Formic Acid (Umesh Fegade and Ganesh Jethave) -- 5. Selective hydrogenation of carbon dioxide into methanol (Pham Minh, Roger, Parkhomenko, L'Hospital, Rego de Vasconcelos, Ro, Mahajan, Chen, Singh, N. Vo) -- 6. Conversion of carbon dioxide into formaldehyde (Trinh Duy Nguyen, Thuan Van Tran, Sharanjit Singh, Pham T. T. Phuong, Long Giang Bach, Sonil Nanda, Dai-Viet N. Vo) -- 7. A Short Review on Production of Syngas via Glycerol Dry Reforming (Sumaiya Zainal Abidin, Asmida Ideris, Nurul Ainirazali, Mazni Ismail)
    Type of Medium: Online Resource
    Pages: 1 Online-Ressource (XI, 202 p. 45 illus., 28 illus. in color)
    Edition: 1st ed. 2020
    ISBN: 9783030286385
    Series Statement: Environmental Chemistry for a Sustainable World 41
    Language: English
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  • 6
    Online Resource
    Online Resource
    Milton :Taylor & Francis Group,
    Keywords: Raw materials. ; Electronic books.
    Type of Medium: Online Resource
    Pages: 1 online resource (237 pages)
    Edition: 1st ed.
    ISBN: 9781000596465
    Language: English
    Note: Cover -- Half Title -- Title Page -- Copyright Page -- Contents -- Preface -- Editors -- Contributors -- Chapter 1: Graphene from Sugar and Sugarcane Extract: Synthesis, Characterization, and Applications -- Chapter 2: Graphene from Honey -- Chapter 3: Graphene from Animal Waste -- Chapter 4: Graphene from Essential Oils -- Chapter 5: Synthesis of Graphene from Biowastes -- Chapter 6: Graphene from Rice Husk -- Chapter 7: Synthesis of Graphene from Vegetable Waste -- Chapter 8: Graphene Oxide from Natural Products and Its Applications in the Agriculture and Food Industry -- Chapter 9: Graphene from Sugarcane Bagasse: Synthesis, Characterization, and Applications -- Chapter 10: Graphene Synthesis, Characterization and Applications -- Chapter 11: Graphene from Leaf Wastes -- Chapter 12: Biosynthesis of Reduced Graphene Oxide and Its Functionality as an Antibacterial Template -- Chapter 13: Graphene and Its Composite for Supercapacitor Applications -- Index.
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  • 7
    Keywords: Solvents-Environmental aspects. ; Electronic books.
    Type of Medium: Online Resource
    Pages: 1 online resource (412 pages)
    Edition: 1st ed.
    ISBN: 9780128173879
    DDC: 541.3482
    Language: English
    Note: Front Cover -- Green Sustainable Process for Chemical and Environmental Engineering and Science -- Copyright -- Contents -- Contributors -- Chapter 1: Conversion of biomass to chemicals using ionic liquids -- 1. Introduction -- 2. Biomass as a renewable resource of chemicals -- 2.1. Interaction among biomass components -- 2.2. Pretreatment of lignocellulosic biomass using ionic liquids -- 2.3. Lignocellulosic biomass conversion to various chemicals -- 3. Platform chemicals from lignocellulosic biomass -- 3.1. 5-HMF and EMF from lignocellulosic biomass -- 3.2. Levulinic acid from lignocellulosic biomass -- 4. Ionic liquids: Significant in conversion of lignocellulose to platform chemicals -- 4.1. Biomass conversion to chemicals using acidic ILs -- 5. Conversion of biomass to 5-HMF and EMF using ILs -- 6. LA from lignocellulosic biomass -- 7. Effects of ILs properties on conversion of cellulose/lignocellulose to LA -- 8. Summary -- References -- Chapter 2: Ionic liquids for enzyme-catalyzed production of biodiesel -- 1. Introduction -- 2. Influence of ionic liquid cation in biocatalyzed biodiesel production -- 2.1. Imidazolium-based ionic liquids -- 2.2. Other cations -- 3. Impact of ionic liquid anion in biocatalyzed biodiesel production -- 4. Biocatalysts employed in biodiesel production with ionic liquids -- 5. Substrates and acyl acceptors for biocatalyzed biodiesel production with ionic liquids -- 6. Operation temperature for biocatalyzed biodiesel production with ionic liquids -- 7. Conclusions -- References -- Chapter 3: Organic synthesis on ionic liquid support: A new strategy for the liquid-phase organic synthesis (LPOS) -- 1. Introduction -- 2. Synthesis of small molecules on ionic liquid support -- 3. Ionic liquid-supported reagents for organic synthesis -- 4. Ionic liquid-supported catalysts for organic synthesis. , 5. Conclusion and outllook -- References -- Further reading -- Chapter 4: Separation of volatile organic compounds by using immobilized ionic liquids -- 1. Introduction -- 2. Ionic liquids for the separation of organic compounds -- 3. Separation of organic volatile compounds by IL-based membranes -- 3.1. Supported ionic liquid membranes -- 3.1.1. Flat sheet-supported ionic liquid membranes -- 3.2. Hollow fiber-supported ionic liquid membranes -- 3.3. Anodic aluminum oxide/ionic liquid membranes -- 4. Conclusions -- References -- Chapter 5: Deep eutectic solvents -- 1. Introduction -- 2. Properties and characteristics of DES -- 3. Synthesis of DES -- 4. Application of DES in sample preparation -- 4.1. Food analysis -- 4.2. Environmental analysis -- 4.3. Biological analysis -- 5. Conclusions and future trends -- References -- Further reading -- Chapter 6: Ionic liquids as scavenger -- 1. Introduction -- 1.1. Solid- and solution-phase chemistry -- 1.2. Scavenger properties and mechanism -- 1.3. Ionic liquids as scavengers and their properties -- 2. Task-specific ionic liquids as scavenger -- 2.1. Amino-functionalized ionic liquids as scavenger -- 2.2. Diol-functionalized ionic liquid as scavenger -- 2.3. Ionic liquids functionalized with Michael acceptor as scavenger -- 2.4. Si-supported sulfonic acid-functionalized ionic liquid as scavenger -- 2.5. Carboxyl-functionalized ionic liquids as scavenger -- 2.6. Aldehyde-functionalized ionic liquids as scavenger -- 2.7. Azide-functionalized ionic liquid as scavenger -- 2.8. Amino acid-functionalized ionic liquid as scavenger -- 2.9. Chlorosalicylaldehyde-functionalized ionic liquids as scavenger -- 3. Conclusion -- References -- Chapter 7: Recent developments in ionic liquid-based electrolytes for energy storage supercapacitors and rechargeable b -- 1. Introduction. , 2. Recent developments in ionic liquid-based supercapacitors and batteries -- 3. Development of porous electrodes for ionic liquid electrolytes -- 4. Development of high operating temperature supercapacitors and batteries -- 5. Effect of cationic or anionic species on the electrochemical performance of ionic liquids -- 6. Conclusion -- References -- Chapter 8: Recent insights on solubility and stability of biomolecules in ionic liquid -- 1. Introduction -- 2. Available resources on properties of ionic liquids -- 3. Advantages of ILs for biomolecule-based applications -- 3.1. Biocompatibility and biodegrability of ILs -- 4. Biomolecules solubility and stability in ILs -- 4.1. Nucleic acids in ILs -- 4.2. Carbohydrates in ILs -- 4.3. Proteins in ILs -- 5. Conclusion -- References -- Chapter 9: Ionic liquid-based membranes for water softening -- 1. Introduction -- 1.1. Ionic liquids (ILs) -- 1.2. Water purification: Challenges and perspectives -- 2. Liquid membrane -- 3. Bulk membranes based on ionic liquids -- 3.1. Extraction of phenols -- 3.2. Extraction of metal ions -- 4. Emulsion liquid membranes -- 5. Supported liquid membranes (SLMs) -- 5.1. Flat sheet liquid membrane -- 5.1.1. IL-SLM as extracting agents for heavy metal ions -- 5.1.2. Extraction of endosulfan -- 5.1.3. Separation of volatile organic compounds by ILs -- 5.1.4. Removal of phenolic compounds from water -- 5.1.5. Separation of organic liquids -- 5.2. Hollow fiber-supported IL membrane -- 5.2.1. Extraction of phenols -- 5.2.2. Extraction of metal ions -- 6. Polymer inclusion membranes (PIMs) -- 6.1. Extraction of metal ions -- 6.2. Extraction of antibiotics -- 6.3. Extraction of organic molecules -- 7. Conclusions -- References -- Chapter 10: Ionic liquids in gas sensors and biosensors -- 1. Introduction -- 2. Properties of ILs -- 3. Transducers utilized in IL-based sensors. , 3.1. Electrochemical transducers -- 3.2. Mass-sensing transducers -- 3.3. Optical transducers -- 3.4. IL-modified electrodes -- 3.5. Multitransduction modes -- 4. Immobilization techniques -- 5. Applications of IL-based sensors and biosensors -- 6. Future prospects -- 6.1. Electronic nose instruments -- 6.2. Ion Jelly ionic liquids -- 6.3. 3-D printing technology -- 7. Conclusions -- References -- Further reading -- Chapter 11: Ionic liquids as gas sensors and biosensors -- 1. Introduction -- 2. Ionic liquid-based electrochemical biosensors -- 2.1. Ionic liquid-based carbon nanomaterial biosensors -- 2.2. Ionic liquid based biosensor/metal nanomaterials -- 2.3. Gel-based biosensors -- 3. Electrochemical gas sensors -- 3.1. Electrochemical gas sensor-Oxygen (O2) sensors -- 3.2. Electrochemical gas sensor-Nitrogen oxide (NOx) -- 4. Optical gas sensors -- 4.1. Optical oxygen gas sensors -- 4.2. Optical carbon dioxide gas sensors -- 5. Other forms of gas sensors and applications of ionic liquids -- 5.1. Gas seniors-semiconducting metal oxides -- 5.2. Carbon-IL composite gas sensors -- 6. Conclusion -- References -- Further reading -- Chapter 12: Imidazolium-based room temperature ionic liquids for electrochemical reduction of carbon dioxide to carbon mo ... -- 1. Introduction -- 2. Mechanistic aspects -- 2.1. Formation of imidazolium-CO2 adducts -- 2.2. Deactivation of imidazolium cation during CO2 ERR -- 2.3. Structural transitions of imidazolium ILs at electrode-electrolyte interface -- 3. Role of imidazolium ILs in homogeneous reduction of CO2 -- 4. Role of imidazolium ILs in heterogeneous reduction of CO2 -- 4.1. With noble metal-based electrodes -- 4.2. With nonnoble metal-based electrodes -- 4.3. With polymers -- 4.4. With carbon-based electrodes -- 5. Conclusion -- References. , Chapter 13: Ionic liquid based electrochemical sensors and their applications -- 1. Introduction -- 2. History of ionic liquids -- 3. Electrochemical properties of ionic liquids -- 4. Ionic liquid based electrochemical sensors -- 5. Ionic liquid applications in electrochemical sensors -- 6. Conclusions -- References -- Index -- Back Cover.
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  • 8
    Online Resource
    Online Resource
    Milton :Taylor & Francis Group,
    Keywords: Electronic books.
    Description / Table of Contents: Surveys recent advances in conducting polymers and their composites. Chapters address synthetic approaches, and applications in all types of electrochemical energy storage devices and next-generation devices. Evaluates the execution of these materials as electrodes in electrochemical power sources.
    Type of Medium: Online Resource
    Pages: 1 online resource (353 pages)
    Edition: 1st ed.
    ISBN: 9780429510885
    Language: English
    Note: Cover -- Half Title -- Title Page -- Copyright Page -- Table of Contents -- Preface -- Contributors -- Editors -- Chapter 1. Polythiophene-Based Battery Applications -- 1.1 Introduction -- 1.2 Synthesis -- 1.2.1 Electrochemical Polymerization -- 1.2.2 Chemical Synthesis -- 1.3 Battery Applications of PTs -- 1.3.1 PTs as Cathodic Materials -- 1.3.1.1 PTs as Active Materials -- 1.3.1.2 PTs as Binder -- 1.3.1.3 PTs as Conduction-Promoting Agents -- 1.3.2 PTs as Air Cathode -- 1.3.2.1 Li-Air Batteries -- 1.3.2.2 Aluminum-Air Battery -- 1.3.2.3 Zinc-Air Battery -- 1.3.3 PTs as Anodic Materials -- 1.3.3.1 PTs as Active Materials for Anode -- 1.3.3.2 PTs as Binders -- 1.3.3.3 PTs as Conduction Promoting Agents (CPAs) -- 1.3.4 PTs as Battery Separators -- 1.3.4.1 Li-Ion Batteries -- 1.3.4.2 Li-S Batteries -- 1.3.4.3 Li-O2 Batteries -- 1.3.5 PTs as Electrolytes -- 1.3.6 PTs as Coin-cell Cases -- 1.3.7 PTs as Li-O2 Catalyst -- 1.4 Conclusion -- References -- Chapter 2. Synthetic Strategies and Significant Issues for Pristine Conducting Polymers -- 2.1 Introduction -- 2.2 Conduction Mechanism -- 2.3 Synthesis of Conducting Polymers -- 2.3.1 Synthesis through Polymerization -- 2.3.1.1 Chain-Growth Polymerization -- 2.3.1.2 Step-Growth Polymerization -- 2.3.2 Synthesis by Doping with Compatible Dopants -- 2.3.2.1 Types of Doping Agents -- 2.3.2.2 Doping Techniques -- 2.3.2.3 Mechanism of Doping -- 2.3.2.4 Influence of Doping on Conductivity -- 2.3.3 Electrochemical Polymerization -- 2.3.4 Photochemical Synthesis -- 2.4 Various Issues for Synthesis -- 2.4.1 Vapor-Phase Polymerization -- 2.4.2 Hybrid Conducting Polymers -- 2.4.3 Nanostructure Conducting Polymers -- 2.4.4 Narrow Bandgap Conducting Polymers -- 2.4.5 Synthesis in Supercritical CO2 -- 2.4.6 Biodegradability and Biocompatibility of Conducting Polymers -- 2.5 Applications. , 2.6 Future Scope for Applications -- 2.7 Conclusions -- Abbreviations -- References -- Chapter 3. Conducting Polymer Derived Materials for Batteries -- 3.1 Introduction -- 3.2 Theory -- 3.3 Discussion on Conducting Polymer-Derived Materials -- 3.3.1 PEDOT Derivatives -- 3.3.1.1 Structural Properties -- 3.3.1.2 Electrochemical Studies of PEDOT and Its Derivatives -- 3.3.1.3 Magnetic Properties -- 3.3.2 PPy for the Energy-Storage Devices -- 3.3.2.1 Structural Property of PPy -- 3.3.2.2 Electrochemical Properties of Polypyrrol -- 3.3.2.3 Magnetic Properties -- 3.3.3 PANI for Battery Application -- 3.3.3.1 Structural Properties -- 3.3.3.2 Electrochemical Properties of PANI for Battery Electrode -- 3.3.3.3 Magnetic Properties of PANI -- 3.4 Summary and Conclusions -- References -- Chapter 4. An Overview on Conducting Polymer-Based Materials for Battery Application -- 4.1 Introduction -- 4.2 Principle of Conducting Polymer Battery -- 4.3 Assortment of Conducting Polymer Electrodes for Battery Application -- 4.4 Mechanism of Conducting Polymers in Rechargeable Batteries -- 4.5 Organic Conducting Polymer for Lithium-ion Battery -- 4.5.1 Types of Organic Conducting Polymers -- 4.6 Synthesis of Conducting Polymer -- 4.6.1 Hard-template Method -- 4.6.2 Soft-template Method -- 4.6.3 Template-free Technique -- 4.6.4 Self-Assembly or Interfacial -- 4.6.5 Electrospinning -- 4.7 Characterization -- 4.7.1 Surface Characterization by AFM and AFMIR -- 4.7.2 Transmission Electron Microscopy -- 4.7.3 Electrochemical Characterization -- 4.8 Applications of Various Conducting Polymers in Battery -- 4.8.1 Polyacetylene Battery -- 4.8.2 Polyaniline Batteries -- 4.8.3 Poly (p-phenylene) Batteries -- 4.8.4 Heterocyclic Polymer Batteries -- 4.9 Summary and Outlook -- References -- Chapter 5. Polymer-Based Binary Nanocomposites -- 5.1 Introduction -- 5.2 Binary Composites. , 5.3 Nanostructured CPs -- 5.4 Strategies to Improve Performance -- 5.4.1 Low-dimensional Capacitors -- 5.4.2 Hybrid Capacitors -- 5.4.2.1 Hybrid Electrode Material -- 5.5 CP/Carbon-based Binary Composite -- 5.6 CP/Metal Oxides Binary Composites -- 5.7 CP/Metal Sulfides Binary Complexes -- 5.8 Other Cp-supported Binary Complexes -- 5.9 Conclusion -- References -- Chapter 6. Polyaniline-Based Supercapacitor Applications -- 6.1 Introduction -- 6.2 Polyaniline (PANI) and Its Application Potential -- 6.3 Supercapacitors -- 6.3.1 PANI in Supercapacitors -- 6.3.2 PANI and Carbon Composites -- 6.3.3 PANI/Porous and Carbon Composites -- 6.3.4 PANI/Graphene Composites -- 6.3.5 PANI/CNTs Composites -- 6.3.6 Polyaniline Activation/Carbonization -- 6.3.7 Composites of Polyaniline with Various Conductive Polymer Blends -- 6.3.8 Composites of Polyaniline with Transition Metal Oxides -- 6.3.9 Composites of Polyaniline Core-Shells with Metal Oxides -- 6.3.10 PANI-modified Cathode Materials -- 6.3.11 PANI-modified Anode Materials -- 6.4 Redox-active Electrolytes for PANI Supercapacitors -- 6.5 Examples of Various Polyaniline-based Supercapacitor -- 6.5.1 Composites of Polyaniline Doped with CoCl2 as Materials for Electrodes -- 6.5.2 Composites of Polyaniline Nanofibers with Graphene as materials for electrodes -- 6.5.3 Composites of Polyaniline (PANI) with Graphene Oxide as Electrode Materials -- 6.5.4 Hybrid Films of Manganese Dioxide and Polyaniline as Electrode Materials -- 6.5.5 Composites of Activated Carbon/Polyaniline with Tungsten Trioxide as Electrode Materials -- 6.5.6 PANI- and MOF-based Flexible Solid-state Supercapacitors -- 6.5.7 Polyaniline-based Nickel Electrodes for Electrochemical Supercapacitors -- 6.5.8 Hydrogel of Ultrathin Pure Polyaniline Nanofibers in Supercapacitor Application -- Conclusion -- Acknowledgements -- References. , Chapter 7. Conductive Polymer-derived Materials for Supercapacitor -- 7.1 Introduction -- 7.2 Types of Supercapacitor -- 7.3 Parameters of Supercapacitors -- 7.4 Conducting Polymers (CPs) as Electrode Materials -- 7.4.1 Class of Conducting Polymer as Supercapacitor Electrode -- 7.5 Polyaniline (PANI)-based Electrode -- 7.6 Polypyrrole (PPy)-based Electrode -- 7.7 Polythiophene (PTh)-based Electrode -- 7.8 Conclusions -- Acknowledgement -- References -- Chapter 8. Conducting Polymer-Metal Based Binary Composites for Battery Applications -- 8.1 Conducting polymer (CPs) -- 8.2 Conducting polymers conductivity -- 8.3 Conducting polymer composites -- 8.3.1 Metal center nanoparticles -- 8.3.2 Metal nanoparticles -- 8.4 Conducting Polymer Based Binary Composites -- 8.4.1 Metal Matrix Composites (MMC) -- 8.4.2 Poly (Thiophene) composite -- 8.4.3 Poly (Para-Phenylene Vinylene) composite -- 8.4.4 Poly (Carbazole) composite -- 8.4.5 Vanadium oxide based conducting composite -- 8.4.6 PANI-V2O5 composite -- 8.4.7 Poly(N-sulfo propyl aniline)-V2O5 composite -- 8.5 Conducting polymer composite battery applications -- 8.5.1 Conducting polymer composite for Lithium-ion (Li+) based battery -- 8.5.2 Conducting polymer composites for Sodium-ion (Na+) based Battery -- 8.5.3 Conducting Polymer composite for Mg-Ion (Mg+2) Based Battery -- 8.6 Conducting polymer based composites for electrode materials -- References -- Chapter 9. Novel Conducting Polymer-Based Battery Application -- 9.1 Conducting Polymers (CPs) -- 9.1.1 Poly(Acetylene) -- 9.1.2 Poly(Thiophene) -- 9.1.3 Poly(Aniline) -- 9.1.4 Poly(Pyrrole) -- 9.1.5 Poly(Paraphenylene) and Poly(Phenylene) -- 9.2 Battery Applications of Conducting Polymers -- 9.2.1 Lithium Sulfide batteries -- 9.2.2 Binder for Lithium sulfide battery cathode -- 9.2.3 Sulfur encapsulation for electrode materials. , 9.2.4 Sulfur Encapsulation through Conductive Polymers -- 9.2.5 Conducting polymer anodes for Lithium sulfide battery -- 9.2.6 Conducting polymer as materials interlayer -- 9.3 Li+-ion-based Battery Applications of Conducting Polymers -- 9.4 Na+- ion-based Battery Applications of Conducting Polymers -- 9.5 Mg+2-ion-based Battery Applications of Conducting Polymers -- References -- Chapter 10. Conducting Polymer-Carbon-Based Binary Composites for Battery Applications -- Abbreviations -- 10.1 Introduction -- 10.2 Batteries -- 10.2.1 Types of Batteries -- 10.2.2 Electrode Materials -- 10.3 Conducting Polymer-Carbon-Based Binary Composite in Battery Applications -- 10.3.1 Polyaniline PANI-Carbon-Based Composite -- 10.3.2 Polypyrrole (PPy)-Carbon-Based Composite -- 10.3.3 Poly(3,4-ethylenedioxythiophene) (PEDOT)-Carbon-Based Composite -- 10.3.4 Others Conducting Polymer-Carbon-Based Composite -- 10.4 Conclusions -- Acknowledgements -- References -- Chapter 11. Polyethylenedioxythiophene-Based Battery Applications -- 11.1 Chemistry of PEDOT -- 11.1.1 PEDOT Synthesis and Morphology -- 11.1.1.1 Synthetic Techniques to Achieve Desired Morphologies -- 11.1.2 PEDOT-Based Nanocomposites -- 11.2 PEDOT-Based Polymers in Lithium-Sulfur Batteries -- 11.3 Lithium-Air Battery Based on PEDOT or PEDOT:PSS -- 11.3.1 PEDOT-Based Nanocomposites for Li-O2 Batteries -- 11.3.2 PEDOT:PSS-Based Li-O2 Battery Cathodes -- 11.4 Lithium and Alkali Ion Polythiophene Batteries -- 11.4.1 Cathodes -- 11.4.1.1 Cathode Binders and Composites -- 11.4.2 Anodes -- 11.4.2.1 Anode Binders and Composites -- 11.4.3 All-Polythiophene and Metal-Free Batteries -- References -- Chapter 12. Polythiophene-Based Supercapacitor Applications -- 12.1 Introduction -- 12.2 Properties of Polythiophene (PTh) -- 12.3 Synthesis of Polythiophene -- 12.4 Charge Storage in Polythiophene Electrochemical Capacitors. , 12.5 Polythiophene Electrode Fabrication.
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  • 9
    Keywords: Environmental engineering. ; Electronic books.
    Type of Medium: Online Resource
    Pages: 1 online resource (300 pages)
    Edition: 1st ed.
    ISBN: 9780128219010
    DDC: 541.39
    Language: English
    Note: Intro -- Green Sustainable Process for Chemical and Environmental Engineering and Science: Green Inorganic Synthesis -- Copyright -- Contents -- Contributors -- Chapter 1: Microwave-assisted green synthesis of inorganic nanomaterials -- Description -- Key features -- 1. Introduction -- 2. Technical aspects of microwave technique -- 2.1. Principles and heating mechanism of microwave method -- 2.2. Green solvents for microwave reactions -- 2.3. Microwave versus conventional synthesis -- 2.4. Microwave instrumentation -- 2.5. Advantages and limitations -- 3. MW-assisted green synthesis of inorganic nanomaterials -- 3.1. Metallic nanostructured materials -- 3.2. Metal oxides nanostructured materials -- 3.3. Metal chalcogenides nanostructured materials -- 3.4. Quantum dot nanostructured materials -- 4. Conclusions and future aspects -- 4.1. Challenges and scope to further study -- References -- Chapter 2: Green synthesis of inorganic nanoparticles using microemulsion methods -- Description -- Key features -- 1. Introduction -- 2. Fundamental aspects of microemulsion synthesis -- 2.1. Microemulsion and types -- 2.2. Micelles, types, and formation mechanism -- 2.3. Hydrophilic-lipophilic balance number -- 2.4. Surfactants and types -- 2.5. Advantages and limitations of microemulsion synthesis of nanomaterials -- 3. Microemulsion-assisted green synthesis of inorganic nanostructured materials -- 3.1. General mechanism microemulsion method for nanomaterial synthesis -- 3.2. Preparation of metallic and bimetallic nanoparticles -- 3.3. Metal oxide synthesis by microemulsion -- 3.4. Synthesis of metal chalcogenide nanostructured materials -- 3.5. Synthesis of inorganic quantum dots -- 4. Conclusions, challenges, and scope to further study -- References -- Chapter 3: Synthesis of inorganic nanomaterials using microorganisms -- 1. Introduction. , 2. Green approach for synthesis of nanoparticles -- 3. General mechanisms of biosynthesis -- 4. Optimization of nanoparticles biosynthesis -- 4.1. Effect of the temperature -- 4.2. Effect of pH -- 4.3. Effect of metal precursor concentration -- 4.4. Effect of culture medium composition -- 4.5. Effect of biomass quantity and age -- 4.6. Synthesis time -- 5. Biosynthesis of metal oxide nanoparticles -- 5.1. Bacteria-mediated synthesis -- 5.2. Fungi-mediated synthesis -- 5.3. Yeast-mediated synthesis -- 5.4. Algae- and viruses-mediated synthesis -- 6. Biosynthesis of metal chalcogenide nanoparticles -- 7. Final considerations -- References -- Chapter 4: Challenge and perspectives for inorganic green synthesis pathways -- 1. Introduction -- 2. Synthesis methods -- 2.1. Physical synthesis -- 2.1.1. Advantages -- 2.1.2. Inconvenient -- 2.2. Chemical synthesis -- 2.2.1. Advantages -- 2.2.2. Inconvenient -- 2.3. Green synthesis of inorganic nanomaterials and application -- 3. Challenge and perspectives -- 4. Conclusion -- References -- Chapter 5: Synthesis of inorganic nanomaterials using carbohydrates -- 1. Introduction -- 1.1. Types of nanomaterials -- 1.2. Approaches for the synthesis of inorganic nanomaterials -- 1.3. Characterization of inorganic nanomaterials -- 1.4. What are carbohydrates? -- 1.4.1. Types of carbohydrates -- Monosaccharides -- Oligosaccharides -- Polysaccharides -- 2. Synthesis of inorganic nanomaterials using carbohydrates -- 2.1. Synthesis of metal nanomaterials using carbohydrates -- 2.2. Synthesis of metal oxide-based nanomaterials using carbohydrates -- 2.3. Synthesis of nanomaterials using polysaccharides extracted from fungi and plant -- 3. The advantages and disadvantages of inorganic nanomaterials -- 4. Conclusion and future scope -- References -- Chapter 6: Fundamentals for material and nanomaterial synthesis. , 1. Introduction -- 2. Fundamental synthesis for materials -- 2.1. Solid-state synthesis -- 2.2. Chemical vapor transport -- 2.3. Sol-gel process -- 2.4. Melt growth (MG) method -- 2.5. Chemical vapor deposition -- 2.6. Laser ablation methods -- 2.7. Sputtering method -- 2.8. Molecular beam epitaxy method -- 3. Fundamental synthesis for nanomaterials -- 3.1. Top-down and bottom-up approaches -- 3.1.1. Ball milling (BL) synthesis process -- 3.1.2. Electron beam lithography -- 3.1.3. Inert gas condensation synthesis method -- 3.1.4. Physical vapor deposition methods -- 3.1.5. Laser pyrolysis methods -- 3.2. Chemical synthesis methods -- 3.2.1. Sol-gel method -- 3.2.2. Chemical vapor deposition method -- 3.2.3. Hydrothermal synthesis -- 3.2.4. Polyol process -- 3.2.5. Microemulsion technique -- 3.2.6. Microwave-assisted (MA) synthesis -- 3.3. Bio-assisted (B-A) methods -- 4. Conclusion -- References -- Chapter 7: Bioinspired synthesis of inorganic nanomaterials -- 1. Introduction -- 1.1. Nanomaterials and current limitations -- 1.2. Bioinspired synthesis -- 2. General mechanism of interaction -- 3. Bioinspired synthesis of inorganic nanomaterials -- 3.1. Microorganisms-mediated synthesis -- 3.2. Plant-mediated synthesis -- 3.2.1. Root extract assisted synthesis -- 3.2.2. Leaves extract assisted synthesis -- 3.2.3. Shoot-mediated synthesis -- 3.3. Protein templated synthesis -- 3.4. DNA-templated synthesis -- 3.5. Butterfly wing scales-templated synthesis -- 4. Applications of bioinspired nanomaterials -- 5. Conclusions -- References -- Chapter 8: Polysaccharides for inorganic nanomaterials synthesis -- 1. Introduction -- 2. Polysaccharides -- 2.1. Types of polysaccharides -- 2.1.1. Cellulose -- 2.1.2. Starch -- 2.1.3. Chitin -- 2.1.4. Chitosan -- 2.1.5. Properties of polysaccharides for bioapplications -- 3. Nanomaterials -- 3.1. Types of nanomaterials. , 3.1.1. Organic nanomaterials -- Carbon nanotubes -- Graphene -- Fullerenes -- 3.1.2. Inorganic nanomaterials -- Magnetic nanoparticles -- Metal nanoparticles -- Metal oxide nanoparticles -- Luminescent inorganic nanoparticles -- 3.2. Health effects of nanomaterials -- 4. Polysaccharide-based nanomaterials -- 4.1. Cellulose nanomaterials -- 4.1.1. Preparation of cellulose nanomaterials -- 4.1.2. Structure of cellulose nanomaterials -- 4.2. Chitin nanomaterials -- 4.2.1. Preparation of chitin nanomaterials -- 4.2.2. Structure and properties of chitin nanomaterials -- 4.3. Starch nanomaterials -- 4.3.1. Preparation of starch nanomaterials -- 4.3.2. Structure and properties of starch nanomaterials -- 5. Preparation of polysaccharide-based inorganic nanomaterials -- 5.1. Bulk nanocomposites -- 5.2. Composite nanoparticles -- 6. Applications of polysaccharide-based inorganic nanomaterials -- 6.1. Biotechnological applications -- 6.1.1. Bioseparation -- 6.1.2. Biolabeling and biosensing -- 6.1.3. Antimicrobial applications -- 6.2. Biomedical applications -- 6.2.1. Drug delivery -- 6.2.2. Digital imaging -- 6.2.3. Cancer treatment -- 6.3. Agricultural applications -- 7. Characterization of polysaccharide-based nanomaterials -- 7.1. Spectroscopy -- 7.1.1. Infrared (IR) spectroscopy -- 7.1.2. Surface-enhanced Raman scattering (SERS) -- 7.1.3. UV-visible absorbance spectroscopy -- 7.2. Microscopy -- 7.2.1. Scanning electron microscopy (SEM) -- 7.2.2. Transmission electron microscopy (TEM) -- 7.3. X-ray methods -- 7.4. Thermal analysis -- 8. Future prospects -- 9. Concluding remarks -- References -- Chapter 9: Supercritical fluids for inorganic nanomaterials synthesis -- 1. Introduction -- 2. The supercritical fluid as a substitute technology -- 2.1. What is supercritical fluid? -- 2.2. Supercritical antisolvent precipitation. , 2.3. Supercritical-assisted atomization -- 2.4. Sol-gel drying method -- 3. Synthesis in supercritical fluids -- 3.1. Route of supercritical fluids containing nanomaterials synthesis -- 3.2. Sole supercritical fluid -- 3.3. Mixed supercritical fluid -- 4. Theory of the synthesis of supercritical fluids containing nanomaterials -- 4.1. Supercritical fluids working process -- 4.2. Origin of nanoparticles -- 4.3. The rapid expansion of supercritical solutions -- 5. Conclusion -- References -- Chapter 10: Green synthesized zinc oxide nanomaterials and its therapeutic applications -- 1. Introduction -- 2. Green synthesis -- 3. ZnO NPs characterization -- 4. ZnO NPs synthesis by plant extracts -- 5. ZnO NPs synthesis by bacteria and actinomycetes -- 6. ZnO NPs synthesis by algae -- 7. ZnO NPs synthesis by fungi -- 8. NPs synthesis by virus -- 9. ZnO NPs synthesis with alternative green sources -- 10. Therapeutic applications -- 11. Conclusions -- References -- Chapter 11: Sonochemical synthesis of inorganic nanomaterials -- 1. Background -- 2. Inorganic nanomaterials in sonochemical synthesis -- 3. Applications -- 4. Final comments -- References -- Index.
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  • 10
    Keywords: Environmental engineering. ; Electronic books.
    Type of Medium: Online Resource
    Pages: 1 online resource (302 pages)
    Edition: 1st ed.
    ISBN: 9780128218976
    DDC: 543
    Language: English
    Note: Intro -- Green Sustainable Process for Chemical and Environmental Engineering and Science: Analytical Techniques for Environmental a... -- Copyright -- Contents -- Contributors -- Chapter 1: Conventional and advanced techniques of wastewater monitoring and treatment -- 1. Introduction -- 2. Water pollutants: Origin and consequences -- 3. Wastewater analysis -- 3.1. Lab-based analytical methods -- 3.2. Field monitoring techniques -- 3.2.1. Biosensors -- Biosensors for detection of organic contaminants in wastewater -- Biosensors for detection of inorganic contaminants in water -- Biosensors for detection of microorganisms in water -- 3.2.2. Nanoparticle-assisted sensing platform -- 3.2.3. Paper-based microfluidics sensors -- 3.2.4. Soft sensors -- 3.3. Wireless sensor networks -- 4. Wastewater treatment -- 4.1. Conventional wastewater treatment methods -- 4.1.1. Primary treatment -- 4.1.2. Secondary treatment -- Aerobic treatment -- Anaerobic treatment -- Activated sludge process -- Biological filters -- Vermifiltration -- Rotating biological contractors -- Phytoremediation -- Microbial fuel cells -- 4.1.3. Tertiary treatment -- 4.2. Advanced wastewater treatment methods -- 4.2.1. Membrane filtration -- 4.2.2. Advanced oxidation processes -- 4.2.3. UV irradiation -- 4.2.4. Other advanced methods -- 4.3. Commercialized wastewater treatments -- 5. Future perspectives -- References -- Chapter 2: UV-vis spectrophotometry for environmental and industrial analysis -- 1. Introduction -- 2. The electromagnetic spectrum -- 2.1. Electronic photophysical process -- 3. Limitations of Beer-Lambert Law -- 4. Importance of UV-vis spectroscopy for analysis -- 4.1. Quantitative analysis -- 4.2. Qualitative analysis -- 4.3. UV-vis spectrophotometry for environmental analysis -- 5. Water analysis -- 6. Polymer analysis -- 7. Microcarbon analysis -- 8. Dye analysis. , 8.1. Measurement of change in coloration -- 8.2. Removal of metal salts -- 8.3. Regulations in environmental control -- 8.4. Wastewater fingerprinting -- 8.5. Colored ink -- 8.6. UV-vis spectrophotometry for industrial analysis -- 8.6.1. Presence of colorants -- 8.6.2. Removal of colorants -- 8.7. Presence of organic content -- 8.8. Presence of natural products -- 8.9. Petrochemical industry -- 8.10. Waste management -- 9. Conclusion -- References -- Chapter 3: Chemical oxygen demand and biochemical oxygen demand -- 1. Introduction -- 2. Redox chemistry in water -- 3. Oxygen demand [1, 2] -- 4. Biological oxygen demand -- 5. Analysis of biochemical oxygen demand -- 5.1. Standard method -- 5.1.1. Winkler's method [6] -- 5.2. Technological advancement in standard methods -- 5.3. BOD methods for rapid determination of results -- 6. Chemical oxygen demand (COD) -- 6.1. Chemical reactions involved in COD determination [16] -- 6.2. Modification of conventional COD method -- 6.3. Mercury free methods -- 6.4. Electrochemical and photocatalytic methods (lesser chemical use) -- 7. Conclusion -- References -- Chapter 4: Soil and sediment analysis -- 1. Introduction -- 2. Methods for analysis of organic compounds -- 2.1. Pharmaceuticals -- 2.2. Phenols-alkylphenols and bisphenol A -- 2.3. Polycyclic aromatic hydrocarbons -- 2.4. Phthalates -- 2.5. Organometallic and organometalloid compounds -- 3. Microplastics -- 4. Quality assurance -- Funding -- References -- Chapter 5: Liquid chromatography-mass spectrometry techniques for environmental analysis -- 1. Introduction -- 2. Advances in extraction techniques of environmental samples for LC-MS -- 2.1. Microextraction techniques -- 2.2. Extraction techniques involving nanomaterials -- 2.3. Extraction techniques involving ionic liquids -- 3. Advances in liquid chromatography instrumentation. , 4. Advances in mass spectrometry detection -- 5. Applications of LC/MS for environmental analysis -- 6. Conclusions -- References -- Chapter 6: Green analytical chemistry for food industries -- 1. Introduction -- 2. Analytical detection -- 2.1. Qualitative methods -- 2.2. Quantitative methods -- 3. Emerging extraction technologies -- 3.1. Supercritical fluid extraction -- 3.2. Pressurized liquid extraction -- 3.3. Microwave-assisted extraction -- 3.4. Ultrasound-assisted extraction -- 4. Miniaturization of online emerging extraction techniques with analytical detection: Current trends in the use of SFE a ... -- 4.1. Sample preparation: Extraction vessel packaging -- 4.2. Extraction mode -- 4.2.1. Selection of the mobile phase -- 4.3. Separation and detection of analytes -- 5. Conclusion -- References -- Chapter 7: Immunoassays applications -- 1. Introduction -- 2. Conventional vs microscale immunoassay sensors -- 3. Substrates -- 3.1. Silicon -- 3.2. Glass -- 3.3. Polymers -- 3.4. Paper -- 3.5. Hybrid -- 4. Fluid transport mechanisms -- 4.1. Active -- 4.2. Passive -- 5. Detection methodologies -- 5.1. Colorimetric -- 5.2. Fluorescence -- 5.3. Surface plasmon resonance -- 5.4. Electrochemical -- 5.5. Mechanical -- 6. Conclusions and outlook -- References -- Chapter 8: High-performance liquid chromatographic techniques for determination of organophosphate pesticides in complex matr -- 1. Introduction -- 2. Environmental fate of pesticides -- 3. Analytical methods used for pesticides determination -- 4. High-performance liquid chromatography -- 4.1. Types of HPLC -- 4.1.1. Normal-phase HPLC -- 4.1.2. Reverse-phase HPLC -- 4.2. HPLC column -- 4.3. Mode of elution -- 4.3.1. Isocratic HPLC -- 4.3.2. Gradient HPLC -- 4.4. Detectors used for the analysis of organophosphate pesticides -- 5. Sample preparation for HPLC analysis of organophosphate pesticides. , 6. Detection and quantification of organophosphate pesticides from complex matrices using high-performance liquid chromat ... -- References -- Chapter 9: Application of the GC/MS technique in environmental analytics: Case of the essential oils -- 1. Introduction -- 2. GC/MS as a modern technique for analysis of essential oils -- 3. Practical application of the polar column in the analysis of essential oils -- 4. Conclusion -- References -- Chapter 10: Remote sensing for environmental analysis: Basic concepts and setup -- 1. Introduction -- 2. Practical examples -- 2.1. Improving environmental assessments through remote sensing -- 3. Key concepts to/in remote sensing -- 4. Historical background of remote sensing -- 4.1. Historical beginning -- 4.2. Remote sensing to environment applications -- 4.2.1. Hyperspectral imaging -- 4.2.2. Field spectrometry -- 4.2.3. Light detection and ranging (LiDAR) -- 5. Remote sensing sensors -- 5.1. Imaging sensors -- 5.2. Non-imaging sensors -- 6. Quality assurance and quality control (QA/QC) in environmental monitoring by remote sensing -- 7. Perspectives and conclusion -- References -- Chapter 11: Materials science and lab-on-a-chip for environmental and industrial analysis -- 1. Introduction -- 2. Lab-on-a-chip concept and components -- 3. Materials science on LOC technology -- 4. Environmental analysis and pollutant monitoring -- 5. Autonomous LOC prototype -- 6. Challenges and future prospects of LOC technology -- 7. Conclusion -- References -- Chapter 12: Destructive and nondestructive techniques of analyses of biofuel characterization and thermal valorization -- 1. Introduction -- 2. Materials preparation -- 2.1. Thermal densification processes -- 2.2. Mechanical densification processes -- 3. Destructive analyses for materials characterization -- 3.1. Generalities on destructive methods. , 3.2. Destructive methods in solid biofuel characterization -- 3.2.1. Thermogravimetry analysis (ATG) -- 3.2.2. High heating value determination -- 3.2.3. Ultimate analysis -- 4. Nondestructive methods for material characterization -- 4.1. Generalities -- 4.2. Nondestructive methods in solid biofuel characterization -- 4.2.1. Inductively coupled plasma atomic emission spectroscopy technique -- 4.2.2. Gaseous emission analysis using TESTO equipment -- 4.2.3. Particulate matter (PM) measurements -- 4.2.4. Bottom ash characterization and measurements -- References -- Chapter 13: Application of nanoparticles as a chemical sensor for analysis of environmental samples -- 1. Introduction -- 2. Synthesis of nanoparticles (NPs) -- 2.1. Platinum nanoparticles (PtNPs) -- 2.2. Gold nanoparticles (AuNPs) -- 2.3. Silver nanoparticles (AgNPs) -- 2.4. Copper nanoparticles (CuNPs) -- 2.5. Silica nanoparticles (SiNPs) -- 2.6. Magnetic nanoparticles (MNPs) -- 2.7. Carbon nanotubes (CNTs) -- 2.8. Graphene quantum dots (GQDs) -- 3. Characterization of nanoparticles -- 4. Properties of nanoparticles -- 4.1. Surface plasmon resonance (SPR) and color of NPs -- 4.2. Surface area -- 4.3. Magnetic properties -- 4.4. Electronic properties -- 5. Different class of chemical substances -- 5.1. Heavy metals -- 5.1.1. Essential metals -- 5.1.2. Toxic metals -- 5.2. Pesticides and fungicides -- 5.3. Aromatic and VOC's compounds -- 5.4. Surfactants -- 5.5. Other chemical substances -- 6. Analytical techniques for detection of chemical substance in environmental samples -- 6.1. Colorimetric sensing -- 6.2. Fluorescence sensing -- 6.3. Electrochemical sensing -- 6.4. Surface-enhanced Raman spectroscopic (SERS) sensing -- 7. Conclusions -- References -- Index.
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